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大转子疼痛综合征

Updated Sep 2026
Illustration: hip

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。

您的感受

大转子疼痛综合征是一组导致髋部外侧疼痛的问题。该名称涵盖了多种不同的病因:滑囊(髋部骨性突起处充满液体的缓冲垫)受刺激或发炎、臀肌肌腱(将臀部肌肉附着于该骨骼的强韧肌腱)撕裂,以及髋部弹响。上述多种情况可能同时存在。

疼痛位于髋部外侧的骨性突起处。按压该部位通常会有压痛。当您将腿向侧方移动时,髋部可能感觉无力,而这正是臀部肌肉所控制的动作。疼痛常在夜间加剧,尤其是当您侧卧于患侧时。活动后或早晨起床时,疼痛也可能发作。

对髋部外侧施加负荷的日常活动会变得困难。行走、爬楼梯、单腿站立穿衣以及从椅子上起身都可能引起疼痛。夜间侧卧于疼痛侧可能会惊醒您,或使您无法找到舒适的体位。

这种疼痛的影响可能超出髋部本身。患有此症的人群比未患病者更不可能从事全职工作,且他们报告的生活质量较低,日常功能障碍更多。

有一点值得了解:髋部外侧的疼痛并不总是由该综合征引起。如果按压该骨性突起并未引起您皱眉或痛苦反应,病因可能位于关节内部。因此,准确的诊断至关重要。您的外科医生将进行体格检查,并可能使用影像学检查,或在超声引导下进行麻醉注射,来确定导致您疼痛的确切原因。正确的诊断是良好治疗的关键。

实际发生了什么

您髋部侧面的骨性突起被称为大转子。它的作用类似于滑轮。来自臀部肌肉的强韧肌腱从其表面经过,其间存在充满液体的微小缓冲垫,以确保您在活动时一切都能顺畅滑动。

在这种疾病中,这些部位会出现刺激或损伤。缓冲垫可能发生炎症,肌腱可能出现小撕裂或随时间推移而磨损。通常,这些问题中的不止一个会同时存在。肌腱与沿大腿外侧向下延伸的致密组织带之间反复摩擦,加上过度使用、受伤或步态改变,被认为是引发此病的因素。

影像学检查改变了对该疾病的认知。许多被告知患有滑囊炎(即上述缓冲垫之一的炎症)的人,实际上被证明是肌腱撕裂或磨损,而真正的滑囊炎迹象很少。这一点很重要,因为肌腱才是执行实际工作的结构。每次站立、行走或迈步时,它都保持骨盆稳定;当它受损时,髋部外侧会向您发出信号。

您在上文中阅读到的症状直接源于此。骨性突起处的压痛来自位于该处的受刺激组织。腿部向外侧移动时的无力来自肌腱未能正常牵拉。夜间疼痛发生是因为侧卧时直接压迫了疼痛区域。

还有一点值得了解:这些问题位于髋关节本身之外,而非其内部。这就是为什么疼痛感觉与关节炎不同,以及为什么在选择任何治疗之前,准确诊断至关重要。

我们能做什么

第一步是改变您髋部的负重方式。这可能意味着减轻引发疼痛的活动,并调整您的行走、站立或训练方式。理疗旨在通过针对臀肌腱的结构化负重训练来增强稳定骨盆的臀部肌肉。对这种针对性锻炼有反应的人,与未遵循该方案的人相比,报告了更少的髋部疼痛和更好的日常功能。在继续下一步之前,请给予此方案充分的尝试。对于部分肌腱磨损,长期坚持非手术治疗通常效果良好,且撕裂加重的风险较低。

如果仅靠锻炼无法解决问题,我们将转向药物治疗。抗炎药物可以缓解痛点周围的炎症。皮质类固醇注射(将类固醇药物放置在受损组织附近)也可以缓解疼痛。超过 60% 的外科医生在髋关节置换术后将皮质类固醇作为解决此问题的首选或次选步骤,且对术后发作的滑囊炎效果良好。在年轻人和下肢不等长的人群中,其成功率可能较低。富含血小板血浆(由您自身血液制备的制剂)已针对该病症进行测试,结果显示在注射后长达 6 个月内与安慰剂无差异,因此我们不将其作为首选。

当非手术治疗未能为您提供足够的缓解时,手术便成为讨论的话题。超过三分之一的人即使接受最佳的非手术治疗也未见改善,在这些情况下,可以考虑早期手术。手术通过小切口并使用摄像头进行(微创手术)。它可以松解沿大腿外侧延伸的紧绷组织带,移除发炎的缓冲垫,并在存在撕裂时修复臀肌腱。微创和开放肌腱修复术均能带来功能改善,且失败率相似。我们将与您讨论手术是否适合您,并根据您的疼痛、扫描结果以及您的个人需求共同做出决定。

预期情况

对于许多人来说,这种疾病通常不会自行消失。除非治疗根本病因,否则疼痛往往会持续或反复发作,尤其是在夜间和活动后。长期受此困扰会带来切实的影响:与未患此病的人群相比,患者从事全职工作的可能性较低,且报告的生活质量较低,日常功能障碍更多。

好消息是,如果得到妥善管理,大多数患者的情况都会改善。非手术治疗对许多患者效果良好,特别是对于部分肌腱磨损,其撕裂加重的风险较低,且长期疗效与术后报告的疗效相似。冲击波疗法(一种将声波传递至疼痛组织的疗法)也可能有所帮助。在使用注射治疗时,注入痛点附近充满液体的缓冲垫中的注射剂,可能比其他注射方式提供更持久的益处。

手术仅保留给症状严重或非手术治疗后未改善的患者。在回顾的严重病例中,手术缓解了95%患者的症状,撕裂的臀肌肌腱修复术在至少10年内保持良好。通过微创手术切除发炎的缓冲垫后,疼痛和功能的改善通常在1至3个月内变得明显,并持续至随访结束。当臀部肌腱完全无法发挥其功能时,邻近肌腱转移术在3年时显示出对髋关节功能和疼痛的可靠改善。

恢复是渐进的,而非瞬间完成的。请预期在数周至数月内稳步改善,而非一夜之间痊愈。您的外科医生会向您说明需要观察的事项。如果术后髋部疼痛加剧或停止改善,应在6至12个月之间进行进一步检查,并根据病因,最早在12个月时考虑进一步手术。

一个诚实的提醒:治疗效果既取决于治疗,也取决于您本人。遵守术后限制至关重要。一位在肌腱修复术后报告满意度低的患者,未遵守其负重限制,违背医嘱继续吸烟,并在不久后接受了无关的脊柱手术。履行您的部分职责,才能给治疗带来最佳机会。

何时就医

如果您髋部外侧骨性突起处的疼痛持续数周以上,尤其是休息或改变活动后仍未缓解,请咨询您的全科医生(GP)。如果按压该部位有压痛,髋部在向外侧移动腿部时感觉无力,或疼痛导致夜间惊醒或使工作和日常任务变得困难,请要求专科医生评估。早期获得正确诊断至关重要,因为可能同时存在多个问题,且每个问题的治疗方法各不相同。如果您已接受过髋部手术,若术后6至12个月间疼痛加剧或停止改善,请要求复查。


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 hip is a multiaxial joint formed by the articulation between the pelvis and femur, connecting the axial skeleton and the lower extremity [8].
  • The hemipelvis comprises three bones: the ilium, ischium, and pubis, which unite at the triradiate cartilage within the concave acetabulum [8].
  • The acetabulum comprises an articular crescent-moon-shaped lunate surface and a nonarticular central fossa that serves as the attachment point for the ligamentum teres [8].
  • The acetabulum is incomplete inferiorly, forming a notch through which vital blood vessels and nerves pass to supply the joint [8].
  • The femoral head forms two-thirds of a sphere, with a small depression at its center from which the ligamentum teres extends to connect to the acetabular notch [8].
  • The neck-shaft angle of the femur averages 125° [8].
  • Normal version, defined as the head-neck angle in the frontal plane, averages 15 to 20° [8].
  • At the junction of the neck and shaft are the greater and lesser trochanters, which are connected by the intertrochanteric line anteriorly and the intertrochanteric crest posteriorly [8].
  • The acetabulum is normally anteverted 15 degrees and obliquely oriented in the coronal plane 45 degrees caudally [14].
  • The posterosuperior articular surface of the acetabulum is thickened to accommodate weight bearing [14].
  • The inferior surface of the acetabulum contains the acetabular (cotyloid) notch, which is bound by the transverse acetabular ligament [14].
  • The femoral neck is normally anteverted approximately 14 degrees in relation to femoral condyles, with a range of 1–40 degrees [14].
  • The femoral neck-shaft angle averages 127 degrees, beginning at 141 degrees in the fetus [14].
  • The mean femoral neck-shaft angle in the adult is 130° ± 7° [18].
  • The mean anteversion of the femoral neck is 10° ± 7° [18].
  • The two prime trabecular groups of the proximal femur are the principal tensile group and the principal compressive group [18].
  • Secondary compressive and tensile trabecular groups also exist in the proximal femur [18].
  • The weakest area in the femoral neck is located in the Ward triangle [18].
  • The calcar femorale is a medial area of dense trabecular bone that transfers stress from the femoral shaft to the inferior portion of the femoral neck [18].

Ligaments and Capsule

  • The hip is surrounded by a dense fibrous capsule extending from the periphery of the acetabulum to the intertrochanteric line of the femoral neck [8].
  • The capsule enhances joint stability by preventing translation of the femoral head in the acetabulum [8].
  • The Y-shaped iliofemoral ligament is the thickest and strongest of the three main ligaments supporting the hip [8].
  • The medial portion of the iliofemoral ligament connects the anterior inferior iliac spine to the anterior intertrochanteric line [8].
  • The lateral portion of the iliofemoral ligament originates slightly superior to the medial arm and attaches to the anterior greater trochanter [8].
  • The iliofemoral ligament functions to limit external rotation [8].
  • In isolation, the lateral arm of the iliofemoral ligament limits extension of the joint [8].
  • The ischiofemoral ligament extends from the ischial margin of the acetabulum to the greater trochanter of the femur [8].
  • The ischiofemoral ligament provides support posteriorly and restricts internal rotation motion [8].
  • The pubofemoral ligament extends from the obturator crest of the pubic bone to the femoral neck [8].
  • The pubofemoral ligament acts to limit abduction of the joint [8].
  • Deep fibers from the iliofemoral, ischiofemoral, and pubofemoral ligaments merge to form the zona orbicularis, which circumvents the femoral neck [8].
  • The hip capsule attaches anteriorly and posteriorly along the periphery of the acetabulum outside the labrum [9].
  • Inferiorly, the hip capsule is attached to the acetabular labrum [9].
  • The capsule is attached to the femur anteriorly along the intertrochanteric crest [9].
  • On the posterior side, the capsule attaches only partially, such that the basicervical region of the femoral neck and the intertrochanteric region of the femur are not intracapsular [9].
  • The iliofemoral ligament becomes taut in full extension, preventing anterior dislocation and hyperextension of the hip [9].
  • The twisted orientation of the hip ligaments provides a screw mechanism for the hip in full extension [9].
  • The ligamentum teres originates in the cotyloid fossa and attaches on the fovea of the femoral head [9].

Labrum

  • The acetabular labrum is a fibrocartilaginous ring attached to the rim of the acetabulum that extends the articulating surface area and increases femoral head coverage [8].
  • The labrum is triangular in cross section [8].
  • Only the external one-third of the labrum contains blood vessels, leaving the majority of the structure avascular [8].
  • The avascular nature of the majority of the labrum limits its healing ability following injury [8].
  • The labrum is highly innervated, with the presence of both mechanoreceptors and nociceptors [8].
  • The labrum is absent in the area of the inferior acetabular notch, where the transverse acetabular ligament serves as the continuation of the labrum [8].
  • The fibrocartilaginous labrum deepens the acetabulum, enhancing stability [5].
  • Labral functions include load transmission, maintenance of vacuum seal, regulation of synovial fluid hydrodynamics, and joint lubrication [5].

Muscular Anatomy

  • The abductors of the hip are predominantly the gluteus medius and minimus muscles [16].
  • The gluteus medius has three different components: anterior, middle, and posterior [16].
  • The gluteus medius and minimus muscles function together to maintain and abduct the femur during the stance phase of gait [16].
  • A Trendelenburg lurch is an attempt by the body to compensate for abductor weakness by bringing the center of gravity closer to the hip center, forcing the patient to lean toward the affected side [16].
  • The piriformis muscle originates from the greater sciatic foramen and inserts onto the greater trochanter [16].
  • The superior gluteal nerve and artery exit the pelvis above the piriformis muscle [16].
  • The pudendal nerve, internal pudendal artery, nerve to the obturator internus, posterior femoral cutaneous nerve, sciatic nerve, inferior gluteal nerve, inferior gluteal artery, and nerve to the quadratus femoris all exit the pelvis below the piriformis [16].
  • In 10% of cases, the common peroneal component of the sciatic nerve can pass through the division in the piriformis [16].
  • The tensor fasciae latae muscle originates laterally on the anterolateral edge of the iliac crest [16].
  • The action of the tensor fasciae latae is to flex, abduct, and rotate the hip [16].

Neurovascular Anatomy

  • The medial femoral circumflex artery is the main blood supply to the femoral head [18].
  • The lateral femoral circumflex artery gives rise to the anterior aspect of the extracapsular arterial ring [18].
  • The superior and inferior gluteal arteries also contribute branches to the extracapsular arterial ring [18].
  • The ascending cervical arteries originate from the extracapsular arterial ring and are divided into four distinct groups: lateral, medial, posterior, and anterior [18].
  • The lateral group of ascending branches is the main blood supply to the femoral head [18].
  • The lateral epiphyseal artery penetrates the femoral head and is believed to be the dominant blood supply to the femoral head from this system [18].
  • Fractures that disrupt the ascending blood flow to the lateral epiphyseal vessel have an increased risk of osteonecrosis [18].
  • The artery of the ligamentum teres arises from either the obturator or medial femoral circumflex artery [18].
  • The artery of the ligamentum teres does not provide sufficient blood supply to maintain the viability of the femoral head [18].
  • In adulthood, the major blood supply to the femoral head is from the medial femoral circumflex and lateral epiphyseal arteries [21].
  • The common femoral artery passes anterior and medial to the hip capsule [21].
  • The common femoral vessels are the most commonly reported extrapelvic vascular structures that are injured during total hip arthroplasty [21].
  • The most common mechanism of injury to the common femoral vessels is errant retractor placement anterior to the acetabulum [21].
  • The superior gluteal vessels are branches of the posterior division of the internal iliac artery [21].
  • Superior gluteal artery injury can occur with the placement of screws in the region of the sciatic notch [21].
  • The inferior gluteal vessels and internal vessels are branches of the anterior division of the internal iliac artery [21].
  • The inferior gluteal vessels exit the pelvis between the piriformis and coccygeus muscles [21].

Pathophysiology of Greater Trochanteric Pain Syndrome

  • Greater trochanteric pain syndrome (GTPS) is a conglomerate of conditions including snapping hip, trochanteric bursitis, and gluteal tendinopathy [20].
  • Lateral-sided hip pain associated with GTPS has been reported to be as debilitating as end-stage degenerative joint disease [20].
  • In patients between 50 and 79 years of age, GTPS was found in 15% of women and 6.6% of men in one hip [20].
  • Lateral hip anatomy includes three to four bursae surrounding the side of the hips [20].
  • The largest bursa is found between the gluteus maximus muscle and the gluteus medius tendon, which is located directly lateral to the greater trochanter [20].
  • The muscular sheaths and tendinous attachments of the gluteus maximus, iliotibial band, tensor fascia lata, gluteus medius, and gluteus minimus contribute to a complex local environment susceptible to overuse injuries, direct trauma, and gait alterations [20].
  • Trochanteric bursitis is often related to the other conditions of GTPS and not true inflammation of the local bursa [20].
  • GTPS encompasses various etiologies of pain at the greater trochanter of the femur, including trochanteric bursitis, gluteus medius or gluteus minimus tendon tears, and friction of the iliotibial band over the greater trochanter [32].
  • External snapping hip is the result of the iliotibial band snapping over the greater trochanter of the femur [32].

Investigations

Clinical Examination and History

  • A thorough understanding of normal anatomy and biomechanics is necessary to identify pathology and determine the appropriate course of treatment for hip pain [1].
  • A comprehensive clinical examination is required to determine a differential diagnosis because many hip conditions present with similar symptoms [1].
  • A thorough history is essential to differentiating between common causes of hip pain [1].
  • Clinical examination tests and imaging findings should be used to confirm a suspected clinical diagnosis [1].

Radiography

  • Conventional radiographs remain critical in the initial imaging evaluation of the hip [2].
  • Conventional radiographs can be used to diagnose fractures, developmental dysplasia of the hip (DDH), femoroacetabular impingement (FAI), and osteoarthritis [2].
  • A complete hip series usually consists of an anterior-posterior (AP) pelvis, a centered AP hip, a lateral view (frog-leg, cross-table, Dunn 45° or 90°), and a false-profile (Lequesne) view [2].
  • Standard AP radiographs of the hip and pelvis are obtained to examine bony architecture, check for evidence of joint space narrowing or changes to bone quality, and quantify femoral head coverage [25].
  • The Dunn view and frog leg view are appropriate to measure the alpha angle to determine the presence of impingement [25].
  • Acetabular morphology is assessed on AP pelvis radiographs for acetabular overcoverage and undercoverage [2].
  • The femoral head-neck junction morphology is often assessed using the alpha angle [2].
  • Some studies have shown that radiographs, in particular the Dunn 45° view, may be more accurate for determining the alpha angle measurement than CT or MRI [2].
  • Osteoarthritis of the hip can be categorized using the Kellgren-Lawrence or Tönnis classifications [2].
  • The Kellgren-Lawrence classification is a 4-point grading system classified into doubtful, mild, moderate, and severe [2].
  • The Tönnis classification is a 3-point grading system categorized into mild, moderate, and severe [2].
  • Radiographic and clinical severity do not necessarily correlate, particularly if the radiographs are non-weight-bearing or if false-profile views are not included [2].
  • The femoral head extrusion index is defined by the length of the femoral head that lies beyond the acetabulum as a percentage of the total horizontal width of the femoral head [2].
  • Femoral head extrusion index values greater than 25% are considered abnormal [2].
  • The Tönnis angle is defined by the angle of the acetabular sourcil and a line parallel to the transverse pelvis axis [2].
  • Tönnis angles between 0° and 10° are considered normal [2].
  • The lateral center-edge angle, or center-edge angle of Wiberg, is the angle between a line from the center of the femoral head perpendicular to the transverse pelvis axis and a second line from the center of the femoral head to the superolateral most point of the acetabulum [2].
  • Center-edge angles of 20°-40° are considered normal, while angles from 20° to 25° are considered borderline [2].
  • An optimal AP pelvis image is required for assessing the "crossover" sign, as pelvic tilt or rotation may lead to false-positive and false-negative results [2].
  • For neutral pelvic tilt on an AP pelvis radiograph, the sacrococcygeal joint should be between 3 and 5 cm above the superior border of the symphysis pubis [2].
  • Radiographs remain integral to the assessment of fractures and can be supplemented with CT to further investigate suspected occult fractures, define fracture morphology, and assist in preoperative planning [2].
  • Radiographs can serially assess hardware positioning and evaluate symptomatic hardware related to open reduction and internal fixation and total hip arthroplasty [2].

Magnetic Resonance Imaging (MRI)

  • MRI is the modality of choice for patients suspected of soft tissue or intra-articular pathology, given its superior sensitivity and specificity [25].
  • Conventional MRI is effective at identifying osteochondral injuries, musculotendinous pathologies, and inflammation [25].
  • Magnetic resonance arthrography (MRA) is more appropriate to determine injuries to the labrochondral structures and the ligamentum teres and identify the presence of loose bodies and synovial chondromatosis [25].
  • The utility of MRA in the accurate detection and staging of articular cartilage lesions is reduced, with sensitivity reported to be less than 50% compared with arthroscopic findings [25].
  • Recent advances in MRI imaging techniques, such as delayed gadolinium-enhanced MR imaging and T2* mapping, allow for a more in-depth analysis of the structure of articular cartilage [25].
  • Delayed gadolinium-enhanced MR imaging and T2* mapping were effective at detecting early changes to the articular cartilage surfaces of patients with hip dysplasia and femoroacetabular impingement [25].
  • MRI provides information regarding the integrity of the acetabular labrum and articular cartilage [3].
  • The anatomy of the proximal femur as well as the version of the acetabulum and femur may be assessed using MRI [3].
  • The sensitivity of MRI to acetabular rim chondral lesions is limited [3].
  • Noncontrast MRI at 3T is generally adequate for diagnosing intra-articular pathology [28].
  • If 3T imaging is unavailable, MRA can be considered at 1.5T for increased diagnostic accuracy [28].
  • MRI is helpful in identifying femoral neck stress fracture in athletes and predicting patients that may require surgical intervention [28].
  • MRI is helpful in assessing complications of conventional and resurfacing hip arthroplasties, particularly those with metal-on-metal bearing systems [28].
  • Major MRI findings that help predict histologic ALVAL scores include synovial thickening, synovitis, synovial volume, abductor disruption, and soft-tissue edema [28].
  • A prospective study found similar accuracies between noncontrast 3T MRI and 1.5T MRA in femoroacetabular impingement [26].
  • A retrospective study evaluating the accuracy of noncontrast 3T MRI versus hip arthroscopy found accuracy for labral tears and acetabular cartilage lesions was 98% and 90%, respectively [26].

Computed Tomography (CT)

  • CT scans are effective for examining cortical and cancellous bone and can be used to create three-dimensional reconstructions of the hip for use in surgical planning [25].
  • Measurements of femoral head coverage and acetabular and femoral impingement can also be performed reliably using CT images [25].
  • Low-dose CT with three-dimensional reformats is particularly useful in surgical planning of complex or borderline deformities [3].
  • CT overcomes the limitations of radiography by providing three-dimensional assessment of bony morphology and, to some degree, assessment of soft-tissue abnormalities [10].
  • Combined with arthrography, CT can evaluate chondrolabral abnormalities, specifically in patients with contraindications to MRI [10].
  • CT is helpful in fracture evaluation, particularly in the setting of negative radiographs, or for further defining fracture morphology in patients requiring surgical reduction [10].
  • The multiplanar and 3D capabilities of CT make it an invaluable tool for assessing bone morphology, but at higher cost and radiation dose [28].
  • 3D volume renderings are useful to aid in preoperative planning in FAI and subspine impingement [28].

Ultrasonography

  • Ultrasonography provides real-time dynamic assessment of the hip and is useful in diagnosing soft-tissue abnormalities about the hip joint, and to a lesser degree, within the hip joint itself [10].
  • Ultrasonography is particularly useful in providing real-time guidance during diagnostic and therapeutic procedures [10].
  • Ultrasonography can be an effective modality to identify musculotendinous disruptions, effusions associated with intra-articular pathology, or inflammatory conditions, such as bursitis [25].
  • Ultrasonography is being increasingly used for targeted injections into muscles, tendons, or intra-articularly around the hip, for use with corticosteroids or biologic treatments [25].
  • Although ultrasonography is a valuable tool to examine pediatric hip conditions, its utility in evaluating the adult hip is limited [25].
  • Ultrasonography allows bedside evaluation of the hip and can be used to guide interventions in the office setting [28].
  • Ultrasonography uses high-frequency sound waves to produce images [29].
  • A higher frequency ultrasonographic beam can provide higher resolution images of superficial structures such as tendons and ligaments [29].
  • Doppler ultrasonography can be used to image blood vessels for flow velocity and direction [29].
  • Elastography is an ultrasonography technique that can assess the elasticity of soft tissues and identify pathology that changes the elasticity of soft-tissue structures, like tendinopathy [29].
  • Elastography technology is used mostly in research studies but not for clinical use at this point [29].
  • Ultrasonography is noninvasive at the frequencies used for diagnostic imaging [29].
  • Ultrasonography equipment is portable and inexpensive compared with MRI and CT equipment [29].
  • Highly echogenic structures, such as a foreign body that may not be visible on radiographs, can be easily detected using ultrasonography [29].
  • Ultrasonography can be used to guide targeted therapy, such as injections and ablations, and is useful to guide injections and aspirations [29].
  • Ultrasonography provides dynamic assessment of structures, such as tendon and nerve subluxation [29].
  • Image quality and interpretation depend on the experience of the ultrasonography technician and the radiologist [29].
  • Ultrasonography cannot image inside bone because bone cortex reflects almost all sound waves [29].
  • Internal joint structures are not well visualized unless they are in a superficial location [29].

References

[1] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy and Biomechanics, Evaluation, Clinical Examination, and Imaging of the Hip > Summary.

[2] Orthopaedic Knowledge Update Sports Medicine 6. Imaging of the Hip > Radiography.

[3] Aaos Comprehensive Orthopaedic Review 3. Nonarthroplasty Surgical Treatment of the Hip > I. Femoroacetabular Impingement.

[5] Miller S Review Of Orthopaedics. Genetics of musculoskeletal conditions and abnormalities are summarized in Table 1.27 > 2. Arthrology > Hip (Fig. 2.49).

[8] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy and Biomechanics, Evaluation, Clinical Examination, and Imaging of the Hip > Osseous and Ligamentous Anatomy.

[9] Aaos Comprehensive Orthopaedic Review 3. Surgical Anatomy of the Hip > IV. Hip Capsule and Ligaments.

[10] Orthopaedic Knowledge Update Sports Medicine 6. Imaging of the Hip > Introduction.

[14] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > LOWER EXTREMITY.

[16] Aaos Comprehensive Orthopaedic Review 3. Surgical Anatomy of the Hip > V. Hip Joint Muscles.

[18] Aaos Comprehensive Orthopaedic Review 3. Fractures of the Hip > I. General Considerations.

[20] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Muscular, Neurovascular, and Soft-­Tissue Conditions of the Hip > Muscular Conditions About the Hip > Hip Bursitis.

[21] Aaos Comprehensive Orthopaedic Review 3. Surgical Anatomy of the Hip > VI. Neurovascular Structures Surrounding the Hip.

[25] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy and Biomechanics, Evaluation, Clinical Examination, and Imaging of the Hip > Imaging.

[26] Orthopaedic Knowledge Update Sports Medicine 6. Imaging of the Hip > Annotated References.

[28] Orthopaedic Knowledge Update Sports Medicine 6. Imaging of the Hip > Summary.

[29] Aaos Comprehensive Orthopaedic Review 3. Musculoskeletal Imaging* > IV. Ultrasonography.

[32] Orthopaedic Knowledge Update Sports Medicine 6. Extra-­articular Hip Disorders > Summary.

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