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निकटवर्ती ह्यूमरस फ्रैक्चर ओआरआईएफ (प्लेट और नाखून निर्धारण)

Updated Sep 2026
कंधे के पास ऊपरी हाथ की हड्डी के फ्रैक्चर का चित्रण।
कंधे के पास, हाथ की हड्डी के ऊपरी छोर का एक फ्रैक्चर। Kieran Hirpara 4.0

यह पृष्ठ मशीन द्वारा अनूदित है और अभी तक किसी चिकित्सक द्वारा जाँचा नहीं गया है। अंग्रेज़ी संस्करण ही आधिकारिक है।

इस ऑपरेशन का सुझाव क्यों दिया गया है

मटर प्राइवेट हॉस्पिटल रॉकहैम्पटन में ऊपरी अंगों के सर्जन डॉ. किरण हिरपारा, आपके विशिष्ट घाव के अनुसार उपचार करते हैं। मरीजों को आम तौर पर उनके जीपी द्वारा हमारे क्लिनिक में भेजा जाता है; यदि एक फिजियोथेरेपिस्ट ने सुझाव दिया है कि आप हमें देखें, तो आपको मेडिकेयर छूट के लिए पात्र होने के लिए अपने जीपी से एक रेफरल की आवश्यकता होगी। आपकी पहली यात्रा पर हम एक इतिहास लेते हैं, आपके कंधे की जांच करते हैं, और यदि यह पता लगाने के लिए आवश्यक हो तो इमेजिंग की व्यवस्था करते हैं कि क्या गलत है।

इस क्रिया को खुला संकुचन और आंतरिक निर्धारण कहा जाता है। इसका मतलब है कि आपके हाथ के शीर्ष पर टूटी हुई हड्डी को वापस जगह पर ले जाया जाता है और हड्डी के अंदर एक धातु की प्लेट या छड़ी के साथ रखा जाता है। हम आम तौर पर यह सुझाव देते हैं जब टूटने बुरी तरह से जगह से बाहर है, या जब हड्डी कई टुकड़ों में टूट गया है, क्योंकि उन टूटने शायद ही कभी अपने आप में रहते हैं. बहुत से कंधे के टूटने बिना सर्जरी के ठीक हो जाते हैं, इसलिए हम हमेशा आपके साथ दोनों रास्तों को तौलते हैं। कुछ लोगों के लिए, विशेष रूप से जो अन्यथा फिट और स्वस्थ हैं, सर्जरी कंधे को चलाने और अच्छी तरह से काम करने का एक बेहतर मौका देती है। लक्ष्य सरल हैः एक ऐसा कंधा जो स्थिर हो, कम दर्दनाक हो, और वह करने में सक्षम हो जो आपको करने की आवश्यकता है।

ऑपरेशन से पहले

एक बार जब आपरेशन की योजना बनाई जाती है, तो हम ब्रेक को मैप करने के लिए आवश्यक स्कैन का आयोजन करेंगे। इसका मतलब आमतौर पर एक्स-रे एक से अधिक कोणों से लिया जाता है, और कभी-कभी एक सीटी स्कैन, जो हड्डी की एक विस्तृत तस्वीर बनाता है। एमआरआई स्कैन या अल्ट्रासाउंड का उपयोग किया जा सकता है यदि हमें संयुक्त के आसपास के नरम ऊतकों, जैसे टेंडन को करीब से देखने की आवश्यकता है। अधिकांश लोगों को अन्य परीक्षणों की आवश्यकता नहीं होती है। यदि आपके पास अन्य चिकित्सा स्थितियां हैं, तो आपको रक्त परीक्षण या एनेस्थीसियोलॉजिस्ट के साथ एक समीक्षा की आवश्यकता हो सकती है, जो ऑपरेशन के दौरान आपकी देखभाल करता है। सर्जरी से पहले के दिनों में, हम आपको बताएंगे कि कौन सी दवाओं को रोकना है, और कौन सी लेना जारी रखना है। आपको सात घंटे पहले तक खाना और पीना बंद करना होगा। हम कम समय के बजाय सात घंटे के लिए पूछते हैं ताकि हम आपके ऑपरेशन को आगे बढ़ा सकें यदि थिएटर सूची जल्दी चलती है। इसके बाद आपको घर ले जाने के लिए किसी की व्यवस्था करें, क्योंकि आप स्वयं ड्राइव नहीं कर पाएंगे। अपनी वर्तमान दवाओं की एक सूची लाएं, और ढीले, आरामदायक कपड़े पहनें जिन्हें बदलना आसान हो।

उस दिन

आप अस्पताल के सर्जिकल एडमिशन यूनिट में पहुंचेंगे, जहां आपको चेक-इन किया जाएगा और ऑपरेशन के लिए तैयार किया जाएगा। आप वहाँ संज्ञाहरण चिकित्सक से मिलेंगे। यह ऑपरेशन एक क्षेत्रीय तंत्रिका अवरोध के साथ संयुक्त सामान्य संज्ञाहरण के तहत किया जाता है। संज्ञाहरण विशेषज्ञ आप से ऑपरेशन से पहले मिलेंगे और आपको दोनों भागों के बारे में बताएंगे।

फिर आपको ऑपरेशन थिएटर में ले जाया जाता है, जहाँ आपरेशन किया जाता है। इसके बाद, आप पुनर्प्राप्ति क्षेत्र में जागेंगे, जहां नर्सें आपको निगरानी करेंगी जब तक संज्ञाहरण का प्रभाव कम नहीं हो जाता। एक बार जब आप स्थिर हो जाते हैं, तो आप या तो वार्ड में जाते हैं या घर जाते हैं, प्रक्रिया और आपकी वसूली के आधार पर।

ऑपरेशन में क्या शामिल है

इस क्रिया को खुला घटाव और आंतरिक निर्धारण कहा जाता है। खुलने का मतलब है कि आपका सर्जन टूटी हड्डी तक पहुंचने के लिए ऑपरेशन किए जा रहे क्षेत्र में एक कट करता है। घटाने का अर्थ है टूटे हुए टुकड़ों को उनकी सामान्य स्थिति में वापस ले जाना। आंतरिक निर्धारण का अर्थ है उन्हें धातु के साथ वहां रखना।

आपका सर्जन या तो हड्डी पर पेंच की गई एक प्लेट का उपयोग करेगा, या हाथ की हड्डी के खोखले मध्य भाग के अंदर रखी गई एक छड़ी का उपयोग करेगा। जब तक यह ठीक नहीं हो जाता तब तक दोनों ही ब्रेक को स्थिर रखते हैं। आपकी पसंद आपके टूटने के आकार और आपकी हड्डी की गुणवत्ता पर निर्भर करती है। कभी-कभी एक लंबी प्लेट का उपयोग किया जाता है यदि टूटना हाथ की हड्डी के नीचे तक जाता है। यदि हड्डी पतली है, तो आपका सर्जन मरम्मत को ठोस रखने के लिए अतिरिक्त समर्थन जोड़ सकता है।

एक बार जब हड्डी पंक्तिबद्ध हो जाती है और दृढ़ता से पकड़ी जाती है, तो घाव को टांके के साथ बंद कर दिया जाता है। एक ड्रेसिंग शीर्ष पर जाता है, और आप उस ड्रेसिंग को लगभग 10 दिनों तक रखते हैं।

ऑपरेशन के बाद

अधिकांश रोगी इस ऑपरेशन के बाद एक रात अस्पताल में रहते हैं, हालांकि कुछ उसी दिन घर जाने में सक्षम होते हैं। आप वसूली क्षेत्र में जागना होगा, तो वार्ड में स्थानांतरित. नर्सें नियमित रूप से आपका निरीक्षण करेंगी और आपको दवाएं देंगी ताकि आप आराम से रहें। आपका हाथ एक साधारण स्लिंग में आराम करेगा, जिसे व्यायाम और धोने के लिए उतार दिया जाता है। घर जाने से पहले एक नर्स आपको दिखाएगी कि कैसे सुरक्षित रूप से घूमना है। आपके घर आने के बाद पहले 24 घंटों के लिए कोई व्यक्ति आपके साथ रहना चाहिए। हम लगभग 10 दिनों के लिए ड्रेसिंग पर छोड़ देते हैं; कृपया इसे तब तक न हटाएं जब तक हम आपको ऐसा न कहें। जब हम आपको देखते हैं तो हम इसे बदल देते हैं या हटा देते हैं।

वसूली

पहले दिनों और हफ्तों में कुछ दर्द और सूजन की उम्मीद करें। यह उपचार का एक सामान्य हिस्सा है और आमतौर पर हड्डी के बुनाई के रूप में बसता है। विश्राम, बर्फ की थैलियां, और आपके लिए निर्धारित दर्द की दवाएं असुविधा को कम करने में मदद करेंगी। अपने हाथ, कलाई और कोहनी को जल्दी से हिलाते रहें, जैसा कि आपका फिजियोथेरेपिस्ट आपको दिखाएगा।

आपका हाथ आराम के लिए एक साधारण स्लिंग में आराम करता है। यह आपके व्यायाम और धोने के लिए निकलता है। आपका फिजियोथेरेपिस्ट आपको शुरुआत में सौम्य आंदोलनों के माध्यम से मार्गदर्शन करेगा, फिर ब्रेक हीलिंग के रूप में मजबूत अभ्यासों के लिए निर्माण करेगा। घर के चारों ओर, आप चल सकते हैं, साधारण भोजन बना सकते हैं, और अपने दूसरे हाथ से हल्के काम कर सकते हैं। जब तक आपको यह नहीं बताया जाता कि यह सुरक्षित है, तब तक किसी भी भारी वस्तु को उठाने से बचें, और इसके माध्यम से कोई भार न डालें।

नींद शुरू में असहज हो सकती है। कई लोगों को कुर्सी या अतिरिक्त तकिए के सहारे आराम करना आसान लगता है।

मील के पत्थर घटनाओं के रूप में आते हैं, तिथियों के रूप में नहीं। जब सूजन कम हो जाती है, तो आमतौर पर आंदोलन आसान हो जाता है। जब आपका सर्जन खुश होता है कि हड्डी कैसे ठीक हो रही है, तो स्लिंग अच्छे के लिए बंद हो जाती है। आप फिर से ड्राइव कर सकते हैं एक बार जब आपका सर्जन आपको साफ कर देता है, आमतौर पर छह सप्ताह की समीक्षा में; हमारे गाइड को देखें ऊपरी अंग की सर्जरी के बाद ड्राइविंग. जैसे-जैसे आपकी शक्ति वापस आएगी, आप सिर के ऊपर तक पहुंचना शुरू कर देंगे और हाथ से अधिक काम करना शुरू कर देंगे।

वसूली व्यक्ति से व्यक्ति में भिन्न होती है। आपकी समयसीमा अलग हो सकती है, और आपका सर्जन और फिजियोथेरेपिस्ट आपको रास्ते में मार्गदर्शन करेंगे।

क्या गलत हो सकता है

अधिकांश रोगी ठीक हो जाते हैं, लेकिन कभी-कभी समस्याएं हो सकती हैं। आपका सर्जन और टीम किसी भी समस्या को जल्दी पहचानने के लिए आपकी बारीकी से निगरानी करते हैं।

कभी-कभी हड्डी एक साथ ठीक से नहीं जुड़ती। आपको टूटने की जगह पर लगातार दर्द हो सकता है, या ऐसा महसूस हो सकता है कि समय के साथ हाथ मजबूत नहीं हो रहा है। यदि दर्द कम नहीं हो रहा है, तो हमें अपनी अगली समीक्षा में बताएं।

कंधे के जोड़ की गोले में रक्त की आपूर्ति कभी-कभी चोट से प्रभावित हो सकती है। यदि ऐसा होता है, तो जोड़ महीनों बाद दर्दनाक और कठोर हो सकता है, और उम्मीद के अनुसार आंदोलन में सुधार नहीं हो सकता है। अपनी समीक्षा में इस ऊपर लाओ ताकि हम स्कैन की व्यवस्था कर सकते हैं.

हड्डी को धारण करने वाली धातु स्थानांतरित या ढीली हो सकती है। आप एक नया क्लिक, एक पीसने की अनुभूति, या दर्द महसूस कर सकते हैं जो सुधार के एक अच्छे खिंचाव के बाद वापस आता है। कुछ लोग त्वचा के पास पेंच या प्लेट महसूस करते हैं। यदि ऐसा कुछ होता है, तो क्लिनिक से संपर्क करें। कभी-कभी धातु को हटाने या समायोजित करने के लिए एक छोटे से ऑपरेशन की आवश्यकता होती है।

कंधे के आसपास की नसें चिड़चिड़ी हो सकती हैं। जब आप अपना हाथ उठाते हैं, या कुछ कोणों से पकड़ते हैं तो आपको दर्द महसूस हो सकता है। अपनी समीक्षा में इसका उल्लेख करें।

कंधा कठोर और तंग हो सकता है। आपकी पीठ तक पहुँचने जैसे सरल आंदोलन कठिन हो सकते हैं। शुरुआती व्यायाम इससे बचने में मदद करते हैं, इसलिए अपनी फिजियोथेरेपी जारी रखें और यदि आंदोलन में सुधार नहीं हो रहा है तो अपने फिजियोथेरेपिस्ट को बताएं।

घाव की समस्या हो सकती है। घाव से फैलने वाली लाली, तरल पदार्थ का रिसाव, या एक गहरे, धड़कने वाले दर्द के लिए देखें जो सरल दर्द निवारक दवाओं से कम नहीं होता है। इन लक्षणों के लिए तुरंत क्लिनिक में कॉल करने की आवश्यकता है। घाव के नीचे रक्त का एक छोटा सा संग्रह भी सूजन का कारण बन सकता है; यदि यह दिखाई देता है तो हमें बताएं।

शल्यक्रिया के दौरान हाथ के पास की नसों को चोट लग सकती है। आपको कलाई या हाथ में सुन्नता, झुनझुनी या कमजोरी महसूस हो सकती है जो पहले नहीं थी। इसे तुरंत रिपोर्ट करें।

कंधे की सर्जरी के बाद रक्त के थक्के बन सकते हैं। बछड़े में अचानक सूजन और कोमलता, या सांस की तकलीफ, आपातकालीन विभाग में जाने का मतलब है।

इस पृष्ठ पर जटिलताओं की तालिका विशिष्ट दरों को सूचीबद्ध करती है यदि आप विशिष्टता चाहते हैं।

हमें कब कॉल करें

यदि आपको बुखार हो, या आपके घाव के आसपास की त्वचा अधिक लाल हो जाए, सूज जाए, या तरल पदार्थ लीक होने लगे तो हमें तुरंत कॉल करें। यदि आपको अचानक गंभीर दर्द, अचानक सूजन और आपके बछड़े में कोमलता, या सांस लेने में तकलीफ होती है तो आपातकालीन स्थिति में जाएं। ये रक्त के थक्के के लक्षण हो सकते हैं। यदि आपका हाथ या हाथ सुन्न हो जाता है, ठंडा महसूस होता है, या आप इसे हिला नहीं सकते हैं तो हमें कॉल करें। कलाई या हाथ में नई सुन्नता या झुनझुनी भी तत्काल कॉल की आवश्यकता होती है। यदि आप अनिश्चित हैं, तो क्लिनिक को फोन करें और हम आपको मार्गदर्शन करेंगे।

इस स्थिति के बारे में अधिक जानकारी कहां से प्राप्त करें

यह पृष्ठ स्वयं ऑपरेशन के बारे में है। यह किस स्थिति का इलाज करता है, जिसमें यह भी शामिल है कि क्या सबूत दिखाता है कि सर्जरी कब मदद करती है और कब नहीं, इस पर अधिक विस्तार से कवर किया गया है निकटवर्ती ह्यूमरस फ्रैक्चर पृष्ठ।


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

  • Treatment for proximal humerus fractures remains controversial [4].
  • Nonsurgical management of proximal humerus fractures demonstrates successful outcomes and union rates greater than 90% [4].
  • Both intramedullary nails and locking plates can effectively restore shoulder function in the treatment of displaced proximal humeral fractures [1].
  • The superiority of intramedullary nails over locking plates for restoring shoulder function in displaced proximal humeral fractures is unclear [1].
  • Modern proximal humeral nail designs and techniques have demonstrated promising outcomes [2].
  • Modern proximal humeral nail designs and techniques can provide stable fixation [2].
  • Intramedullary nails are superior to locking plates in reducing total complication rates for proximal humerus fractures [3].
  • Intramedullary nails are superior to locking plates in reducing intraoperative blood loss for proximal humerus fractures [3].
  • Intramedullary nails are superior to locking plates in reducing operative time for proximal humerus fractures [3].
  • Intramedullary nails are superior to locking plates in reducing postoperative fracture healing time for proximal humerus fractures [3].
  • Intramedullary nails are superior to locking plates in reducing the postoperative humeral head necrosis rate for proximal humerus fractures [3].
  • No superior treatment was suggested between locking plates and intramedullary nails for displaced proximal humeral fractures [5].
  • Intramedullary nailing and plating demonstrate equivalent clinical outcomes for the surgical management of displaced proximal humerus fractures in adults [6].
  • Patients undergoing ORIF for proximal humerus fracture dislocations have reasonable functional outcomes [7].
  • Patients undergoing ORIF for proximal humerus fracture dislocations have relatively high avascular necrosis rates [7].
  • Patients undergoing ORIF for proximal humerus fracture dislocations have relatively high reoperation rates [7].
  • Intramedullary fixation represents an alternative treatment option for proximal humeral fractures [8].
  • Intramedullary fixation for proximal humeral fractures has specific fixation and biologic advantages [8].
  • Intramedullary fixation for proximal humeral fractures has reported outcomes comparable with other techniques [8].
  • Fixation of proximal humerus fractures with proximal humerus locking plates is associated with a high rate of complications [10].
  • Fixation of proximal humerus fractures with proximal humerus locking plates is associated with a high rate of reoperation [10].
  • Limited evidence suggests that locking plate and intramedullary nail are both valuable options for the treatment of proximal humeral fractures [11].
  • No single fixation method is a panacea for proximal humeral fractures [17].
  • The choice of implant and method for proximal humeral fractures should be selected according to individual patient and fracture pattern characteristics based on clearly defined indications and contraindications [17].
  • Augmentation of plate fixation for proximal humeral fractures seems to be a reliable and safe procedure [21].
  • Augmentation of plate fixation for proximal humeral fractures mechanically increases construct stability [21].
  • Augmentation of plate fixation for proximal humeral fractures reduces complication rates [21].
  • Augmentation of plate fixation for proximal humeral fractures improves patient outcomes [21].

Anatomy & Pathophysiology

Bony Anatomy

  • The proximal humeral anatomy comprises four main parts: the humeral head, greater tuberosity (GT), lesser tuberosity (LT), and humeral shaft [35].
  • The articular head is spherical and has a diameter of 37 to 57 mm [35].
  • The most superior portion of the articular surface of the humeral head averages 8 mm above the GT [35].
  • Humeral version averages 29.8 degrees, with a range of 10 to 55 degrees [35].
  • The humeral head is inclined approximately 130 degrees with respect to the humeral shaft [35].
  • The bicipital groove lies between the GT and LT and serves as a pathway for the long head of the biceps [35].
  • The distal aspect of the bicipital groove is internally rotated with respect to the proximal portion [35].
  • The anatomic neck of the proximal humerus is located at the junction of the articular surface and the tuberosities [35].
  • The surgical neck represents an indistinct region (metadiaphyseal junction) below the tuberosities but above the humeral shaft [35].
  • The GT is located in a posterior-superior location with respect to the humeral shaft and serves as the attachment site for the supraspinatus, infraspinatus, and teres minor tendons [35].
  • The LT is located on the anterior aspect of the proximal humerus and serves as the attachment site for the subscapularis tendon [35].
  • The glenoid is a convex structure of shallow depth shaped like an inverted pear [35].
  • The acromion, coracoacromial ligament, and coracoid process form the coracoacromial arch, a rigid bony-ligamentous structure that imparts stability to the shoulder girdle [35].
  • The humeral head averages 19° of retroversion and 41° of inclination (neck-shaft angle) [38].
  • The neck-shaft angle measures an average of 135 degrees, and the humeral head is retroverted an average of 30 degrees [36].
  • The proximal humerus has three centers of ossification: the humeral head (4 to 6 months), the greater tuberosity (1 to 3 years), and the lesser tuberosity (3 to 5 years) [38].
  • The ossification centers of the proximal humerus fuse to the shaft at age 17 to 20 years [38].
  • The glenoid cavity is a shallow socket, approximately one third the size of the humeral head [36].

Vascular Supply

  • The proximal humerus receives its blood supply from the anterior and posterior humeral circumflex branches from the third division of the axillary artery [35].
  • The posterior humeral circumflex artery travels with the axillary nerve, enters the quadrilateral space posteriorly, and anastomoses with a branch of the anterior circumflex to supply the posterior cuff [35].
  • The anterior humeral circumflex artery (AHCA) arises from the axillary artery at the inferior border of the subscapularis [35].
  • The AHCA provides vascular inflow to the humeral head by way of its terminal anterolateral branch known as the artery of Laing (also known as the arcuate artery) [35].
  • The ascending branch of the AHCA courses parallel to the lateral aspect of the long head biceps tendon and enters the humeral head at the interface of the bicipital groove and GT [35].
  • Injury to the arcuate artery may result in osteonecrosis of the humeral head [35].
  • Additional extraosseous collateral branches can permit humeral head perfusion despite complete ligation of the arcuate artery [35].
  • The major blood supply to the humeral head is through the ascending branch of the anterior humeral circumflex artery, which penetrates the head at the bicipital groove and becomes the arcuate artery [36].
  • The anterolateral ascending branch of the anterior humeral circumflex artery provides the primary blood supply to the humeral head [38].
  • The terminal intraosseous portion of the anterior humeral circumflex artery enters at the proximal aspect of the intertubercular groove as the arcuate artery [38].

Pathophysiology and Displacement

  • Following a fracture of the proximal humerus, displacement of each "part" occurs in a predictable manner based on the deforming forces created by the tendinous insertions of the pectoralis major, subscapularis, supraspinatus, and infraspinatus [35].
  • The subscapularis inserts on the lesser tuberosity and causes medial displacement [35].
  • The supraspinatus and infraspinatus insert on the greater tuberosity and cause superior and posterior displacement [35].
  • The pectoralis major inserts on the humeral shaft and displaces it medially [35].
  • A fracture involving the anatomic neck is prognostically worse than fractures involving other regions of the proximal humerus with respect to the potential disruption of the vascular supply to the humeral head and the subsequent development of avascular necrosis [35].
  • Fractures of the anatomic neck have a poor prognosis because of complete disruption of the blood supply to the head [36].
  • Surgical neck fractures are common, and with these, the blood supply to the head is preserved [36].
  • PHFs alter complex interactions of joint surface anatomy, joint volume, atmospheric pressure, and joint fluid cohesion and adhesion, resulting in pain, decreased ROM and stiffness, and disability [35].
  • Displaced PHFs can impede normal movement of the rotator cuff, subacromial bursa, and subdeltoid bursa passing underneath the coracoacromial arch, causing impingement and disruption of normal glenohumeral motion [35].
  • In PHFs (displaced and nondisplaced fractures), the subdeltoid and subacromial bursae can become thickened and fibrotic, forming adhesions that can limit normal glenohumeral motion [35].
  • Early ROM exercises after a fracture have been hypothesized to decrease the formation of such adhesions [35].
  • The rotator cuff muscles serve as depressors of the humeral head to allow the deltoid to efficiently abduct the humerus [36].
  • The infraspinatus and teres minor are external rotators, while the subscapularis is an internal rotator of the humerus [36].
  • The deltoid and pectoralis major muscles, along with the rotator cuff, cause predictable displacement of fractures around the proximal humerus [36].

Classification

  • Observer agreement for classifying proximal humeral fractures according to the AO-classification is low, with reported mean kappa values for interobserver agreement varying between 0.26 and 0.53 [51].
  • Mean kappa values for interobserver agreement decreased from 0.53 for AO Types to 0.2 for AO Groups, suggesting decreased agreement with an increasing number of classification units [51].
  • No study has assessed observer agreement on AO-subgroups [51].
  • In a systematic review of locking plate fixation, the classification procedure was reported in only five out of twelve studies [51].
  • In three studies within a systematic review of locking plate fixation, the classification was performed by one surgeon, and in two studies, it was performed by two or three surgeons [51].
  • Classification type and group seem to be of minor importance for clinical outcome in most studies [51].
  • Outcome after locking plate osteosynthesis in AO/OTA Type C fractures was comparable with outcome reported in displaced 4-part fractures [51].
  • According to the ICD-10 classification system, fractures of the humeral head were the most common fracture type for proximal humerus fractures [54].
  • Intramedullary nail fixation was utilized maximally (~ 20%) in fractures of the surgical neck (S42.22) [54].
  • Intramedullary nail fixation was least likely used in humeral head fractures (S42.21) [54].
  • Reverse shoulder arthroplasty (RSA) showed its highest utilization rate in humeral head fractures and fractures of the anatomical neck (S42.23) [54].
  • Fractures of the greater tuberosity (S42.24) were mainly managed by screw fixation (40.4%) [54].

Clinical Presentation

  • Adult proximal humeral fractures occur at an estimated annual rate of 6 per 10,000 persons in the United States [13].
  • Proximal humeral fractures vary in location and complexity, potentially involving any combination of the surgical and anatomic necks of the humerus, as well as the greater and lesser tuberosities [13].
  • The choice of treatment for proximal humeral fractures depends on the fracture type and severity, surgeon expertise, patient age, and patient health status [30].
  • Nonsurgical management for proximal humerus fractures demonstrates successful outcomes and union rates greater than 90% [4].
  • Most proximal humeral fractures in elderly patients can be treated nonoperatively with good functional outcomes [9].
  • Over the past decade, most older adults who sustain proximal humerus fractures continue to receive nonoperative treatment [19].
  • Multiple studies comparing nonoperative and operative treatment for displaced proximal humeral fractures in the geriatric population have demonstrated minimal differences in functional outcomes [13].
  • Factors such as surgeon experience as well as the quality and maintenance of the reduction may influence operative outcomes for displaced proximal humeral fractures in the geriatric population [13].
  • In the treatment of 2 and 3-part fractures involving the surgical neck, intramedullary nailing has demonstrated functional outcomes that are comparable with those of open reduction and internal fixation (ORIF) [13].
  • Several authors have demonstrated the negative effect of osteopenia on outcomes after ORIF of proximal humeral fractures [13].
  • Optimal management of osteoporotic proximal humeral fractures has evolved to include the use of locking plates and augmentation with intramedullary fibular grafts, calcium phosphate or sulfate cement, and iliac crest bone graft [66].
  • Patients undergoing ORIF for proximal humerus fracture dislocations have reasonable functional outcomes but relatively high avascular necrosis and reoperation rates [7].
  • Fixation of proximal humerus fractures with proximal humerus locking plates is associated with a high rate of complications and reoperation [10].
  • Plate fixation was associated with a higher risk of avascular necrosis development than conservative treatment in patients with proximal humeral fractures [16].
  • Considerable variability exists in the use of outcome measures across the proximal humerus fracture literature, making treatment comparison challenging [32].

Investigations

Imaging Protocols and Modalities

  • At least two X-ray views should be obtained for shoulder imaging: an anteroposterior view in the plane of the glenoid and an axillary projection with the arm in abduction [43].
  • The anteroposterior view in the plane of the scapula shows the superoinferior position of the humeral head relative to the glenoid, presence of osteophytes, joint space narrowing, degree of medial displacement, bone quality, loose bodies, and humeral head collapse or deformity [23].
  • The axillary view taken with the arm in the functional position of elevation in the plane of the scapula is referred to as the "truth view" because it demonstrates glenohumeral relationships in the functional position of elevation [23].
  • The standardized axillary "truth view" enables the measurement of posterior subluxation or "functional decentering" that is not evident in images taken with the arm at the side [23].
  • Computed tomography (CT) is helpful for planning fracture surgery and shoulder joint replacement [43].
  • Magnetic resonance imaging (MRI) is useful to identify osteonecrosis of the humeral head, bone tumours, labral tears, and rotator cuff tears [43].
  • Ultrasound is a simple and accurate test for identifying rotator cuff tears and calcific tendinitis [43].
  • The purpose of imaging the shoulder is to help establish the diagnosis, determine the severity of the pathoanatomy, assist in surgical planning, and enable the surgeon to illustrate the condition of the shoulder to the patient [23].
  • Standardized plain films are almost always sufficient to garner the information needed for shoulder evaluation [23].
  • Three-dimensional reconstructions can reveal fine details of shoulder anatomy, but this additional information rarely changes the planning or conduct of arthroplasty [23].
  • Surgeons need to develop a judicious approach to imaging that yields necessary information while avoiding the tendency to "over-image" [45].

Preoperative Assessment and Fracture Characterization

  • All available open reduction and internal fixation (ORIF) techniques require careful analysis of fracture type, fragment displacement, and bone quality, making preoperative CT extremely valuable for three- and four-part proximal humeral fractures [74].
  • Imaging-based assessment of fracture stability does not reliably predict outcomes in patients with two-part proximal humeral fractures and may lead to unnecessary surgeries [73].

Outcome Measures

Treatment

Non-Operative Management

  • Non-operative treatment is advocated for the majority of non-displaced and minimally displaced isolated tuberosity fractures with generally good outcomes [64].
  • Most pediatric patients with proximal humerus fractures have favorable results, and complications are infrequent [14].

Operative Management: General Principles

  • Treatment of displaced proximal humerus fractures must be individualized based on patient and fracture characteristics [25].
  • No single fixation method is a panacea for proximal humeral fractures; choice of implant and method should be selected according to individual patient and fracture pattern characteristics based on clearly defined indications and contraindications [17].
  • Surgical management of proximal humeral fractures in younger patients is challenging due to high expectations and the lack of a single device providing reproducible results [33].
  • Technical strategies to maximize the success of surgical treatment for proximal humerus fractures emphasize innovations in technique and implant design to mitigate high complication rates [62].

Operative Management: Intramedullary Nailing

  • Modern proximal humeral nail designs and techniques have demonstrated promising outcomes and can provide stable fixation [2].
  • Intramedullary fixation represents an alternative treatment option for proximal humeral fractures with specific fixation and biologic advantages, including reported outcomes comparable with other techniques [8].
  • Regaining full range of shoulder and elbow movements in combination with absence of complains regarding the shoulder or elbow joints has been striking, indicating that the unreamed technique and avoidance of locking screws could be important factors towards optimum outcomes [12].
  • Retrograde elastic stable intramedullary nailing (ESIN) has become the method of choice for surgical treatment of proximal humerus fractures in children and adolescents based on many studies comparing this technique to direct percutaneous pinning [71].

Operative Management: Locking Plate Fixation

  • Augmentation of plate fixation for proximal humeral fractures seems to be a reliable and safe procedure that mechanically increases construct stability and reduces complication rates while improving patient outcomes [21].
  • Fixation of proximal humeral fractures in elderly patients using locked plates with or without cement augmentation has no significant difference in revision rate, but the implant failure and total complication rates may be lesser on using the cement-augmented locked plate for fixation than on using a locked plate alone [31].
  • Augmentative procedures, including cortical strut augmentation, are being investigated to address the issue of osteopenia in proximal humeral fracture treatment; their role in the treatment of these fractures is unclear at this time [13].

Comparative Effectiveness: Nails vs. Plates

  • The available evidence suggests that both intramedullary nails and locking plates can effectively restore shoulder function in the treatment of displaced proximal humeral fractures, with unclear superiority of either method [1].
  • The intramedullary nail is superior to locking plate in reducing the total complication, intraoperative blood loss, operative time, postoperative fracture healing time and postoperative humeral head necrosis rate of PHF [3].

Operative Management: Fracture Dislocations and Arthroplasty

  • In the geriatric population, reverse total shoulder arthroplasty has demonstrated improved functional outcomes, with a decreased rate of reoperation, compared with hemiarthroplasty [13].
  • Tuberosity repair has been shown to improve functional outcomes and range of motion after both reverse total shoulder arthroplasty and hemiarthroplasty and should be performed at the time of arthroplasty [13].
  • Comparative studies support the use of reverse shoulder arthroplasty in elderly patients with complex proximal humerus fractures because the functional outcomes and relief of pain are reliably improved [72].

Anesthesia

  • Regional anaesthesia is a good option for postoperative analgesia in patients undergoing surgical repair of a proximal humerus fracture and is associated with fewer adverse events, a shorter recovery time, and a better functional outcome than those achieved by general anaesthesia alone [67].

Complications

General Complication Rates and Outcomes

  • In a systematic review of late screw-related complications in locking plating, 33% of reported cases had at least one complication, with 11% of all complications being screw-related [20].
  • Patients undergoing ORIF for proximal humerus fracture dislocations have relatively high avascular necrosis and reoperation rates [7].
  • Open fractures and 4-part proximal humerus fractures had the highest complication rates following intramedullary nailing [79].
  • A meta-analysis of randomized controlled trials did not support the treatment of open reduction and internal fixation to improve the functional outcome when compared with nonoperative treatment for treating elderly patients with displaced 3-part or 4-part proximal humeral fractures [75].
  • In most studies of proximal humeral fractures, only 1 or 2 patients experiencing an alternative outcome or lost to follow-up would change the conclusions for the dichotomous outcome studied [29].

Avascular Necrosis

  • The intramedullary nail is superior to locking plate in reducing the postoperative humeral head necrosis rate of proximal humerus fractures [3].
  • Most late screw-related complications in locking plating were secondary screw perforations and screw cut-outs, being predominantly linked to poor bone quality [20].
  • Screw loosening and retraction were found less frequently as a result of locking mechanism failure in locking plating of proximal humerus fractures [20].
  • Screw perforation was the most frequent screw-related complication in locking plating, mostly reported in female patients older than 50 years, following four-part or AO/OTA type C fractures, and detected four weeks postoperatively [20].
  • Locked humeral stems provide reliable diaphyseal fixation with a low incidence of screw-related complications in reverse total shoulder arthroplasty for complex proximal humerus fractures [78].

Augmentation and Allograft Outcomes

  • Augmentation of plate fixation for proximal humeral fractures mechanically increases construct stability and reduces complication rates while improving patient outcomes [21].
  • Patients with proximal humerus fractures treated with a locking compression plate augmented with a fibular allograft have decreased odds of a major complication when compared with patients treated with a locking compression plate alone [81].

Venous Thromboembolism

  • Venous thromboembolism was the most frequently reported complication after shoulder arthroplasty when compared to ORIF, with reverse shoulder arthroplasty having the highest venous thromboembolism rate [70].

Salvage and Revision Surgery

  • The failed fixation group performed significantly better than the failed hemiarthroplasty group in postoperative constant and shoulder abduction after salvage reverse shoulder arthroplasty [27].
  • Revision surgery for failed arthroplasty of proximal humerus fracture is complex with a high likelihood of inferior outcomes compared with primary arthroplasty [77].

Non-Operative Management

  • Complications following non-surgical management of proximal humeral fractures are described using heterogeneous terminology and definitions, calling for standardized definitions to improve evidence synthesis [34].

Recovery

  • A systematic review of rehabilitation protocols in proximal humerus fracture management included 3507 patients and 3519 proximal humerus fractures [24].
  • In the systematic review of rehabilitation protocols, 65.9% of the patients were female [24].
  • The weighted mean age of patients in the rehabilitation protocol systematic review was 63.5 years [24].
  • The follow-up duration in the rehabilitation protocol systematic review was 22.4 months [24].
  • Of the 45 treatment cohorts included in the rehabilitation protocol systematic review, 33 were treated with ORIF with plate fixation and 5 were treated with ORIF with intramedullary nail [24].
  • Of the included proximal humerus fractures in the rehabilitation protocol systematic review, 2220 were treated with ORIF with plating and 208 were treated with a nail [24].
  • Ten studies included in the rehabilitation protocol systematic review included fracture dislocations in their cohorts [24].
  • The levels of evidence in the rehabilitation protocol systematic review were Level I (15%), Level II (8%), Level III (25%), and Level IV (53%) [24].
  • Patients 65 years of age with 3- or 4-part proximal humerus fractures achieve the most benefit in terms of range of motion, postoperative functional outcomes, tuberosity union, and overall complication rate when undergoing reverse total shoulder arthroplasty with a noncemented stem and early postoperative range of motion compared to reverse total shoulder arthroplasty with a cemented stem and delayed rehabilitation [69].

Key Evidence

  • [L5] The available evidence suggests that both intramedullary nails and locking plates can effectively restore shoulder function in the treatment of displaced proximal humeral fractures, with unclear superiority of either method. [1] (10.1016/j.xrrt.2024.01.001)
  • [L5] Modern proximal humeral nail designs and techniques have demonstrated promising outcomes and can provide stable fixation. [2] (10.1016/j.jse.2015.11.016)
  • [L1] The intramedullary nail is superior to locking plate in reducing the total complication, intraoperative blood loss, operative time, postoperative fracture healing time and postoperative humeral head necrosis rate of PHF. [3] (10.1186/s13018-019-1345-0)
  • [L5] Treatment for proximal humerus fractures remains controversial, with nonsurgical management demonstrating successful outcomes and union rates greater than 90%. [4] (10.5435/jaaos-d-24-01073)
  • [L1] No superior treatment was suggested between locking plates and intramedullary nails for displaced proximal humeral fractures. [5] (10.1007/s00264-017-3683-z)
  • [L1] Intramedullary nailing and plating demonstrate equivalent clinical outcomes for the surgical management of displaced proximal humerus fractures in adults. [6] (10.1016/j.jse.2026.02.016)
  • [L4] Patients undergoing ORIF for proximal humerus fracture dislocations have reasonable functional outcomes but relatively high avascular necrosis and reoperation rates. [7] (10.1016/j.jse.2022.04.018)
  • [L4] Intramedullary fixation represents an alternative treatment option for proximal humeral fractures with specific fixation and biologic advantages, including reported outcomes comparable with other techniques. [8] (10.5435/jaaos-d-18-00360)
  • [L5] Most proximal humeral fractures in elderly patients can be treated nonoperatively with good functional outcomes. [9] (10.2106/jbjs.l.01293)
  • [L4] Fixation of proximal humerus fractures with proximal humerus locking plates is associated with a high rate of complications and reoperation. [10] (10.1016/j.injury.2010.11.058)
  • [L1] Limited evidence suggests that locking plate and intramedullary nail are both valuable options for the treatment of proximal humeral fractures. [11] (10.1186/s13018-015-0242-4)
  • [L4] Regaining full range of shoulder and elbow movements in combination with absence of complains regarding the shoulder or elbow joints has been striking, indicating that the unreamed technique and avoidance of locking screws could be important factors towards optimum outcomes. [12] (10.1016/s0020-1383(13)70037-8)
  • [L5] [13] (10.2106/jbjs.20.00665)
  • [L5] Most pediatric patients with proximal humerus fractures have favorable results, and complications are infrequent. [14] (10.5435/jaaos-d-14-00033)
  • [L1] Plate fixation was associated with a higher risk of AVN development than conservative treatment in patients with proximal humeral fractures. [16] (10.1186/1749-799x-9-31)
  • [L4] No single fixation method is a panacea for proximal humeral fractures; choice of implant and method should be selected according to individual patient and fracture pattern characteristics based on clearly defined indications and contraindications. [17] (10.1016/j.injury.2010.10.016)
  • [L4] Over the past decade, most older adults who sustain proximal humerus fractures continue to receive nonoperative treatment. [19] (10.1016/j.jseint.2021.08.006)
  • [L2] [20] (10.1016/j.injury.2019.11.002)
  • [L1] Augmentation of plate fixation for proximal humeral fractures seems to be a reliable and safe procedure that mechanically increases construct stability and reduces complication rates while improving patient outcomes. [21] (10.1007/s00402-019-03162-2)
  • [L4] [24] (10.1177/17585732231182374)
  • [L5] Treatment of displaced proximal humerus fractures must be individualized based on patient and fracture characteristics, with a general evolution toward humeral head preservation using options ranging from nonsurgical immobilization to various surgical techniques including locking plate fixation and hemiarthroplasty. [25] (10.5435/00124635-200701000-00003)
  • [L2] The failed fixation group performed significantly better than the failed HA group in postoperative constant and shoulder abduction. [27] (10.1177/17585732221099200)
  • [L2] In most studies of proximal humeral fractures, only 1 or 2 patients experiencing an alternative outcome or lost to follow-up would change the conclusions for the dichotomous outcome studied. [29] (10.1016/j.jse.2022.01.141)
  • [L4] The choice of treatment for proximal humeral fractures depends on the fracture type and severity, surgeon expertise, patient age, and patient health status. [30] (10.5435/jaaos-d-15-00240)
  • [L1] Fixation of proximal humeral fractures in elderly patients using locked plates with or without cement augmentation has no significant difference in revision rate, but the implant failure and total complication rates may be lesser on using the cement-augmented locked plate for fixation than on using a locked plate alone. [31] (10.1186/s12891-024-07502-1)
  • [L4] Considerable variability exists in the use of outcome measures across the proximal humerus fracture literature, making treatment comparison challenging. [32] (10.1016/j.jse.2020.04.006)
  • [L5] The paper concludes that surgical management of proximal humeral fractures in younger patients is challenging due to high expectations and the lack of a single device providing reproducible results. [33] (10.1016/j.jse.2010.12.006)
  • [L1] This systematic review highlights significant heterogeneity in the terminology and definitions used to describe complications following non-surgical management of proximal humeral fractures, calling for standardized definitions to improve evidence synthesis. [34] (10.1186/s12891-019-2459-6)
  • [L2] [51] (10.1016/j.injury.2011.08.025)
  • [L4] [54] (10.1007/s00402-019-03252-1)
  • [L5] This review highlights various technical strategies to maximize the success of surgical treatment for proximal humerus fractures, emphasizing innovations in technique and implant design to mitigate high complication rates. [62] (10.5435/jaaos-d-22-01211)
  • [L4] Non-operative treatment is advocated for the majority of non-displaced and minimally displaced fractures with generally good outcomes, while displaced fractures may require arthroscopically assisted fixation or open/percutaneous reduction and internal fixation depending on fracture type and patient factors. [64] (10.1016/j.injury.2007.09.022)
  • [L4] Optimal management of osteoporotic proximal humeral fractures has evolved to include the use of locking plates and augmentation with intramedullary fibular grafts, calcium phosphate or sulfate cement, and iliac crest bone graft. [66] (10.1016/j.jse.2012.04.003)
  • [L1] This systematic review suggests that RA is a good option for postoperative analgesia in patients undergoing surgical repair of a proximal humerus fracture and is associated with fewer adverse events, a shorter recovery time, and a better functional outcome than those achieved by general anaesthesia alone. [67] (10.1007/s00402-019-03253-0)
  • [L1] Patients 65 years of age with 3- or 4-part proximal humerus fractures achieve the most benefit in terms of ROM, postoperative functional outcomes, tuberosity union, and overall complication rate when undergoing rTSA with a noncemented stem and early postoperative ROM compared to rTSA with cemented stem and delayed rehabilitation. [69] (10.1016/j.jse.2024.03.040)
  • [L4] Among the various procedures, VTE was the most frequently reported after SA when compared to ORIF, with RSA having the highest VTE rate. [70] (10.1016/j.xrrt.2023.06.003)
  • [L5] [71] (10.1016/j.otsr.2013.06.010)
  • [L4] Comparative studies support the use of reverse shoulder arthroplasty in elderly patients with complex proximal humerus fractures because the functional outcomes and relief of pain are reliably improved. [72] (10.5435/jaaos-d-13-00190)
  • [L5] Imaging-based assessment of fracture stability does not reliably predict outcomes in patients with two-part proximal humeral fractures and may lead to unnecessary surgeries. [73] (10.1530/eor-2026-0043)
  • [L4] All available ORIF techniques require careful analysis of fracture type, fragment displacement, and bone quality, making preoperative CT extremely valuable. [74] (10.1016/j.otsr.2012.12.006)
  • [L1] The meta-analysis did not support the treatment of open reduction and internal fixation to improve the functional outcome when compared with nonoperative treatment for treating elderly patients with displaced 3-part or 4-part proximal humeral fractures. [75] (10.1371/journal.pone.0075464)
  • [L5] Revision surgery for failed arthroplasty of proximal humerus fracture is complex with a high likelihood of inferior outcomes compared with primary arthroplasty. [77] (10.5435/jaaos-d-17-00051)
  • [L4] Locked humeral stems provide reliable diaphyseal fixation with a low incidence of screw-related complications in reverse total shoulder arthroplasty for complex proximal humerus fractures. [78] (10.1016/j.xrrt.2025.100625)
  • [L4] Open fractures and 4-part proximal humerus fractures had the highest complication rates. [79] (10.1016/j.jse.2024.07.049)
  • [L1] The pooled WMD and prediction interval suggest that 95% of patients with proximal humerus fractures treated with an LCP augmented with a fibular allograft will have improved radiographic outcomes, improved ASES clinical outcome scores, and decreased odds of a major complication when compared with patients treated with an LCP alone. [81] (10.1016/j.jse.2021.11.004)

References

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[2] Intramedullary nailing of the proximal humerus: evolution, technique, and results. Journal of Shoulder and Elbow Surgery. 2016. DOI: 10.1016/j.jse.2015.11.016

[3] Effect of intramedullary nail and locking plate in the treatment of proximal humerus fracture: an update systematic review and meta-analysis. Journal of Orthopaedic Surgery and Research. 2019. DOI: 10.1186/s13018-019-1345-0

[4] Contemporary Management of Proximal Humeral Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2025. DOI: 10.5435/jaaos-d-24-01073

[5] Locking plates versus intramedullary nails in the management of displaced proximal humeral fractures: a systematic review and meta-analysis. International Orthopaedics. 2017. DOI: 10.1007/s00264-017-3683-z

[6] Effectiveness of intramedullary nailing vs. locked plating (open reduction and internal fixation) in adult displaced proximal humerus fractures: a systematic review and meta-analysis. Journal of Shoulder and Elbow Surgery. 2026. DOI: 10.1016/j.jse.2026.02.016

[7] Fracture dislocations of the proximal humerus treated with open reduction and internal fixation: a systematic review. Journal of Shoulder and Elbow Surgery. 2022. DOI: 10.1016/j.jse.2022.04.018

[8] Intramedullary Fixation for Proximal Humeral Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2020. DOI: 10.5435/jaaos-d-18-00360

[9] Proximal Humeral Fracture Treatment in Adults. Journal of Bone and Joint Surgery. 2014. DOI: 10.2106/jbjs.l.01293

[10] A systematic review of locking plate fixation of proximal humerus fractures. Injury. 2011. DOI: 10.1016/j.injury.2010.11.058

[11] Meta-analysis of locking plate versus intramedullary nail for treatment of proximal humeral fractures. Journal of Orthopaedic Surgery and Research. 2015. DOI: 10.1186/s13018-015-0242-4

[12] T1.11 The management of 100 humeral shaft fractures with “Garnavos” humeral nail. Injury. 2013. DOI: 10.1016/s0020-1383(13)70037-8

[13] Current Controversies in the Treatment of Geriatric Proximal Humeral Fractures. Journal of Bone and Joint Surgery. 2021. DOI: 10.2106/jbjs.20.00665

[14] Evaluation and Management of Pediatric Proximal Humerus Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2015. DOI: 10.5435/jaaos-d-14-00033

[16] Avascular necrosis in proximal humeral fractures in patients treated with operative fixation: a meta-analysis. Journal of Orthopaedic Surgery and Research. 2014. DOI: 10.1186/1749-799x-9-31

[17] New trends in fixation of proximal humeral fractures: A review. Injury. 2011. DOI: 10.1016/j.injury.2010.10.016

[19] Trending a decade of proximal humerus fracture management in older adults. JSES International. 2022. DOI: 10.1016/j.jseint.2021.08.006

[20] Late screw-related complications in locking plating of proximal humerus fractures: A systematic review. Injury. 2019. DOI: 10.1016/j.injury.2019.11.002

[21] Augmentation of plate osteosynthesis for proximal humeral fractures: a systematic review of current biomechanical and clinical studies. Archives of Orthopaedic and Trauma Surgery. 2019. DOI: 10.1007/s00402-019-03162-2

[23] Rockwood And Matsen S The Shoulder. Arthroscopic Management of Prearthritic and Arthritic Conditions of the Shoulder and the Postarthroplasty Shoulder > Radiographic Evaluation.

[24] Rehabilitation protocols in proximal humerus fracture management: A systematic review. Shoulder & Elbow. 2023. DOI: 10.1177/17585732231182374

[25] Innovations in the Management of Displaced Proximal Humerus Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2007. DOI: 10.5435/00124635-200701000-00003

[27] Outcomes after salvage reverse shoulder arthroplasty for failed primary fixation or hemiarthroplasty for proximal humerus fractures: A systematic review. Shoulder & Elbow. 2022. DOI: 10.1177/17585732221099200

[29] Fragility of randomized controlled trials on treatment of proximal humeral fracture. Journal of Shoulder and Elbow Surgery. 2022. DOI: 10.1016/j.jse.2022.01.141

[30] Management of Acute Proximal Humeral Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2017. DOI: 10.5435/jaaos-d-15-00240

[31] Cement-augmented locked plate fixation proximal humerus fractures in elderly patient: a systematic review and meta-analysis. BMC Musculoskeletal Disorders. 2024. DOI: 10.1186/s12891-024-07502-1

[32] Outcome measures reported for the management of proximal humeral fractures: a systematic review. Journal of Shoulder and Elbow Surgery. 2020. DOI: 10.1016/j.jse.2020.04.006

[33] Proximal humeral fractures in younger patients: fixation techniques and arthroplasty. Journal of Shoulder and Elbow Surgery. 2011. DOI: 10.1016/j.jse.2010.12.006

[34] Complications after non-surgical management of proximal humeral fractures: a systematic review of terms and definitions. BMC Musculoskeletal Disorders. 2019. DOI: 10.1186/s12891-019-2459-6

[35] Rockwood And Matsen S The Shoulder. Shoulder and Elbow Specialty Clinic Workers’ Survey > ANATOMY.

[36] A Lange Medical Book Current Diagnosis Treatment In Orthopedics Fifth Edition. 2Musculoskeletal Trauma Surgery > SHOULDER AND ARM INJURIES.

[38] Aaos Comprehensive Orthopaedic Review 3. Anatomy of the Shoulder, Arm, and Elbow > I. Shoulder.

[43] Apley And Solomon S Concise System Of Orthopaedics And Trauma. INVESTIGATION.

[45] Rockwood And Matsen S The Shoulder. Developmental Anatomy of the Shoulder and Anatomy of the Glenohumeral Joint > SENIOR EDITOR COMMENTARY.

[51] Benefits and harms of locking plate osteosynthesis in intraarticular (OTA Type C) fractures of the proximal humerus: A systematic review. Injury. 2012. DOI: 10.1016/j.injury.2011.08.025

[54] Trends in surgical management of proximal humeral fractures in adults: a nationwide study of records in Germany from 2007 to 2016. Archives of Orthopaedic and Trauma Surgery. 2019. DOI: 10.1007/s00402-019-03252-1

[62] Technical Tips for Reduction and Stable Fixation of Proximal Humerus Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2023. DOI: 10.5435/jaaos-d-22-01211

[64] Isolated tuberosity fractures of the proximal humerus: Current concepts. Injury. 2008. DOI: 10.1016/j.injury.2007.09.022

[66] Evaluation of the osteoporotic proximal humeral fracture and strategies for structural augmentation during surgical treatment. Journal of Shoulder and Elbow Surgery. 2012. DOI: 10.1016/j.jse.2012.04.003

[67] Regional anaesthesia for surgical repair of proximal humerus fractures: a systematic review and critical appraisal. Archives of Orthopaedic and Trauma Surgery. 2019. DOI: 10.1007/s00402-019-03253-0

[69] Optimal combination of arthroplasty type, fixation method, and postoperative rehabilitation protocol for complex proximal humerus fractures in the elderly: a network meta-analysis. Journal of Shoulder and Elbow Surgery. 2024. DOI: 10.1016/j.jse.2024.03.040

[70] Venous thromboembolism following surgical management of proximal humerus fractures: a systematic review. JSES Reviews, Reports, and Techniques. 2023. DOI: 10.1016/j.xrrt.2023.06.003

[71] Proximal humerus fractures in children and adolescents. Orthopaedics & Traumatology: Surgery & Research. 2014. DOI: 10.1016/j.otsr.2013.06.010

[72] Reverse Shoulder Arthroplasty for the Management of Proximal Humerus Fractures. Journal of the American Academy of Orthopaedic Surgeons. 2015. DOI: 10.5435/jaaos-d-13-00190

[73] Imaging-based assessment of fracture stability does not reliably predict outcomes in patients with two-part proximal humeral fractures and may lead to unnecessary surgeries. EFORT Open Reviews. 2026. DOI: 10.1530/eor-2026-0043

[74] Surgical treatment of three and four-part proximal humeral fractures. Orthopaedics & Traumatology: Surgery & Research. 2013. DOI: 10.1016/j.otsr.2012.12.006

[75] Internal Fixation Versus Nonoperative Treatment for Displaced 3-Part or 4-Part Proximal Humeral Fractures in Elderly Patients: A Meta-Analysis of Randomized Controlled Trials. PLoS ONE. 2013. DOI: 10.1371/journal.pone.0075464

[77] Management of the Failed Arthroplasty for Proximal Humerus Fracture. Journal of the American Academy of Orthopaedic Surgeons. 2019. DOI: 10.5435/jaaos-d-17-00051

[78] Use of locking humeral stems in reverse total shoulder arthroplasty for complex proximal humerus fractures: a scoping review. JSES Reviews, Reports, and Techniques. 2026. DOI: 10.1016/j.xrrt.2025.100625

[79] Complications following intramedullary nailing of proximal humerus and humeral shaft fractures: a systematic review. Journal of Shoulder and Elbow Surgery. 2025. DOI: 10.1016/j.jse.2024.07.049

[81] Improved outcomes for proximal humerus fracture open reduction internal fixation augmented with a fibular allograft in elderly patients: a systematic review and meta-analysis. Journal of Shoulder and Elbow Surgery. 2022. DOI: 10.1016/j.jse.2021.11.004

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