Patients › Elbow
کوہنی کی عدم استحکام
Elbow ligamentous and bony instability, including dislocation and the terrible-triad pattern.
آپ کیا محسوس کر رہے ہیں¶
[ صفحہ ۲۸ پر تصویر] کچھ لوگوں کو یہ محسوس ہوتا ہے کہ وہ کسی ہاتھ پر گر جاتے ہیں۔ دوسروں کو ماضی میں ایک خلع ہوا ہے اور اس کے بعد سے مشترکہ کبھی بھی صحیح محسوس نہیں ہوا ہے۔
درد اس بات پر منحصر ہے کہ کہنی کا کون سا حصہ متاثر ہوا ہے۔ جب آپ کسی چیز کو پھینکتے، اٹھاتے یا جھونکتے ہیں تو آپ کو کوہنی کے اندرونی حصے میں شدید درد محسوس ہوتا ہے۔ پھینکنے والے ایتھلیٹ اکثر اسے پھینکنے کے سخت آگے کے مرحلے کے دوران محسوس کرتے ہیں، اور کچھ ایک پاپ سنتے ہیں اور جاری نہیں رکھ سکتے۔ باہر کی طرف ، جب آپ کرسی سے اٹھتے ہیں ، پش اپ کرتے ہیں ، یا میز پر اپنے ہاتھ پر ٹیک لگاتے ہیں تو کہنی غیر مستحکم محسوس ہوسکتی ہے۔ جب آپ کہنی کو مکمل طور پر سیدھا کرتے ہیں تو درد بھڑک سکتا ہے، اور کچھ لوگوں کو کلک یا احساس ہوتا ہے کہ جوڑ پکڑ رہا ہے یا لاک ہو رہا ہے۔
سختی عام ہے. آپ کو معلوم ہو سکتا ہے کہ آپ اپنا بازو پوری طرح سیدھا نہیں کر سکتے، اور جو کام سیدھے کہنی کی ضرورت ہوتے ہیں وہ مشکل ہو جاتے ہیں: ایک اونچی شیلف تک پہنچنا، ایک ٹرے اٹھانا، یا خود کو ایک کم کرسی سے باہر دھکیلنا۔ [ صفحہ ۲۱ پر تصویر]
اگر آپ پھینکتے ہیں یا اوور ہیڈ کھیل کھیلتے ہیں تو ، آپ کو اپنی کارکردگی میں کمی محسوس ہوسکتی ہے۔ آپ کے پھینکنے کی رفتار اور طاقت کم ہو جاتی ہے، اور ورزش کے بعد آپ کی کہنی میں درد ہوتا ہے، بجائے اس کے کہ وہ راتوں رات ٹھیک ہو جائے۔ اندرونی کہنی چھونے پر نرم ہو سکتی ہے، اور درد کبھی کبھی اس طرف کے مضحکہ خیز ہڈی کے اعصاب کی طرف پھیل جاتا ہے، جھنجھٹ یا کمزور گرفت کے ساتھ۔
کچھ علامات اس بات کی نشاندہی کرتی ہیں کہ ایک جوڑ اچھی طرح سے ایک ساتھ نہیں رہ رہا ہے۔ اگر آپ کے کوہنی کو اپنی جگہ پر رہنے کے لئے ایک موڑ زاویہ میں رکھنے کی ضرورت ہے ، یا یہ بار بار باہر پھسل جاتا ہے ، تو اس کا انتظار کرنے کے بجائے فوری توجہ کی ضرورت ہے۔
اصل میں کیا ہو رہا ہے¶
آپ کی کہنی ایک بہت ہی مضبوط جوڑ بننے کے لیے بنائی گئی ہے۔ بازو کی ہڈی کے آخر میں گہرے نالے ہوتے ہیں جن میں پیش بازو کی ہڈیاں گھس جاتی ہیں۔ یہ شکل زیادہ تر کام کرتی ہے جو جوڑ کو ایک ساتھ رکھتی ہے۔ کہنی کے اندرونی اور بیرونی پہلوؤں پر مضبوط رباط کی پٹیاں پھر ایک خیمے پر لڑکے کی رسیوں کی طرح کام کرتی ہیں، ہر چیز کو سیدھا رکھتی ہیں جب آپ جھکتے، سیدھے ہوتے، مڑتے اور دھکیلتے ہیں۔
عدم استحکام کا مطلب یہ ہے کہ ان میں سے ایک یا ایک سے زیادہ رسیاں پھیل گئی ہیں یا پھٹ گئی ہیں، لہذا مشترکہ سطحیں لائن سے باہر نکل سکتی ہیں. مکمل خلع اس وقت ہوتا ہے جب جوڑ مکمل طور پر الگ ہوجاتا ہے۔ ایک جزوی پرچی، جہاں سطحوں کو منتقل لیکن مکمل طور پر الگ نہیں، پکڑنے، کلک یا ایک مشترکہ ہے کہ راستے دینے کے بارے میں ہے کی طرح محسوس کر سکتے ہیں. دونوں چوٹوں کے ایک ہی سپیکٹرم پر بیٹھتے ہیں.
سب سے زیادہ dislocations ایک outstretched ہاتھ پر ایک گرنے میں ہو. قوت بازو تک سفر کرتی ہے اور رباطوں کو پھاڑ دیتی ہے، عام طور پر کہنی کے بیرونی حصے سے شروع ہوتی ہے اور قوت بڑھنے کے ساتھ ساتھ اندرونی حصے کی طرف مزید پھاڑتی ہے۔ جب ایک خلع بھی ہڈی کے چھوٹے چھوٹے ٹکڑوں کو توڑتا ہے جہاں ان تعلقات کو منسلک کیا جاتا ہے ، یا مشترکہ کی بیرونی طرف گول ہڈی کو نقصان پہنچاتا ہے یا کہنی کے سامنے ہڈی کا بلاک ، مشترکہ اپنی رسی کی حمایت اور اس کی ہڈی کی شکل کا ایک حصہ کھو دیتا ہے۔ اس مجموعہ کو حل کرنا مشکل ہے اور بعد میں کہنی کو ڈھیلا چھوڑنے کا زیادہ امکان ہے۔
جس پٹا متاثر کیا جاتا ہے آپ کو محسوس کیا وضاحت کرتا ہے. اندرونی رباط جب آپ پھینکتے ہیں تو کشیدگی لیتا ہے، لہذا پھینکنے اور اٹھانے کے دوران وہاں ایک آنسو درد ہوتا ہے. جب آپ اپنے ہاتھ پر دباؤ ڈالتے ہیں یا سہارا لیتے ہیں تو بیرونی رباط کو تناؤ کا سامنا کرنا پڑتا ہے، اس لیے وہاں پھٹ جانے سے یہ حرکتیں غیر محفوظ محسوس ہوتی ہیں۔ اگر جوڑوں کی سطحیں اب ہموار نہیں رہتی ہیں تو ، کہنی بھی سخت ہوسکتی ہے اور برسوں کے ساتھ غیر یکساں طور پر پہن سکتی ہے۔
زیادہ تر کہنیاں جو ایک بار باہر پھسل جاتی ہیں اور واپس رکھی جاتی ہیں ابتدائی حرکت کے ساتھ فورا settle ٹھہر جاتی ہیں۔ ایک چھوٹی سی تعداد ڈھیلی محسوس کرتی رہتی ہے، اور یہ وہ کہنیاں ہیں جن کی مدد کے لیے سرجری کی ضرورت پڑ سکتی ہے۔
ہم اس کے بارے میں کیا کر سکتے ہیں¶
ڈاکٹر کیران ہیرپارا، میٹر پرائیویٹ ہسپتال راک ہیمپٹن میں اوپری ٹانگوں کے سرجن، آپ کی مخصوص چوٹ کے مطابق علاج کرتے ہیں۔ مریضوں کو عام طور پر ان کے جی پی کے ذریعہ ہمارے کلینک کا حوالہ دیا جاتا ہے۔ اگر کسی فزیوتھیراپسٹ نے آپ کو ہمارے پاس آنے کی تجویز دی ہے تو ، آپ کو میڈیکیئر چھوٹ کے اہل ہونے کے ل your اپنے جی پی سے ریفرل کی ضرورت ہوگی۔ کلینک کے دورے پر ہم ایک تاریخ لیتے ہیں، آپ کی کہنی کا معائنہ کرتے ہیں اور امیجنگ کا بندوبست کرتے ہیں جہاں اس کی ضرورت ہوتی ہے۔
زیادہ تر کہنیوں کے لئے جو ایک بار پھسل جاتی ہیں اور فوری طور پر واپس رکھی جاتی ہیں، پہلا قدم سرجری نہیں ہے۔ مشترکہ جگہ پر واپس رکھا جاتا ہے، ایکس رے پر چیک کیا جاتا ہے، اور 90 ڈگری پر کوہنی موڑنے کے ساتھ ایک اسپلنٹ میں مختصر طور پر آرام کیا جاتا ہے. اسپلنٹ میں لگ بھگ 5 سے 7 دن کے بعد، حرکت شروع ہو جاتی ہے۔ ابتدائی تحریک اہم ہے کیونکہ اس چوٹ کے بعد سخت کہنی سب سے عام مسئلہ ہے۔ فزیوتھیراپی محفوظ محسوس ہونے والی حد تک جھکنے اور سیدھے ہونے پر کام کرتی ہے، اور قوت کی تعمیر نو پر۔ اگر کہنی اس حد تک مستحکم ہے، تو دو دن کے اسپلنٹنگ کے بعد ابتدائی نقل و حرکت کافی ہے۔ کسی بھی مزید کے بارے میں سوچنے سے پہلے اس نقطہ نظر کو ایک منصفانہ جانے دیں.
ہم کوٹیسون یا دیگر انجکشن کو کوہنی کی عدم استحکام کے لئے استعمال نہیں کرتے ہیں، لہذا ہم آپ کو ایک پیش نہیں کریں گے.
جب مفصل جگہ پر نہیں رہے گا تو سرجری تصویر میں آتی ہے. اگر آپ کے کوہنی کو اپنی جگہ پر رہنے کے لیے تقریباً 50 سے 60 ڈگری سے زیادہ موڑنے کی ضرورت ہے، یا یہ مکمل توسیع سے 30 ڈگری سے زیادہ سیدھا ہونے پر باہر پھسل جاتا ہے، تو یہ امکان نہیں ہے کہ رباط خود بخود بیٹھ جائیں۔ اگر ہڈی کا ٹکڑا یا نرم ٹشو مشترکہ میں پھنس گیا ہے اور اسے مسدود کر رہا ہے تو یہ بھی لاگو ہوتا ہے، اگر خارج ہونے سے ٹوٹ پھوٹ ہوئی ہے، یا اگر جلد ٹوٹ گئی ہے یا اعصاب اور خون کی وریدوں کو نقصان پہنچا ہے. ان صورتوں میں ہم پھٹے ہوئے رباطوں کی مرمت یا تعمیر نو کرتے ہیں، عام طور پر بیرونی رباط سے شروع کرتے ہیں، اور ہڈی کے کسی بھی ٹوٹے ہوئے ٹکڑے کو ٹھیک کرتے ہیں تاکہ مشترکہ سطحیں دوبارہ سیدھی ہوجائیں۔ اگر اس کے بعد بھی کہنی ڈھیلی رہتی ہے تو ایک عارضی بیرونی فریم مشترکہ کو اپنی جگہ پر تھام سکتا ہے جب تک کہ یہ ٹھیک نہیں ہوتا۔ ایک لمبے عرصے تک ڈھیلے رہنے والی کہنی کے لئے، رباط کی تعمیر نو نئی ٹشو کے ساتھ کھینچی ہوئی پٹا کی جگہ لے لیتا ہے. ہم ہر ایک آپشن کے بارے میں بات کریں گے اور مل کر فیصلہ کریں گے کہ کون سا آپ کے کوہنی اور آپ کے مقاصد کے مطابق ہے۔
کیا توقع کریں¶
زیادہ تر لوگوں کے لئے ، ایک کہنی جو ایک بار باہر نکل جاتی ہے اور واپس رکھی جاتی ہے ابتدائی حرکت کے ساتھ فورا settled حل ہوجاتی ہے۔ جب اس طرح سے انتظام کیا جاتا ہے تو اچھے طویل مدتی نتائج معمول کی بات ہے۔ لوگوں کی ایک چھوٹی سی تعداد، ہر 100 میں سے 8 کے بارے میں بغیر سرجری کے علاج کیا جاتا ہے، بعد میں looseness کے احساسات رکھنے. ہر 100 میں سے تقریباً 2 افراد کو بالآخر جوڑ کو مستحکم کرنے کے لیے آپریشن کی ضرورت ہوتی ہے، زیادہ تر چوٹ کے 4 سال کے اندر۔
صحت یابی میں دنوں کی بجائے ہفتوں کا وقت لگتا ہے۔ سختی سب سے عام رکاوٹ ہے، اور یہی وجہ ہے کہ آپ کی دیکھ بھال کرنے والی ٹیم آپ کے کوہنی کو طویل عرصے تک آرام کرنے کے بجائے جلد حرکت میں لائے گی۔ پہلے ایک یا دو ہفتے میں آپ نرم جھکاو اور سیدھا کرنے پر کام کریں گے، اکثر فزیوتھیراپسٹ کی مدد سے۔ مندرجہ ذیل ہفتوں میں رینج بڑھتی ہے، اور طاقت کا کام اس کے بعد آتا ہے. فزیوتھیراپی آپ کی کلائی، ہاتھ اور کندھے کی بھی دیکھ بھال کرتی ہے، کیونکہ جب کہ کہنی کی حفاظت کی جاتی ہے تو بازو کا باقی حصہ سخت یا کمزور ہو سکتا ہے۔ [ صفحہ ۲۱ پر تصویر]
جب سرجری کی ضرورت ہوتی ہے، تو امکان اس بات پر منحصر ہوتا ہے کہ چوٹ کتنی شدید ہے۔ بہت سے لوگ جھکنے، سیدھے کرنے اور پیش بازو کی گردش کی تقریباً پوری حد تک دوبارہ حاصل کر لیتے ہیں، اور ان کے ڈھیلے پن کے احساسات ختم ہو جاتے ہیں۔ کچھ زخم دوسروں کے مقابلے میں حل کرنے کے لئے مشکل ہیں. جہاں خلع ٹوٹ پھوٹ کے ساتھ آیا، سختی، جاری ڈھیلے پن، درد اور مشترکہ میں پہننے طویل مدت کے لئے مسائل رہ سکتے ہیں، کوئی بات نہیں کہ کس طرح اچھی طرح سے علاج جاتا ہے. ان زیادہ شدید زخموں میں سے ایک حصے میں، ہر 100 میں سے 20 سے 25 کے ارد گرد، کسی وقت ایک اور آپریشن کی ضرورت ہوتی ہے.
ایک حقیقی طور پر غیر مستحکم کہنی کو اکیلا چھوڑنا شاذ و نادر ہی اچھا کام کرتا ہے۔ [ صفحہ ۲۹ پر تصویر] اگر آپ کے کوہنی کو مضبوطی سے جھکا کر رکھنے کی ضرورت ہے، یا یہ کھسکتی رہتی ہے، تو انتظار کرنے کے بجائے آپریشن کے بارے میں بات کرنے کا مقصد یہی ہے۔
اس میں سے کچھ بھی آپ کے اپنے کوہنی کے بارے میں ایک وعدہ نہیں ہے. آپ کا سرجن آپ کو ایک واضح تصویر دے گا جب وہ جان لیں گے کہ کون سے ڈھانچے کو نقصان پہنچا ہے اور آپ کی امیجنگ کیا دکھاتی ہے۔
کسی سے کب ملنا ہے¶
کچھ علامات کا مطلب یہ ہے کہ آپ کے کوہنی کو انتظار کرنے کے بجائے جلد ہی جانچ پڑتال کی ضرورت ہے۔ اگر آپ کی کہنی اپنی جگہ سے باہر نکل جاتی ہے، یا اسے اپنی جگہ پر رہنے کے لئے ایک موڑ زاویہ میں رکھنے کی ضرورت ہے، تو ایک ماہر جائزہ لینے کے لئے پوچھیں. جب آپ کسی کرسی سے اٹھتے ہیں یا اپنے ہاتھ پر تکیہ لگاتے ہیں تو یہ کم ہوتا رہتا ہے، یا اگر آپ کے جوڑوں کو ایک جگہ سے نکالنے کے بعد دوبارہ لگایا گیا ہے تو یہ ہفتوں بعد بھی ڈھیلا لگتا ہے۔
پھینکنے والے کھلاڑیوں کو اندرونی کہنی کے درد کو سنجیدگی سے لینا چاہئے۔ اپنے ڈاکٹر سے مشورہ کریں اگر درد صرف اس وقت ظاہر ہوتا ہے جب آپ سختی سے پھینکتے ہیں، اگر آپ کو ایک پاپ سنائی دیتا ہے اور جاری نہیں رہ سکتا ہے، یا اگر آپ کی پھینک رفتار اور استحکام کھو رہے ہیں. ہنسی ہڈی اعصاب کے قریب جھنجھٹ، کمزور گرفت، یا ایک کہنی جو تالا لگا یا پکڑتا ہے بھی جائزہ لینے کے مستحق ہیں.
اگر کوہنی واضح طور پر جگہ سے باہر ہے تو ہنگامی محکمہ میں جائیں ، بدصورت نظر آئیں ، یا بازو numb ، ٹھنڈا محسوس ہوتا ہے یا رنگ کھو گیا ہے۔ ایک مشترکہ جو واپس نہیں آئے گا اسی دن کی دیکھ بھال کی ضرورت ہے.
مزید گہرائی میں¶
یہ سیکشن آپ کے اپنے علاج کے فیصلوں کے لئے ضرورت سے زیادہ جاتا ہے. یہ یہاں ہے کیونکہ "کوہنی عدم استحکام" بہت مختلف نقطہ نظر کے ساتھ کئی بہت مختلف مسائل کا احاطہ کرتا ہے، اور کیونکہ ایک سادہ dislocation ختم ہو جاتا ہے کہ کس طرح پر واحد سب سے بڑا اثر پہلے پندرہ دنوں میں بنایا ایک فیصلہ ہے، ایک جہاں ثبوت اور انسٹرکٹ مخالف سمتوں میں مشترکہ نقطہ کی حفاظت کے لئے.
"کوہنی کی عدم استحکام" ایک تشخیص نہیں ہے¶
اس اصطلاح میں ہر چیز کا احاطہ کیا گیا ہے جو ایک مشترکہ سے باہر نکل چکا ہے اور اب مستحکم ہے، ایک مشترکہ جو روزمرہ کے کاموں پر راستہ دیتا ہے، ایک فریکچر-اخترتی جہاں ہڈی کے ساتھ ساتھ ربط بھی ناکام ہو گیا ہے. سرجن ایک صدی سے زیادہ عرصے سے ان نمونوں کو درجہ بندی کرنے کی کوشش کر رہے ہیں ، اور اب بھی متفق نہیں ہیں: 130 سال کی کوششوں کا جائزہ لینے سے یہ نتیجہ اخذ کیا گیا ہے کہ "نام اور درجہ بندی دونوں کے بارے میں اب بھی غیر یقینی صورتحال موجود ہے" ، اور ایک قومی سوسائٹی کے ورکنگ گروپ کو دوبارہ کوشش کرنے پر مجبور کیا گیا ہے۔ [1].
یہ آپ کے لئے ایک عملی وجہ سے اہم ہے. جب آپ "کوہنی کی عدم استحکام" کے نتائج پڑھتے ہیں، تو وہ مریضوں کے ایک گروپ کی وضاحت کرسکتے ہیں جن کی چوٹیں آپ کی طرح کچھ نہیں تھیں. سب سے اہم فرق یہ ہے کہ سادہ (صرف ربطات) بمقابلہ پیچیدہ (ضوابط کے علاوہ ٹوٹی ہوئی ہڈی) ، یہ دونوں سفر بہت مختلف راستوں.
دو سمتوں کہ نام ہے: PLRI اور PMRI¶
سادہ بمقابلہ پیچیدہ سے باہر، آپریشن کا تعین کرتا ہے کہ پیٹرن ہے سمت مشترکہ راستہ دیتا ہے. دو نامی نمونوں میں سے زیادہ تر اس کے لئے اکاؤنٹ [1].
Posterolateral گھومنے کی عدم استحکام (PLRI) عام ہے، اور یہ وہی ہے جو زیادہ تر لوگ "غیر مستحکم کہنی" سے مراد ہے. یہ معمول کی چوٹ کی وجہ سے پیدا ہونے والا نمونہ ہے: کھینچے ہوئے ہاتھ پر گرنے سے کہنی پر بوجھ پڑتا ہے اور پیشانی باہر کی طرف مڑ جاتی ہے۔ نقصان مشترکہ کے ارد گرد ایک دائرے میں چلتا ہے، lateral ulnar collateral ligament بائیں بازو کا ملحقہ رباط بیرونی طرف اور آگے اور پیچھے کیپسول کے ارد گرد ترقی، آخری اندرونی رباط تک پہنچنے. چونکہ یہ جانب سے شروع ہوتا ہے، پہلا مرحلہ مکمل طور پر خارج ہونے کی بجائے سبلوکسیشن ہے، اور بیرونی رباط وہ ڈھانچہ ہے جسے اسے ٹھیک کرنے کے لئے مرمت یا دوبارہ تعمیر کرنا پڑتا ہے. جب آپ نے اس سیکشن میں پہلے پڑھا تھا کہ لیٹرل لیگمنٹ ری کنسٹرکشن اور اس کی 0 سے 33 فیصد ریکوری رینج ہے، تو یہ ہے کہ PLRI کا علاج کیا جا رہا ہے۔
علامتی طور پر یہ نمونہ ہے جو آپ کو کرسی سے باہر دھکا دینے یا ہاتھ کی ہتھیلی کے ساتھ بازو کو لوڈ کرنے سے محتاط کرتا ہے، ایسی پوزیشنیں جو جوڑوں کو گھومنے کی اجازت دیتی ہیں۔
پوسٹرومیڈیئل روٹری عدم استحکام (پی ایم آر آئی) کم عام ہے، آسانی سے نظر انداز کیا جا سکتا ہے، اور کم معافی. میکانیزم اس کے برعکس ہے، ایک varus (اندرونی جھکاو) اندر کی طرف گھومنے کے ساتھ طاقت، اور یہ بیرونی رباط کو نقصان پہنچاتا ہے جبکہ کورونوئڈ کا anteromedial پہلو، ulna کے اندرونی سامنے پر ہڈی کا ایک چھوٹا سا شیلف جس پر مشترکہ سہارا دیتا ہے۔
کہ ٹکڑا مسئلہ ہے. جسمانی کام سے پتہ چلتا ہے کہ اوسط 58 فیصد anteromedial پہلو unsupported ہے اس کے پیچھے ہڈی شافٹ کی طرف سے، تو یہ ایک الگ ٹکڑا کے طور پر ٹوٹ جاتا ہے اور آسانی سے ایک سادہ ایکس رے پر نظر انداز کیا جاتا ہے [2]- جی ہاں . اس کی کمی مہنگی ہے: مشترکہ تھوڑا سا غلط ہے اور پیستا ہے. ایک رپورٹ کے مطابق قائم آرتھروسس صرف 26 ماہ ایک کہنی میں چوٹ کے بعد جس کی عدم استحکام پر توجہ نہیں دی گئی تھی [3]- جی ہاں . یہی وجہ ہے کہ جب چوٹ کا نمونہ اس کی تجویز کرتا ہے تو اکثر سی ٹی اسکین کی درخواست کی جاتی ہے ، اور کیوں ایک کورونوڈ ٹکڑا جو چھوٹا لگتا ہے اب بھی فکسشن کی ضمانت دے سکتا ہے۔
آپ کے لئے عملی بات: یہ مختلف زخم ہیں جن کے لئے مختلف آپریشنز کی ضرورت ہوتی ہے، اور "میرے دوست کی کہنی غیر مستحکم تھی اور اسے ایکس کیا گیا تھا" شاید آپ کے کہنی پر منتقل نہ ہو۔
پہلے دو ہفتے تقریبا کسی بھی چیز سے زیادہ اہم ہیں¶
جوڑوں میں نقص ہونے کے بعد انسان کی فطری کوشش ہوتی ہے کہ وہ جوڑوں کو گلاس یا بریسٹ سے محفوظ رکھے۔ کوہنی اس غریزی کو سزا دیتا ہے. یہ غیر معمولی طور پر سخت ہونے کا شکار ہے، اور سختی تقریباً اس کے متناسب ہے کہ اسے کتنی دیر تک ٹھہرایا گیا ہے۔
ایک جائزہ لینے کے اعداد و شمار پر ڈال دیا: ایک سادہ dislocation کے بعد، مکمل سیدھا کرنے کی ایک مستقل نقصان کم از کم 30 ڈگری توقع کی جا سکتی ہے اگر غیر فعال ہونے سے باہر چلتا ہے 25 دن، لیکن جتنا کم 3 ڈگری اگر کوہنی اندر دوبارہ چل رہی ہے پانچ دن [4]- جی ہاں . یہ ایک ایسی کہنی کے درمیان پورا فرق ہے جس کے بارے میں آپ بھول جاتے ہیں اور ایک جو آپ ہر روز محسوس کرتے ہیں۔
ایک بے ترتیب آزمائش (FuncSiE) نے اس کا براہ راست تجربہ کیا ، ابتدائی تحریک کا موازنہ گلاس میں تین ہفتوں کے مقابلے میں سادہ dislocations کے لئے [5]- جی ہاں . چھ ہفتوں میں ابتدائی تحریک گروپ میں حرکت کا ایک نمایاں طور پر بڑا قوس تھا (121° بمقابلہ 102°) ، کم معذوری ، اور کام پر واپس آگیا 10 دن بمقابلہ 18- جی ہاں . ایک سال تک دونوں گروپوں میں کوئی فرق نہیں تھا، اور، اہم بات، کسی بھی گروپ میں کوئی کوہنی دوبارہ dislocated [5]- جی ہاں . پلستر کی طرف سے خریدا تحفظ ایک خطرے کے خلاف تحفظ تھا جو مادی نہیں تھا، سختی اور کھوئے ہوئے ہفتوں کے ساتھ ادا کیا.
اس وجہ سے آپ کی بحالی جلد شروع ہوتی ہے اور اس وجہ سے آرام کے لئے ایک سادہ سلینگ کا استعمال کیا جاتا ہے اس کے بجائے ایک hinged brace جوڑے کو ایک مقررہ قوس میں رکھتا ہے.
سادہ dislocations ایک ایماندار ستارہ کے ساتھ اچھی طرح سے کرتے ہیں¶
سب سے زیادہ سادہ dislocations ایک آپریشن کے بغیر بحال. لیکن "زیادہ تر" "تمام" نہیں ہے: تقریبا 8% غیر آپریشن کے ذریعے علاج کیے جانے والے لوگوں میں مسلسل عدم استحکام کی علامات ہوتی ہیں، اور تقریباً 2% بالآخر آپریشن کی ضرورت ہے [6]- جی ہاں . ایک چھوٹی سی تعداد میں زخم جو دن میں سادہ نظر آتے ہیں بعد میں برا برتاؤ کرتے ہیں، جس کی وجہ سے ہم آپ کا جائزہ لیں گے بجائے آپ کو کم مشترکہ کی پہلی علامت پر ڈسچارج کرنے کے۔
"خوفناک تثلیث" یہ ایک چوٹ ہے کے مقابلے میں ایک بدتر نام ہے¶
ریڈیل ہیڈ اور کورونوئڈ کے ٹوٹنے کے ساتھ کہنی کی بے ترتیبی کا مجموعہ "خوفناک تثلیث" کا نام دیا گیا تھا کیونکہ اس کے ابتدائی نتائج مایوس کن تھے۔ جدید نتائج بہت بہتر ہیں: ایک جائزہ جس میں 37 مطالعات اور 1609 مریضوں کو اکٹھا کیا گیا تھا اس میں اوسطا Mayo Elbow Performance Score 90، درجہ بندی بہترین [7].
اس جملے کا آدھا حصہ پیچیدگی کی شرح ہے، جو کم نہیں ہے۔ آس پاس 30% مریضوں میں کچھ پیچیدگی ہوتی ہے، اور 7.8% مزید آپریشن کی ضرورت ہے. سب سے زیادہ عام نرم ٹشوز میں اضافی ہڈی کی تشکیل ہے (11%) اور ulnar اعصاب علامات (2.6%) [7]- جی ہاں . لہذا: ایک اچھا نتیجہ اب امید کی بجائے توقع ہے، لیکن یہ ایک دوسری آپریشن کا ایک حقیقی موقع کے ساتھ ایک چوٹ ہے، اور آپ کو شروع کرنے سے پہلے یہ جاننا مناسب ہے.
جب بندھن کی سرجری نہیں چلتی ہے تو، ہڈی اکثر وجہ ہوتی ہے¶
دائمی عدم استحکام کے سب سے عام نمونہ کے لئے ضمنی رباط کی مرمت یا تعمیر نو اچھی طرح سے قائم ہے۔ تاہم، اس کے بعد رپورٹ ہونے والی ریکوری سے لے کر 0٪ سے 33٪، آپریشن صرف متغیر نہیں ہے آپ کو بتانے کے لئے کافی وسیع پھیلاؤ [8].
اس کی جزوی وضاحت یہ ہے کہ عدم استحکام ہمیشہ صرف نرم ٹشوز کا مسئلہ نہیں ہوتا۔ مشترکہ کی بیرونی طرف کی ہڈی میں لباس یا نقائص کو مناسب طریقے سے تعمیر نو کے بعد بھی ایک کوہنی کو غیر مستحکم رکھ سکتا ہے، اور مشترکہ ہڈیوں کے زخموں کو ناکامی کے خطرے کو بڑھانے کے لئے مل کر کام کرتے ہیں [8]- جی ہاں . نظر ثانی کی سرجری اسی طرح مشکل ہے: نظر ثانی کی واحد شائع شدہ سیریز پس منظر کے رباط کی تعمیر نو کی اطلاع دی گئی ہے 27% ناکامی کی شرح [8]- جی ہاں . عملی طور پر اس کا مطلب یہ ہے کہ اگر آپ کا کوہنا ایک رباط کی مرمت کے بعد غیر مستحکم رہتا ہے، تو اگلا سوال عام طور پر ہڈی کے بارے میں ہوتا ہے، نہ کہ نرم ٹشو کے اسی آپریشن کو دوبارہ کرنے کے بارے میں۔
اندر سے کم مشترکہ پکڑ رہا ہے¶
کوہنیوں کے لئے بہت غیر مستحکم صرف ایک مرمت پر بھروسہ کرنے کے لئے، روایتی جواب ایک بیرونی hinged فریم ہفتوں کے لئے بازو کے باہر پہنا تھا. ایک متبادل ہے اندرونی مشترکہ استحکام، ایک عارضی اندرونی آلہ جو نرم ٹشوز کی شفا یابی کے دوران مشترکہ کو کم کرتا ہے ، اور بعد میں ہٹا دیا جاتا ہے۔ یہ کہنی ایک اچھا قوس کے ذریعے منتقل کرنے کے لئے کی اجازت دیتا ہے جبکہ اصل سیریز کی رپورٹ کے ساتھ محفوظ کیا جا رہا ہے ایک اوسط موڑ 134 ڈگری حتمی فالو اپ میں [9].
اس نقطہ نظر کو ترجیح دینے کی وجہ یہ ہے کہ اس صفحے کے باقی حصے کے طور پر ایک ہی اصول ہے: تحفظ جو اب بھی نقل و حرکت کی اجازت دیتا ہے اس کی حفاظت کو روکتا ہے جو اسے روکتا ہے.
حوالہ جات¶
[1] Marinelli A، Guerra E، روٹینی R. کہنی کی عدم استحکام: کیا ہم اس کی درجہ بندی کر سکتے ہیں؟ ادب کا جائزہ اور ایک جامع درجہ بندی کے نظام کی تجویز. پٹھوں اور ہڈیوں کی سرجری 2016؛100(Suppl 1): 61-71. https://doi.org/10.1007/s12306-016-0424-1 [2] Doornberg JN، ڈی جونگ IM، Lindenhovius AL، رنگ ڈی. ulna کے coronoid عمل کے anteromedial پہلو. J کندھے کی کہنی کی سرجری 2007;16(6):667-70. https://doi.org/10.1016/j.jse.2007.03.013 [3] رامیرز ایم اے، اسٹین جے اے، مرتھی اے ایم. واروس پوسٹرومیڈیل عدم استحکام. ہینڈ کلین۔ 2015;31(4):557-63۔ https://doi.org/10.1016/j.hcl.2015.06.005 [4] مارٹن بی ڈی، جوہانسن جے اے، ایڈورڈز ایس جی. کہنی کے سادہ dislocations سے متعلق پیچیدگیاں. ہاتھ Clin. 2008;24(1):9-25. https://doi.org/10.1016/j.hcl.2007.11.013 [5] Iordens GIT, Van Lieshout EMM, Schep NWL, De Haan J, Tuinebreijer WE, Eygendaal D, et al. جلدی متحرک کرنا بمقابلہ سادہ کوہنی کی خلع کا پلستر غیر متحرک کرنا: FuncSiE ملٹی سنٹر بے ترتیب کلینیکل ٹرائل کے نتائج۔ بر ج سپورٹس میڈ۔ 2017؛51(6): 531-8۔ https://doi.org/10.1136/bjsports-2015-094704 [6] رابنسن PM، Griffiths کے ای، واٹس اے سی. سادہ کہنی dislocation. کندھے کی کہنی۔ 2017؛9(3):195-204. https://doi.org/10.1177/1758573217694163 [7] Stambulic T، Desai V، Bicknell R، Daneshvar P. خوفناک ٹرائیڈ چوٹیں اب خوفناک نہیں ہیں! کہنی کے خوفناک ٹرائیڈ چوٹوں کے فنکشنل نتائج: ایک منظم جائزہ. جے ایس ای ایس ریو ریپ ٹیک 2022؛2(2):214-8. https://doi.org/10.1016/j.xrrt.2022.01.002 [8] O'Driscoll SW، چینی GK. ناکام ضمنی ضمنی رباط کی تعمیر نو کے لئے پری اور آپریٹو خطرے کے عوامل. JSES Int. 2023;7(6):2578-86. https://doi.org/10.1016/j.jseint.2023.03.017 [9] اوربی جے ایل ، میجارس ایم آر۔ داخلی مشترکہ استحکام کا استعمال کرتے ہوئے کہنی کی عدم استحکام کا انتظام۔ کلین اورتھوپ ریلیٹ ریز 2014؛ 472 ((7): 49-60۔ https://doi.org/10.1007/s11999-014-3646-2
Evidence & references
This is the clinical evidence summary written for health professionals. It is technical, and it lists the research this page was built from. You do not need to read it to understand your treatment or to make a decision about it.
Overview¶
- All patients in a series of lateral collateral ligament instability cases had resolution of symptoms and regained a near full arc of elbow flexion and forearm rotation [1].
- Complex elbow instability is a challenging clinical entity requiring a balance between stability, mobility, and concentric reduction [2].
- Further research, particularly multicenter prospective trials, is needed for complex elbow instability due to the rare nature of these injuries [2].
- Arthroscopic techniques provide safe and objective means to evaluate and diagnose both medial and lateral elbow instability [3].
- Good long-term outcomes have been reported after non-operative management of simple elbow dislocations [4].
- Approximately 8% of patients with simple elbow dislocations develop persistent instability symptoms if treated nonoperatively [4].
- A small proportion (2%) of patients with simple elbow dislocations require surgical intervention [4].
- Elbow arthroscopy is a valuable tool in the diagnosis and management of chronic elbow instability [6].
- Use of a standard surgical protocol for elbow dislocations with radial head and coronoid fractures restored sufficient elbow stability to allow early motion postoperatively [16].
- Elbow instability injuries are an infrequent but serious source of disability for select NCAA athletes [20].
- Operative repair is indicated for most fracture-dislocations of the elbow to restore sufficient osseoligamentous support [26].
- Operative repair of elbow fracture-dislocations allows safe, early motion and provides a stable functional elbow in the long term [26].
- Current evidence regarding the optimal elbow flexion angle for graft fixation in ulnar collateral ligament reconstruction possesses a high degree of fragility [38].
- Surgery is indicated for unstable elbows requiring flexion beyond 50 to 60 degrees to remain reduced [41].
- Surgery is indicated for unstable periarticular fractures of the elbow [41].
- Instability is the major complication of unlinked total elbow arthroplasty, often requiring revision [43].
- Linked arthroplasty is preferred for patients with posttraumatic articular damage, ligamentous instability, deformity, or bone loss [43].
- There is no evidence to suggest that a hinged external fixator is better than a static frame for elbow dislocations [97].
- Hinged external fixators allow for range of motion exercises to be performed while the fixator is in place [97].
- Hinged external fixators are harder to apply and are not widely available [97].
- Malalignment of the axis pin in hinged devices may cause maltracking or dislocation of the elbow during motion [97].
- Care must be taken not to damage the ulnar nerve when inserting the axis pin or the radial nerve when inserting humeral pins in hinged fixators [97].
- Elbow motion is initiated postoperatively within the first week for hinged external fixation [97].
- Hinged external fixators are left in place for approximately 4 to 6 weeks [97].
- Static external fixation is increasingly utilized due to its general availability, ease of application, and more reliable maintenance of reduction [97].
- For static external fixation, the elbow is placed at 90 degrees of flexion with the joint concentrically reduced [97].
- Two pins are placed in the humeral shaft laterally and two pins are placed in the ulnar shaft laterally in a position that allows for forearm rotation for static external fixation [97].
- Open pin placement is recommended to avoid injury to the radial nerve during static external fixation [97].
- Imaging is employed to ensure pins are not placed too deep to avoid injury to the ulnar nerve during static external fixation [97].
- Static external fixators are left in place for approximately 4 weeks [97].
- A cross-screw technique may be employed in patients with residual instability where an external fixator is not available or in patients who are not candidates for an external fixator [97].
- The cross-screw technique is rarely required and should be reserved for use only as a salvage procedure [97].
- In the cross-screw technique, a screw or pin is placed from the posterior aspect of the ulna, across the joint, exiting on the posterior border of the humerus [97].
- A 4.5-mm cortical screw or shaft screw is appropriate for cross-screw fixation [97].
- The elbow is placed into a cast for 3 to 4 weeks after cross-screw fixation, after which the screw is removed and a motion protocol is started [97].
Anatomy & Pathophysiology¶
Bony Anatomy¶
- The elbow is a trocho-ginglymoid joint consisting of medial and lateral articulations that provide bony stability [52].
- The ulnohumeral joint is formed by the articulation of the trochlea with the ulna within the greater sigmoid notch [52].
- The ulnohumeral articulation provides highly congruent anatomy through almost 180° of articular contact, with the exception of a bare area in the greater sigmoid notch devoid of cartilage [52].
- The coronoid process has medial and lateral facets that buttress the trochlea anteriorly [52].
- The sublime tubercle is located just distal and medial to the coronoid and serves as the attachment site for the anterior bundle of the medial ulnar collateral ligament [52].
- The radiocapitellar joint is formed by the articulation of the capitellum and the radial head [52].
- The proximal radioulnar joint holds the radius in close approximation to the ulna via the annular ligament [52].
- The radial head is a concave elliptical structure covered with articular cartilage along the radiocapitellar joint and approximately 270° of the articular margin [52].
- The distal humeral articulation is angled 30° from the longitudinal axis [52].
- The axis of rotation is angulated 5° to 7° in the coronal plane relative to the epicondylar axis, with the medial side more distal than the lateral side [52].
- The ulna bends approximately 8° medially at 8 cm from the tip of the olecranon [52].
- The articulation to the tip of the coronoid is approximately 30° from the long axis of the ulna in the sagittal plane [52].
- The normal elbow has a range of motion from 0° to 140° from extension to flexion and 75° and 85° in pronation and supination respectively [17].
- A functional arc for the elbow is 100° for flexion and extension and forearm rotation [17].
- The articular surface of the distal humerus is angled 30 degrees anterior to the humeral shaft axis [55].
- In full extension, 60% of axial load is transmitted through the radiocapitellar joint [55].
- The trochlea has a 300-degree arc of cartilage [57].
- The medial column diverges from the humeral shaft at a 45-degree angle, and the lateral column diverges at a 20-degree angle [57].
Ligamentous Anatomy¶
- Elbow stability is determined by primary and secondary stabilizers, with injury to these structures causing elbow instability [17].
- The three primary stabilizers of the elbow are the ulnohumeral articulation, the medial ulnar collateral ligament (MUCL), and the lateral ulnar collateral ligament (LUCL) complex [17].
- Secondary stabilizers include the radiocapitellar articulation, the common flexor tendon, the common extensor tendon, and the joint capsule [17].
- The medial collateral ligament complex comprises three ligaments: the anterior oblique, the posterior oblique, and the transverse [32].
- The anterior oblique ligament is the strongest component and is the primary stabilizer to valgus stress [32].
- The anterior oblique ligament is composed of anterior and posterior bands that provide reciprocal function in resisting valgus stress through the range of flexion-extension motion [32].
- The anterior band of the medial collateral ligament is taut in extension, and the posterior band is tight in flexion [32].
- The anterior oblique ligament originates on the anterior-inferior edge of the medial epicondyle and inserts on the sublime tubercle of the ulna [32].
- The lateral collateral ligament complex includes the radial collateral ligament, annular ligament, and lateral ulnar collateral ligament [74].
- The lateral collateral ligament is the primary varus and posterolateral rotational stabilizer of the elbow [74].
- The radial collateral ligament arises from the lateral epicondyle and blends with the annular ligament [74].
- The lateral ulnar collateral ligament is posterior to the radial collateral ligament and attaches to the crista supinatoris of the proximal ulna, just distal to the annular ligament [74].
- The medial collateral ligament consists of anterior and posterior bundles, with the anterior bundle being the key valgus stabilizer arising from the anterior-inferior aspect of the medial epicondyle to insert on the sublime tubercle [74].
- The posterior bundle of the medial collateral ligament provides a secondary restraint to valgus load and resists ulnar rotation [74].
- The anterior bundle of the medial collateral ligament is the primary restraint to valgus stress within functional elbow range of motion, with the radial head acting as a secondary restraint [55].
- The posterior bundle of the medial collateral ligament is the primary restraint to valgus stress with the elbow in maximal flexion [55].
- Stability in full extension is provided by the medial collateral ligament, joint capsule, and ulnohumeral articulation [55].
- The lateral ulnar collateral ligament origin center is 10.7 mm from the lateral epicondyle and its insertion is 3.3 mm from the apex of the supinator crest [51].
Dynamic Stabilizers¶
- Dynamic constraints are provided by muscles crossing the elbow joint, specifically the anconeus, triceps, and brachialis, which apply compressive force [73].
- The biceps, brachialis, and triceps provide compressive stability to the elbow due to their joint reactive forces [74].
- The common extensor muscles provide varus stability and the common flexor muscles provide valgus stability [74].
- Pronation stabilizes the lateral collateral ligament-deficient elbow, while supination decreases stability in this setting [74].
- The surrounding elbow musculature, specifically the flexor digitorum superficialis and flexor carpi ulnaris, provides a dynamic stabilizing force across the elbow joint and may be protective of the static restraint of the medial collateral ligament [32].
Pathophysiology of Instability¶
- Elbow stability arises from a combination of bony congruity, static ligamentous and capsular restraints, and dynamic muscular activation [28].
- Elbow trauma can disrupt static and dynamic stabilizers, leading to predictable patterns of instability dependent on the mechanism of injury and progressive failure of anatomic structures [28].
- The classic mechanism for posterolateral dislocation involves a combination of axial load, external rotation of the forearm (supination), and valgus force [73].
- A progressive circular disruption of soft tissues occurs in posterolateral dislocation, beginning on the lateral side of the elbow [73].
- Stage 1 of soft-tissue disruption in posterolateral dislocation involves disruption of the lateral ulnar collateral ligament [73].
- Stage 2 of soft-tissue disruption involves disruption of other lateral ligamentous structures and the anterior and posterior capsule [73].
- Stage 3 of soft-tissue disruption involves disruption of the medial collateral ligament, which may be partial or complete [73].
- Stage 3C of soft-tissue disruption involves the distal humerus being stripped of soft tissues, resulting in severe instability and dislocation or subluxation [73].
- Simple elbow dislocations are typically the result of a fall on an outstretched hand involving a valgus, axial, and posterolateral force [68].
- Soft tissue injury in simple dislocation is thought to begin on the lateral side with disruption of the lateral collateral ligament and proceed through the capsule to the medial side, with the medial collateral ligament injured last [68].
- Magnetic resonance imaging and video studies suggest that complete ligamentous tears are more common on the medial side of the elbow, with lateral ligaments preserved in some cases [68].
- The sequence of failure in simple dislocation may begin on the medial side with acute valgus instability in an extended elbow [68].
- Patients with simple elbow dislocations routinely have disruption of both the medial and lateral collateral ligaments and the elbow capsule [74].
- Injury to the lateral common extensor origin is typically more extensive than the medial common flexor origin in simple dislocations [74].
- Residual instability after simple dislocation is usually due to incompetence of the lateral collateral ligament in the majority of patients, as most activities of daily living exert a varus force on the elbow [74].
- The coronoid blocks rotational instability and posterior subluxation of the ulna from the posterior pull of the triceps or when weight bearing on the hand [73].
- 50% of the coronoid height is needed to provide substantial stability [73].
- Sagittal plane fractures of the coronoid may disrupt the medial collateral ligament insertion or cause substantial articular deformity [73].
- Both the lateral ulnar collateral ligament and radial collateral ligament must be compromised for the lateral ligaments to become insufficient [73].
- The radial head plays a minor role in posterolateral rotatory stability by tensioning the lateral ulnar collateral ligament [73].
- The medial collateral ligament becomes the primary constraint to valgus instability when the radial head is resected [73].
- Injuries to the medial collateral ligament in isolation are typically well tolerated, except in overhead throwers [73].
- Valgus torque generated at the elbow during throwing maneuvers is highest in the late cocking and early acceleration phases of throwing [32].
- The olecranon stabilizes valgus stress to the elbow, and excessive resection places the medial collateral ligament at risk [32].
- During throwing, the olecranon is repeatedly and forcefully driven into the olecranon fossa, exerting shear forces on the medial aspect of the olecranon tip and the olecranon fossa [12].
- This process may cause cartilage injury and the development of osteophytes [12].
- Medial ligamentous laxity commonly exacerbates valgus extension overload syndrome [12].
- The pathoanatomy of valgus extension overload syndrome includes chondrosis, osteophyte development on the posteromedial olecranon and humerus, and loose bodies [12].
- The ulnohumeral articulation contributes to elbow stability, and olecranon resection increases valgus angulation and medial collateral ligament strain during valgus stress [12].
- Repetitive, near-failure tensile stresses exerted on the ulnar collateral ligament during throwing result in microtrauma and subsequent attenuation of the anterior bundle [66].
- Damage to the anterior bundle of the ulnar collateral ligament results in valgus instability [66].
- Subtle ulnar collateral ligament laxity results in stretch of other medial structures, including the ulnar nerve and the flexor-pronator mass, causing ulnar neuritis and flexor mass tendinitis or tears [66].
- As a result of ulnar collateral ligament incompetency, osseous constraints of the posteromedial elbow become key stabilizers during throwing [66].
- Repetitive shear stresses from continued throwing cause posterior compartment impingement [66].
- Valgus laxity secondary to ulnar collateral ligament stretching alters the contact area between the medial humeral crista and the olecranon, resulting in increased contact pressures and posteromedial impingement [66].
- Chronic impingement makes athletes susceptible to synovitis, olecranon tip osteophyte formation, olecranon stress fractures, loose bodies, and chondral lesions of the posteromedial trochlea [66].
- High compression forces exerted on the lateral radiocapitellar joint put athletes at risk for chondromalacia, loose bodies, and lateral osteophyte formation [66].
- When the elbow dislocates, the radial head may cause an impression fracture of the posterior capitellum which can contribute to recurrent instability [74].
- Recognising the precise pattern of injury is critical in restoring elbow function and preventing chronic instability, pain and weakness [8].
- Complex elbow instability remains a challenging clinical entity requiring a balance between stability, mobility, and concentric reduction [2].
Classification¶
General Principles and Mechanisms¶
- Elbow dislocations are classified according to whether they are simple or complex and the direction of displacement [21].
- A simple elbow dislocation is defined as a dislocation without osseous injury [21].
- A complex elbow dislocation is defined as a dislocation with osseous injury [21].
- The "terrible triad" is characterized by an elbow dislocation with an LCL complex tear, a radial head fracture, and a coronoid fracture [21].
- Varus posteromedial rotatory instability is characterized by an LCL tear with a fracture of the medial facet of the coronoid or a comminuted coronoid fracture [21].
- Posterior dislocations are the most common direction of displacement in elbow dislocations [21].
- Anterior, medial, lateral, and divergent dislocations also occur in the elbow [21].
- Elbow trauma can disrupt static and dynamic stabilizers leading to predictable patterns of instability dependent on the mechanism of injury and a progressive failure of anatomic structures [28].
- The elbow consists of static and dynamic stabilizers that function in synchrony to prevent elbow instability [19].
- In an elbow dislocation, the lateral ligamentous complex is usually torn first, followed by the anterior and posterior capsule [102].
- The medial collateral ligament is the last structure to be injured in an elbow dislocation and is usually intact with posterolateral rotatory instability [102].
- Stage 1 of the injury progression in elbow dislocation is characterized by partial or complete disruption of the lateral collateral ligament complex, resulting in posterolateral rotatory subluxation [102].
- Stage 2 of the injury progression involves further disruption anteriorly and posteriorly, resulting in an incomplete elbow dislocation posterolaterally [102].
- Stage 3A of the injury progression describes disruption of all soft tissues around and including the posterior part of the medial collateral ligament except for the anterior bundle [102].
- Stage 3B of the injury progression features complete disruption of the medial collateral ligamentous complex [102].
- Stage 3C of the injury progression implies significant instability such that the joint can dislocate even with immobilization in a cast at 90° of flexion [102].
- There are three main patterns of instability in elbow fracture-dislocation: valgus posterolateral rotatory instability, varus posteromedial rotatory instability, and transolecranon fracture-dislocation [47].
- Understanding the patterns of traumatic elbow instability helps the surgeon counsel and manage patients with these injuries [10].
Specific Injury Classifications¶
- The Regan and Morrey classification for coronoid fractures includes Type I (fracture of the tip), Type II (fracture of 50% or less), and Type III (fracture of greater than 50%) [35].
- The modified Mason classification system for radial head fractures includes Type I (nondisplaced), Type II (partial articulation with displacement), Type III (comminuted fractures involving the entire head), and Type IV (fractures associated with ligamentous injury or other associated fractures) [35].
- The Wrightington classification of elbow fracture dislocation is a comprehensive, reliable, and valid classification with treatment algorithms associated with good functional outcomes [70].
Diagnostic Evaluation¶
- Specific stress tests and different imaging techniques, both static and dynamic, allow assessment of the elbow stabilisers and detection of the instability direction and mechanism even in subtle forms [15].
- Elbow arthroscopy has become a valid and safe option for the diagnosis and treatment of both acute and chronic elbow instability [11].
- Plain AP and lateral radiographs of the elbow are necessary to document congruent reduction [21].
- Oblique views may be useful to identify periarticular fractures [21].
- CT is useful to identify associated osseous injury [21].
- With an incongruous reduction, CT or MRI should be considered to identify potential incarcerated osteocartilaginous fragments [21].
- Preoperative imaging for chronic elbow dislocation should include AP, lateral, and oblique radiographs of the elbow [46].
- CT imaging with three-dimensional reconstruction is helpful to assess dislocations with intra-articular fracture, heterotopic ossification, or arthritic change [46].
- Fractures of the coronoid and radial head are present in 30% to 40% of patients with chronic elbow dislocation [46].
- The diagnosis of instability suggests collateral ligament and soft-tissue insufficiency that may require reconstruction [46].
- The diagnosis of chronic dislocation implies thick intraarticular fibrosis and soft-tissue contracture that requires débridement and release [46].
Clinical Presentation¶
General Principles and History¶
- The history is the most valuable tool to guide the clinical examination of the elbow [86].
- Location, quality or type, context, duration, and severity of elbow pain are important for understanding pathology and focusing the physical examination [86].
- Prior treatments including surgical interventions and injections help in making the correct diagnosis [86].
- Determining the symptom trajectory (whether pain is getting better, worse, or remaining constant) is helpful when considering intervention [86].
- Understanding whether the patient has pain throughout the arc of motion or only at terminal limits is of paramount importance [80].
- Associated mechanical symptoms or instability must be evaluated to provide optimal management recommendations [80].
- Associated conditions such as cubital tunnel syndrome must be considered and evaluated [80].
- The physical exam is directed by history and the location of the patient's pain in the anterior, posterior, medial, or lateral aspect of the elbow [17].
- Pathologic entities associated with these discrete compartments aid the examiner in detecting pathologic conditions [17].
Physical Examination: General and Stability¶
- The fundamental elements of the elbow examination include inspection, palpation, range of motion (ROM), strength, stability, and special tests [86].
- Examination elements are dynamic, and adequate assessment often combines examination maneuvers to fully elucidate elbow pathology [86].
- A comprehensive physical examination aids in the diagnosis of specific pathologies related to nerves, muscles and tendons, ligaments, articular elements, and bone [86].
- The normal elbow has a range of motion from 0° to 140° from extension to flexion [17].
- The normal elbow has 75° and 85° in pronation and supination respectively [17].
- A functional arc in each plane is 100° for flexion and extension and forearm rotation [17].
- Active and passive flexion, extension, supination, and pronation should be evaluated using a goniometer for accurate measurement [31].
- The contralateral elbow should be examined for comparison during ROM assessment [31].
- Pain should be assessed during the mid arc or at the terminal ends of motion [31].
- Mid arc ROM pain is more common with intrinsic disease and may not improve with contracture release alone [31].
- If the elbow has less than 90° to 100° of flexion, the posterior bundle of the medial collateral ligament (MCL) is contracted and must be released to restore flexion [31].
- The soft tissue surrounding the elbow should be examined for previous skin incisions, grafts, eschar, or infection [31].
- Function of the upper extremity (shoulder, wrist, and hand) should be assessed [31].
- Elbow stability is determined by primary and secondary stabilizers [17].
- Injury to primary and secondary stabilizers causes elbow instability [17].
- The three primary stabilizers are the ulnohumeral articulation, the medial ulnar collateral ligament (MUCL), and the lateral ulnar collateral ligament (LUCL) complex [17].
- Secondary stabilizers are the radiocapitellar articulation, the common flexor tendon, the common extensor tendon, and the joint capsule [17].
- Stability is conferred to the elbow by the bony articular anatomy, which is highly congruent, and the ligamentous structures on the medial and lateral sides [17].
- These structures should be the focus of the examiner’s physical examination and choice of diagnostic studies to uncover underlying pathologic conditions [17].
Physical Examination: Lateral Compartment¶
- Posterolateral rotatory instability presents with a history of not trusting the elbow or feeling of giving way when pushing out of a chair with arms [86].
- The PLR drawer test is used to elicit posterolateral rotatory instability [86].
- The PLR pivot shift test is used to elicit posterolateral rotatory instability [86].
- The supinated push-up test is used to elicit posterolateral rotatory instability [86].
- MRI is the imaging study used to evaluate posterolateral rotatory instability [86].
- Posterolateral rotatory instability of the elbow is a clinical syndrome caused by insufficiency of the lateral ulnar collateral ligament [34].
- Posterolateral rotatory instability presents with clicking, locking, or recurrent dislocation [34].
- Lateral elbow tendinopathy presents with pain lifting things from a bag with a pronated hand, turning doorknobs, taking milk from the fridge, shaking hands, taking a laptop out of a bag, or bumping the lateral elbow [86].
- Direct palpation of the ECRB origin is used to elicit lateral elbow tendinopathy [86].
- The tennis elbow shear test is used to elicit lateral elbow tendinopathy [86].
- Pain along with resisted wrist or long finger extension is used to elicit lateral elbow tendinopathy [86].
- The laptop test is used to elicit lateral elbow tendinopathy [86].
- MRI is used to evaluate lateral elbow tendinopathy if the LUCL is suspected as part of the pathology [86].
- Ultrasonography is used to evaluate lateral elbow tendinopathy [86].
- Radial tunnel syndrome presents with extensor musculature "forearm aching" [86].
- Wrist flexion and forearm pronation are used to elicit radial tunnel syndrome [86].
- The rule of nines test is used to elicit radial tunnel syndrome [86].
- Weakness and pain with resisted long finger extension are used to elicit radial tunnel syndrome [86].
- Ultrasonography-guided diagnostic injection is used to evaluate radial tunnel syndrome [86].
- EMG is used to evaluate radial tunnel syndrome [86].
- Cutaneous neuritis presents with burning or radiating pain and the statement "I want to cut my arm off" [86].
- Direct palpation or percussion, such as the Tinel test, is used to elicit cutaneous neuritis [86].
- Ultrasonography-guided diagnostic injection is used to evaluate cutaneous neuritis [86].
- Plica presents with a pop with associated pain and then "feels better" [86].
- Direct palpation of a "click" with flexion and pronation (anterior) is used to elicit plica [86].
- Direct palpation of a "click" with extension and supination (posterior) is used to elicit plica [86].
- MRI is used to evaluate plica [86].
- Dynamic ultrasonography is used to evaluate plica [86].
- Trauma to the radial head, lateral epicondyle, or capitellum presents with a history of an acute traumatic event and then pain [86].
- Direct palpation is used to elicit trauma to the radial head, lateral epicondyle, or capitellum [86].
- Pain with pronosupination or flexion and extension is used to elicit trauma to the radial head, lateral epicondyle, or capitellum [86].
- Plain radiograph is used to evaluate trauma to the radial head, lateral epicondyle, or capitellum [86].
- CT with 3D reconstruction is used to evaluate trauma to the radial head, lateral epicondyle, or capitellum [86].
- Radiocapitellar arthrosis presents with distant trauma or surgery [86].
- The RC load test (pain with pronation and resisted extension) is used to elicit radiocapitellar arthrosis [86].
- CT with 3D reconstruction is used to evaluate radiocapitellar arthrosis [86].
- OCD or osteonecrosis presents with gradual loss of motion plus or minus pain, and catching and locking if loose bodies are present [86].
- The RC load test (pain with pronation and resisted extension) is used to elicit OCD or osteonecrosis [86].
- CT with 3D reconstruction is used to evaluate OCD or osteonecrosis [86].
- MRI is used to evaluate OCD or osteonecrosis [86].
- Partial biceps tendon tear presents with pain in the lateral arm with resisted supination [86].
- Direct palpation of the radial tuberosity with the arm in pronation elicits crepitus and pain for partial biceps tendon tear [86].
- MRI or ultrasonography is used to evaluate partial biceps tendon tear [86].
Physical Examination: Medial Compartment¶
- Medial elbow tendiopathy or tendon tear presents with pain washing the face or carrying objects with the arm in a supinated position [86].
- Direct palpation of the flexor and pronator tendon origin is used to elicit medial elbow tendiopathy or tendon tear [86].
- The face press examination is used to elicit medial elbow tendiopathy or tendon tear [86].
- The server tray examination is used to elicit medial elbow tendiopathy or tendon tear [86].
- Resisted flexion TEST is used to elicit medial elbow tendiopathy or tendon tear [86].
- The moving valgus TEST (pain between 30° and 60° flexion) is used to elicit medial elbow tendiopathy or tendon tear [86].
- MRI or ultrasonography is used to evaluate medial elbow tendiopathy or tendon tear [86].
- Snapping triceps presents with pain with flexion with a pop or snap and often tingling into the fingers if the ulnar nerve is involved [86].
- Palpation with flexion is used to elicit snapping triceps [86].
- Ultrasonography is used to evaluate snapping triceps [86].
- Ulnar neuritis or neuropathy presents with ring and small finger going to sleep when the elbow is flexed, such as while reading in bed or waking them up at night [86].
- Direct palpation or Tinel test is used to elicit ulnar neuritis or neuropathy [86].
- Ultrasonography or MRI is used to evaluate ulnar neuritis or neuropathy [86].
- MUCL strain, tear, or instability presents with decreased control and velocity while pitching in athletes, or a history of trauma and dislocation [86].
- The milking maneuver is used to elicit MUCL strain, tear, or instability [86].
- The moving valgus stress test is used to elicit MUCL strain, tear, or instability [86].
- MRI is used to evaluate MUCL strain, tear, or instability [86].
- Valgus extension overload presents with decreased ROM and pain with deceleration and follow through [86].
- The valgus extension overload examination is used to elicit valgus extension overload [86].
- The arm bar examination is used to elicit valgus extension overload [86].
- CT with 3D reconstruction is used to evaluate valgus extension overload [86].
- MRI is used to evaluate valgus extension overload [86].
- Varus posteromedial rotatory instability presents with decreased ROM after traumatic dislocation with continued varus deformity and pain with activities with the arm away from the body [86].
- The gravity assisted varus grind test is used to elicit varus posteromedial rotatory instability [86].
- CT with 3D reconstruction is used to evaluate varus posteromedial rotatory instability [86].
- Ulnohumeral arthritis presents with a history of inflammatory conditions or trauma [86].
- Painful ROM through the midarc with or without a load is used to elicit ulnohumeral arthritis [86].
- Radiograph or CT with 3D reconstruction is used to evaluate ulnohumeral arthritis [86].
- Trauma to the medial epicondyle or condyle presents with a history of trauma [86].
- Direct palpation, valgus stress, and the moving valgus stress test are used to elicit trauma to the medial epicondyle or condyle [86].
- Radiograph or CT with 3D reconstruction is used to evaluate trauma to the medial epicondyle or condyle [86].
- MABCN neuroma or neuritis presents with localized pain or burning with an area of hypersensitivity over an area of injury or prior surgery [86].
- Palpation or Tinel test is used to elicit MABCN neuroma or neuritis [86].
- Ultrasonography-guided injection is used to evaluate MABCN neuroma or neuritis [86].
- Median nerve compression presents with vague forearm pain that may radiate from hand to forearm [86].
- Palpation or Tinel test is used to elicit median nerve compression [86].
- Ultrasonography and EMG are used to evaluate median nerve compression [86].
Specific Clinical Syndromes: MCL and Valgus Extension Overload¶
- Patients with MCL injuries report medial elbow pain during the acceleration phase of throwing [32].
- Pain in MCL injuries may occur only when throwing at more than 50% to 75% of maximal effort [32].
- Acute MCL injuries may present suddenly, with a pop, sharp pain, and inability to continue throwing [32].
- Point tenderness can be noted at the MCL or toward its insertion sites [32].
- Valgus instability is tested with the patient’s elbow flexed between 20° and 30° to unlock the olecranon from its fossa as valgus stress is applied [32].
- The milking maneuver is performed by having the patient or the examiner pull on the patient’s thumb to create valgus stress while the patient’s forearm is supinated and the elbow is flexed beyond 90° [32].
- A subjective feeling of apprehension, instability, or localized pain at the MCL during the milking maneuver indicates injury [32].
- The moving valgus stress test is a modification of the milking maneuver where valgus stress is applied while the elbow is moved through an arc of flexion or extension [32].
- A subjective feeling of apprehension, instability, or localized pain at the MCL during the moving valgus stress test indicates injury [32].
- Patients with valgus extension overload report posteromedial elbow pain that occurs during the deceleration phase of throwing as the elbow reaches terminal extension [12].
- Pain in valgus extension overload may also occur during acceleration [12].
- Loss of terminal elbow extension may occur in valgus extension overload [12].
- Crepitus and tenderness over the posteromedial olecranon may be noted in valgus extension overload [12].
- Pain is reproduced when the elbow is forced into extension in valgus extension overload [12].
- Elbow flexion contracture may be seen in valgus extension overload [12].
- The hallmark activity for most medial elbow apophysitis in adolescents is youth baseball [81].
- A history of repetitive throwing, often year-round or on more than one team, is common in medial elbow apophysitis [81].
- Overrepresentation of symptoms in the pitching and catching positions is common in medial elbow apophysitis [81].
- Poor form and lower-body mechanics during transitional growth years may contribute to an increased valgus position during throwing that increases symptoms [81].
- Pain during and after throwing at the medial elbow is seen in medial elbow apophysitis [81].
- Tenderness to medial flexor muscle palpation is seen in medial elbow apophysitis [81].
- Direct tenderness over the epicondyle is seen in medial elbow apophysitis [81].
- Pain with valgus testing is usually less than with direct palpation in medial elbow apophysitis [81].
- The patient may occasionally present with loss of full elbow extension in medial elbow apophysitis [81].
- There may or may not be a history of antecedent pain with throwing or upper extremity weight bearing in medial epicondyle avulsion [42].
- The patient often reports a pop and sudden medial pain in medial epicondyle avulsion [42].
- Generally, the elbow is held in flexion and any motion is painful in medial epicondyle avulsion [42].
- There is tenderness over the medial epicondyle that is exacerbated with valgus stress in medial epicondyle avulsion [42].
- Ulnar nerve dysesthesias may be present in medial epicondyle avulsion [42].
- Medial contusion is common at 24 to 48 hours in medial epicondyle avulsion [42].
Imaging and Diagnostic Modalities¶
- Plain radiographs remain the hallmark and the best screening test for elbow evaluation [17].
- Proper selection of imaging studies can aid the diagnosis and guide treatment [17].
- Each of the imaging modalities has advantages and disadvantages [17].
- Radiographs should always be obtained for elbow stiffness evaluation [31].
- AP, lateral, and oblique radiographs are standard for elbow stiffness evaluation [31].
- Serial radiography is used as follow-up when heterotopic ossification is present [31].
- The primary bony landmarks include the ulnohumeral joint, coronoid process, radial head, capitellum, radiocapitellar joint, olecranon tip, coronoid/olecranon fossae, and trochlear ridge [31].
- CT is helpful when assessing for malunion architecture and the location and pattern of osteophytes and/or loose bodies [31].
- Three-dimensional CT is used to check for heterotopic ossification [31].
- CT is not necessary when the stiffness is entirely soft-tissue related [31].
- CT is beneficial if any joint incongruity or abnormal bony anatomy
Investigations¶
Physical Examination and Clinical Assessment¶
- Neurovascular status should be documented both before and after elbow reduction [21].
- Open injuries and compartment syndrome, which require immediate surgical treatment, should be ruled out during physical examination [21].
- Stability of the elbow is determined by primary stabilizers (ulnohumeral articulation, MUCL, LUCL complex) and secondary stabilizers (radiocapitellar articulation, common flexor tendon, common extensor tendon, joint capsule) [17].
- In posterior dislocations, the elbow is typically more unstable in extension [21].
- If the LCL is disrupted and the MCL is intact, the elbow will be more stable with the forearm in pronation [21].
- If both the LCL and MCL are disrupted, the forearm should be immobilized in neutral [21].
- Posterolateral rotatory instability of the elbow presents with clicking, locking, or recurrent dislocation [34].
- Patients with valgus extension overload syndrome report posteromedial elbow pain that occurs during the deceleration phase of throwing as the elbow reaches terminal extension [12].
- Pain in valgus extension overload syndrome may also occur during the acceleration phase of throwing [12].
- Crepitus and tenderness over the posteromedial olecranon may be noted in valgus extension overload syndrome [12].
- Pain is reproduced when the elbow is forced into extension in patients with valgus extension overload syndrome [12].
- Elbow flexion contracture may be seen in patients with valgus extension overload syndrome [12].
- Physical examination findings in capitellum OCD include lateral elbow tenderness, crepitus, and often a 15° to 20° flexion contracture [12].
- An assessment for ulnar nerve subluxation should be performed during evaluation [31].
- Subluxation of the ulnar nerve is a relative contraindication for an arthroscopic procedure secondary to possible iatrogenic nerve injury [31].
Imaging¶
- Postreduction radiographic assessment (AP and lateral views with the elbow at 90° and appropriate forearm rotation) is performed to confirm concentric reduction [21].
- Attention is directed to ensuring a concentric ulnohumeral reduction and alignment of the radial head with the capitellum during postreduction radiographic assessment [21].
- AP, lateral, oblique, and axillary views of the elbow may reveal posteromedial olecranon osteophytes and/or loose bodies in valgus extension overload syndrome [12].
- CT with two-dimensional reconstruction and three-dimensional surface rendering best visualizes the pathology of valgus extension overload syndrome [12].
- MRI may be most helpful in evaluating associated injuries including partial or complete tears of the MCL in valgus extension overload syndrome [12].
- Radiographs of the elbow should be obtained if the patient has acute traumatic injury or chronic pain [59].
- CT can be helpful in identifying mineralized intra-articular loose bodies or delineating the anatomy of a complex intra-articular fracture [59].
- Ultrasonographic soft-tissue evaluation in the elbow is most useful in evaluating the distal biceps and the common flexor and extensor tendons [59].
- Ultrasonography allows dynamic imaging, which may be useful in evaluating for ulnar nerve subluxation or a snapping triceps [59].
- MRI is the imaging modality best suited for evaluating soft-tissue structures in the elbow including ligaments, tendons, cartilage, and nerves [59].
- Conventional MRI sequences should be obtained in all three planes using T1-weighted and fluid-sensitive sequences (short tau inversion recovery or T2-weighted sequences with fat suppression) [59].
- Magnetic resonance arthrography (MRA) is particularly beneficial in the evaluation of osteochondral lesions, loose bodies, and ulnar collateral ligament (UCL) injury in a throwing athlete [59].
- Coronal MRI studies should be obtained along a line connecting the medial and lateral epicondyles [59].
- Sagittal MRI studies should be perpendicular to the coronal studies [59].
- MRI units with a 3-Tesla magnetic field strength can generate high signal-to-noise ratios and are more able to show normal anatomy than a 1.5-Tesla unit [59].
- Caution is necessary with 3-Tesla imaging because it can show mild signal alterations of tendons, ligaments, and nerves of the elbow that may not be symptomatic [59].
- Ligaments and tendons appear anechoic (black) on all MRI imaging sequences [59].
- Tears are diagnosed on MRI by identifying signal in the tissue that brightens to the level of simple fluid, representing focal discontinuity of tendon or ligament fibers [59].
- CT is helpful when assessing for malunion architecture and the location and pattern of osteophytes and/or loose bodies in elbow stiffness [31].
- Three-dimensional CT is used to check for heterotopic ossification in elbow stiffness [31].
- If any joint incongruity or abnormal bony anatomy is present, CT is beneficial in evaluating elbow stiffness [31].
- MRI can be used to evaluate ligaments and tendons, but it is rarely indicated in the evaluation of elbow stiffness [31].
- CT markers for the dropping sign and radial head subluxation provide valuable diagnostic information for posterolateral elbow instability, particularly in subtle cases [30].
Arthroscopy¶
- Arthroscopy allows for the management of soft tissue lesions and associated intra-articular bone or cartilage lesions with minimal disruption [11].
Treatment¶
Non-Operative Management of Simple Elbow Dislocation¶
- Conservative treatment with early functional training of the elbow is the first-line therapy for simple elbow dislocation [95].
- Most simple elbow dislocations are managed nonoperatively and are amenable to early mobilization [37].
- Approximately 8% of patients treated nonoperatively for simple elbow dislocation develop persistent instability symptoms [4].
- A small proportion (2%) of patients with simple elbow dislocation require surgical intervention if treated nonoperatively [4].
- Simple elbow dislocations are usually managed by closed reduction and early motion, with recurrent instability being uncommon due to intrinsic bony stability [44].
- Simple elbow dislocations should be managed with early range of motion, as most do not require surgery [93].
- A simple elbow dislocation that is rotationally unstable can be stabilized by repositioning the forearm [5].
- Rehabilitation programs for simple elbow dislocation should stress early active range of motion through the stable arc of motion [5].
- Postreduction stability assessment for posterior dislocations typically involves immobilizing the elbow at 90° of flexion [21].
- If the lateral collateral ligament (LCL) is disrupted and the medial collateral ligament (MCL) is intact, the elbow is more stable with the forearm in pronation [21].
- A posterior splint is typically applied for 5 to 7 days with the elbow positioned at 90° and appropriate forearm rotation [21].
- Postreduction radiographic assessment (AP and lateral views) is performed to confirm concentric reduction, ensuring concentric ulnohumeral reduction and alignment of the radial head with the capitellum [21].
- The splint can be removed to allow early active range of motion exercises using a brace with or without an extension block depending on stability [21].
- Active pronation and supination with the elbow at 90° is initiated as soon as the splint is removed (5 to 7 days after injury) to prevent rotational contracture [21].
- The extension block may be decreased gradually or removed at approximately 2 to 3 weeks for a goal of full active extension approximately 6 to 8 weeks after injury [21].
- Closed manipulative reduction of the elbow is usually performed in the emergency room or the operating room with adequate conscious sedation [67].
- The reduction maneuver for posterior dislocations involves applying inline traction, progressive elbow flexion, and an anterior directed force to the olecranon [21].
- After reduction, the elbow is taken through an arc of flexion–extension in pronation, neutral, and supination to evaluate for residual instability [67].
- If the elbow redislocates when flexed to less than 30 degrees after closed reduction, operative treatment should be considered [67].
- The elbow is immobilized in a light plaster splint with the forearm in the position of maximal stability and the elbow at 90 degrees of flexion [67].
- Isometric exercises should be encouraged while immobilized in the splint to promote muscle activation and improved dynamic stability [67].
- After 1 week, the splint is removed and the patient is examined for stability again [67].
- A rehabilitation program is initiated encouraging active and active-assisted motion [67].
- An overhead motion protocol is advantageous to allow for early motion in a protected position [67].
- A hinged splint with an extension block can be used in patients with residual instability past 30 degrees of extension where compliance with avoiding this position is of concern [67].
- The patient is seen weekly for the first 3 weeks to decrease the extension block by 10 degrees per week [67].
- Radiographs are performed to confirm concentric reduction at each visit during the first 3 weeks [67].
- The patient may resume most normal activities and start a light strengthening program at 6 weeks, avoiding varus or valgus loading until 12 weeks [67].
- Immobilization greater than 3 weeks should be avoided as it has been demonstrated to cause an increased incidence of stiffness and poorer functional outcomes [67].
- For patients with subtle residual mild posterolateral subluxation following closed reduction, an active motion protocol should be employed [67].
- The active motion protocol for residual posterolateral subluxation involves avoiding varus stress at all times by exercising with the elbow at the side while sitting or standing [67].
- Active motion in the residual subluxation protocol is performed with the forearm pronated through the full range of motion [67].
- Supination in the residual subluxation protocol is performed with the forearm flexed to 90 degrees or greater [67].
- Exercises can be performed with an overhead protocol to allow the effects of gravity to improve stability [67].
Surgical Indications and Contraindications for Elbow Instability¶
- Surgery is indicated when stability of the elbow cannot be achieved with reduction and immobilization [21].
- Surgery is indicated when an osteochondral fragment or soft-tissue entrapment prevents concentric reduction [21].
- Surgery is indicated when complex dislocation–associated fractures are present [21].
- Surgery is indicated when open injuries are present [21].
- Surgery is indicated when neurovascular injuries requiring surgical care are present [21].
- A relative indication for surgery is a reducible joint that is unstable (dislocates) when the elbow is extended between 90° and 60° [21].
- Patients with severe medical comorbidities are a contraindication for surgery [21].
- Surgery is indicated for unstable elbows requiring flexion beyond 50 to 60 degrees to remain reduced or for unstable periarticular fractures [41].
- Operative repair is indicated for most fracture-dislocations to restore sufficient osseoligamentous support to allow safe, early motion and provide a stable functional elbow in the long term [26].
- Nonoperative management of simple elbow dislocation is contraindicated in cases of open dislocation, vascular injury, or instability after closed reduction [67].
Operative Techniques for Simple and Complex Instability¶
- The incision for open reduction can be made in the posterior midline or on the lateral elbow over the Kocher interval with or without a medial approach [21].
- Open reduction of the elbow with repair or reconstruction of the LCL complex is performed, followed by stability assessment [21].
- If the elbow is still unstable after LCL repair, the MCL is repaired or reconstructed, followed by stability assessment [21].
- Hinged or static external fixation is required only if the elbow is unstable after other surgical procedures have failed to maintain a concentric, stable reduction [21].
- The most common pitfall in treatment is failure to attain and maintain a concentric reduction after surgical or nonsurgical treatment [21].
- Forearm rotation is used to its fullest advantage to attain or maintain concentric reduction [21].
- Early active range of motion through a stable arc with the use of splints can help prevent contracture [21].
- If open reduction is required, a stepwise surgical approach should be followed [21].
- Use of a standard surgical protocol for elbow dislocations with radial head and coronoid fractures restored sufficient elbow stability to allow early motion postoperatively, enhancing the functional outcome [16].
- The primary goal of treatment for nonacute elbow fracture with persistent ulnohumeral dislocation or subluxation is stable reduction of the ulnohumeral joint and functional elbow motion [9].
- Optimal outcomes for coronoid fractures and traumatic elbow instability are founded upon concentric reduction of the elbow [25].
- Elbow arthroscopy has become a valid and safe option for the diagnosis and treatment of both acute and chronic elbow instability, allowing for the management of soft tissue lesions and associated intra-articular bone or cartilage lesions with minimal disruption [11].
- Elbow arthroscopy is not necessarily contraindicated in patients with a subluxating or transposed ulnar nerve [72].
Terrible Triad and Complex Fracture-Dislocation Management¶
- The terrible triad of the elbow is characterized by an elbow dislocation with an LCL complex tear, a radial head fracture, and a coronoid fracture [21].
- The lateral collateral ligament injury in the terrible triad is typically a ligamentous avulsion from the origin on the distal humerus [35].
- Treatment for the terrible triad includes coronoid ORIF, radial head ORIF or replacement, and lateral collateral ligament repair [35].
- Possible MCL repair is performed depending on stability if the elbow continues to be unstable after fractures and lateral ligament are fixed [35].
- The goal of treatment for a terrible triad ORIF/stabilization procedure is active ROM within 48 hours [35].
- In most cases, the terrible triad of the elbow dictates an indication for surgical intervention [69].
- Specifically addressing all elements of the terrible triad injury has proven to be the most reliable method of restoring elbow stability and function [69].
- The sequence of surgical treatment for the terrible triad is repair of the coronoid process or anterior capsule, repair or replacement of the radial head, and repair of the LUCL [69].
- Repair of the MCL may not always be necessary and should be undertaken only when the elbow demonstrates posterior medial rotatory instability after the coronoid, radial head, and LUCL have been addressed [69].
- If the coronoid is not repairable, a piece of the radial head or the posterior process of the olecranon may be used for reconstruction [69].
- Anterior capsulodesis can be performed if the coronoid fragment is small, using strong braided sutures brought through drill tunnels and sewn over the posterior border of the ulna [69].
- A block, or resistance, to the posterior pull of the triceps must be restored to avoid recurrent dislocations [69].
- Some surgeons perform a radial head reassembly or arthroplasty using a lateral approach, provisionally reattach the LUCL, and then assess overall elbow stability before addressing the coronoid fracture [69].
- The goal of treating all elbow dislocations is to restore stability, thereby allowing the early initiation of range of motion and enhancing optimal functional recovery [69].
- Long-term outcome with surgical management of complex elbow injuries is unknown [13].
Coronoid Fracture Management¶
- Regan and Morrey Type I coronoid fractures involve the tip of the coronoid process and provide stability through the anterior capsule [35].
- Regan and Morrey Type II coronoid fractures involve 50% or less of the coronoid [35].
- Regan and Morrey Type III coronoid fractures involve greater than 50% of the coronoid [35].
- Type I coronoid fractures are associated with episodes of elbow instability [35].
- If instability persists with a Type I coronoid fracture, cerclage wire or No. 5 suture is applied through drill holes; if instability does not persist, no operation is performed [35].
- ORIF for Types II and III coronoid fractures helps restore elbow stability [35].
- Stability must be confirmed before nonoperative treatment begins for Types II and III coronoid fractures [35].
- When part of a terrible triad injury, the coronoid can potentially be fixed through the radial head defect if planning to replace the radial head [35].
- The coronoid can also be approached medially through a flexor carpi ulnaris (FCU) split [35].
- Complications of coronoid fracture treatment include instability (particularly medial) and degenerative joint disease [35].
Radial Head Fracture Management¶
- Type I radial head fractures are nondisplaced [35].
- Type II radial head fractures involve partial articulation with displacement [35].
- Type III radial head fractures are comminuted fractures involving the entire head of the radius [35].
- Type IV radial head fractures are associated with ligamentous injury or other associated fractures [35].
- Type I radial head fractures are splinted for no more than 7 days, and then motion is allowed [35].
- Type II radial head fractures may be treated nonsurgically with analgesics and active ROM if the elbow is stable, there is no block to motion, and reduction is good; otherwise, ORIF is performed [35].
- Type III radial head fractures require replacement of the radial head if there are three or more fragments, usually with a metal implant [35].
- Type III radial head fractures with fewer than three fragments are treated with ORIF [35].
- Excision of Type III radial head fractures is only performed in elderly patients with low functional demands [35].
- Type IV radial head fractures require surgical repair with either ORIF or metallic radial head replacement [35].
- Excision of Type IV radial head fractures must not be done without the addition of a radial head implant [35].
- The safe zone for ORIF of the radial head/neck is a 110-degree arc (25%) along the lateral side, defined by the radial styloid and Lister tubercle [35].
- Complications of radial head fracture treatment include loss of motion and posterior interosseous nerve (PIN) injury [35].
- The arm is pronated to avoid PIN injury during radial head/neck ORIF [35].
- Radial shortening is a complication if an Essex-Lopresti injury occurs [35].
- Synovitis can occur if a silicone elastomer (e.g., Silastic) radial head implant is used [35].
Olecranon Fracture Management¶
- Nonoperative treatment for olecranon fractures is indicated for displacements of less than 1 to 2 mm, involving splinting at 60 to 90 degrees for 7 to 10 days followed by gentle active ROM exercises [35].
- Nonoperative treatment with displaced fractures can be considered in low-demand, elderly patients, with similar outcomes to ORIF [35].
- Tension band fixation uses stainless steel wire or braided cable, not braided suture material [35].
- The wire loop for tension band fixation should be dorsal to the midaxis of the ulna to transform tensile forces at the fracture site into compressive forces at the articular surface [35].
- Kirschner wires (K-wires) are buried in the anterior cortex for increased stability in tension band fixation [35].
- Protrusion of K-wires through the anterior cortex is associated with reduced forearm rotation [35].
- Migration of K-wires and prominent or painful hardware occurs in 71% of cases [35].
- Wires that penetrate the volar ulna cortex are associated with a higher potential risk of diminished forearm rotation compared to wires positioned into the intermedullary canal [35].
- Intramedullary screw fixation is inadequate by itself, but a properly placed 7.3-mm partially threaded screw with tension band wiring works well [35].
- Plate fixation (dorsal or tension side) is the preferred technique for oblique fractures that extend distal to the coronoid process and is more stable than tension band wiring [35].
- Excision with triceps advancement is used for nonreconstructible proximal olecranon fractures in elderly patients with low functional demands [35].
- In excision with triceps advancement, the triceps is reattached close to the articular surface [35].
- Resection of more than 50% of the olecranon should be avoided [35].
- Complications of olecranon fracture treatment include implant prominence/irritation, decreased ROM, degenerative joint disease, nonunion, ulnar nerve neurapraxia, and instability [35].
Posterolateral Rotatory Instability (PLRI)¶
- Non-operative management of PLRI is ineffective [83].
- Bracing, dynamic stabiliser strengthening, and activity modification can be attempted for PLRI, but surgical treatment is generally required to stabilise the joint [83].
- Surgery for PLRI is indicated in patients with persistent, symptomatic instability of the elbow causing pain or functional deficit [83].
- Primary repair of the chronically ruptured LCL complex depends on the integrity and quality of the remaining tissue [83].
- Both Jobe and Docking techniques are safe and effective in the treatment of posterolateral elbow instability [40].
- A suture-augmented lateral ulnar collateral ligament and radial collateral ligament reconstruction provides a reproducible, anatomically based construct that restores posterolateral elbow stability [39].
- All patients in a series of LCL instability repairs had resolution of their symptoms of instability and regained a near full arc of elbow flexion and forearm rotation [1].
Ulnar Collateral Ligament (UCL) and Valgus Instability¶
- Nonsurgical treatment is attempted for partial tears and sprains of the UCL, although surgical reconstruction may be warranted for complete tears or if nonsurgical treatment is unsuccessful [65].
- A brace can be used initially to restrict ROM and prevent valgus stresses to avoid additional adverse stresses on the UCL [65].
- ROM is usually permitted in a nonpainful arc of motion, typically from 10° to 100°, to allow inflammation to subside and collagen tissue to align [65].
- Isometric exercises are performed for the shoulder,
Complications¶
Simple Elbow Dislocation¶
- A small proportion (2%) of patients with simple elbow dislocation require surgical intervention [4].
- Few patients with simple elbow dislocations develop complications requiring surgery, but those that do most commonly undergo soft-tissue stabilisation or contracture release within 4 years of the injury [22].
- Residual instability is uncommon following simple elbow dislocation, with posterolateral instability being the best documented form [45].
- There do not appear to be any predisposing factors that pose any particular risk to patients developing residual instability after simple elbow dislocation [45].
- Posterolateral instability may develop in some patients despite the development of secondary contracture, suggesting that some ligamentous complexes heal in a contracted manner while others do not heal at all [45].
- Simple elbow dislocations can have devastating complications resulting in prolonged rehabilitation, surgery, and loss of function, even with appropriate and timely care [45].
Complex Elbow Instability and Terrible Triad¶
- Terrible triad injuries are characterized by historically poor outcomes, secondary to persistent instability, stiffness, and arthrosis [94].
- Complications of terrible triad injury treatment include stiffness, heterotopic bone formation, infection, ulnar neuropathy, persistent instability, nonunion, and malunion [94].
- Revision surgery is necessary in 20% to 25% of cases following treatment for terrible triad injuries [94].
- The next challenge for elbow surgeons is to diagnose and fix persistent subclinical instability after surgery to prevent the onset of post-traumatic osteoarthritis [14].
Pediatric Elbow Instability¶
- In a large study on the reconstruction of medial ulnar collateral ligament tears in skeletally immature athletes, complications were found in 20% of the cohort at a minimum 2-year follow-up [96].
- Major complications in the skeletally immature cohort undergoing medial ulnar collateral ligament reconstruction occurred in 4% of patients and included ulnar nerve injuries, medial epicondyle fractures, and revision surgery for osteophyte formation [96].
- In a review of 145 elbow dislocations at a single institution, the presence of multiple fractures, the need for surgical intervention, and prolonged immobilization were correlated with less than excellent functional outcome scores [96].
- Posterolateral rotatory instability in children is often diagnosed in a delayed manner [96].
- Surgical correction of posterolateral rotatory instability in children is technically difficult and ligament reconstruction can risk injury to the lateral physes and apophyses [96].
Arthroplasty and Reconstruction¶
- Ulnar collateral ligament reconstruction provides excellent patient-reported and clinical outcomes at medium-term follow-up with low complication and revision rates [82].
- The literature demonstrates a distinct difference in complication profile between external fixation and the internal joint stabilizer when used as treatment for traumatic elbow instability [91].
Recovery¶
Non-Operative Management¶
- A small proportion (2%) of patients with simple elbow dislocations require surgical intervention if treated nonoperatively [4].
- Few patients with simple elbow dislocations develop complications requiring surgery [22].
- Patients who develop complications after simple elbow dislocation most commonly undergo soft-tissue stabilisation or contracture release within 4 years of the injury [22].
- Rehabilitation programs for rotationally unstable simple elbow dislocations should stress early active range of motion through the stable arc of motion [5].
Operative Management¶
- Early postoperative motion following a standard surgical protocol for elbow dislocations with radial head and coronoid fractures enhances the functional outcome [16].
- Internal brace augmentation for varus posteromedial instability of the elbow allows early rehabilitation and prevents stiffness [105].
- At 43 months mean follow-up, none of the patients treated with internal brace augmentation for varus posteromedial instability had significant postoperative contracture [105].
- At 43 months mean follow-up, none of the patients treated with internal brace augmentation for varus posteromedial instability had clinically apparent signs of instability or suffered subluxation or re-dislocation [105].
- All patients in a series of lateral collateral ligament instability repairs had resolution of their symptoms of instability [1].
- All patients in a series of lateral collateral ligament instability repairs regained a near full arc of elbow flexion and forearm rotation [1].
- Three patients have remained stable at their elbow status post bilateral ligament reconstruction for bidirectional elbow instability [24].
Outcomes and Complications¶
- Athletes with elbow dislocation demonstrated excellent functional outcomes and high return to sport rates [92].
- Most athletes with elbow dislocation returned to sport within 10 weeks [92].
- Complex elbow instability requires a balance between stability, mobility, and concentric reduction [2].
- A patient with a greatly delayed complication of medial epicondyle injury had full range of movement at the elbow with no obvious deformity at 6 weeks [48].
- A patient with a greatly delayed complication of medial epicondyle injury had no weakness in the limb at 6 weeks [48].
Key Evidence¶
- [L4] All patients in the series had resolution of their symptoms of instability and regained a near full arc of elbow flexion and forearm rotation. [1] (10.1016/j.hcl.2007.11.001)
- [L5] Complex elbow instability remains a challenging clinical entity requiring a balance between stability, mobility, and concentric reduction; further research, particularly multicenter prospective trials, is needed due to the rare nature of these injuries. [2] (10.1016/j.hcl.2007.11.010)
- [Paper] Despite the invasive nature of arthroscopy in comparison to modalities such as ultrasonography and radiography, these described techniques provide safe and objective means to evaluate and diagnose both medial and lateral elbow instability. [3] (10.1016/j.eats.2023.04.029)
- [L5] Good long-term outcomes have been reported after non-operative management of simple elbow dislocations; however, a small proportion (2%) of patients require surgical intervention and approximately 8% develop persistent instability symptoms if treated nonoperatively. [4] (10.1177/1758573217694163)
- [L5] A simple elbow dislocation that is rotationally unstable can be stabilized by simply repositioning the forearm, and rehabilitation programs should stress early active range of motion through the stable arc of motion. [5] (10.1016/j.hcl.2015.06.002)
- [L4] Elbow arthroscopy is a valuable tool in the diagnosis and management of chronic elbow instability. [6] (10.1016/j.arthro.2013.08.016)
- [Paper] Recognising the precise pattern of injury is critical in restoring elbow function and preventing chronic instability, pain and weakness. [8] (10.1016/j.injury.2013.09.032)
- [L5] The primary goal of treatment is stable reduction of the ulnohumeral joint and functional elbow motion. [9] (10.2106/jbjs.m.00817)
- [L5] Understanding the patterns of traumatic elbow instability helps the surgeon counsel and manage patients with these injuries. [10] (10.1016/j.jhsa.2010.05.002)
- [L5] Elbow arthroscopy has become a valid and safe option for the diagnosis and treatment of both acute and chronic elbow instability, allowing for the management of soft tissue lesions and associated intra-articular bone or cartilage lesions with minimal disruption. [11] (10.1016/j.jseint.2022.12.001)
- [L5] Long-term outcome with surgical management of complex elbow injuries is unknown. [13] (10.5435/00124635-200605000-00003)
- [L5] The next challenge for elbow surgeons is to diagnose and fix persistent subclinical instability after surgery to prevent the onset of post-traumatic osteoarthritis. [14] (10.1016/j.jseint.2023.03.018)
- [L5] [15] (10.1136/jisakos-2019-000316)
- [L4] Use of the surgical protocol restored sufficient elbow stability to allow early motion postoperatively, enhancing the functional outcome. [16] (10.2106/jbjs.d.02933)
- [L5] The elbow consists of static and dynamic stabilizers that function in synchrony to prevent elbow instability. [19] (10.1016/j.jhsa.2016.11.025)
- [L4] Elbow instability injuries are an infrequent but serious source of disability for select NCAA athletes, with a number of associated risk factors. [20] (10.1177/2325967117750105)
- [Paper] Few patients with simple elbow dislocations develop complications requiring surgery, but those that do most commonly undergo soft-tissue stabilisation or contracture release within 4 years of the injury. [22] (10.1016/j.injury.2015.02.009)
- [L4] Three patients have remained stable at their elbow status post bilateral ligament reconstruction. [24] (10.1016/j.jhsg.2026.101040)
- [L5] Optimal outcomes are founded upon concentric reduction of the elbow. [25] (10.1016/j.jseint.2023.03.020)
- [L5] Operative repair is indicated for most of these injuries to restore sufficient osseoligamentous support to allow safe, early motion and provide a stable functional elbow in the long term. [26] (10.1016/j.hcl.2004.06.005)
- [L5] [28] (10.5435/jaaos-d-23-00460)
- [Paper] These markers provide valuable diagnostic information for posterolateral elbow instability, particularly in subtle cases. [30] (10.1016/j.jseint.2025.101602)
- [L5] Posterolateral rotatory instability of the elbow is a clinical syndrome caused by insufficiency of the lateral ulnar collateral ligament, presenting with clicking, locking, or recurrent dislocation. [34] (10.5435/00124635-200411000-00005)
- [L5] Most simple elbow dislocations are readily managed nonoperatively and are amenable to early mobilization. [37] (10.1016/j.hcl.2020.07.013)
- [L4] However, the available current evidence possesses a high degree of fragility, and further studies are needed with objective measurements to determine the optimal elbow flexion angle for graft fixation. [38] (10.1016/j.jse.2018.07.029)
- [L5] The described method provides a reproducible, anatomically based construct that restores posterolateral elbow stability and addresses the complex spectrum of lateral-sided injuries observed in PLRI. [39] (10.1016/j.eats.2025.103797)
- [L1] This systematic review showed that both Jobe and Docking techniques are safe and effective in the treatment of posterolateral elbow instability. [40] (10.1016/j.injury.2020.11.010)
- [L5] Surgery is indicated for unstable elbows requiring flexion beyond 50 to 60 degrees to remain reduced or for unstable periarticular fractures. [41] (10.5435/00124635-199801000-00002)
- [L4] Instability is the major complication of unlinked total elbow arthroplasty, often requiring revision, whereas linked arthroplasty is preferred for patients with posttraumatic articular damage, ligamentous instability, deformity, or bone loss. [43] (10.1016/j.hcl.2007.11.002)
- [L5] Simple elbow dislocations are usually managed by closed reduction and early motion, with recurrent instability being uncommon due to intrinsic bony stability. [44] (10.1016/j.hcl.2007.11.012)
- [Paper] [45] (10.1016/j.hcl.2007.11.013)
- [L4] [46] (10.5435/jaaos-d-14-00460)
- [L5] [47] (10.1016/j.hcl.2020.07.011)
- [L5] The patient had full range of movement at the elbow with no obvious deformity at 6 weeks and no weakness in the limb. [48] (10.1016/s0020-1383(98)00141-7)
- [L5] The Wrightington classification of elbow fracture dislocation is a comprehensive, reliable, and valid classification with treatment algorithms that are associated with good functional outcomes. [70] (10.1016/j.jseint.2022.12.002)
- [L4] Elbow arthroscopy is not necessarily contraindicated in patients with a subluxating or transposed ulnar nerve. [72] (10.1016/j.arthro.2009.04.024)
- [L4] UCLR provides excellent patient-reported and clinical outcomes to patients at medium-term follow-up with low complication and revision rates. [82] (10.1136/jisakos-2021-000614)
- [L5] [83] (10.1302/2058-5241.160033)
- [L4] The literature demonstrates a distinct difference in complication profile between external fixation and the IJS when used as treatment for traumatic elbow instability. [91] (10.1016/j.xrrt.2023.12.004)
- [L4] Athletes with elbow dislocation demonstrated excellent functional outcomes and high return to sport rates, with most returning within 10 weeks. [92] (10.1177/23259671261419505)
- [L5] Simple elbow dislocations should be managed with early range of motion, as most do not require surgery. [93] (10.1016/j.hcl.2016.08.003)
- [L1] Conservative treatment with early functional training of the elbow remains the first-line therapy for simple elbow dislocation. [95] (10.1186/s12891-024-07260-0)
- [L5] [102] (10.1016/j.csm.2004.04.014)
- [L4] At 43 months mean follow-up, none of the patients had significant postoperative contracture, and none had any clinically apparent signs of instability or suffered subluxation or re-dislocation. [105] (10.1016/j.jseint.2024.08.043)
References¶
[1] Lateral Collateral Ligament Instability of the Elbow. Hand Clinics. 2008. DOI: 10.1016/j.hcl.2007.11.001
[2] Complex Elbow Instability. Hand Clinics. 2008. DOI: 10.1016/j.hcl.2007.11.010
[3] Arthroscopic Techniques to Recognize and Quantify Subtle Medial and Lateral Elbow Instability. Arthroscopy Techniques. 2023. DOI: 10.1016/j.eats.2023.04.029
[4] Simple elbow dislocation. Shoulder & Elbow. 2017. DOI: 10.1177/1758573217694163
[5] Simple Elbow Dislocation. Hand Clinics. 2015. DOI: 10.1016/j.hcl.2015.06.002
[6] The Role of Arthroscopy in Chronic Elbow Instability. Arthroscopy. 2013. DOI: 10.1016/j.arthro.2013.08.016
[8] Complex instability of the elbow. Injury. 2017. DOI: 10.1016/j.injury.2013.09.032
[9] Nonacute Treatment of Elbow Fracture with Persistent Ulnohumeral Dislocation or Subluxation. Journal of Bone and Joint Surgery. 2014. DOI: 10.2106/jbjs.m.00817
[10] Traumatic Elbow Instability. The Journal of Hand Surgery. 2010. DOI: 10.1016/j.jhsa.2010.05.002
[11] The role of arthroscopy in instability of the elbow. JSES International. 2023. DOI: 10.1016/j.jseint.2022.12.001
[12] Aaos Comprehensive Orthopaedic Review 3. Elbow Injuries in the Athlete* > III. Valgus Extension Overload Syndrome and Posterior Impingement.
[13] Complex Elbow Instability. Journal of the American Academy of Orthopaedic Surgeons. 2006. DOI: 10.5435/00124635-200605000-00003
[14] Terrible triad injury of the elbow: a spectrum of theories. JSES International. 2023. DOI: 10.1016/j.jseint.2023.03.018
[15] Treatment of elbow instability: state of the art. Journal of ISAKOS. 2021. DOI: 10.1136/jisakos-2019-000316
[16] Standard Surgical Protocol to Treat Elbow Dislocations with Radial Head and Coronoid Fractures. Journal of Bone and Joint Surgery. 2005. DOI: 10.2106/jbjs.d.02933
[17] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy, Biomechanics, Physical Examination, and Imaging of the Elbow > Summary and Conclusions.
[19] Elbow Instability: Anatomy, Biomechanics, Diagnostic Maneuvers, and Testing. The Journal of Hand Surgery. 2017. DOI: 10.1016/j.jhsa.2016.11.025
[20] Elbow Dislocation and Subluxation Injuries in the National Collegiate Athletic Association, 2009-2010 Through 2013-2014. Orthopaedic Journal of Sports Medicine. 2018. DOI: 10.1177/2325967117750105
[21] Aaos Comprehensive Orthopaedic Review 3. Acute and Recurrent Elbow Instability* > III. Acute Dislocation.
[22] The frequency and risk factors for subsequent surgery after a simple elbow dislocation. Injury. 2015. DOI: 10.1016/j.injury.2015.02.009
[24] Early Results of a Novel Method to Treat Bidirectional Elbow Instability: A Pilot Study. Journal of Hand Surgery Global Online. 2026. DOI: 10.1016/j.jhsg.2026.101040
[25] Coronoid fractures and traumatic elbow instability. JSES International. 2023. DOI: 10.1016/j.jseint.2023.03.020
[26] Fracture-dislocation of the elbow: diagnosis, treatment, and prognosis. Hand Clinics. 2004. DOI: 10.1016/j.hcl.2004.06.005
[28] Complex Elbow Fracture-Dislocations: An Algorithmic Approach to Treatment. Journal of the American Academy of Orthopaedic Surgeons. 2024. DOI: 10.5435/jaaos-d-23-00460
[30] CT Evaluation of Dropping Sign and Radial Head Subluxation in Lateral Ligamentous Complex Injury. JSES International. 2026. DOI: 10.1016/j.jseint.2025.101602
[31] Aaos Comprehensive Orthopaedic Review 3. Elbow Stiffness* > IV. Evaluation.
[32] Aaos Comprehensive Orthopaedic Review 3. Elbow Injuries in the Athlete* > II. Medial Collateral Ligament Injuries.
[34] Posterolateral Rotatory Instability of the Elbow. Journal of the American Academy of Orthopaedic Surgeons. 2004. DOI: 10.5435/00124635-200411000-00005
[35] Miller S Review Of Orthopaedics. 2. Elbow instability > B. Complex (elbow fracture dislocations).
[37] Elbow Instability. Hand Clinics. 2020. DOI: 10.1016/j.hcl.2020.07.013
[38] Elbow flexion angle during graft fixation for ulnar collateral ligament reconstruction: a systematic review of outcomes and complications. Journal of Shoulder and Elbow Surgery. 2018. DOI: 10.1016/j.jse.2018.07.029
[39] Suture‐Augmented Lateral Ulnar Collateral Ligament and Radial Collateral Ligament Reconstruction for Subacute and Chronic Posterolateral Rotatory Instability. Arthroscopy Techniques. 2025. DOI: 10.1016/j.eats.2025.103797
[40] Lateral collateral ulnar ligament reconstruction techniques in posterolateral rotatory instability of the elbow: A systematic review. Injury. 2022. DOI: 10.1016/j.injury.2020.11.010
[41] Acute Elbow Dislocation: Evaluation and Management. Journal of the American Academy of Orthopaedic Surgeons. 1998. DOI: 10.5435/00124635-199801000-00002
[42] Tachdjian S Pediatric Orthopaedics From The Texas Scottish Rite Hospital For Children E Book. Plate 35.2 Scapulocostal Stabilization for Scapular Winging (Ketenjian Technique) > Medial Elbow (Epicondyle Apophysitis and Avulsion) > Medial Epicondyle Avulsion.
[43] Instability After Total Elbow Arthroplasty. Hand Clinics. 2008. DOI: 10.1016/j.hcl.2007.11.002
[44] Acute Dislocations of the Adult Elbow. Hand Clinics. 2008. DOI: 10.1016/j.hcl.2007.11.012
[45] Complications Related to Simple Dislocations of the Elbow. Hand Clinics. 2008. DOI: 10.1016/j.hcl.2007.11.013
[46] Chronic Elbow Dislocation: Evaluation and Management. Journal of the American Academy of Orthopaedic Surgeons. 2016. DOI: 10.5435/jaaos-d-14-00460
[47] Elbow Fracture-Dislocations. Hand Clinics. 2020. DOI: 10.1016/j.hcl.2020.07.011
[48] Greatly delayed complication of medial epicondyle injury. Injury. 1998. DOI: 10.1016/s0020-1383(98)00141-7
[51] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy, Biomechanics, Physical Examination, and Imaging of the Elbow > Annotated References.
[52] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy, Biomechanics, Physical Examination, and Imaging of the Elbow > Anatomy > Bony Anatomy.
[55] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > ELBOW.
[57] A Lange Medical Book Current Diagnosis Treatment In Orthopedics Fifth Edition. 2Musculoskeletal Trauma Surgery > INJURIES AROUND THE ELBOW.
[59] Orthopaedic Knowledge Update Sports Medicine 6. Magnetic Resonance Imaging of the Elbow > Introduction.
[65] Orthopaedic Knowledge Update Sports Medicine 6. Nonsurgical and Postoperative Rehabilitation for Injuries of the Overhead Athlete’s Elbow > Specific Nonsurgical Rehabilitation Guidelines > UCL Injury.
[66] Orthopaedic Knowledge Update Sports Medicine 6. Elbow Arthroscopy and the Thrower’s Elbow > Thrower’s Elbow > Valgus Extension Overload.
[67] Rockwood And Green S Fractures In Adults. 39: Elbow Dislocations and Terrible Triad Injuries > Indications/Contraindications.
[68] Rockwood And Green S Fractures In Adults. 39: Elbow Dislocations and Terrible Triad Injuries > Simple Elbow Dislocation > Assessment of Simple Elbow Dislocation.
[69] Orthopaedic Knowledge Update Trauma. Fractures of the Proximal Radius and Ulna and Dislocations of the Elbow > Terrible Triad Injury.
[70] “How the Wrightington classification of traumatic elbow instability can simplify the algorithm for treatment”. JSES International. 2023. DOI: 10.1016/j.jseint.2022.12.002
[72] Is Elbow Arthroscopy Safe in Patients with a Subluxating ulnar nerve or Previous Ulnar Nerve Transposition? (SS‐24). Arthroscopy. 2009. DOI: 10.1016/j.arthro.2009.04.024
[73] Aaos Comprehensive Orthopaedic Review 3. Acute and Recurrent Elbow Instability* > II. Pathoanatomy.
[74] Rockwood And Green S Fractures In Adults. 39: Elbow Dislocations and Terrible Triad Injuries > Pathoanatomy and Applied Anatomy Related to Simple Elbow Dislocation.
[80] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Elbow Degenerative Conditions and Nerve Disorders > Evaluation.
[81] Tachdjian S Pediatric Orthopaedics From The Texas Scottish Rite Hospital For Children E Book. Plate 35.2 Scapulocostal Stabilization for Scapular Winging (Ketenjian Technique) > Medial Elbow (Epicondyle Apophysitis and Avulsion) > Medial Epicondyle Apophysitis.
[82] Ulnar collateral ligament reconstruction of the elbow at minimum 48-month mean follow-up demonstrates excellent clinical outcomes with low complication and revision rates: systematic review. Journal of ISAKOS. 2021. DOI: 10.1136/jisakos-2021-000614
[83] Lateral collateral ligament injuries of the elbow – chronic posterolateral rotatory instability (PLRI). EFORT Open Reviews. 2016. DOI: 10.1302/2058-5241.160033
[86] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy, Biomechanics, Physical Examination, and Imaging of the Elbow > Biomechanics > Clinical Examination.
[91] Comparing internal and external stabilization for traumatic elbow instability: a systematic review. JSES Reviews, Reports, and Techniques. 2024. DOI: 10.1016/j.xrrt.2023.12.004
[92] Return to Sport Following Elbow Dislocation: A Systematic Review. Orthopaedic Journal of Sports Medicine. 2026. DOI: 10.1177/23259671261419505
[93] Elbow Dislocations in Contact Sports. Hand Clinics. 2017. DOI: 10.1016/j.hcl.2016.08.003
[94] Aaos Comprehensive Orthopaedic Review 3. Terrible Triad Injuries of the Elbow > I. Overview.
[95] Treatment strategies for simple elbow dislocation - a systematic review. BMC Musculoskeletal Disorders. 2024. DOI: 10.1186/s12891-024-07260-0
[96] Orthopaedic Knowledge Update Sports Medicine 6. Shoulder and Elbow Injuries in the Skeletally Immature Athlete > Elbow > Instability.
[97] Rockwood And Green S Fractures In Adults. 39: Elbow Dislocations and Terrible Triad Injuries > External Fixation.
[102] Elbow dislocations in adults and children. Clinics in Sports Medicine. 2004. DOI: 10.1016/j.csm.2004.04.014
[105] Surgical Treatment Of Varus Posteromedial Instability Of The Elbow: Internal Brace Augmentation Allows Early Rehabilitation And Prevents Stiffness. JSES International. 2024. DOI: 10.1016/j.jseint.2024.08.043