屈肌腱修复 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 医生会根据您的具体损伤情况制定治疗方案。患者通常由全科医生(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,方有资格享受 Medicare 报销。在您的预约就诊时,我们将采集病史、检查您的手部,并在必要时安排影像学检查,以明确损伤情况。

屈肌腱修复术是指缝合手指或拇指中被切断的肌腱。这些肌腱负责弯曲手指,当其中一根被切断时,手指便无法自主弯曲。由于这属于急性损伤,可能会立即建议进行手术,而无需先尝试非手术治疗。被切断的肌腱无法自行恢复至完全强度,若不进行修复,手指很可能持续僵硬或无力。

手术的目的是使修复部位具备足够的强度,以便您尽早开始活动,从而有助于防止肌腱在其腱鞘内粘连。目标是恢复手指正常的活动范围和功能。

术前准备

屈肌腱修复术通常在受伤后尽快进行,因此无需过多准备。您的外科医生会告知您何时停止进食和饮水。我们要求禁食七小时,以便手术室手术排期提前时,您的手术可以提前进行。您可能需要在手术前暂停服用某些常规药物,您的外科医生会就具体药物及暂停时长给出确切指示。请携带一份您正在服用的所有药物的书面清单。术后请安排他人驾车送您回家,并在手术当天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接受麻醉科医生的评估,但大多数人无需进行。可能已安排X光、超声或MRI等影像学检查,以协助制定手术方案。

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。您将在该处见到麻醉师。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讨论。随后,您将被带至手术室进行手术。

您将在复苏区苏醒,护士会在此监测您的状况,直至麻醉消退。待您的生命体征稳定后,根据手术类型及您的恢复情况,您将被转入病房或直接回家。

手术内容

您的外科医生会在手指或手掌上切开,以到达撕裂的肌腱。找到肌腱的断裂端并将其重新对合。使用穿过肌腱核心的强力缝线进行缝合,并在修复部位的外缘周围加用细缝线。外层缝线为修复部位提供实际的强度。修复部位使用多股缝线,因为缝线股数越多,修复强度越高。

外科医生会小心地操作肌腱及其周围的精细结构,因为这些结构使肌腱在您弯曲手指时能够滑动。修复方式取决于肌腱上切口发生的位置。手指的某些区域比其他区域更难操作,所选技术反映了这一点。

肌腱修复完成后,用缝线闭合皮肤并敷上敷料。正如恢复部分所述,您将保留该敷料约10天。

整个过程的目标是进行足够牢固的修复,以便您能尽早开始活动手指,从而降低肌腱在其腱鞘内粘连的风险。

术后

您将在复苏区醒来,麻醉消退期间,护士会密切观察您的情况。您的手部将包扎敷料并佩戴夹板,以固定手指。在离开手术室之前,我们会与您商定镇痛方案,您随时可以要求追加镇痛。最初24小时内,应有人陪同您。一旦您感觉平稳,即可起身走动,我们将向您演示如何在活动过程中保护手部。医疗团队将告知您是当天回家还是住院一晚。敷料通常保留约10天;除非我们告知您,否则请勿提前拆除。我们将在复诊时为您更换或拆除敷料。

恢复

术后最初几天,您的手指会感到疼痛和肿胀,不适感通常在早期最为严重。规律服用止痛药、在坐着或休息时用枕头将手抬高、以及进行轻柔的活动,都有助于缓解症状。随着数周的过去,肿胀会逐渐消退。

您的手部将佩戴夹板以保护修复部位。术后手部治疗由 Extend Rehabilitation 的 Ruby Doolan 负责。Ruby 将指导您的锻炼,并根据需要为您制作夹板。您将尽早开始活动手指,因为轻柔的活动有助于防止肌腱在其腱鞘内粘连。起初,这些锻炼动作幅度很小,通常只是在治疗师设定的范围内轻微弯曲手指。这些锻炼与手术本身同样重要,因此严格按照指示进行至关重要。

在家中,您可以使用另一只手完成大多数日常任务。在治疗师允许之前,您需要保持夹板干燥,并避免用手术侧的手进行提举、抓握或搬运物品。起初睡眠可能会感到不适;将手放在枕头上休息通常会有所帮助。

随着活动能力的恢复,锻炼会逐渐进阶,一旦肿胀消退,您会发现日常任务变得更加容易。您的外科医生和 Ruby 会告知您修复部位何时足够牢固以进行每一个新的步骤,包括何时可以再次驾驶;我们关于上肢手术后驾驶的指南涵盖了适用的规则。

恢复情况因人而异,因此您的时间表可能有所不同。您的外科医生和治疗师将在整个过程中为您提供指导。

可能出现的问题

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。

修复后的肌腱有时会再次断裂。您可能会感到手指突然发出“啪”的一声或出现无力感,或者注意到在锻炼期间原本可以弯曲的手指再次无法自主弯曲。如果发生这种情况,请立即联系诊所,不要等到下一次复诊。

瘢痕组织可能在修复部位周围形成,导致肌腱粘连在其腱鞘内。手指可能只能弯曲到一定程度,或者在尝试活动时感觉僵硬和卡顿。有时仅通过康复治疗即可缓解。如果情况未改善,可通过一个小手术松解瘢痕组织并释放肌腱。请在复诊时告知任何未改善的僵硬情况。

感染并不常见,但需要迅速处理。请留意疼痛持续加剧而非缓解、伤口周围红肿扩散、局部发热、肿胀或伤口有液体渗出。腱鞘深部感染即使及时治疗,也可能导致手指僵硬,因此早期复诊至关重要。如有上述症状,请当天联系诊所;若无法联系到任何人,请前往急诊科。

部分手指在愈合后可能出现其他问题。手指弯曲时可能出现弹响或触发指现象,或者由于运动与其他手指联动,导致某根手指无法完全弯曲。小指的活动范围可能比其他手指小。如果您注意到弹响、卡顿或弯曲不协调,请在下次复诊时提出。

少数患者可能需要进一步的手术,无论是针对断裂的修复、瘢痕组织还是其他问题。如果这种情况发生,您的外科医生将解释相关手术内容。

如果您想了解具体数据,本页的并发症表格列出了典型的发病率。

何时联系我们

如果您出现发热,或伤口变得更红、更热、更肿,或开始渗出液体,请致电我们。如果疼痛持续加重而非缓解,请在当天致电我们。如果您出现突发剧烈疼痛、手指突然发出“啪”的一声后无法自行弯曲、小腿肿胀或疼痛,或呼吸困难,请立即前往急诊。如果您的手指失去感觉,或完全无法活动,也请立即前往急诊。如果您无法联系到诊所的任何人员,请前往急诊科。

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。屈肌腱修复值得额外阅读,因为它受控于一个严苛的权衡:阻止肌腱粘连的运动,恰恰也是可能导致修复处断裂的运动。该手术中的几乎每一项技术决策,都旨在为这两种失效模式之间争取空间。

权衡的量化

一项针对 569 例 II 区修复的荟萃分析,比较了术后早期主动运动与早期被动运动 [1]。早期 主动 运动组获得了更大的总主动活动度,这一结果决定了手指是否具备实用性 [1]。

同一项分析也揭示了其代价。在 使用双股核心缝线进行肌腱修复 的情况下,进行主动屈曲和伸张的组别观察到更高的断裂风险 [1]。

这一条件限定正是关键所在,且极易被忽视。早期主动运动本身并非固有危险,双股修复本身也并非固有薄弱。问题在于二者的组合。修复的强度与康复的激进程度是由两个人共同做出的单一决策,二者必须相匹配。如果您的手部治疗师和外科医生似乎正在就所使用的具体缝线进行沟通,这表明该系统正在按预期运行。

为何文献的可读性低于预期

一项针对 1,878 例指屈肌腱修复的系统性综述旨在比较双股与多股核心缝合技术,却未能明确证实其假设。这并非因为答案是否定的,而是由于结局指标和研究设计的报告方式存在巨大差异 [2]。

这是手外科中反复出现的问题。不同的论文采用不同的运动测量方法、不同的优良结果定义以及不同的随访时间点,这使得数据合并几乎毫无意义。当你看到自信地声称某种修复技术更优越时,基于合并证据的诚实立场是:目前的报告尚不够一致,无法得出定论。

夹板固定技术正在演进,而证据尚存滞后

相对运动矫形器(一种使修复后的手指与其相邻手指保持略微不同固定状态的夹板,从而使肌腱滑动得以分担)已改变了伸肌腱的康复方式。一项针对 529 例患者的系统综述得出结论:目前已有充分证据表明,该方法在 V–VI 区伸肌腱修复 中是 安全 的,但关于 屈肌腱 修复的证据仍然有限 [3]。

因此,在屈肌腱方面,这是一个有前景的方向,而非既定标准;因此,询问正在使用何种方案及其原因,是合理的。

技术发展的方向

一项研究接受了这一权衡并围绕其进行工程设计。一种使用外置减张缝线的II区技术,即在皮肤外设置临时缝线以分担修复处的负荷,显著增强了修复结构的强度,并允许早期主动活动,从而降低了断裂风险,但代价是在缝线拆除前限制了远端关节的活动度[4]。

这是对当前领域现状的公允总结:根本性的矛盾并未被消除,只是被更巧妙地管理了。

这对您的康复意味着什么

该疗法并非术后护理,而是手术的一部分。按时出席,并严格完成规定剂量(而非过量),是确保您处于上述权衡关系正确一侧的关键。在前六周内发生断裂通常意味着需要进行第二次手术,且其起始状况将比第一次手术时更差。

参考文献

[1] Xu H, Huang X, Guo Z, Zhou H, Jin H, Huang X. Outcome of surgical repair and rehabilitation of flexor tendon injuries in zone II of the hand: systematic review and meta-analysis. J Hand Surg Am. 2023;48(4):407.e1-407.e11. https://doi.org/10.1016/j.jhsa.2021.11.013

[2] Hardwicke JT, Tan JJ, Foster MA, Titley OG. A systematic review of 2-strand versus multistrand core suture techniques and functional outcome after digital flexor tendon repair. J Hand Surg Am. 2014;39(4):686-95.e2. https://doi.org/10.1016/j.jhsa.2013.12.037

[3] Shaw AV, Verma Y, Tucker S, Jain A, Furniss D. Relative motion orthoses for early active motion after finger extensor and flexor tendon repairs: a systematic review. J Hand Ther. 2023;36(2):332-46. https://doi.org/10.1016/j.jht.2023.02.011

[4] Suszynski TM, Coutinho D, Kaufmann RA. Flexor tendon repair in zone II augmented with an externalized detensioning suture: protected flexor tendon repair. J Hand Surg Am. 2023;48(10):1065.e1-1065.e4. https://doi.org/10.1016/j.jhsa.2023.01.018


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

  • Consistent, successful management of flexor tendon injuries relies on understanding the anatomy, characteristics and repair of tendons in the different zones, potential complications, rehabilitation protocols, recent advances in treatment, and future directions [1].
  • Future directions for flexor tendon injury management include tissue engineering and biologic modification of the repair site [1].
  • Flexor tendon repair in Zone II is a technically demanding procedure [2].
  • Outcomes for flexor tendon repair in Zone II have become more predictable and satisfying [2].
  • No gold standard has been determined for the optimal flexor tendon repair algorithm [3].
  • Flexor tendon repairs are usually chosen based on familiarity, popularity, and technical difficulty [3].
  • Zone I flexor tendon injuries traditionally have not yielded results as good as other flexor tendon injuries [5].
  • Full motion is rarely regained in Zone I flexor tendon injuries [5].
  • Good or excellent results are reported in only up to 67% of Zone I flexor tendon injury cases [5].
  • Functional outcomes for flexor tendon injuries remain unreliable despite improvements in surgical technique and rehabilitation [6].
  • Adhesion formation is the most common complication after flexor tendon injuries [6].
  • Joint contractures are the most common complication after flexor tendon injuries [6].
  • Tendon grafting is the treatment of choice for flexor tendon injuries in zones I and II when direct repair is not possible or delayed [7].
  • Secondary reconstruction remains an important and useful technique for complicated flexor tendon injuries [9].
  • Secondary reconstruction remains an important and useful technique for flexor tendon injuries that have failed primary repair [9].
  • Limited evidence currently exists for relative motion orthoses for early active motion after flexor tendon repairs in zones IV and VII [10].
  • Many of the principles of flexor tendon repair and rehabilitation can be applied to zones III–V [11].
  • Primary flexor tendon repair in the digital sheath area has become standard practice [12].
  • Current practice for primary flexor tendon repair involves a shift toward strong multistrand core sutures [12].
  • Current practice for primary flexor tendon repair involves a shift toward modified pulley preservation [12].
  • A modified protocol for primary flexor tendon repair in zones 1 and 2 utilizes a 6-strand core suture without circumferential suturing [16].
  • A modified protocol for primary flexor tendon repair in zones 1 and 2 utilizes selective pulley division [16].
  • A modified protocol for primary flexor tendon repair in zones 1 and 2 utilizes partial FDS resection to facilitate early active motion and improve outcomes [16].

Anatomy & Pathophysiology

General Principles

  • Consistent, successful management of flexor tendon injuries relies on understanding the anatomy, characteristics, and repair of tendons in the different zones [1].
  • An understanding of the biomechanics of the flexor tendon system is essential to proper evaluation and treatment of disorders of the upper extremity [48].
  • Flexor tendons function as cables transmitting forces to move and stabilize joints [48].
  • Recent developments in hand surgery have resulted from a better understanding of the dynamic anatomy and function of the hand [36].
  • The concept of functional rather than static anatomy is central to the study of the hand [36].

Hand Architecture

  • The hand is an organ designed to obtain information and an organ of execution [36].
  • The hand functions efficiently only if the proximal joints of the limb are stable and yet mobile [36].
  • The hand is located at the extremity of the upper limb, which functions as its vector [36].
  • The shoulder is the most mobile joint in the body and allows orientation of the upper limb as required [36].
  • The movements of the clavicle amplify those of the shoulder [36].
  • The elbow brings the hand closer to or moves it away from the body through flexion–extension movements [36].
  • The combined movements of the wrist and forearm place the hand in a position for grasping [36].
  • For gripping, the wrist is usually in flexion when close to the trunk and in extension when placed at a distance [36].
  • Forearm rotation (pronation–supination) plays an important role in bringing food to the mouth [36].
  • The hand’s blood and nerve supplies are continuous with those of the rest of the limb [36].
  • Some hand muscles, the extrinsic muscles, arise in the arm and forearm [36].
  • The open hand forms a balanced graceful oval in its longitudinal axis [36].
  • The proximal carpometacarpal half of the hand is flattened and presents two faces with unique anatomical and functional significance [36].
  • The posterior or dorsal aspect of the hand is convex [36].
  • The anterior, palmar or volar aspect of the hand is concave [36].
  • The distal half of the hand is separated into five digits which flex toward the palm [36].
  • Digits converge in closing by flexing and adducting, and diverge in opening by extending and abducting [36].
  • The thumb has a more proximal and lateral position, allowing movement inward and outward from the palm [36].
  • The four fingers are the distal extension of the carpometacarpal part of the hand [36].
  • The hinges of finger movements are at the thenar crease and at the transverse distal palmar crease [36].
  • When digits are fully extended and touching, their tips almost describe a regular curve with peripheral digits being the shortest [36].
  • When fingers are extended and separated, their tips lie on the circumference of a circle whose center is the head of the third metacarpal [36].
  • The hand consists of 19 bones, 17 articulations, and 19 muscles situated entirely within the hand [36].
  • The hand contains about the same number of tendons activated by the forearm muscles as it has intrinsic muscles [36].

Metacarpal and Longitudinal Arches

  • The metacarpal arch is endowed with a great deal of adaptability because of the mobility of the peripheral metacarpals [41].
  • The peripheral metacarpals form the sides of the cup or palmar gutter and can deepen the concavity as they approach each other [41].
  • The thumb metacarpal is independent and articulates with the trapezium [41].
  • The middle metacarpals are united to the carpus by the intrinsic interlocking encasement of the bones themselves [41].
  • The index metacarpal is the most firmly fixed [41].
  • The ring metacarpal is a transitional element to the fifth metacarpal and has about 10 degrees of mobility in flexion and extension [41].
  • The fifth metacarpal is semi-independent, articulates with the hamate, and is restrained on its radial side by its articulation with the base of the fourth metacarpal [41].
  • The fifth metacarpal has a range of flexion–extension of approximately 20 degrees [41].
  • The second to fifth metacarpals are bound together by various fibrous structures, the most distal of which is the deep transverse intermetacarpal ligament [41].
  • The deep transverse intermetacarpal ligament is better named the interglenoid ligament because it ties together the anterior glenoid ligaments of the metacarpophalangeal articulations [41].
  • The anterior glenoid ligaments of the metacarpophalangeal articulations are known as the volar plates [41].
  • The longitudinal arches are composed of a fixed portion, the carpometacarpal, and a mobile portion, the digits [41].
  • There is a longitudinal arch for every ray of the hand [41].
  • The longitudinal arches diverge distally according to their different obliquities, with the thumb ray being the most divergent [41].
  • The keystones of the longitudinal arches are the metacarpophalangeal articulations [41].
  • The thick anterior glenoid capsules, or volar plates, of the metacarpophalangeal joints prevent hyperextension [41].
  • The volar plates are interconnected by the transverse interglenoid ligament [41].
  • The stability of the metacarpophalangeal joints is essential to the support of the longitudinal arch as well as of the transverse metacarpal arch [41].
  • The five rays of the hand differ in mobility and independence, with considerable mobility for the thumb, much less for the fifth ray, and even less for the others [41].
  • The index ray has a certain degree of independence at the phalangeal level owing to the arrangement of its flexor and extensor muscles [41].

Intrinsic Muscles

  • There are seven interosseous muscles, four dorsal and three volar [38].
  • The dorsal interossei are abductors [38].
  • The anatomic axis of the hand coincides with the axis of the third metacarpal [38].
  • The dorsal interossei lie to the radial side of the index and middle fingers and the ulnar side of the middle and ring fingers [38].
  • The little finger is abducted by the abductor digiti quinti [38].
  • The volar interossei are adductors [38].
  • The volar interossei lie to the ulnar side of the index finger and the radial side of the ring and little fingers [38].
  • The middle finger has two dorsal interossei (abductors) and no volar interossei (adductors) because the central axis of the hand lies within it [38].
  • Each dorsal interosseous muscle, with the exception of the third, has two muscle heads [38].
  • The superficial head of the dorsal interosseous muscles arises most dorsally from the shaft of the contiguous metacarpals [38].
  • The superficial head inserts deeply by a medial tendon onto the lateral tubercle of the base of the proximal phalanx [38].
  • The superficial head abducts and weakly flexes the proximal phalanx [38].
  • The superficial head has no direct effect on the middle or distal phalanges [38].
  • The deep head of each dorsal interosseous muscle forms a lateral tendon, or lateral band, at the level of the MP joint [38].
  • The deep head flexes and weakly abducts the proximal phalanx while extending the middle and distal phalanges [38].
  • At the level of the middle of the proximal phalanx, transverse fibers arch dorsally from each lateral band to join each other over the dorsum of the finger [38].
  • Transverse fibers flex the proximal phalanx [38].
  • Oblique fibers (spiral fibers) from the lateral bands sweep over the distal third of the proximal phalanx to insert onto the lateral tubercles at the base of the middle phalanx [38].
  • The oblique fibers extend the middle phalanx (PIP joint) [38].
  • The lateral bands are joined by the lateral slips of the extensor tendon to form the conjoined lateral band [38].
  • The two conjoined lateral bands to each finger unite at the distal third of the middle phalanx to form the terminal tendon [38].
  • The terminal tendon inserts at the base of the distal phalanx to extend it [38].
  • The flexor digiti quinti brevis is structurally and functionally similar to the deep head of the dorsal interossei [38].
  • The flexor digiti quinti brevis forms the ulnar lateral band of the little finger [38].
  • The three volar interossei arise from adjacent surfaces of contiguous metacarpal shafts [38].
  • Each volar interosseous muscle has only one muscle head [38].
  • None of the volar interossei insert onto the proximal phalanx [38].
  • The volar interossei form the ulnar lateral band of the index finger and the radial lateral band of the ring and little fingers [38].
  • The volar interossei send oblique or spiral fibers that insert onto the base of the middle phalanx at its lateral tubercle [38].
  • The abductor digiti quinti and flexor digiti quinti brevis are similar in both structure and function to the superficial and deep heads of the dorsal interossei, respectively [38].
  • The abductor digiti quinti and flexor digiti quinti brevis arise from the fifth metacarpal [38].
  • The abductor digiti quinti inserts onto the ulnar lateral tubercle at the base of the proximal phalanx of the little finger [38].
  • The flexor digiti quinti forms the ulnar lateral band [38].
  • The opponens digiti quinti lies deepest among the hypothenar muscles [38].
  • The opponens digiti quinti arises from the pisohamate ligament and the hook of the hamate [38].
  • The opponens digiti quinti inserts onto the ulnar side of the diaphysis of the fifth metacarpal [38].
  • The opponens digiti quinti flexes and supinates the fifth metacarpal [38].

Cutaneous Units

  • There are functional cutaneous units in the hand similar to those described in the face [37].
  • One dorsal cutaneous unit extends from the wrist to the proximal interphalangeal joints of the fingers and the interphalangeal joint of the thumb [37].
  • The dorsal covering of the interphalangeal articulations of the digits forms a unique cutaneous unit characterized by a considerable excess of skin when the digits are in extension [37].
  • The fine tight skin of the dorsal aspect of the middle phalanx forms another cutaneous unit [37].
  • The dorsal integument of the distal phalanx is very special because of the nail bed with its matrix [37].
  • The palm forms a cutaneous unit extending from the distal transverse crease of the wrist up to the transverse crease at the base of the digits [37].
  • The palmar integument may be subdivided into two separate zones by the oppositional crease of the thumb [37].
  • The oppositional crease of the thumb constitutes the oblique axis of the hand [37].
  • The skin of the radial portion of the palm covers the thenar eminence and the external part of the palm [37].
  • The radial portion of the palmar skin is relatively well vascularized and is the mobile portion [37].
  • The skin of the ulnar and distal portion covers the hypothenar eminence where the skin has poor mobility [37].
  • The distal part of the palm beyond the transverse distal palmar crease is a true hinge just at the level of the metacarpophalangeal articulations [37].
  • The central triangular part of the palm has skin that is fixed and poorly vascularized [37].
  • The central triangular part of the palm covers almost directly the superficial palmar aponeurosis, which inserts into it [37].
  • The integument of the palmar face of the digits may be subdivided into phalangeal units separated by digital flexion folds [37].
  • There are three digital flexion folds for the digits and two for the thumb [37].
  • When a digit is completely flexed, the integument of adjacent phalanges comes into contact in the zones of the flexion creases [37].
  • Areas of cutaneous contact in the flexed digits are in the form of a diamond [37].
  • The sides of the diamond-shaped cutaneous contact areas do not undergo variations in length during movements of flexion and extension [37].
  • Incisions made along the lines of the diamond-shaped cutaneous contact areas present a minimal chance of retraction [37].
  • The web spaces are formed from the union of two nonsymmetrical cutaneous surfaces [37].
  • The dorsal slope of the web space has a gradual incline and its supple skin is not adherent to the subjacent region [37].
  • The palmar surface of the web space is flat and precipitously interrupted [37].
  • The palmar skin of the web space is densely adherent to the commissural skeleton [37].
  • The commissural skeleton is formed by the interdigital palmar (natatory) ligament between the fingers [37].
  • The commissural skeleton is formed by the distal transverse ligament at the level of the thumb web [37].
  • The distal transverse ligament at the level of the thumb web is by far the deepest and the most mobile [37].

Vascular Anatomy

  • The arteries of the thumb vary in both size and number, making surgical reconstruction delicate [42].
  • The layout of the palmar arteries of the thumb is the result of innumerable variations regarding origin, transit, connections, and size [42].
  • In anatomical studies, only 15% of dissections of the palmar arteries of the thumb fall into the classical "typical" category [42].
  • The princeps pollicis artery is the terminal branch of the radial artery [42].
  • The princeps pollicis artery crosses the first intermetacarpal space [42].
  • The princeps pollicis artery runs along the ulnar side of the first metacarpal bone and along the volar surface of the adductor muscle [42].
  • The princeps pollicis artery emerges onto the subcutaneous palmar tissue at the level of the cutaneous flexion crease of the metacarpophalangeal joint [42].
  • The princeps pollicis artery divides into two terminal rami, namely the collateral palmar arteries of the thumb [42].
  • The collateral palmar arteries of the thumb run along the digital tunnel symmetrically and are of equal caliber [42].
  • The collateral palmar arteries of the thumb head distally to finally unite in the pulp arcade [42].
  • During their transit in the digital tunnel, the collateral palmar arteries break off into numerous collateral branches, either cutaneous, articular, or osseous [42].
  • An arcade located deep in the flexor tendon joins together the two arteries at the level of the distal metaphysis of the first phalanx [42].
  • Vessels originating from the subtendinous arcade enter the vincula and irrigate the flexor tendon [42].
  • It is rare to find arteries of surgical interest on the volar surface of the thumb between the opposition crease and the metacarpophalangeal flexion crease [42].
  • In the first segment of the thumb, the artery is located deeply and is more easily accessible from the dorsal surface [42].
  • In the second segment of the thumb, the two arteries run alongside the flexor tendon and behind the collateral nerves [42].
  • In the second segment of the thumb, the main artery is the ulnar collateral artery [42].
  • The subtendinous anastomosis situated at the level of the neck of the first phalanx acts as a moderator between the two arteries in the second segment [42].
  • In cases where the palmar ulnar collateral artery is absent, the dorsal artery takes its place by means of a branch through the subtendinous arcade [42].
  • In the pulp segment of the thumb, the two arteries are of similar size and run through the thick fatty subcutaneous padding [42].
  • In the pulp segment of the thumb, the two arteries cross over and convert into the ends of the digital nerves at the level of the median axis [42].
  • The dorsal arteries of the thumb originate from the palmar arteries (princeps, commissural, or anastomoses of the superficial arcade) at the level of the first metacarpal [42].
  • The dorsal arteries of the thumb run laterally along the metacarpophalangeal joint and continue obliquely from volar to dorsal [42].
  • The dorsal arteries of the thumb head in a distal direction remaining on the side of the two distal phalanges [42].
  • At the level of the neck of the first phalanx, an anastomosis can be found which originates from the palmar arteries for the dorsal aspect [42].
  • The dorsal arteries

Classification

  • Management of flexor tendon injuries requires consideration of surgical timing, injury location, approach, and soft tissue handling [15].
  • Consistent management of flexor tendon injuries relies on understanding the anatomy, characteristics, and repair of tendons in different zones [1].
  • Many principles of flexor tendon repair and rehabilitation can be applied to zones III–V [11].
  • Differences in the management of flexor tendon injuries between children and adults include differences in classification [21].

Clinical Presentation

  • Flexor tendon injuries are complex, and management requires consideration of surgical timing, injury location, approach, and soft tissue handling [15].
  • Spontaneous flexor tendon ruptures of the hand occur more often than one might recognize [28].
  • The majority of spontaneous flexor tendon ruptures involve the profundus tendon of the small finger in the palm [28].
  • Closed flexor tendon disruptions include traumatic avulsion, spontaneous midsubstance rupture, attrition rupture, infiltrative tenosynovial rupture, and iatrogenic causes [50].
  • Pediatric flexor tendon injuries differ from adults in diagnosis and rehabilitation [18].
  • Pediatric flexor tendon injuries often require surgical exploration due to uncooperative patients [18].
  • Differences in the management of flexor tendon injuries between children and adults include epidemiology, anatomy, classification, diagnosis, incisions and skin closure, the size of the flexor tendons, technical aspects of zones I and II repairs, core suture purchase length, rehabilitation, results, and complications of primary flexor tendon repair [21].

Investigations

  • Clinical evaluation of the injured or dysfunctional hand and wrist requires combining patient history with a careful physical examination to pinpoint or narrow the scope of possible pathologic processes [27].
  • Diagnostic tests such as imaging and serum laboratory studies are useful in determining pathology but can be expensive, time consuming, and often nonspecific [27].
  • A systematic method to approaching the physical examination of the hand is essential due to the number of structures in a small space [27].
  • Patients often have difficulty accurately describing their symptoms and may incorrectly attribute pathology to a perceived deficit [27].

Treatment

General Principles and Current Practice

  • Consistent, successful management of flexor tendon injuries relies on understanding anatomy, repair characteristics by zone, complications, rehabilitation protocols, and recent advances including tissue engineering and biologic modification [1].
  • The central tenet of modern flexor tendon surgery is to increase tendon healing and avoid adhesion formation by making a repair strong enough to move within a few days of injury [19].
  • Primary flexor tendon repair in the digital sheath area has become standard practice with a shift toward strong multistrand core sutures and modified pulley preservation [12].
  • No gold standard has been determined for the optimal flexor tendon repair algorithm, and repairs are usually chosen based on familiarity, popularity, and technical difficulty [3].
  • Despite significant advances in flexor tendon repair and reconstruction, the drive towards perfection continues [14].

Zone-Specific Considerations

  • Flexor tendon repair in Zone II is a technically demanding procedure, but outcomes have become more predictable and satisfying [2].
  • Zone I flexor tendon injuries traditionally have not yielded results as good as other flexor tendon injuries, with full motion rarely regained and good/excellent results reported in only up to 67% of cases [5].
  • Pediatric flexor tendon injuries differ from adults in diagnosis and rehabilitation, often requiring surgical exploration due to uncooperative patients [18].

Surgical Techniques and Modifications

  • Increasing the number of suture strands, using locking-loop configurations, and optimizing suture purchase length significantly improve the mechanical strength and gap resistance of flexor tendon repairs [69].
  • A modified protocol for primary flexor tendon repair in zones 1 and 2 utilizes a 6-strand core suture without circumferential suturing, selective pulley division, and partial FDS resection to facilitate early active motion and improve outcomes [16].
  • The authors of a 2013 study no longer perform flexor tendon repair with tourniquet, sedation, or muscle paralysis [57].
  • The volar plate flap technique may take its place in flexor tendon surgery, with initial clinical experience described as encouraging [23].

Grafting and Reconstruction

  • Secondary reconstruction remains an important and useful technique for complicated flexor tendon injuries or those that have failed primary repair [9].
  • Single-stage tendon grafting for reconstruction of zone I and II flexor tendon injuries is a challenging procedure requiring careful patient selection, strict indications, and adherence to sound surgical principles [54].
  • Recent studies demonstrate that tendon grafts will tolerate early motion therapy if the proximal and distal tenorrhaphy junctures are strong enough to withstand the forces of active finger motion [54].
  • The most common donor tendon for palm-to-fingertip reconstruction is the palmaris longus tendon, and the most common donor tendon for forearm-to-fingertip reconstruction is the plantaris tendon [49].
  • The palmaris longus tendon is present in only 75% to 85% of people [49].
  • The plantaris tendon is present in about 80% of people [49].
  • Intrasynovial grafts are associated with fewer adhesions in animal models [49].
  • When there is not sufficient profundus tendon available for primary repair, the traditional method is a modification of the classic Bunnell tendon-to-bone pull-out technique [49].
  • Suture anchors are commonly used in patients with good bone quality and may be combined with a pull-out suture for the increased strength of a multistrand repair [49].

Rehabilitation and Motion Protocols

  • Based on a lack of superior benefits following true active motion regimens, there is not sufficient evidence to support true active motion as an effective or preferable choice for flexor tendon rehabilitation at this time [59].
  • There is currently limited evidence informing use of relative motion flexion orthoses following flexor tendon repair [67].
  • Limited evidence currently exists for zones IV and VII extensor and for flexor tendon repairs regarding relative motion orthoses [10].

Complications and Management

  • Despite improvements in surgical technique and rehabilitation, functional outcomes for flexor tendon injuries remain unreliable, with adhesion formation and joint contractures being the most common complications [6].
  • Prompt recognition of problems and treatment with hand therapy, splinting, and/or surgery may help minimize recovery time and improve function [26].
  • Patient selection, cooperation, and a rational goal are as key to success as the operative procedure itself for flexor tenolysis [29].

Biological Factors

  • Understanding the role that growth factors play in tendon repair should enable a more targeted approach to be developed to improve the results of flexor tendon repair, although currently no strategies are routinely used in clinical practice [22].

Complications

General Outcomes and Adhesions

  • Adhesion formation and joint contractures are the most common complications following flexor tendon injuries [6].
  • The overall rate of reoperation after flexor tendon repair in all zones is 6% [56].
  • The median time to reoperation after flexor tendon repair was 140 days in New York state [56].
  • The reported rate of tendon adhesions is 4% [56].
  • The rate of tenolysis performed after flexor tendon repair is 3.6% in New York state [56].
  • Full motion is rarely regained in Zone I flexor tendon injuries, with good or excellent results reported in only up to 67% of cases [5].
  • The nature of the original injury is the chief determinant of outcome and is out of the control of the surgeon [71].

Repair Rupture

  • Repair rupture rates range from 4% to 10% in finger flexors [13].
  • Repair rupture rates range from 3% to 17% in the FPL of thumbs [13].
  • The rate of repair rupture reported in the literature is 4% [56].
  • The rate of reoperation for repair rupture is 2.3% in New York state [56].
  • Outcomes of Zone 2 repairs have a very low to zero incidence of rupture [70].

Rehabilitation Protocol Risks

  • Passive rehabilitation protocols have a higher risk of decreased postoperative digit range of motion [20].
  • Early active motion protocols have a higher risk of rupture [20].

Specific Mechanical and Structural Complications

  • Other possible complications include triggering, pulley failure, quadriga, and lumbrical plus deformity [56].
  • Over-tightening the graft during flexor tendon pulley reconstruction commonly results in poor finger flexion and resultant stiffness [64].
  • Poor tensioning of the graft during flexor tendon pulley reconstruction yields a result similar to the patient's initial presentation and is classified as a failure [64].
  • Rupture of the reconstructed pulley can occur but is not common [64].
  • Late fracture of the phalanx beneath the pulley is a complication of flexor tendon pulley reconstruction [64].

Infection and Inflammation

  • Synovitis, stiffness, re-rupture, and infection are potential complications during flexor tendon pulley reconstruction [64].
  • Infection is more common during flexor tendon pulley reconstruction procedures than in other contexts, often associated with 2-stage reconstructions and tendon implant placement [64].
  • An infected implant is usually preceded by synovitis, which is due to excessive activity or poor implant gliding resulting in implant buckling [64].
  • Synovitis can resolve without infection if managed appropriately with immobilization [64].
  • Even otherwise healthy patients can expect some residual digital stiffness following flexor tendon sheath infection despite aggressive and prompt antibiotic therapy and surgical intervention [35].

Management and Prevention

  • Careful soft-tissue handling, apposition of tendon edges with a strong multistrand repair, minimizing repair gapping and bulk with a peripheral suture, and appropriate implementation of early motion are critical to decrease the risk of adverse events after flexor tendon repair [56].
  • Repeated administration of sodium hyaluronate at the tendon repair site may be effective in improving postoperative active finger motion after primary hand flexor tendon repair in the mid-term [31].

Recovery

  • Rehabilitation after surgical repair of flexor tendon injuries is a controversial topic where motion at the repair site decreases risk for adhesions but increases risk for rupture [53].
  • The partial-range active flexion protocol is recommended as a safe, efficient, and generalizable framework for rehabilitation after flexor tendon repair [32].
  • The partial-range active flexion protocol is particularly useful where therapist assistance is unavailable [32].
  • A modified protocol for primary flexor tendon repair in zones 1 and 2 utilizes a 6-strand core suture without circumferential suturing, selective pulley division, and partial FDS resection to facilitate early active motion [16].
  • The modified protocol described for zones 1 and 2 aims to improve outcomes through the facilitation of early active motion [16].
  • Adhesion formation and joint contractures are the most common complications following flexor tendon injuries despite improvements in surgical technique and rehabilitation [6].
  • Repair ruptures were documented in most reports with rates ranging from 4%-10% in finger flexors [13].
  • Repair ruptures were documented in most reports with rates ranging from 3%-17% in FPL of thumbs [13].
  • Future research is suggested to increase understanding of repair strength, optimal age ranges for early active motion, and cost-effectiveness in pediatric flexor tendon injuries [34].

Key Evidence

  • [L5] Consistent, successful management of flexor tendon injuries relies on understanding the anatomy, characteristics and repair of tendons in the different zones, potential complications, rehabilitation protocols, recent advances in treatment, and future directions, including tissue engineering and biologic modification of the repair site. [1] (10.5435/jaaos-d-16-00316)
  • [L5] Flexor tendon repair in Zone II is a technically demanding procedure, but outcomes have become more predictable and satisfying. [2] (10.1016/j.hcl.2004.11.001)
  • [L5] No gold standard has been determined for the optimal flexor tendon repair algorithm, and repairs are usually chosen based on familiarity, popularity, and technical difficulty. [3] (10.1016/j.jhsa.2014.06.025)
  • [L5] Zone I flexor tendon injuries traditionally have not yielded results as good as other flexor tendon injuries, with full motion rarely regained and good/excellent results reported in only up to 67% of cases. [5] (10.1016/j.hcl.2004.12.004)
  • [L5] Despite improvements in surgical technique and rehabilitation, functional outcomes for flexor tendon injuries remain unreliable, with adhesion formation and joint contractures being the most common complications. [6] (10.1016/j.hcl.2009.11.004)
  • [L5] Tendon grafting is the treatment of choice for flexor tendon injuries in zones I and II when direct repair is not possible or delayed. [7] (10.1016/j.hcl.2004.12.003)
  • [L5] Secondary reconstruction remains an important and useful technique for complicated flexor tendon injuries or those that have failed primary repair. [9] (10.1016/j.jhsa.2007.08.018)
  • [L1] Limited evidence currently exists for zones IV and VII extensor and for flexor tendon repairs. [10] (10.1016/j.jht.2023.02.011)
  • [L5] Many of the principles of flexor tendon repair and rehabilitation can be applied to zones III–V. [11] (10.1016/j.hcl.2004.11.007)
  • [L5] Primary flexor tendon repair in the digital sheath area has become standard practice with a shift toward strong multistrand core sutures and modified pulley preservation. [12] (10.1016/j.hcl.2013.02.003)
  • [L4] Repair ruptures were documented in most reports with rates ranging from 4%-10% in finger flexors and 3%-17% in FPL of thumbs. [13] (10.1016/j.hcl.2004.11.005)
  • [L5] Despite significant advances in flexor tendon repair and reconstruction, the drive towards perfection continues. [14] (10.1177/17531934251404821)
  • [L5] Flexor tendon injuries are complex, and management requires consideration of surgical timing, injury location, approach, and soft tissue handling. [15] (10.1016/j.jhsa.2024.05.013)
  • [L5] The authors describe a modified protocol for primary flexor tendon repair in zones 1 and 2 that utilizes a 6-strand core suture without circumferential suturing, selective pulley division, and partial FDS resection to facilitate early active motion and improve outcomes. [16] (10.1016/j.hcl.2017.03.001)
  • [L5] Pediatric flexor tendon injuries differ from adults in diagnosis and rehabilitation, often requiring surgical exploration due to uncooperative patients. [18] (10.1016/j.hcl.2004.11.004)
  • [L4] The central tenet of modern flexor tendon surgery is to increase tendon healing and avoid adhesion formation by making a repair strong enough to move within a few days of injury. [19] (10.1016/j.hcl.2013.03.001)
  • [L4] Passive protocols have a higher risk of decreased postoperative digit range of motion, while early active motion protocols have a higher risk of rupture. [20] (10.1016/j.jhsa.2013.06.025)
  • [L5] [21] (10.1177/1753193413498207)
  • [L5] Understanding the role that growth factors play in tendon repair should enable a more targeted approach to be developed to improve the results of flexor tendon repair, although currently no strategies are routinely used in clinical practice. [22] (10.1177/1753193413509231)
  • [L4] Initial clinical experience is encouraging and the volar plate flap technique may take its place in flexor tendon surgery. [23] (10.1016/j.jhsa.2015.11.004)
  • [L5] Prompt recognition of problems and treatment with hand therapy, splinting, and/or surgery may help minimize recovery time and improve function. [26] (10.5435/00124635-200607000-00001)
  • [L4] Spontaneous flexor tendon ruptures of the hand occur more often than one might recognize, with the majority involving the profundus tendon of the small finger in the palm. [28] (10.1016/j.jhsa.2007.06.012)
  • [L5] The article outlines preoperative, operative, and postoperative considerations for flexor tenolysis, emphasizing that patient selection, cooperation, and a rational goal are as key to success as the operative procedure itself. [29] (10.1016/j.hcl.2004.11.008)
  • [L1] Repeated administration of sodium hyaluronate at the tendon repair site may be effective in improving postoperative active finger motion after primary hand flexor tendon repair in the mid-term. [31] (10.1016/j.jhsa.2021.07.012)
  • [L5] The author recommends the partial-range active flexion protocol as a safe, efficient, and generalizable framework for rehabilitation after flexor tendon repair and other hand disorders, particularly where therapist assistance is unavailable. [32] (10.1177/17531934211037112)
  • [L5] Future research is suggested to increase understanding of repair strength, optimal age ranges for early active motion, and cost-effectiveness. [34] (10.1016/j.jht.2014.12.002)
  • [L5] Despite aggressive and prompt antibiotic therapy and surgical intervention, even otherwise healthy patients can expect some residual digital stiffness following flexor tendon sheath infection. [35] (10.5435/jaaos-20-06-373)
  • [L5] An understanding of the biomechanics of the flexor tendon system is essential to proper evaluation and treatment of disorders of the upper extremity, as the tendons function as cables transmitting forces to move and stabilize joints. [48] (10.1016/j.hcl.2004.11.002)
  • [L5] This article reviews different causes, diagnoses, and treatment options of closed flexor tendon disruptions, including traumatic avulsion, spontaneous midsubstance rupture, attrition rupture, infiltrative tenosynovial rupture, and iatrogenic causes. [50] (10.1016/j.jhsa.2014.04.005)
  • [L5] Rehabilitation after surgical repair of flexor injuries is a controversial topic where motion at the repair site decreases risk for adhesions but increases risk for rupture. [53] (10.1016/j.jhsa.2019.02.010)
  • [L5] [54] (10.1016/j.jhsa.2015.04.016)
  • [L5] [56] (10.5435/jaaos-22-12-791)
  • [L5] The authors no longer perform flexor tendon repair with tourniquet, sedation, or muscle paralysis. [57] (10.1016/j.hcl.2013.02.009)
  • [L1] Based on a lack of superior benefits following true active motion regimens, there is not sufficient evidence to support true active motion as an effective or preferable choice for flexor tendon rehabilitation at this time. [59] (10.1016/j.jht.2018.06.001)
  • [L5] [64] (10.1016/j.jhsa.2010.07.029)
  • [L4] There is currently limited evidence informing use of relative motion flexion orthoses following flexor tendon repair. [67] (10.1016/j.jht.2022.11.004)
  • [L5] Increasing the number of suture strands, using locking-loop configurations, and optimizing suture purchase length significantly improve the mechanical strength and gap resistance of flexor tendon repairs. [69] (10.1016/j.jhsa.2009.12.044)
  • [L5] Outcomes of Zone 2 repairs are not dissimilar to those in other zones with very low to zero incidence of rupture. [70] (10.1177/17531934211053757)
  • [L5] The nature of the original injury is the chief determinant of outcome and is out of the control of the surgeon. [71] (10.1016/j.hcl.2004.11.003)

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