为何建议进行此手术¶
跟腱是位于踝关节后方的强韧肌腱,使您在行走或跑步时能够蹬地发力。当跟腱完全撕裂时,此手术会将撕裂的两端缝合在一起。对于近期发生的撕裂,可能建议立即进行手术,而无需先尝试非手术治疗。对于一年期的预后结果,使用支具或靴具的非手术治疗并不劣于手术,因此我们将与您讨论这两种治疗路径。开放修复可降低肌腱再次撕裂的风险,但会增加伤口并发症的风险。主要目标是使肌腱保持完整,以便您能够负重并恢复日常活动。
术前¶
在手术前的几天里,请遵循我们提供的术前准备说明。您需要在手术前七小时停止进食和饮水。我们要求提前七小时禁食禁水,以便在手术排程提前时,您可以被提前安排。您的外科医生会告知您哪些常规药物需要停用以及何时停用。请携带一份您正在服用的所有药物的书面清单,并安排他人在术后驾车送您回家。请穿着宽松、舒适的衣物。可能会使用X光、超声或磁共振成像(MRI)等扫描来规划手术。如果您有其他健康状况,术前可能需要进行血液检查或由麻醉师进行评估。
手术当天¶
您将抵达医院的手术入院病区,在此办理入院手续并进行术前准备。随后,您将与麻醉医生会面,麻醉医生负责实施麻醉并管理您的疼痛。本手术在全身麻醉下进行。有时会追加区域神经阻滞以缓解术后疼痛;麻醉医生将在当天就此与您讨论。之后,您将被带入手术室进行手术。
手术结束后,您将在复苏室苏醒。在麻醉作用消退期间,护士会留在您身边。待您的生命体征平稳后,根据手术类型及恢复情况,您将被转入病房或直接回家。
手术内容¶
跟腱是位于踝关节后方的强韧肌腱。当其撕裂时,两端会像磨损的绳索一样分离。此手术旨在将这些断端缝合在一起。
外科医生会在踝关节后方的肌腱处做一个小切口。在微创修复术中,切口更小,缝线通过皮肤穿过,几乎或完全不打开腱鞘。外科医生可能会使用细摄像头检查撕裂的断端是否正确连接。强韧的缝线桥接上方健康肌腱与下方跟骨之间的间隙,在愈合过程中将断端固定在一起。
一旦肌腱断端连接完毕,缝线将被打结,切口用缝线缝合并覆盖敷料。您离开手术室时,踝关节将处于保护性位置,以避免对修复部位造成牵拉。
某些修复技术允许您比传统开放修复术更早地对足部负重。您的外科医生会告知您计划采用哪种方案以及原因。
术后¶
麻醉消退期间,您将在恢复区苏醒,护士会在旁监护。您的踝关节将包扎敷料并置于保护性体位,以避免修复部位受到牵拉。我们会给予镇痛药物以确保您的舒适,并在您离院前检查足部的血供、感觉和运动功能。回家后,前24小时内应有人陪同。您的医疗团队会告知您是当天回家还是住院一晚。最初两周,除非医疗团队另有指示,否则请勿让足部负重。敷料通常保留约10天;除非我们告知您,否则请勿在此之前拆除。我们会在复诊时为您更换或拆除敷料。
恢复¶
最初几天,您的踝关节会感到疼痛和肿胀。止痛药可保持舒适,休息并抬高患足有助于减轻肿胀。踝关节周围及足部出现一些瘀青属于正常现象,会随时间消退。
出院时,您的踝关节将处于保护性体位,以避免修复部位受到牵拉。除非医疗团队另有指示,否则前两周请勿让患足承重。我们通常会保留敷料约10天,并在复诊时更换或拆除。此后,物理治疗师将指导您进行温和的踝关节活动。您将从自由向下勾脚(跖屈)开始,同时避免过度向上勾脚(背伸)。随着愈合进程,您将逐渐增加患足承重,并开始走更长的距离。某些修复手术允许比其他手术更早承重;您的外科医生将告知您具体的计划。
在日常生活中,起初您在上下楼梯、购物和淋浴时需要他人协助。仰卧并抬高患足通常更舒适。您通常可以根据活动度和舒适度恢复办公室工作和日常事务,并在力量和平衡恢复后逐步恢复运动。许多人在微创修复手术约四个月后即可重返运动。
恢复情况因人而异。您的时间表可能有所不同,外科医生和物理治疗师将在每个阶段为您提供指导。
可能出现的并发症¶
大多数患者恢复良好,但偶尔也可能出现问题。您的外科医生和医疗团队会密切监测您的状况,以便尽早发现任何问题。
需要特别关注的是伤口问题。跟腱上方的皮肤血供较差,因此切口可能愈合缓慢,或切口边缘可能出现破溃。请留意伤口周围发红扩散、渗液或分泌物、疼痛加剧或发热等症状。如果您注意到上述任何症状,请立即致电诊所,不要等到下次复诊。某些健康状况,包括糖尿病和吸烟,会增加伤口问题的风险,因此我们会在手术前与您讨论您个人的风险。
感染可能发生在伤口内或跟腱周围的深层组织。通常表现为深层搏动性疼痛,普通止痛药无法缓解,并伴有局部发热、肿胀和发红。可能伴有发热或全身不适感。深部感染需要及时处理,因此请在当天联系诊所,如果无法联系我们,请立即前往急诊科。
缝线在愈合期间将跟腱断端固定在一起,但在跟腱完全恢复强度之前,可能会再次撕裂。这通常发生在突然蹬地、绊倒或跌倒时。您会感到脚踝后部有尖锐的断裂声或弹响,并伴有突然的无力感和蹬地困难。如果发生这种情况,请立即联系诊所或前往急诊科。
沿脚踝外侧走行的神经在修复过程中可能受到刺激。这可能导致足部外侧麻木、刺痛或烧灼感。请在下次复诊时告知医生,如果症状严重,请提前致电。
在此类损伤和手术后,小腿深静脉中可能形成血栓。警示信号包括小腿突然肿胀、压痛或沉重感;如果血栓游走至肺部,则可能出现呼吸困难或胸痛。呼吸困难或胸痛意味着必须立即前往急诊科。小腿症状意味着应尽快致电诊所。
瘢痕组织有时会将跟腱粘附于周围组织,导致活动时出现咔哒声、摩擦感或僵硬。请在下次复诊时提出此问题。
本页上的并发症表格列出了典型发生率,如果您想了解具体数据,请参阅该表格。
何时联系我们¶
如果您出现发热,或伤口周围的发红、分泌物或疼痛加重,请立即致电我们。如果您的小腿出现肿胀、压痛或沉重感,请迅速联系我们。如果您出现呼吸困难或胸痛,或感到脚踝突然有断裂感或弹响并伴有无力,或足部感觉丧失或无法活动,请前往急诊科。如果您无法联系到我们,请前往急诊科。
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.
Anatomy & Pathophysiology¶
Bony Anatomy¶
- The ankle mortise is formed by the tibial plafond, medial malleolus, and lateral malleolus [3].
- The ankle mortise articulates with the dome of the talar body [3].
- The talar dome is wider anteriorly and narrower posteriorly [3].
- The ankle mortise widens 1 to 1.5 mm during motion from plantar flexion to dorsiflexion [3].
- Medial and superior clear spaces appear wider with the foot in plantar flexion [3].
- The distal fibula has a convex medial surface that articulates with the concave incisura fibularis of the distal lateral tibia [3].
- The fibula rotates approximately 2 degrees within the incisura during ankle motion and ambulation [3].
- Ankle dorsiflexion results in external rotation and proximal translation of the fibula [3].
Ligamentous Anatomy¶
- The lateral ankle ligaments function as restraints to varus and inversion forces at the ankle [3].
- The anterior talofibular ligament (ATFL) originates from the anteroinferior aspect of the lateral malleolus, 1 cm proximal to its tip, and extends to the lateral aspect of the talar neck [3].
- The calcaneofibular ligament (CFL) extends from the tip of the lateral malleolus to the lateral aspect of the calcaneus [3].
- The posterior talofibular ligament (PTFL) extends from the posterior lateral malleolus to the posterolateral talus [3].
- The ATFL is the weakest ankle ligament [3].
- The PTFL is the strongest ankle ligament [3].
- The distal tibiofibular joint and fibula provide stability against lateral talar translation [3].
- The deltoid ligament complex is the primary ankle stabilizer during stance [3].
- The deep deltoid ligament extends from the apex of the medial malleolus to the medial talar body [3].
- The deep deltoid ligament functions primarily to resist lateral talar translation and external rotation [3].
- The posterior deep deltoid is the most important component of the deep deltoid ligament [3].
- The superficial deltoid ligament extends from the distal medial malleolus to the navicular bone, sustentaculum tali of the calcaneus, medial talus, and spring ligament [3].
- The superficial deltoid ligament functions primarily to resist valgus and eversion ankle forces [3].
- The deltoid ligament consists of superficial and deep layers, with at most six bands of which only three are constant: the tibionavicular ligament, tibiospring ligament, and deep posterior tibiotalar ligament [8].
- The tibiocalcaneal portion of the superficial deltoid ligament is the strongest component and resists eversion of the calcaneus [8].
- The deep portion of the deltoid ligament is organized into two short, thick, discrete bands: the anterior and posterior deep tibiotalar ligaments [8].
- The anterior and posterior deep tibiotalar ligaments are intra-articular but extrasynovial [8].
- The deep posterior band comprises the largest band of the deltoid complex [8].
- The deep deltoid ligament has the highest load to failure at 713.8 N ± 69.3 compared with the lateral collateral ligaments [8].
- The dominant mode of failure for the deep deltoid ligament is an intrasubstance rupture near its talar insertion [8].
- The failure of the superficial deltoid ligament is most commonly at its insertion on the anterior malleolus [8].
- Valgus tilting of the talus within the mortise requires complete rupture of both the superficial and deep deltoid ligaments [8].
Neurovascular Anatomy¶
- The superficial peroneal nerve penetrates the deep fascia and lies subcutaneously 8 to 10 cm proximal to the tip of the lateral malleolus, anterior to the subcutaneous border of the fibula shaft [6].
- The deep peroneal nerve accompanies the anterior tibial artery between the tendons of the anterior tibial and extensor digitorum longus muscles, just lateral to the extensor hallucis longus tendon [6].
- The saphenous nerve is located just medial or posterior to the saphenous vein in a slightly deeper plane, 3 to 5 cm proximal to the tip of the medial malleolus [6].
Biomechanics¶
- The ankle joint is responsible for most sagittal plane motion of the foot and ankle [3].
- Ankle plantar flexion ranges from 23 to 48 degrees [3].
- Ankle dorsiflexion ranges from 10 to 23 degrees [3].
- The ankle joint also contributes to inversion, eversion, and rotation [3].
Investigations¶
- MRI is sensitive for detecting osteochondral lesions of the ankle, but the edema pattern frequently overestimates the severity of the injury [12, 13].
- Linear fluid signal deep to subchondral bone on MRI indicates an unstable osteochondral lesion [12, 13].
- MRI has a sensitivity of 92% for predicting stable versus unstable osteochondral lesions [12, 13].
- CT scans are helpful for evaluating bony lesions, determining the integrity of subchondral bone, identifying cysts, and preoperative planning for osteochondral lesions [12, 13].
- AP, mortise, and lateral weight-bearing ankle x-rays may not demonstrate subtle osteochondral lesions [12, 13].
- Advanced imaging is often helpful in the diagnosis of foot and ankle injuries when combined with a thorough clinical examination [16].
- MRI is used for the evaluation of chronic Achilles tendon ruptures [1].
- MRI is used for the evaluation of traumatic ligamentous injuries of the ankle and foot [1].
- MRI is used for the evaluation of musculotendinous structures of the ankle [1].
- MRI is used for the evaluation of sports injuries involving the ankle [1].
- MRI is used for the pre-operative evaluation of the anterior talofibular ligament in chronic ankle instability [1].
- MRI is used for the evaluation of anterolateral soft tissue impingement of the ankle [1, 18].
- MRI is used for the evaluation of osteochondral lesions of the talus [1].
- MRI is used for the evaluation of posterior tibial tendon dysfunction [1].
- MRI is used for the diagnosis of plantar plate injury with reference to intraoperative findings [1].
- MRI is used for the evaluation of tibiofibular syndesmotic ligaments [1].
- MRI is used for the evaluation of chronic lateral ankle instability in conjunction with stress radiography [1].
- MRI is used for the evaluation of associations between imaging findings and symptoms in patients with chronic ankle sprain [1].
- MRI is used for the evaluation of accuracy in diagnosing ligamentous and chondral pathology in the ankle [1].
- MRI is used for the evaluation of peroneal tendon abnormalities on routine imaging of the foot and ankle [15].
- MRI is used for the evaluation of entrapment neuropathies of the lower extremity, including the knee, leg, ankle, and foot [19].
- Ultrasonography is used for the examination of the deltoid ligament in bimalleolar equivalent fractures [17].
- Ultrasonography is used for the point-of-care diagnosis and management of superficial peroneal nerve entrapment [19].
- MRI lacks additional diagnostic value for stability assessment of the ankle mortise in supination-external rotation-type ankle fractures [17].
- CT imaging is used to evaluate normal tibiofibular relationships at the syndesmosis [17].
- Preoperative computed tomography scans are used in operative planning for malleolar ankle fractures [17].
- Radiographic evaluation of the normal distal tibiofibular syndesmosis is a standard investigative approach [17].
- Fluoroscopy is used to assess if the syndesmosis is reduced [17].
- Radiographic identification of primary lateral ankle structures is possible [2].
- Gravity stress radiographs are used to assess the effect of ankle position on deltoid ligament integrity and medial clear space measurements [2].
- Stress radiography is used in the evaluation of chronic lateral ankle instability [1].
- The use of advanced imaging is often helpful in diagnosis when combined with a thorough clinical examination for foot and ankle disorders [16].
Treatment¶
Operative Technique: Lindholm Repair¶
- The patient is positioned prone for the procedure [14].
- A posterior curvilinear incision is made extending from the midcalf to the calcaneus [14].
- The deep fascia is incised in the midline to expose the tendon rupture [14].
- Ragged ends of the tendon are debrided [14].
- Tendon ends are apposed using a box type of mattress suture made of heavy nonabsorbable suture material or wire [14].
- Fine interrupted sutures are also used to appose the tendon ends [14].
- Two flaps are fashioned from the proximal tendon and gastrocnemius aponeurosis [14].
- Each flap is approximately 1 cm wide and 7 to 8 cm long [14].
- The flaps are left attached at a point 3 cm proximal to the site of rupture [14].
- Each flap is twisted 180 degrees on itself so that its smooth external surface lies next to the subcutaneous tissue [14].
- The flaps are turned distally over the rupture [14].
- Each flap is sutured to the distal stump of the tendon and to one another [14].
- The flaps cover the site of rupture completely [14].
- The wound is closed with care taken to approximate the tendon sheath over the site of repair [14].
Operative Technique: Lynn Repair¶
- The tendon sheath is opened in the midline [14].
- The foot is held in 20 degrees of plantar flexion during the repair [14].
- The ends of the Achilles tendon are sewn together with 2-0 absorbable sutures without excising the irregular edges [14].
- If the plantaris tendon is intact, its insertion on the calcaneus is divided [14].
- The plantaris tendon is fanned out to form a membrane using forceps, beginning distally [14].
- The fanned-out plantaris membrane is placed over the repair of the Achilles tendon [14].
- The plantaris membrane is sutured in place with interrupted sutures [14].
- When possible, the Achilles tendon is covered for 2.5 cm both proximal and distal to the repair [14].
- If the plantaris tendon is ruptured, it is dissected free from the Achilles tendon for several centimeters [14].
- The ruptured plantaris tendon is divided proximally using a tendon stripper [14].
- The plantaris tendon is pulled distally into the incision and fanned out as a free graft [14].
- The sheath of the Achilles tendon is closed as far distally as possible without tension [14].
Postoperative Care¶
- Postoperative care for these repairs is the same as that used after treatment of acute rupture of the Achilles tendon [14].
References¶
[1] Campbell S Operative Orthopaedics 4 Volume Set. REFERENCES > FOOT AND ANKLE.
[2] Campbell S Operative Orthopaedics 4 Volume Set. REPAIR OF ACUTE RUPTURE OF LATERAL LIGAMENTS > ACUTE ANKLE LIGAMENT INJURIES, CHRONIC ANKLE INSTABILITY.
[3] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > BIOMECHANICS OF THE FOOT AND ANKLE.
[6] Campbell S Operative Orthopaedics 4 Volume Set. MULTIPLE Z-PLASTY RELEASE OF A CONGENITAL RING > ANKLE BLOCK.
[8] Orthopaedic Knowledge Update Sports Medicine 6. Ankle and Foot Injuries and Other Disorders > Ankle Sprains > Medial Ankle Injury.
[12] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > OSTEOCHONDRAL LESIONS.
[13] Miller S Review Of Orthopaedics. OSTEOCHONDRAL LESIONS.
[14] Campbell S Operative Orthopaedics 4 Volume Set. ULNAR COLLATERAL LIGAMENT REPAIR WITH AN INTERNAL BRACE > OPEN REPAIR OF ACHILLES TENDON RUPTURE—LINDHOLM.
[15] Campbell S Operative Orthopaedics 4 Volume Set. MULTIPLE Z-PLASTY RELEASE OF A CONGENITAL RING > PERONEAL TENDONS.
[16] Orthopaedic Knowledge Update Sports Medicine 6. Ankle and Foot Injuries and Other Disorders > Summary.
[17] Orthopaedic Knowledge Update Trauma. Ankle Fractures > Annotated References.
[18] Campbell S Operative Orthopaedics 4 Volume Set. ARTHROSCOPIC EXAMINATION AND DEBRIDEMENT OF THE ANKLE JOINT > IMPINGEMENT.
[19] Campbell S Operative Orthopaedics 4 Volume Set. COMBINED HAMMER TOE AND MALLET TOE DEFORMITY WITH ASSOCIATED DOUBLE CORNS > REFERENCES > TARSAL TUNNEL SYNDROME.
