后肩关节稳定 资料 In-depth 知情同意

本页面由机器翻译,尚未经临床医生审核。英文版本为权威版本。

为何建议进行此手术

Mater Private Hospital Rockhampton 的上肢外科医生 Kieran Hirpara 医生会从最适合您病情的微创方案开始。患者通常由其全科医生(GP)转诊至我们的诊所;如果理疗师建议您前来就诊,您仍需获得全科医生的转诊才能符合 Medicare 报销资格。在评估过程中,我们会采集病史、检查您的肩部,并在必要时安排影像学检查。后肩关节不稳是指肱骨上端从肩关节盂后方滑脱或感觉即将滑脱。这是一种不常见的问题,且初期常被漏诊,这可能导致正确诊断的延迟。

对于许多患者,我们首先尝试非手术治疗,例如改变活动方式和物理治疗。当非手术治疗未能带来足够改善,或您的肩部反复失稳时,我们会考虑手术。如果您的肩部在其他治疗后仍存在疼痛或不稳,或者关节盂的骨性结构需要处理,我们可能会建议进行此手术。该手术是一种微创(关节镜)修复术,旨在收紧肩部后方的软组织,以维持关节的稳定性。其目标是缓解疼痛、恢复稳定性,并帮助您恢复日常活动,包括体育运动。

术前准备

在您的手术之前,我们将确认用于制定手术方案的必要扫描检查。通常,肩部的普通X光片就足够了。CT扫描能更清晰地显示您关节盂的骨骼情况,而MRI或超声检查则可以显示盂唇和肩袖等软组织。您无需进行所有检查,只需完成那些能解答关于您肩部问题的检查即可。

手术当天,请在手术时间前七小时停止进食和饮水。我们要求七小时而非六小时,以便在手术室排程提前时,您的手术可以提前进行。您的外科医生会告知您哪些常规药物需要暂停服用。请携带一份您正在服用的所有药物的书面清单。请安排他人在术后驾驶送您回家,并穿着宽松舒适的衣物。如果您有其他基础疾病,可能需要进行血液检查或与麻醉师进行术前评估。

手术当天

您抵达医院的手术入院单元,在此办理入院手续并进行术前准备。您将见到麻醉师,即负责让您进入睡眠状态并在手术期间确保您舒适安全的医生。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;麻醉师将在当天就此与您沟通。

随后,您将被带入手术室进行手术。术后,您将在复苏区苏醒,护士会在此监护您,直至麻醉药效消退。待您的生命体征稳定后,根据手术类型及恢复情况,您将被安排转入病房或直接回家。

手术内容

该手术最常见的形式是关节镜(微创)修复。外科医生会在肩部周围做两到三个小切口,每个切口约 1 厘米。通过其中一个切口置入细长的摄像头,以便在屏幕上观察关节内部。其他切口用于置入小型器械。

在肩关节内部,外科医生修复盂唇(盂缘处的软骨环)撕裂脱开的部位,并收紧衬覆关节的松弛组织囊。这种收紧可通过一种将松弛组织折叠并固定的缝合方法实现,有时也可通过单个小切口完成。修复部位通过置入骨骼的小型锚钉固定。小切口用缝线缝合,并覆盖敷料。

部分患者需要超出软组织修复范围的处理。如果盂后方的骨块磨损或缺失,外科医生可能会添加一小块骨块以重建盂缘并固定肱骨。这可以通过关节镜手术完成,使用导向框架和小型纽扣在骨块愈合期间将其固定。在其他情况下,会矫正盂本身的角度。外科医生将解释哪种方法适合您的肩部以及原因。

手术期间您采取的姿势,无论是略微坐起还是侧卧,均由外科医生根据您的手术方式选择。

术后

您将在复苏区醒来,护士会在麻醉消退期间看护您。您的肩部会感到疼痛,护士会给您服用药物以缓解不适。您的手臂将置于吊带中,以在愈合期间保护修复部位。肩部周围的小切口已用缝线缝合并覆盖敷料。敷料通常保留约10天;除非我们告知您,否则请勿提前拆除。我们会在复诊时为您更换或拆除敷料。护士会协助您起身并活动,通常在数小时内完成。请确保回家后最初的24小时内有人陪伴。您的医疗团队会告知您是当天出院还是在医院留观一晚。

恢复

您的肩部在最初几天和几周内会感到疼痛和肿胀。这是关节镜修复术后的正常现象。休息、冰敷以及您的医疗团队开具的止痛药将有助于缓解不适。随着组织愈合,肿胀会逐渐消退。

起初您需要佩戴悬吊带,以在愈合期间保护修复部位。您的物理治疗师将指导您进行温和的练习,以逐步恢复活动度,随后恢复力量。在家中,您可以走动、自己穿衣,并用另一只手完成轻体力任务。您不能用患肢提起重物,且在修复部位准备好之前,不得进行推、拉或举过头顶的动作。一段时间内睡眠可能会感到别扭;许多人发现靠在椅子上或背后垫着枕头睡觉会更舒适。

随着疼痛消退和活动度恢复,您将能更多地使用该手臂。随着肩部条件允许,您的物理治疗师会增加难度更大的练习。当您的外科医生对您的恢复进度感到满意时,您将获准重新驾驶。规则很简单:佩戴悬吊带期间禁止驾驶,且您必须能够双手握住方向盘,并在脱离强效止痛药的情况下,能在紧急制动时做出反应。我们的指南上肢手术后的驾驶提供了更多说明。

重返体育运动所需的时间比日常恢复更长,因为修复部位需要时间变得牢固。您的时间表可能与他人不同;您的外科医生和物理治疗师将逐步指导您。

可能出现的问题

大多数患者恢复良好,但偶尔可能出现并发症。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。

本次手术后的主要担忧是肩部再次变得不稳定。您可能会注意到与术前相同的滑脱或失稳感,或者感觉关节即将向后脱位。如果这种情况再次出现,请在下次复诊时告知医生。有时需要进一步手术以固定关节。

如果添加了骨块以重建您的关节盂,在愈合过程中偶尔可能出现一些问题。骨块可能未能与您的自身骨组织融合,或者固定骨块的小螺钉可能弯曲或断裂。您可能会感到尖锐的卡顿感、新的弹响或摩擦感,或肩部深部持续不缓解的疼痛。骨块也可能随时间萎缩或磨损,导致金属部件突出,关节可能逐渐发展为退行性关节炎。如有任何这些变化,请告诉您的外科医生,以便他们通过影像学检查肩部。

肩部周围的神经位于放置骨块的区域附近。如果手术期间神经受到刺激,您可能会注意到手臂麻木、刺痛或无力,或手腕和手指抬举困难。大多数神经刺激会自行消退,但请立即报告,而不要等到复诊时再说。

骨块修复术也可能导致肩部比术前更僵硬。您可能会发现向后背伸或向侧方抬举手臂更加困难。您的物理治疗师会与您一起进行训练,但如果活动度没有改善,请提及此情况。

某些不稳定模式,即在特定动作中肩部滑脱但没有明确损伤,对手术反应不佳。如果这听起来像您的肩部情况,您的外科医生会在任何手术前与您讨论这一点。

本页上的并发症表列出了典型发生率,如果您想了解具体数据。

何时联系我们

大多数问题在您告知我们时都能及早发现。如果您出现发热、伤口变得更红或开始渗出液体,或疼痛突然明显加重,请致电我们。如果您手臂出现麻木、刺痛或无力,或无法活动,请致电我们。如果您的小腿肿胀或疼痛,或出现呼吸急促,请立即前往急诊。如果您的肩部感觉再次向后脱位,请通知我们,不要等到下次复查。

深入探讨

Advanced reading: the deeper science (optional)

本节内容超出了您自身治疗决策所需的范围。后肩关节不稳定值得额外阅读,因为其表现与大多数人听说的前向不稳定类型不同,且这种差异的方向往往出人意料。

后方修复更为稳定,但重返运动更为困难

一项比较关节镜修复后前方与后方不稳定的荟萃分析发现,前方不稳定患者的重返运动率更高,但术后不稳定的可能性更大 [1]。后方不稳定患者则相反:修复效果更持久,但重返运动的比例较低 [1]。

这一点值得深思,因为它区分了患者往往将两者混为一谈的两个问题。“我的肩膀还会脱位吗?”和“我能恢复到受伤前的状态吗?”在这里有着不同的答案,而后者是更难实现的目标。

手术本身的基础结果是良好的。一项针对2,307例关节镜后方稳定术的系统综述报告称,该手术疗效良好,患者满意度高,且复发性不稳定、翻修手术及残余疼痛的发生率较低 [2]。另一项针对1,047名运动员的综述发现,其重返运动率较高,且恢复到受伤前水平的比例也相对较高 [3]。这两个结论可以同时成立:后方稳定术是一种可靠的手术,但它比前方对应手术的重返之路更为艰难。

预测手术失败的因素

近期最有价值的研究聚焦于哪些患者预后较差。一项针对 960 例患者的系统综述确定了关节镜下后方关节囊盂唇修复术后失败或翻修的三个危险因素:女性、盂骨宽度减小,以及术前盂骨缺损大于 11% 至 15% [4]。

同样具有参考价值的是哪些因素未预测到手术失败:盂骨版本、运动类型、盂唇宽度及盂唇版本均无显著影响 [4]。特别是盂骨版本,常被讨论得仿佛具有决定性作用,但根据现有证据,它并非如此。

其实际意义在于,术前应对盂骨骨量进行充分评估。一旦缺损超过 11–15% 的大致界限,单纯软组织修复便是在对抗其无法纠正的生物力学缺陷。这一问题应在术前而非术后失败后再行讨论。

为何常被漏诊

后方不稳定很少表现为脱位。更常见的表现是负重屈肘位手臂、卧推、俯卧撑或手撑椅子起身时出现疼痛,且无肩部明显脱出的病史。这种表现容易引导医生将其诊断为肩峰下撞击综合征或肌腱病,导致诊断常被延误。

如果患者在屈肘位推撑时出现疼痛,且针对肩袖的治疗无效,则应特别排查后方不稳定。

参考文献

[1] Vopat ML, Coda RG, Giusti NE, Baker J, Tarakemeh A, Schroeppel JP, et al. 关节镜Bankart修复后肩关节前向与后向不稳结局的差异:系统综述与Meta分析。Orthop J Sports Med. 2021;9(5). https://doi.org/10.1177/23259671211006437

[2] Ralph JE, Hurley ET, Lunn K, Levin JM, Klifto CS, Owens BD, et al. 关节镜稳定术治疗肩关节后向不稳的结局:系统综述。J Shoulder Elbow Surg. 2024;33(11):2530-8. https://doi.org/10.1016/j.jse.2024.04.006

[3] Matar RN, Shah NS, Gardner TJ, Grawe BM. 肩关节后向不稳手术治疗后重返运动:系统综述。JSES Int. 2020;4(4):797-802. https://doi.org/10.1016/j.jseint.2020.08.002

[4] Afetse EK, Noonan J, Munro A, Waterman BR, Ruzbarsky JJ, Kanakamedala AC, et al. 女性、肩胛盂骨宽度减小以及肩胛盂骨丢失大于11%至15%可能会增加关节镜后向关节囊盂唇修复术后失败的风险:系统综述。Arthroscopy. 2025;41(12):5332-42.e1. https://doi.org/10.1016/j.arthro.2025.07.023


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

  • Additional long-term randomized trials comparing beach-chair and lateral decubitus positions are needed to better understand the potential advantages and disadvantages of surgical positioning for posterior shoulder stabilization [1].
  • Successful correction of scapular anatomy via osteotomies can improve static subluxation and restore subjective and objective shoulder stability at a minimum of 2 years [2].
  • Defined thresholds for clinical significance provide a guideline for interpreting patient outcomes following arthroscopic stabilization, allowing for earlier detection of recurrent posterior instability [3].
  • The early and midterm results of arthroscopic stabilization of the shoulder for posterior instability are promising [4].
  • Arthroscopic management of posterior-inferior shoulder instability has a successful track record and a minimal complication profile [6].
  • A number of procedures have been developed over the past several centuries to address posterior shoulder instability as the pathology has become better understood [7].
  • Coracoid morphology differs significantly in patients undergoing posterior shoulder stabilization compared to patients undergoing surgery for anterior instability or a comparison cohort [9].
  • Posterior bone block augmentation for recurrent posterior shoulder instability does not reliably yield substantial improvements in patient-reported outcomes [10].
  • Complications are frequently observed with posterior bone block augmentation for recurrent posterior shoulder instability [10].
  • Arthroscopic stabilization of posterior shoulder instability results in good outcomes with high patient satisfaction [11].
  • Arthroscopic stabilization of posterior shoulder instability is associated with low rates of recurrent instability, revisions, and residual pain [11].
  • Arthroscopic surgical techniques have facilitated successful management of both recurrent posterior subluxations and frank posterior instability [12].
  • There is a high rate of return to sport after arthroscopic posterior shoulder stabilization [15].
  • Return to sport after arthroscopic posterior shoulder stabilization occurs ranging from 4.3 to 8.6 months after surgery [15].

Anatomy & Pathophysiology

Bony Anatomy

  • The glenoid is a convex structure of shallow depth shaped like an inverted pear [35].
  • The glenoid averages 5° of retroversion in relation to the axis of the scapular body [38].
  • The subchondral bone of the glenoid is relatively flat, with articular concavity augmented by cartilage and a circumferential labrum [38].
  • The humeral head averages 19° of retroversion and 41° of inclination (neck-shaft angle) [38].
  • The humeral head is spherical with a diameter of 37 to 57 mm [35].
  • The humeral version averages 29.8 degrees (range, 10 to 55 degrees) [35].
  • The head is inclined approximately 130 degrees with respect to the humeral shaft [35].
  • The neck-shaft angle measures an average of 135 degrees [36].
  • The humeral head is retroverted an average of 30 degrees [36].
  • The glenoid cavity is a shallow socket, approximately one third the size of the humeral head [36].
  • Patients with constitutional static posterior shoulder instability (Type C1) differ from healthy controls regarding osseous scapular and humeral morphology, scapulothoracic orientation, and shoulder girdle muscle distribution [60].
  • The acromion acts as a mechanical buttress to posterior humeral head displacement [57].
  • Glenoid as well as acromial malalignment alone is associated with pathological posterior translation of the humeral head across the glenoid upon simulated active elevation [54].
  • Glenohumeral contact patterns highly depend on the amount of glenoid retroversion and posterior labral and/or bony glenoid integrity [55].

Soft Tissue Anatomy & Ligaments

  • The posterior capsule is thin [49].
  • The posterior capsule and the buttress provided by the posterior glenoid labrum are the primary static stabilizers to unidirectional posterior translation [49].
  • Dynamic posterior stability is conferred by the rotator cuff musculature [49].
  • The most consistent finding in patients with recurrent posterior subluxation is a patulous posterior capsule [49].
  • The posterior capsule either stretches over time or tears as a result of single event trauma and heals in an elongated position, thereby increasing capsular volume [49].
  • Posterior labral tears associated with recurrent posterior subluxation are generally degenerative tears rather than rare capsular and labrum avulsions (reverse Bankart lesions) [49].
  • The posterior band of the inferior glenohumeral ligament (IGHL) is a primary static restraint against posterior-inferior translation in internal rotation and adduction [38].
  • The posterior band of the IGHL is thinner than the anterior band of the IGHL [62].
  • The posterior capsule, particularly the posterior band of the IGHL, is intimately associated with the posterior labrum in creating a compressive force across the glenohumeral joint [62].
  • The long head of the biceps has a pertinent biomechanical role in glenohumeral stability regardless of the condition of the superior labrum [58].
  • The glenoid labrum provides concavity and up to 50% of marginal glenoid socket depth [38].
  • The rotator interval is defined medially by the base of the coracoid, superiorly by the supraspinatus tendon, and inferiorly by the subscapularis tendon [38].
  • The rotator interval contains the coracohumeral (CH) ligament, the superior glenohumeral ligament (SGHL), and the intra-articular portion of the long head of the biceps tendon [38].
  • The CH ligament restricts external rotation in adduction and is a static restraint to inferior and posterior translation in adduction and external rotation [38].
  • The SGHL is a primary static restraint against anterior translation with the arm at the side [38].
  • The middle glenohumeral ligament (MGHL) is a primary static restraint against anterior translation with the arm in external rotation and 45° of abduction [38].
  • The anterior band of the inferior glenohumeral ligament (AB-IGHL) is a primary static restraint against anterior-inferior dislocation of the glenohumeral joint in 90° of abduction and external rotation [38].
  • The subscapular bursa lies between the subscapularis tendon and the neck of the scapula and communicates with the joint cavity between the superior and middle glenohumeral ligaments [39].
  • The subscapular bursa is linked to the coracoid process by a suspensory ligament [39].
  • In 28% of dissected specimens, the subscapular bursae merged with the subcoracoid bursae, forming a unique wide bursa [39].

Pathophysiology & Biomechanics

  • The glenohumeral joint relies upon a ‘‘concavity-compression’’ mechanism to remain concentrically reduced [18].
  • Glenoid retroversion, glenoid dysplasia, posterior glenoid bone defects, dynamic glenoid malpositioning due to loss of normal scapular mechanics, and loss of normal compressive forces can all contribute to posterior instability [18].
  • Posterior translation is highly sensitive to small degrees of posterior glenoid defects or retroversion [18].
  • Recurrence of instability after surgery is reliably related to either a failure to address one of the glenohumeral stabilizers at the time of primary stabilization or the development of a new lesion in one of these structures [18].
  • Relevant lesions contributing to recurrence include deficiency or malpositioning of the glenoid fossa, tearing or attenuation of the posterior labrum, and laxity within the anterior or posterior capsuloligamentous structures [18].
  • Posterior shoulder instability is a dynamic problem that may be caused or aggravated by mechanical factors, many of which mirror problems found in anterior instability [27].
  • It is not completely clear what the individual contribution is from each of the different mechanical factors because many of these are also present in asymptomatic patients [27].
  • The PPS injury produces alterations in glenohumeral kinematics with implications for glenohumeral joint instability, increased joint loading, and potential joint damage [56].
  • Static posterior subluxation is a fixed posterior position of the humeral head on the glenoid fossa on CT or MRI scans with the arm in neutral rotation [47].
  • Static posterior subluxation is most frequently but not always associated with congenital dysplasia of the glenoid or with degenerative glenohumeral joint disease [47].
  • Static posterior subluxation may be associated with glenoid deformations such as those classified by Walch and co-workers [47].
  • Static posterior subluxation may be present without any rotator cuff deficiencies [47].
  • Most authors have found static posterior subluxations to be irreversible [47].
  • Acquired recurrent posterior subluxation is defined based upon the anatomic lesion, as the etiology is not as crucial to treatment as the underlying pathologic lesion [49].
  • Lesions of the capsule, labrum, rotator cuff musculature, and glenoid can contribute to recurrent posterior subluxation [49].
  • The most consistent deficiency in acquired recurrent posterior subluxation relates to redundancy of the posterior capsule [49].
  • Dysfunction of normal scapulothoracic mechanics can place the glenohumeral joint at risk for recurrent instability [49].
  • The serratus anterior muscle plays a key role in scapulothoracic rhythm, and its paralysis results in scapular winging and loss of power in elevation that potentially may influence glenohumeral stability [49].
  • In patients with glenohumeral instability and lesser degrees of scapulothoracic dysfunction, it is unclear whether instability is the result of altered scapulothoracic mechanics or the cause of it [49].
  • Posterior glenoid rim deficiency is an uncommon cause of acquired posterior subluxation but should be investigated with imaging studies if suspected [49].
  • The relation between the degree of posterior glenoid erosion and recurrent posterior subluxation has not been established [49].
  • It seems reasonable to assume that a large posterior glenoid defect will compromise the buttress effect of the glenoid to posterior translation [49].
  • Microtraumatic posterior shoulder instability is typically caused by repetitive loading of the shoulder in a combination of flexion, adduction, and internal rotation [64].
  • The mechanism of injury associated with microtraumatic posterior shoulder instability in baseball players is termed “batter's shoulder” [64].
  • Repetitive forces acting on the posterior glenohumeral joint capsulolabral complex and rotator cuff can result in posterior capsulolabral lesions, deformation, and articular surface rotator cuff tears [64].
  • Rotator cuff tears are extremely rare in association with posterior glenohumeral dislocation, regardless of patient age [27].
  • Only 4 documented cases of rotator cuff tear following posterior shoulder dislocation have been reported in the literature [27].
  • The attachment of the teres minor is vulnerable and may become either partially or completely avulsed in posterior dislocations [27].
  • Delayed diagnosis is common in posterior glenohumeral dislocations [20].
  • Reduction was achieved via open means in the majority of shoulders with posterior glenohumeral dislocation [20].
  • Recognition of a posterior dislocation may be impaired by the lack of a striking deformity and the fact that the shoulder is held in the traditional sling position of adduction and internal rotation [24].
  • Classic features of a posterior dislocation include limited external rotation (often to <0 degrees), limited elevation (often to <90 degrees), posterior prominence and rounding of the shoulder, flattening of the anterior aspect of the shoulder, and prominence of the coracoid process [24].
  • With the passage of time, the posterior rim of the glenoid can further impact the fracture of the humeral head and produce a deep hatchet-like defect or a V-shaped compression fracture, which engages the head even more securely [24].
  • Patients with old, unreduced posterior dislocations of the shoulder can have 30 to 40 degrees of glenohumeral abduction and some humeral rotation as a result of enlargement of the groove [24].
  • Long-standing disuse of the muscles about the shoulder leads to atrophy, which accentuates the flattening of the anterior portion of the shoulder, the prominence of the coracoid, and the fullness of the posterior portion of the shoulder [24].
  • The injury may be misdiagnosed as a frozen shoulder for which vigorous therapy may be mistakenly instituted in an attempt to restore range of motion [24].
  • Electoshock, seizures, or a fall on the flexed and adducted arm are commonly associated with posterior dislocation [24].
  • Female patients were significantly more likely to have posterior shoulder instability compared to male patients [13].
  • At a minimum of 2 years, successful correction of scapular anatomy can improve static subluxation and restore subjective and objective shoulder stability [2].

Classification

  • The ABC classification distinguishes three groups of posterior shoulder instability based on the nature of pathology: first-time, dynamic, or static [19].
  • The ABC classification includes two different subtypes for each of the three main groups based on pathomechanical causes [19].
  • The ABC classification aims to facilitate diagnosis and assist the treatment decision-making process for posterior shoulder instability [19].
  • Clinical-entity coding of the 100 most cited articles on posterior shoulder instability indicates that chronic or recurrent instability dominates the literature, comprising 65% of cases [34].
  • Locked posterior dislocations comprised a larger share of the top-cited literature set than acute traumatic posterior dislocations [34].
  • Locked posterior dislocation is characterized by distinct bony pathology, including reverse Hill-Sachs lesions, delayed recognition, and uniquely defined operative decision-making [34].

Clinical Presentation

History and Mechanism

  • The history should define the mechanism of injury, including the position of the arm, the amount of force applied, and the point of force application [24].
  • Injury with the arm in extension, abduction, and external rotation favors anterior dislocation [24].
  • In a posterior traumatic dislocation, the patient may report a direct blow with the arm in forward elevation, adduction, and internal rotation [48].
  • If the instability is recurrent, the history defines the initial injury, the position or action that results in instability, how long the shoulder stays out, whether radiographs are available with the shoulder out of joint, and what means have been necessary to reduce the shoulder [24].
  • The history also solicits evidence of neurologic or rotator cuff problems after previous episodes of shoulder instability [24].
  • Previous treatment of the recurrent instability, as well as the effectiveness of this treatment, should be documented [24].
  • Recurrent posterior shoulder instability is an uncommon condition often unrecognized, leading to incorrect diagnoses and delays [5].
  • Bilateral posterior shoulder dislocations with reverse Hill-Sachs lesions are uncommon and prone to misdiagnosis [59].

Physical Examination: Inspection and Deformity

  • Recognition of a posterior dislocation may be impaired by the lack of a striking deformity of the shoulder and by the fact that the shoulder is held in the traditional sling position of adduction and internal rotation [24].
  • Classic features of a posterior dislocation include limited external rotation of the shoulder, often to less than 0 degrees [24].
  • Classic features of a posterior dislocation include limited elevation of the arm, often to less than 90 degrees [24].
  • Classic features of a posterior dislocation include posterior prominence and rounding of the shoulder in comparison to the normal side [24].
  • Classic features of a posterior dislocation include flattening of the anterior aspect of the shoulder [24].
  • Classic features of a posterior dislocation include prominence of the coracoid process on the dislocated side [24].
  • Asymmetry of the shoulder contours can often best be visualized by viewing the shoulders from above while standing behind the patient [24].
  • With long-standing disuse of the muscles about the shoulder, atrophy will be present, which accentuates the flattening of the anterior portion of the shoulder, the prominence of the coracoid, and the fullness of the posterior portion of the shoulder [24].
  • The examination of the shoulder typically shows an inability to externally rotate the shoulder because of a mechanical block [25].
  • The examination of the shoulder typically shows limited flexion and abduction [25].
  • The dislocated arm is locked in internal rotation because the humeral head is fixed on the posterior glenoid rim [25].
  • Abduction and forward elevation may be preserved up to 80 degrees or more in posterior dislocation [25].

Physical Examination: Motion and Diagnosis

  • Motion is limited because the head of the humerus is fixed on the posterior glenoid rim by muscle forces, or the head might actually be impaled on the glenoid rim [24].
  • In the interval before the diagnosis of posterior dislocation of the shoulder is made, the injury may be misdiagnosed as a frozen shoulder for which vigorous therapy may be mistakenly instituted in an attempt to restore range of motion [24].
  • Hill and McLaughlin reported that in their series the average time from injury to diagnosis was 8 months [24].
  • Initial examination should include a complete neurovascular examination to document any neurologic or vascular deficits [50].
  • Documentation of active and passive ROM of the shoulder for internal and external rotation as well as forward flexion and abduction is important [50].
  • Marked loss of motion is seen with persistent dislocations and rotator cuff lesions [50].
  • The evaluation of the shoulder with a recent dislocation event can be challenging due to pain, but substantial motion loss mandates orthogonal radiographic imaging [50].
  • Rotator cuff testing is an essential part of the shoulder instability examination particularly in patients over the age of 40 years as the incidence of rotator cuff lesions increases [50].
  • The belly press or bear hug test is the most effective test to evaluate the function of the subscapularis in the acutely injured patient [50].
  • Testing of resisted shoulder abduction in the first 30 degrees of shoulder flexion with the arm internally rotated is effective for evaluating the supraspinatus [50].
  • Evaluation of the infraspinatus is performed by applying resisted external rotation with the elbow flexed to 90 degrees [50].
  • The most common complaint of shoulder instability is pain coupled with restricted shoulder motion [50].
  • Patients with anterior shoulder instability will experience symptoms of apprehension with shoulder abduction and external rotation, and also can experience symptoms of pain and instability with placement of the arm in an overhead position [50].
  • The load and shift test is used to evaluate anterior and posterior GH laxity and is performed while the patient is in a seated or supine position with the humeral head centered in the glenoid fossa and translated [48].
  • Generalized joint laxity should also be assessed using the Beighton score (0–9 point scale) [48].

Imaging and Classification

  • In patients with suspected posterior glenohumeral instability, imaging of the affected shoulder can show abnormalities of the bone, labrum, and joint capsule [29].
  • The ABC classification distinguishes three groups of posterior shoulder instability based on the nature of pathology (first-time, dynamic, or static) and two different subtypes based on the pathomechanical causes [19].
  • This classification aims to facilitate diagnosis and assist the treatment decision-making process [19].

Investigations

Imaging Modalities and Technique

  • At least two X-ray views should be obtained: an anteroposterior in the plane of the glenoid and an axillary projection with the arm in abduction to show the relationship of the humeral head to the glenoid [43].
  • The purpose of imaging of 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].
  • Unless a specific research protocol is in place, the temptation to “overimage” should be resisted, obtaining only the scans or reconstructions that are necessary for the care of the patient [23].
  • Standardized plain films are almost always sufficient to garner the information needed, and there is information that can be gathered from properly taken plain films that cannot be obtained from CT scans [23].
  • The first key radiographic view is the anteroposterior (AP) in the plane of the scapula taken so that the x-ray beam passes through the glenohumeral joint [23].
  • The second key radiographic view is the axillary view taken with the arm in the functional position of elevation in the plane of the scapula and oriented so that both the spinoglenoid notch and the scapular neck are visible [23].
  • The axillary view is referred to as the “truth view” because it demonstrates the glenohumeral relationships in the functional position of elevation [23].
  • CT scans have the disadvantage of being taken with the arm in the adducted position, whereas the axillary truth view is taken with the arm in elevation [23].
  • The degree of posterior subluxation can be measured as (1) the position of the center of the humeral head in relation to the plane of the scapula, (2) the position of the center of the humeral head in relation to the glenoid face, or (3) the point of contact of the humeral articular surface on the glenoid articular surface [23].
  • The point of contact of the humeral articular surface on the glenoid articular surface reflects the degree of centering of the net humeral joint reaction force on the glenoid [23].
  • Malcentering of the joint reaction force leads to posterior instability, posterior glenoid wear, and “rocking horse” loosening of prosthetic glenoid components [23].
  • Magnetic resonance imaging (MRI) is useful to identify osteonecrosis of the humeral head, or a bone tumour [43].
  • MRI can identify labral tears and rotator cuff tears, although the accuracy for these is enhanced by combining the scan with arthrography [43].
  • Computed tomography (CT) is helpful for planning fracture surgery and shoulder joint replacement [43].
  • Ultrasound is a simple and accurate test for identifying rotator cuff tears and calcific tendinitis [43].
  • Ultrasound can be useful in guiding injections or barbotage (aspirating calcific deposits in the rotator cuff) [43].
  • Arthroscopy is useful for diagnosing and treating subacromial impingement, intra-articular lesions, detachment of the glenoid labrum and rotator cuff tears [43].
  • A robust approach to imaging the shoulder needs to recognize that the shoulder is a three-dimensional structure that cannot be represented by a single planar view [45].
  • Critical relationships—such as the degree of centering of the humeral head—change with the position of the arm [45].
  • Shoulder pathology may be found in a large number of different bones and soft tissues [45].
  • Overlying and superimposed structures as well as metallic implants may complicate imaging the structures of interest [45].

Diagnostic Findings and Clinical Correlation

  • Coracoid morphology differs significantly in patients undergoing posterior shoulder stabilization when compared to patients undergoing surgery for anterior instability or a comparison cohort [9].
  • Regardless of the radiologist interpretation of MRA, patients with symptomatic posterior shoulder instability do benefit from arthroscopic stabilization surgery [21].
  • Overall, reduction was achieved via open means in the majority of shoulders, and delayed diagnosis is common in posterior glenohumeral dislocations [20].

Treatment

Arthroscopic Stabilization

  • Early and midterm results of arthroscopic stabilization for posterior shoulder instability are promising [4].
  • Arthroscopic stabilization of posterior shoulder instability results in good outcomes with high patient satisfaction and low rates of recurrent instability, revisions, and residual pain [11].
  • Arthroscopic management of posterior-inferior shoulder instability has a successful track record and minimal complication profile [6].
  • Patients with symptomatic posterior shoulder instability benefit from arthroscopic stabilization surgery regardless of the radiologist interpretation of the magnetic resonance arthrogram [21].
  • There is a high rate of return to sport after arthroscopic posterior shoulder stabilization, ranging from 4.3 to 8.6 months after surgery [15].
  • The thresholds defined in a 2025 study provide a guideline for interpreting patient outcomes following arthroscopic stabilization for posterior shoulder instability, allowing for earlier detection of recurrent posterior instability [3].

Bone Block Augmentation

  • The iliac posterior shoulder bone-block is effective in managing instances of involuntary posterior shoulder instability, showing satisfactory results in terms of non-recurrence, pain relief, and function recovery [8].
  • Posterior bone block augmentation for recurrent posterior shoulder instability does not reliably yield substantial improvements in patient-reported outcomes, and complications are frequently observed [10].
  • There is a moderate rate of recurrence following posterior bone block for posterior shoulder instability [14].
  • Both glenoid osteotomy and bone block procedures can successfully address symptomatic posterior shoulder instability [30].
  • An isolated reverse Bankart repair with a glenoid defect ≥20% is not sufficient to restore glenohumeral stability in a cadaveric model [31].
  • In a group of 75 patients who underwent arthroscopic capsulolabral repair with a minimum follow-up of 24 months, a bone defect of 11% increased the risk of failure by 10.4 times, while a 15% defect increased it by 24.4 times [31].
  • Posterior bone block techniques restore the glenoid surface and glenohumeral biomechanics, reducing posterior and posteroinferior translation of the humeral head [31].
  • Indications for a posterior bone block include recurrent posttraumatic posterior instability, the presence of humeral and/or glenoid defects, and demonstrable non-voluntary instability with glenoid dysplasia or hypermobility [31].
  • A glenoid defect ≥20% is proposed as a cut-off for posterior bone block techniques [31].

Open Surgical Techniques

  • The modified McLaughlin surgical procedure involves a deltopectoral incision, osteotomy of the small tubercle medial to the biceps groove, and repair of the subscapularis tendon [66].
  • In the modified McLaughlin procedure, the bone graft is sized to be at least 10 mm deep and 20 mm long to cover the humeral head defect [66].
  • The duration of dislocation is the most important prognostic factor in chronic locked posterior shoulder dislocations treated with the modified McLaughlin surgical procedure [66].

Patient Positioning

  • In a 2025 study on arthroscopic shoulder instability surgery in patients under 25 years of age, patients were positioned in lateral decubitus with 20° supination and upper limb in double traction [63].
  • In a 2025 multicentre study on chronic locked posterior shoulder dislocations, operations were performed with the patient in the beach chair position [66].

Non-Operative Management

  • NHL team physicians strongly favor nonoperative management in-season for initial posterior instability events of the shoulder [61].

Diagnostic and Prognostic Context

  • Advances in understanding posterior glenohumeral anatomy and biomechanics have helped guide clinical decision making, including delineation of surgical indications and contraindications, nonsurgical treatment solutions, and appropriate stabilization and bone augmentation techniques [17].

Complications

Recurrence and Instability

  • The high rate of persistent instability should be considered when making treatment decisions regarding glenoid osteotomy [72].
  • Recurrence of instability after surgery is reliably related to either a failure to address one of the glenohumeral stabilizers at the time of the primary stabilization or the development of a new lesion in one of these structures [18].
  • The most relevant lesions contributing to recurrence include deficiency or malpositioning of the glenoid fossa, tearing or attenuation of the posterior labrum, and laxity within the anterior or posterior capsuloligamentous structures [18].
  • In a systematic review of the modified McLaughlin procedure for locked posterior dislocation, two episodes of recurrent instability occurred in two separate patients with epileptic seizures and moderate joint stiffness, representing 2.1% of the cohort [68].
  • No episodes of recurrent dislocation were noted in any of the included studies for the modified McLaughlin procedure [68].
  • In a minimum 10-year follow-up study of arthroscopic capsulolabral repair, 17.6% of shoulders required additional surgery, either for recurrent instability or progression of arthritis [52].

Surgical and Hardware Complications

  • Posterior bone block augmentation for recurrent posterior shoulder instability is associated with complications that are frequently observed [10].
  • In a systematic review of the modified McLaughlin procedure, postoperative complications occurred in one patient (1.0% of the cohort), specifically one episode of screw migration which was treated with operative removal [68].
  • No episodes of humeral head necrosis or infection were documented in any study included in the systematic review of the modified McLaughlin procedure [68].
  • Graft non-union with bent or broken screws is a potential complication of glenoid bone augmentation [65].
  • Osteolysis or reabsorption of the proximal part of the grafts with prominent hardware is a potential complication of glenoid bone augmentation [65].
  • In a review of 21 patients treated with posterior bone block, 4 showed osteoarthritis (19%) and 1 had bone graft lysis on postoperative X-rays [65].
  • In a series of 8 patients who underwent posterior deltoid detachment and posterior bone block, 5 patients still referred pain at the latest follow-up [65].

Neurovascular and Soft Tissue

  • Musculocutaneous, axillary, and suprascapular nerves are the surrounding structures at risk during glenoid bone augmentation [65].

Functional and Long-Term Outcomes

  • Decreased range of motion is a potential complication of glenoid bone augmentation [65].
  • Long-term degenerative changes and osteoarthritis are potential complications of glenoid bone augmentation [65].
  • In a series of 8 patients treated with posterior bone block, competition players returned to their previous sport to a lower level, while occasional leisure players did not [65].

Recovery

  • Arthroscopic stabilization of posterior shoulder instability resulted in good outcomes with high patient satisfaction and low rates of recurrent instability, revisions, and residual pain [11].
  • Systematic review demonstrated high rates of return to sport and relatively high rates of return to preinjury level of sport among all athletes who underwent surgical treatment for posterior shoulder instability [32].
  • Arthroscopic posterior Bankart repair for traumatic posterior shoulder instability in collision sports athletes resulted in a low recurrence rate, high return-to-play rate, and clinically meaningful improvement [69].
  • Participants with microtraumatic posterior shoulder instability demonstrated significant improvements in patient-reported outcome measures and high rates of return to sport following a 24-week conservative rehabilitation program [28].
  • The thresholds defined in the study can provide a guideline for interpreting patient outcomes following arthroscopic stabilization for posterior shoulder instability, allowing for earlier detection of recurrent posterior instability [3].

Key Evidence

  • [L4] Additional long-term randomized trials comparing these positions are needed to better understand the potential advantages and disadvantages of surgical positioning for posterior shoulder stabilization. [1] (10.1177/2325967118822452)
  • [L4] At a minimum of 2 years successful correction of scapular anatomy can improve static subluxation and restore subjective and objective shoulder stability. [2] (10.1016/j.jseint.2025.06.018)
  • [L4] The thresholds defined in this study can provide a guideline for interpreting patient outcomes following arthroscopic stabilization for posterior shoulder instability, allowing for earlier detection of recurrent posterior instability. [3] (10.1016/j.jseint.2025.08.006)
  • [L1] The early and midterm results of arthroscopic stabilization of the shoulder for posterior instability are promising. [4] (10.1016/j.arthro.2014.11.009)
  • [L5] Recurrent posterior shoulder instability is an uncommon condition often unrecognized, leading to incorrect diagnoses and delays. [5] (10.5435/00124635-200608000-00004)
  • [L4] Arthroscopic management of posterior-inferior shoulder instability has a successful track record and minimal complication profile. [6] (10.1016/j.arthro.2018.06.057)
  • [L5] Over the past several centuries, a number of procedures have been developed to address posterior shoulder instability, particularly as this pathology has become better understood. [7] (10.1016/j.jses.2019.08.008)
  • [L4] The iliac posterior shoulder bone-block is effective in managing instances of involuntary posterior shoulder instability, showing satisfactory results in terms of non-recurrence, pain relief, and function recovery. [8] (10.1016/j.otsr.2008.09.008)
  • [L3] Coracoid morphology differs significantly in patients undergoing posterior shoulder stabilization when compared to patients undergoing surgery for anterior instability or a comparison cohort. [9] (10.1177/03635465261421534)
  • [L1] Posterior bone block augmentation for recurrent posterior shoulder instability does not reliably yield substantial improvements in patient-reported outcomes, and complications are frequently observed. [10] (10.1016/j.arthro.2021.07.018)
  • [L4] Arthroscopic stabilization of posterior shoulder instability resulted in good outcomes with high patient satisfaction and low rates of recurrent instability, revisions, and residual pain. [11] (10.1016/j.jse.2024.04.006)
  • [L5] The article outlines the evolution of diagnostic acumen and treatment algorithms for posterior shoulder instability, emphasizing that arthroscopic surgical techniques have facilitated successful management of both recurrent posterior subluxations and frank posterior instability. [12] (10.1016/j.csm.2008.06.001)
  • [L4] Overall, male patients were significantly more likely to have anterior shoulder instability, while female patients were significantly more likely to have posterior shoulder instability. [13] (10.1177/23259671211006437)
  • [L4] There is a moderate rate of recurrence following posterior bone block for posterior shoulder instability. [14] (10.1016/j.jse.2021.06.013)
  • [L4] There is a high rate of return to sport after arthroscopic posterior shoulder stabilization, ranging from 4.3 to 8.6 months after surgery. [15] (10.1016/j.asmr.2020.08.007)
  • [L5] Advances in understanding posterior glenohumeral anatomy and biomechanics have improved comprehension of this challenging disorder and helped guide clinical decision making, including delineation of surgical indications and contraindications, nonsurgical treatment solutions, and appropriate stabilization and bone augmentation techniques. [17] (10.5435/jaaos-d-15-00631)
  • [L4] [18] (10.1016/j.jse.2012.11.019)
  • [L5] [19] (10.1530/eor-24-0025)
  • [L4] Overall, reduction was achieved via open means in the majority of shoulders, and delayed diagnosis is common. [20] (10.1302/0301-620x.101b1.bjj-2018-0984.r1)
  • [L3] Regardless of the radiologist interpretation of MRA, patients with symptomatic posterior shoulder instability do benefit from arthroscopic stabilization surgery. [21] (10.1016/j.xrrt.2026.100675)
  • [L4] [25] (10.1016/j.arthro.2011.06.015)
  • [L4] [27] (10.1007/s00167-010-1293-z)
  • [L4] Participants with microtraumatic posterior shoulder instability demonstrated significant improvements in patient-reported outcome measures and high rates of return to sport following a 24-week conservative rehabilitation program. [28] (10.1016/j.jseint.2024.09.016)
  • [L5] In patients with suspected posterior glenohumeral instability, imaging of the affected shoulder can show abnormalities of the bone, labrum, and joint capsule. [29] (10.2214/ajr.07.3849)
  • [L1] Both glenoid osteotomy and bone block procedures can successfully address symptomatic posterior shoulder instability. [30] (10.1016/j.xrrt.2025.03.004)
  • [L5] [31] (10.1530/eor-22-0009)
  • [L4] The systematic review demonstrated high rates of return to sport and relatively high rates of return to preinjury level of sport among all athletes who underwent surgical treatment for posterior shoulder instability. [32] (10.1016/j.jseint.2020.08.002)
  • [L5] [34] (10.1016/j.xrrt.2026.100710)
  • [L4] [52] (10.1177/23259671241312651)
  • [L5] Glenoid as well as acromial malalignment alone is associated with pathological posterior translation of the humeral head across the glenoid upon simulated active elevation. [54] (10.1177/03635465251411312)
  • [L5] Glenohumeral contact patterns highly depend on the amount of glenoid retroversion and posterior labral and/or bony glenoid integrity. [55] (10.1177/03635465251365497)
  • [L5] The PPS injury produces alterations in GH kinematics with implications for GH joint instability, increased GH joint loading, and potential joint damage. [56] (10.1016/j.jse.2024.12.023)
  • [L5] The acromion acts as a mechanical buttress to posterior humeral head displacement. [57] (10.1016/j.jse.2024.09.047)
  • [L5] The long head of the biceps has a pertinent biomechanical role in glenohumeral stability regardless of the condition of the superior labrum. [58] (10.1016/j.arthro.2025.05.022)
  • [L4] Bilateral posterior shoulder dislocations with reverse Hill-Sachs lesions are uncommon and prone to misdiagnosis; early recognition and tailored treatment strategies are essential for satisfactory functional outcomes. [59] (10.1186/s12891-026-09537-y)
  • [L3] Patients with C1 shoulders differ from healthy controls regarding osseous scapular and humeral morphology, scapulothoracic orientation, and shoulder girdle muscle distribution. [60] (10.1177/03635465241233706)
  • [L4] NHL team physicians strongly favor nonoperative management in-season for initial posterior instability events of the shoulder. [61] (10.1177/23259671261440208)
  • [L5] [62] (10.5435/jaaos-d-19-00535)
  • [L4] [63] (10.1186/s13018-025-05546-0)
  • [L4] [64] (10.1016/j.jisako.2025.101015)
  • [L5] [65] (10.1136/jisakos-2019-000413)
  • [L4] [66] (10.1186/s12891-025-08886-4)
  • [L4] [68] (10.1016/j.xrrt.2023.08.007)
  • [L4] Arthroscopic posterior Bankart repair for traumatic posterior shoulder instability in collision sports athletes resulted in a low recurrence rate, high return-to-play rate, and clinically meaningful improvement. [69] (10.1016/j.asmr.2025.101264)
  • [L4] However, the high rate of persistent instability should be considered when making treatment decisions. [72] (10.1177/17585732211056053)

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