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胸大肌修复

Updated Sep 2026
Illustration: 胸大肌修复

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 医生会根据您的具体伤情制定治疗方案。胸大肌是负责将手臂拉向身体对侧的大型胸部肌肉。当该肌肉从骨骼上撕裂或沿其长度方向断裂时,手术意味着将撕裂的末端缝合回其解剖位置。患者通常由其全科医生(GP)转诊至我们的诊所;如果物理治疗师建议您就诊,您仍需获得全科医生的转诊才能符合 Medicare 报销资格。我们将通过病史采集、体格检查以及在必要时进行的影像学扫描来确认撕裂情况。

此手术通常推荐给有完全性撕裂且因工作或运动需要恢复完全力量的活跃人群。与不处理撕裂相比,修复手术能带来更好的力量恢复,并能恢复胸部的自然形态。对于撕裂时间较长且无法直接缝合末端的病例,我们可以使用供体组织重建肌腱。修复手术在受伤后不久进行效果最好,但较晚修复仍然可行。大多数人可恢复工作,平均时间为 1.6 个月;在一项针对现役军人的研究中,94% 的人恢复了完全职责。我们将与您详细讨论这些数据,以便您共同决定最适合您目标的治疗方案。

手术前

一旦您的手术预约成功,我们将为您提供明确的指示以供遵循。您需要在手术前七小时停止进食和饮水。我们要求七小时而非六小时,以便在手术室手术列表提前完成时,将您的手术时间提前。某些药物需要在手术前暂停使用,我们将告知您具体适用哪些药物。请携带您正在服用的所有药物清单,包括药片、滴剂和天然疗法产品。请安排他人在术后驾车送您回家,因为您将无法自行驾驶。请穿着宽松、舒适且易于穿脱的衣物。如果您有其他健康状况,可能需要进行血液检查或接受麻醉医生的评估。大多数人无需进行这两项检查。

手术当日

您将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。随后,您将与麻醉师会面,麻醉师负责在手术期间让您进入睡眠状态并保持舒适。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;麻醉师将在手术当日就此与您讨论。之后,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,直至麻醉作用消退。一旦您的生命体征平稳,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

手术的目的是将撕裂的肌腱重新缝合到上臂骨骼上,使肌肉能够正常牵拉。外科医生会在您的前胸和肩部前方切开皮肤,以暴露撕裂的断端。随后,使用牢固的缝线将肌腱缝合回撕裂处,使其在愈合期间牢固地附着于骨骼。

如果撕裂发生时间较长,且肌腱断端已发生回缩,则可能无法直接对合。在这种情况下,外科医生可使用供体组织重建肌腱,或使用经过处理的组织片加固修复。具体选择取决于术中外科医生的发现。

切口以缝线关闭,并覆盖敷料。

术后

苏醒后,您的手臂将置于简单的三角巾中以增加舒适度。进行锻炼和清洗时需取下三角巾。医疗团队会告知您是当天回家还是需在医院留观一晚。护士会通过镇痛措施确保您的舒适,切口周围区域可能会在几天内感到疼痛。请安排有人在最初24小时内陪伴您。您可以根据自己的感觉在屋内活动,同时保持手臂置于三角巾中。敷料保留约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,您的胸部和肩部会感到疼痛和肿胀。止痛药可保持舒适,疼痛感会在第一周左右逐渐消退。让手臂得到支撑并休息会有帮助,冰敷可缓解肿胀。

您的手臂会佩戴一个简单的吊带以提供舒适感。进行锻炼和清洗时需取下吊带。物理治疗师最初会指导您进行轻柔的活动,随着修复部位的愈合,随后进行强化训练。您可以按照自身感觉在屋内活动,但一段时间内需要他人协助完成较重的任务。早期仰卧并垫高身体通常更舒适。

随着肿胀消退和活动能力恢复,日常任务会变得更加容易。一旦您的外科医生对修复部位的愈合情况感到满意,您将逐渐恢复提重物、工作和运动。驾驶恢复较晚,需满足以下条件:已脱离吊带,能用双手握住方向盘并在紧急制动时做出反应,且已停用强效止痛药。我们的指南 上肢手术后驾驶 对此有详细说明。

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。

有时修复可能无法维持,肌腱会再次撕裂。您可能会感到胸部突然发出“啪”的一声或感觉无力,并在推或拉时力量减弱。如果发生这种情况,请立即告知您的外科医生。

伤口周围可能发生感染。请留意从切口向外扩散的红肿、局部发热、疼痛加剧或伤口渗出液体。您可能会感到发热或整体不适。如果您注意到这些迹象,请致电诊所,因为感染需要及时治疗。

手术后,伤口下方可能会积聚血液。这看起来像切口附近一个坚硬且触痛的肿胀,并可能感觉紧绷或搏动。请在复查时提及此情况,或者如果肿胀迅速增大或疼痛剧烈,请提前致电诊所。

即使修复愈合良好,胸部的形状在术后也可能看起来不完全相同。有些人可能会注意到,当他们在镜子前观察或收缩肌肉时,肌肉轮廓略有差异。这通常是一个美观问题,而非疼痛问题,因此如果您对此感到担忧,请在下次复查时提出。

术后数周,肩部可能会变得僵硬和疼痛,这种情况称为冻结肩。您可能会发现难以向上、向后或向侧面伸展,僵硬感还可能干扰您的睡眠。请让您的物理治疗师或外科医生知晓,因为早期治疗有助于恢复活动度。

本页上的并发症表格列出了典型发生率,如果您想了解具体细节,请参阅该表格。

何时联系我们

相信您的直觉。如果感觉有任何不对劲,请致电我们。如果您出现发烧,或伤口变得更红、更热、更痛,或有液体开始从伤口渗出,请致电诊所。如果切口附近的肿胀迅速增大或非常疼痛,请致电我们。如果您出现突发的严重胸痛或手臂疼痛、小腿肿胀或疼痛,或呼吸急促,请前往急诊。如果您的手臂麻木、变色,或无法活动,请前往急诊。如果您感到胸部突然“啪”的一声并伴有力量丧失,请立即致电我们。


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 proximal humerus comprises four main parts: the humeral head, greater tuberosity, lesser tuberosity, and humeral shaft [3].
  • The articular head of the humerus is spherical with a diameter of 37 to 57 mm [3].
  • The most superior portion of the articular surface of the humeral head averages 8 mm above the greater tuberosity [3].
  • Humeral version averages 29.8 degrees, with a range of 10 to 55 degrees [3].
  • The humeral head is inclined approximately 130 degrees with respect to the humeral shaft [3].
  • The neck-shaft angle measures an average of 135 degrees [4].
  • The humeral head is retroverted an average of 30 degrees [4].
  • The humeral head averages 19° of retroversion and 41° of inclination (neck-shaft angle) [6].
  • The bicipital groove lies between the greater and lesser tuberosities and serves as a pathway for the long head of the biceps [3].
  • The distal aspect of the bicipital groove is internally rotated with respect to the proximal portion [3].
  • The anatomic neck of the proximal humerus is located at the junction of the articular surface and the tuberosities [3].
  • The surgical neck represents an indistinct region below the tuberosities but above the humeral shaft [3].
  • The greater tuberosity is located in a posterior-superior location with respect to the humeral shaft [3].
  • The lesser tuberosity is located on the anterior aspect of the proximal humerus [3].
  • The glenoid is a convex structure of shallow depth shaped like an inverted pear [3].
  • The glenoid cavity is a shallow socket, approximately one third the size of the humeral head [4].
  • The subchondral bone of the glenoid is relatively flat, with articular concavity augmented by cartilage and a circumferential labrum [6].
  • The glenoid averages 5° of retroversion in relation to the axis of the scapular body [6].
  • The scapula is attached to the axial skeleton by the acromioclavicular and sternoclavicular joints [5].
  • The scapula is separated from the chest wall by thin gliding fibro-fatty tissue, allowing smooth excursion over the chest wall [5].
  • The basic part of the scapula is the body, which is triangular when viewed anteroposteriorly with its base situated superiorly and its apex inferiorly [5].
  • The glenoid is connected with the flat body of the scapula by the scapular neck [5].
  • The coracoid process curves forwards from the superior surface of the scapular neck [5].
  • The scapular spine ends in a flattened bony process, the acromion, which curves forwards [5].
  • The highest concentration of bony mass in the scapula is found in the glenoid, the scapular neck, and the lateral border of the scapular body [5].
  • Two bony pillars transmit compressive forces from the glenoid fossa: the lateral pillar and the spinal pillar [5].
  • The lateral pillar connects the inferior border of the glenoid with the inferior angle [5].
  • The spinal pillar arises from the central part of the glenoid and continues medially to become part of the base of the scapular spine [5].
  • The weakest bone in the scapula is located primarily in the central part of the biomechanical body, specifically in the infraspinous fossa [5].
  • The weakest area of the circumference of the biomechanical body of the scapula is the spinomedial angle [5].
  • The clavicle is the first bone to ossify, occurring in the fifth week of gestation [6].
  • The clavicle is the only long bone to ossify by intramembranous ossification [6].
  • The medial (sternal) epiphysis of the clavicle is the last ossification center to fuse, at age 20 to 25 years [6].
  • Ossification of the scapular body begins at the eighth week of gestation [6].
  • The acromion has three ossification centers: the metacromion, mesoacromion, and preacromion [6].
  • Failure of fusion of the acromial ossification centers results in os acromiale [6].
  • The proximal humerus has three centers of ossification: the humeral head, greater tuberosity, and lesser tuberosity [6].
  • The humeral head ossification center appears at 4 to 6 months [6].
  • The greater tuberosity ossification center appears at 1 to 3 years [6].
  • The lesser tuberosity ossification center appears at 3 to 5 years [6].
  • The proximal humeral ossification centers fuse to the shaft at age 17 to 20 years [6].

Muscular Anatomy & Biomechanics

  • The pectoralis major inserts on the humeral shaft and displaces it medially following proximal humerus fracture [3].
  • The subscapularis inserts on the lesser tuberosity and causes medial displacement following proximal humerus fracture [3].
  • The supraspinatus and infraspinatus insert on the greater tuberosity and cause superior and posterior displacement following proximal humerus fracture [3].
  • The deltoid and rotator cuff counterbalance moderate loads transferred to the shoulder girdle [3].
  • The capsulolabral and bone structures counterbalance large loads transferred to the shoulder girdle [3].
  • The rotator cuff consists of the subscapularis, supraspinatus, infraspinatus, and teres minor muscles [4].
  • The teres major is not a rotator cuff muscle [4].
  • The rotator cuff muscles serve as depressors of the humeral head to allow the deltoid to efficiently abduct the humerus [4].
  • The infraspinatus and teres minor are external rotators of the humerus [4].
  • The subscapularis is an internal rotator of the humerus [4].
  • The pectoralis major muscle causes predictable displacement of fractures around the proximal humerus [4].
  • Normal shoulder motion is approximately two-thirds glenohumeral and one-third scapulothoracic [6].
  • The glenohumeral joint stability depends on the capsule, ligament, and muscle [4].
  • A redundant capsule allows for motion in the glenohumeral joint [4].

Vascular Anatomy

  • The proximal humerus receives its blood supply from the anterior and posterior humeral circumflex branches from the third division of the axillary artery [3].
  • The posterior humeral circumflex artery travels with the axillary nerve and enters the quadrilateral space posteriorly [3].
  • The anterior humeral circumflex artery arises from the axillary artery at the inferior border of the subscapularis [3].
  • The anterior humeral circumflex artery provides vascular inflow to the humeral head by way of its terminal anterolateral branch, known as the artery of Laing or arcuate artery [3].
  • The ascending branch of the anterior humeral circumflex artery courses parallel to the lateral aspect of the long head biceps tendon [3].
  • The ascending branch of the anterior humeral circumflex artery enters the humeral head at the interface of the bicipital groove and greater tuberosity [3].
  • Injury to the arcuate artery may result in osteonecrosis of the humeral head [3].
  • Additional extraosseous collateral branches can permit humeral head perfusion despite complete ligation of the arcuate artery [3].
  • 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 [4].
  • The anterolateral ascending branch of the anterior humeral circumflex artery provides the primary blood supply to the humeral head [6].
  • The terminal intraosseous portion of the anterior humeral circumflex artery enters at the proximal aspect of the intertubercular groove as the arcuate artery [6].
  • Fractures of the anatomic neck have a poor prognosis because of complete disruption of the blood supply to the head [4].
  • Surgical neck fractures are common, and with these, the blood supply to the head is preserved [4].
  • 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 subsequent development of avascular necrosis [3].

Ligaments & Soft Tissue Structures

  • The acromion, coracoacromial ligament, and coracoid process form the coracoacromial arch [3].
  • The coracoacromial arch is a rigid bony-ligamentous structure that imparts stability to the shoulder girdle [3].
  • The rotator cuff, subacromial bursa, and subdeltoid bursa pass underneath the coracoacromial arch [3].
  • The subscapular bursa lies between the subscapularis tendon and the neck of the scapula [7].
  • The subscapular bursa communicates with the joint cavity between the superior and middle glenohumeral ligaments [7].
  • The subscapular bursa protects the tendon of the subscapularis at the point where it passes under the base of the coracoid process and over the neck of the scapula [7].
  • The subscapular bursa is linked to the coracoid process by a suspensory ligament [7].
  • In 28% of specimens dissected by Colas and colleagues, the subscapular bursae merged with the subcoracoid bursae, forming a unique wide bursa [7].
  • The subscapular bursa often houses loose bodies in the shoulder [7].
  • The subscapular bursa is a region in which synovitis of the shoulder may be most intense [7].
  • The rotator interval is defined medially by the base of the coracoid, superiorly by the supraspinatus tendon, and inferiorly by the subscapularis tendon [6].
  • The rotator interval contains the coracohumeral ligament, the superior glenohumeral ligament, and the intra-articular portion of the long head of the biceps tendon [6].
  • Laxity of the rotator interval results in inferior laxity, known as the sulcus sign [6].
  • Contracture of the rotator interval is seen with adhesive capsulitis [6].
  • The coracohumeral ligament restricts external rotation in adduction [6].
  • The coracohumeral ligament is a static restraint to inferior and posterior translation in adduction and external rotation [6].
  • The superior glenohumeral ligament is a primary static restraint against anterior translation with the arm at the side [6].
  • The superior glenohumeral ligament, along with the coracohumeral ligament, forms a pulley that provides restraint against medial subluxation of the long head of the biceps tendon [6].
  • The middle glenohumeral ligament is a primary static restraint against anterior translation with the arm in external rotation and 45° of abduction [6].
  • The anterior band of the inferior glenohumeral ligament is a primary static restraint against anterior-inferior dislocation of the glenohumeral joint in 90° of abduction and external rotation [6].
  • The posterior band of the inferior glenohumeral ligament is a primary static restraint against posterior-inferior translation in internal rotation and adduction [6].
  • The superior transverse scapular ligament arises from the medial base of the coracoid overlying the suprascapular notch [6].
  • The suprascapular artery runs superior to the superior transverse scapular ligament, while the nerve runs deep to it [6].
  • Entrapment of the suprascapular nerve at the superior transverse scapular ligament causes denervation of both the supraspinatus and the infraspinatus [6].
  • The spinoglenoid ligament overlies the suprascapular nerve at the spinoglenoid notch [6].
  • Entrapment, traction, or compression of the suprascapular nerve at the spinoglenoid notch causes denervation of the infraspinatus [6].
  • The glenohumeral labrum provides concavity and up to 50% of marginal glenoid socket depth [6].
  • The superior shoulder suspensory complex provides a stable connection between the scapula and the axial skeleton [6].
  • The superior shoulder suspensory complex is composed of the glenoid, coracoid process, coracoclavicular ligaments, distal clavicle, acromioclavicular joint, and acromion [6].
  • The superior strut of the superior shoulder suspensory complex comprises the middle clavicle [6].
  • The inferior strut of the superior shoulder suspensory complex comprises the lateral scapular border and spine of the scapula [6].
  • The sternoclavicular joint is the only true diarthrodial articulation between the upper appendicular and axial skeletons [6].
  • The posterior sternoclavicular joint capsule and ligaments are the primary stabilizers to anterior and posterior translation of the medial clavicle [6].
  • The acromioclavicular joint is a small diarthrodial joint with an interposed fibrocartilaginous disk [6].
  • The superior and posterior acromioclavicular ligaments are the primary stabilizers to anterior and posterior translation of the clavicle [6].
  • The coracoclavicular ligaments are the primary stabilizers to superior translation of the distal clavicle [6].
  • The conoid ligament is the medial coracoclavicular ligament [6].
  • The trapezoid ligament is the lateral coracoclavicular ligament [6].
  • The coracobrachialis muscle and the short head of the biceps tendon originate from the coracoid process [6].
  • The pectoralis minor muscle inserts onto the medial coracoid process [6].
  • A soft tissue sheath consistently covers the long head of the biceps tendon to the level of the proximal margin of the pectoralis major tendon [7].
  • The fibro-osseous bicipital tunnel consists of three distinct anatomic zones [7].
  • Zone 1 of the bicipital tunnel represents the traditional bony bicipital groove beginning at the articular margin and ending at the distal margin of the subscapularis tendon [7].
  • Zone 2 of the bicipital tunnel extends from the distal margin of the subscapularis tendon to the proximal margin of the pectoralis major tendon [7].
  • Zone 3 of the bicipital tunnel is distal to the proximal margin of the pectoralis major tendon and represents the subpectoral region [7].
  • The brachial plexus and axillary artery are anterior to the coracoid process of the scapula and humeral head [4].
  • Nerves innervating muscles around the shoulder include the axillary, suprascapular, subscapular, and musculocutaneous nerves [4].
  • The anterior compartment of the arm contains the biceps brachii, coracobrachialis, and brachialis muscles [4].
  • The neurovascular bundle courses along the medial border of the biceps with the brachial artery and vein and the median, musculocutaneous, and ulnar nerves [4].
  • The posterior compartment of the arm contains the triceps brachii muscle and the radial nerve [4].
  • The humeral shaft extends from the level of the insertion of the pectoralis major muscle proximally to the supracondylar ridge distally [4].
  • The upper portion of the humeral shaft is cylindrical and becomes more flattened in an anteroposterior direction as it proceeds distally [4].
  • Medial and lateral intermuscular septae divide the arm into anterior and posterior compartments [4].

Investigations

Plain Radiography

  • The purpose of shoulder imaging 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 [2].
  • Standardized plain films are almost always sufficient to garner the information needed for shoulder care [2].
  • The first key radiographic view is the anteroposterior (AP) view taken in the plane of the scapula such that the x-ray beam passes through the glenohumeral joint [2].
  • The AP view in the plane of the scapula shows the superoinferior position of the humeral head relative to the glenoid, the presence of osteophytes on the humeral head and glenoid, narrowing of the joint space, and the degree of medial displacement of the humerus in relation to the lateral acromial line [2].
  • The AP view in the plane of the scapula also shows the quality of the humeral and glenoid bone, the presence of loose bodies, and whether there is humeral head collapse or deformity [2].
  • 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 [2].
  • The axillary view is oriented so that both the spinoglenoid notch and the scapular neck are visible [2].
  • The axillary view demonstrates a different perspective of humeral anatomy, the amount of glenoid bone, the shape of the glenoid, its version in relation to the plane of the scapula, and the relationship of the humeral head to the glenoid fossa [2].
  • The axillary view is referred to as the “truth view” because it demonstrates glenohumeral relationships in the functional position of elevation [2].
  • 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 [2].
  • When taken properly, standardized anteroposterior and axillary views indicate the thickness of the cartilage space between the humerus and the glenoid, relative positions of the humeral head and glenoid, presence of osteophytes, degree of osteopenia, and extent of bony deformity and erosion [2].
  • Joint space narrowing is most evident on the axillary truth view as opposed to images made with the arm at the side [2].
  • The standardized axillary view enables the demonstration of posterior subluxation or “functional decentering” that is not evident in images taken with the arm at the side [2].
  • The degree of posterior subluxation can be measured as the position of the center of the humeral head in relation to the plane of the scapula [2].
  • The degree of posterior subluxation can be measured as the position of the center of the humeral head in relation to the glenoid face [2].
  • The degree of posterior subluxation can be measured as the point of contact of the humeral articular surface on the glenoid articular surface [2].
  • 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 [2].
  • Malcentering of the joint reaction force leads to posterior instability, posterior glenoid wear, and “rocking horse” loosening of prosthetic glenoid components [2].
  • At least two X-ray views should be obtained for shoulder imaging: 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 [11].

Computed Tomography

  • CT scans may offer a few degrees of increased precision in the measurement of glenoid version [2].
  • The precision offered by CT scans for measuring glenoid version does not improve the quality of the surgery or the clinical outcome [2].
  • There is information that can be gathered from properly taken plain films that cannot be obtained from CT scans [2].
  • Computed tomography (CT) is helpful for planning fracture surgery and shoulder joint replacement [11].
  • Three-dimensional reconstructions based on CT scans of the arthritic shoulder are a currently discussed question regarding whether they help surgeons achieve better outcomes compared to imaging consisting only of two standardized plain films [13].

Magnetic Resonance Imaging

  • Magnetic resonance imaging (MRI) is useful to identify osteonecrosis of the humeral head or a bone tumour [11].
  • MRI can identify labral tears and rotator cuff tears [11].
  • The accuracy of MRI for identifying labral tears and rotator cuff tears is enhanced by combining the scan with arthrography [11].

Ultrasonography

  • Ultrasonography is a simple and accurate test for identifying rotator cuff tears and calcific tendinitis [11].
  • Ultrasonography can be useful in guiding injections or barbotage (aspirating calcific deposits in the rotator cuff) [11].
  • The most commonly performed joint examination using ultrasonography is the shoulder examination [9].
  • The accuracy of rotator cuff ultrasonography depends on the skill of the scanner operator and an awareness of pitfalls that are encountered [9].

General Imaging Principles

  • The diagnosis of a stiff shoulder depends on awareness of the problem, with history and physical examination being paramount and ancillary studies helpful in certain circumstances [1].
  • 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 [2].
  • Proper radiographic technique is as important as proper surgical technique to achieve the desired outcome [2].
  • 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 [13].
  • Critical relationships, such as the degree of centering of the humeral head, change with the position of the arm [13].
  • Shoulder pathology may be found in a large number of different bones and soft tissues [13].
  • Overlying and superimposed structures as well as metallic implants may complicate imaging the structures of interest [13].
  • Surgeons need to develop a judicious approach to imaging that yields the information necessary to treat the patient while avoiding the tendency to "over-image" [13].

References

[1] Rockwood And Matsen S The Shoulder. Arthroscopic Management of Prearthritic and Arthritic Conditions of the Shoulder and the Postarthroplasty Shoulder > SUMMARY.

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

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

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

[5] Rockwood And Green S Fractures In Adults. 29: Principles of Nonunion and Bone Defect Treatment > Applied Anatomy Related to Scapular Fractures.

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

[7] Rockwood And Matsen S The Shoulder. Developmental Anatomy of the Shoulder and Anatomy of the Glenohumeral Joint > Bursae.

[9] Orthopaedic Knowledge Update Sports Medicine 6. Diagnostic Ultrasonography and Ultrasonography-­Guided Procedures > Annotated References.

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

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

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