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Patients › Knee

翻修膝关节置换术

Updated Sep 2026
Illustration: knee

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

该手术意味着取出原膝关节置换术部件的一部分或全部,并植入新的部件。我们最常建议进行此手术的情况包括:假体周围感染、假体松动、关节不稳定、僵硬或塑料垫片磨损。膝关节翻修术可减轻疼痛并改善功能和稳定性。大多数人可以预期膝关节的感觉和功能会有显著改善。

手术前

在手术前的几周里,我们将仔细规划您的手术。您将接受膝关节X光检查,有时还会进行CT或MRI扫描,以便我们观察植入物、其周围的骨骼以及需要重建的骨量。您还将前来接受评估,我们将检查您的膝关节、皮肤和整体健康状况,并回顾您既往的手术记录和影像资料。如果您有其他基础疾病,术前可能需要进行血液检查或由麻醉师进行评估。在手术前的几天,我们将为您提供关于用药的明确指示,包括哪些药物需要停用以及停药时间。手术当天,术前七小时内请勿进食或饮水。我们要求七小时而非标准的六小时,以便如果手术室排程提前,您的手术可以提前进行。请安排他人术后驾车送您回家。穿着宽松舒适的衣物,并携带您目前用药的清单。

手术当天

您将前往医院的手术入院病区,在那里办理入院手续并做术前准备。您将见到麻醉医生,医生会与您详细核对您的健康状况及用药情况。本手术在全身麻醉下进行。有时,为缓解术后疼痛,会追加区域神经阻滞麻醉;麻醉医生将在手术当天就此与您讨论。随后,您将被带入手术室进行手术。由于需要仔细移除旧部件,且骨骼可能需要重建,本手术的时长可能长于初次膝关节置换术。

您将在复苏区苏醒,在麻醉药效消退期间,护士会密切观察您的情况。待您的生命体征稳定后,根据所接受的手术类型及恢复情况,您将被转入病房或直接回家。若您在当天回家,必须有人驾车送您并全程陪护。若您在医院留观,我们将在您离院前与您共同制定出院计划。

手术内容

膝关节翻修置换术是指取出原膝关节置换术的部分或全部部件,并植入新的部件。外科医生通常采用与初次手术相同的一般入路,通常通过膝关节前部的切口进行,切口往往沿旧疤痕或靠近旧疤痕。外科医生打开膝关节,清除关节周围的瘢痕组织,包括髌骨上方囊袋内及其两侧可能形成的致密粘连带。这种清理为观察整个关节和将髌骨移开以触及旧部件提供了空间。

随后,旧的金属和塑料部件被取出。剩余骨量决定了后续步骤。如果骨内有小空洞,可用骨水泥或供体骨小片填充。如果缺失较大面积的骨,外科医生可能会用金属块或成形金属套筒重建,或使用可植入骨内并为新部件提供牢固抓持力的特殊锥形物。然后安装新部件。它们可能通过骨水泥固定、无骨水泥固定,或两者结合的方式固定,某些设计包含位于股骨和胫骨内的柄,以提供额外支撑。

在关闭皮肤之前,外科医生冲洗关节并清除任何不健康的组织。然后缝合切口并用敷料覆盖。如果翻修的原因是感染,手术可能分阶段进行,待感染清除后,在后续手术中再植入新部件。

术后

您将在恢复区苏醒,待生命体征平稳后转入病房。护士将检查您的膝关节、疼痛情况及整体感受。我们会为您制定镇痛方案,若疼痛控制不佳,请告知护士。您的膝关节将覆盖敷料。敷料通常保留约10天;除非我们指示,否则请勿提前拆除。我们将在复诊时为您更换或拆除敷料。大多数人在术后第一天即可在助行器或拐杖辅助下站立并行走几步,理疗师将向您演示方法。医疗团队将告知您是当日出院还是住院观察一晚。回家后,前24小时需有人陪护。

恢复

在术后的最初几天和几周内,您的膝关节会出现疼痛和肿胀。对于此类较大的手术而言,这是正常现象。肿胀通常在膝关节前部及切口上方更为明显,且可能需要一段时间才能消退。休息、冰敷以及在坐着时抬高腿部有助于缓解不适。请遵医嘱服用止痛药,如果效果不佳,请告知您的医疗团队。

手术后不久您即可起身活动。大多数人在术后第一天即可借助助行架或拐杖站立并行走几步。您的物理治疗师将指导您进行锻炼,重点在于膝关节的屈伸活动以及增强大腿肌肉力量。请在家中坚持进行这些锻炼,少量多次。此手术无需佩戴支具。您可以在家中自由走动,只要您感觉能够承受即可,但在医疗团队另有指示之前,请避免扭转、跪姿以及提重物。早期仰卧通常是最舒适的体位。休息时请避免在膝关节下方垫枕头,因为让膝关节保持弯曲会使其更难完全伸直。

恢复的里程碑以事件而非具体日期为标志。当肿胀消退时,行走会变得更加轻松。随着活动能力的恢复,上下楼梯以及进出汽车会感觉不那么别扭。一旦外科医生允许您驾驶,您即可重新上路。许多人在此手术后能够恢复日常活动,但这种情况通常比初次膝关节置换术发生得更晚。每个人的恢复情况各不相同,您的时间表也可能有所不同。您的外科医生和物理治疗师将在每个阶段为您提供指导。

可能出现的并发症

大多数患者恢复良好,但偶尔也会出现问题。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。

我们最密切关注的并发症是新关节周围的感染。感染可能导致膝关节发热、肿胀和疼痛,并伴有从伤口向外扩散的红肿。部分患者可能会感到全身不适或出现发热。如果您注意到这些迹象,请立即致电诊所,不要等到下次复诊。感染也可能在数月或数年后出现,因此在任何复查时,无论症状看似多么轻微,都应提及新的疼痛或肿胀。

有时,新植入的部件会在没有感染的情况下松动。这通常表现为逐渐复发的疼痛,在膝关节曾有一段稳定期后,站立或行走时疼痛往往加重。如果您的膝关节感觉不如之前稳定,或疼痛性质发生变化,请在下次复查时告知医生。

如果膝关节弯曲和伸直的范围未达到预期,可能会出现僵硬。您可能会发现下楼梯时不够舒适,或者弯曲时感觉紧绷和受阻。您的物理治疗师会持续检查您的关节活动度。如果进展停滞,请告知您的医疗团队,因为有时进一步的手术有助于恢复关节活动。

手术后,腿部偶尔会形成血凝块。这表现为小腿突然肿胀和压痛,有时伴有发热感或沉重酸痛。如果您注意到这些症状,或者出现呼吸困难或胸痛,请立即前往急诊科或呼叫救护车。

某些健康问题会增加此手术后并发症的风险,包括吸烟、体重过重以及肾脏疾病。我们会在手术前与您详细讨论您个人的风险,并在手术中和手术后采取步骤以降低这些风险。

本页上的并发症表格列出了典型的发生率,如果您想了解具体数据,可以参考该表格。

何时联系我们

如果您出现发热,伤口周围皮肤发红加重或开始渗出液体,或膝关节变得发热和肿胀,请立即联系我们。如果您出现膝关节突发剧烈疼痛,或无法感觉或活动腿部,请联系我们。如果您的小腿突然肿胀且触痛,或出现呼吸困难或胸痛,请前往急诊科或呼叫救护车。如果您对任何情况感到担忧,请随时联系我们。我们宁愿尽早了解您的轻微顾虑,也不希望您等待。


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 bones of the knee are the distal femur, the proximal tibia, and the patella [1].
  • The medial femoral condyle is larger and projects farther posteriorly and distally than the lateral condyle [3].
  • The lateral femoral condyle projects farther anteriorly and is wider in the medial-lateral direction than the medial femoral condyle [3].
  • The tibial articular surface slopes 7° to 10° in the sagittal plane [3].
  • The medial tibial plateau is larger than the lateral plateau and is concave in its frontal and sagittal planes [3].
  • The lateral tibial plateau is smaller and more circular than the medial plateau, concave in the frontal plane and convex in the sagittal plane [3].
  • The patella is the largest sesamoid bone in the body, averaging 2.5 cm in thickness [3].
  • The patella has the thickest articular surface in the body, approximately 5 mm in the midportion and 2 mm on the sides [3].
  • The posterior slope of the medial tibial plateau averages 10.7° and the lateral plateau averages 7.2° [17].
  • The fibular head is located a mean of 1.5 cm distal to the joint line, with a range of 6 to 32 mm [17].

Ligaments

  • The anterior cruciate ligament (ACL) prevents anterior translation and rotation of the tibia on the femur [1].
  • The posterior cruciate ligament (PCL) prevents posterior subluxation of the tibia on the femur [1].
  • The medial collateral ligament stabilizes the knee to valgus stresses [1].
  • The lateral collateral ligament is the main stabilizer against varus stress [1].
  • The ACL is composed of 90% type I collagen and 10% type III collagen [3, 4, 17].
  • The mean length of the ACL is 33 mm and the mean midsubstance width is 11 mm [3, 17].
  • The femoral attachment of the ACL is a semicircular area on the posteromedial aspect of the lateral femoral condyle, measuring 20 mm long and 10 mm wide [3, 17].
  • The tibial attachment of the ACL is a broad, irregular, oval-shaped area measuring 30 mm long and 10 mm wide [3].
  • The ACL consists of anteromedial and posterolateral bundles named according to their tibial insertions [4, 7, 15].
  • The anteromedial bundle of the ACL is tight in knee flexion [4, 7, 17].
  • The posterolateral bundle of the ACL is tight in knee extension [4, 7, 17].
  • The PCL has a mean length of 38 mm and a mean width of 13 mm [17].
  • The PCL has a broad, crescent-shaped femoral attachment on the anterolateral medial femoral condyle, measuring 30 mm long and 5 mm wide [17].
  • The tibial insertion of the PCL is located 10 to 15 mm distal to the joint line of the knee [17].
  • The ACL is typically subjected to peak loads of 170 N during walking and up to 500 N with running [18, 19].
  • The ultimate strength of the ACL in young patients is about 1750 N [18, 19].
  • The ACL fails by serial tearing at 10% to 15% elongation [18, 19].
  • Sectioning the PCL increases contact pressures in the medial compartment and the patellofemoral joint [18, 19].

Menisci

  • The menisci are C-shaped fibrocartilaginous disks that provide shock absorption, increase joint congruency, enhance stability, and aid in synovial fluid distribution [1].
  • The medial meniscus is firmly attached to the joint capsule along its entire peripheral edge [1].
  • The lateral meniscus is attached to the anterior and posterior capsule but has a region posterolaterally where it is not firmly attached [1].
  • The medial meniscus has less mobility than the lateral meniscus and is more susceptible to tearing when trapped between the femoral condyle and tibial plateau [1].
  • The lateral meniscus is larger than the medial meniscus and carries a greater share of the lateral compartment pressure [1].
  • The medial meniscus has a semicircular shape covering approximately 50% to 60% of the medial tibial plateau in adulthood [13].
  • The posterior horn of the medial meniscus averages 11 mm in the anterior-posterior dimension [13].
  • The lateral meniscus has a more circular C-shape with symmetric sizes of the anterior and posterior horns [13].
  • The mean lateral meniscus excursion from knee extension to flexion is 11.2 mm, compared to a mean medial meniscus excursion of 5.1 mm [13].
  • Menisci bear one-third to one-half of body weight [18, 19].
  • Removal of the menisci increases contact stresses by up to four times the load transfer to bone [18, 19].
  • The vascular supply to the menisci is derived from the geniculate arteries, penetrating 20% to 30% of the peripheral medial meniscus and 10% to 25% of the peripheral lateral meniscus [17].
  • The inner one-third of the meniscus is avascular and called the white-white zone [13].
  • The middle zone of the meniscus is called the red-white zone because it has limited vasculature [13].
  • The back one-third of the meniscus is called the red-red zone because it is the most vascularized tissue region [13].

Vascular and Nerve Anatomy

  • The blood supply to the knee is formed from an anastomosis around the knee derived from the descending geniculate artery, medial and lateral superior geniculate arteries, medial and lateral inferior geniculate arteries, middle geniculate artery, and anterior tibial recurrent arteries [3].
  • The middle geniculate artery supplies both the anterior and posterior cruciate ligaments [3].
  • The knee is innervated by branches of the femoral nerve (L2, L3, L4), obturator nerve (L2, L3, L4), and sciatic nerve (L4, L5, S1, S2) [3].
  • The posterior articular branch of the tibial nerve is the largest nerve providing innervation of the intra-articular knee [3].
  • The infrapatellar branch of the saphenous nerve arises proximal to the knee joint medially and crosses distal to the patella to innervate the skin over the anterior knee and proximal tibia [3].

Kinematics and Joint Forces

  • The knee is a hinge joint that incorporates both gliding and rolling, which are essential to its kinematics [4, 5].
  • The "screw-home" mechanism involves the tibia externally rotating 5 degrees in the final 15 degrees of extension [4, 5].
  • Knee joint surface loads are three times body weight during level walking and up to four times body weight with stair walking [18, 19].
  • The patella bears half the body weight with normal walking and seven times the body weight with squatting and jogging [18, 19].
  • In descending stairs, compressive force in the patellofemoral joint reaches two to three times body weight [18, 19].
  • The mechanical axis of the lower extremity normally passes just medial to the medial tibial spine [18, 19].
  • The mechanical axis of the lower extremity is in 3 degrees of valgus angulation from the vertical axis [18, 19].
  • The anatomic axis of the femur is in 6 degrees of valgus angulation from the mechanical axis [18, 19].
  • The anatomic axis of the tibia is in 2 to 3 degrees of varus angulation from the mechanical axis [18, 19].

Investigations

Plain Radiography

  • Plain radiographs are appropriate initial imaging studies for most knee conditions because they allow the assessment of traumatic injury, arthritis, patellofemoral alignment, osteochondral injury, bone neoplasm, and surgical implants [21].
  • Radiographic studies should include at least two perpendicular views: AP and lateral [21].
  • Weight-bearing AP (extension) views are used to assess cartilage loss from the distal femur and tibial plateau [21].
  • Weight-bearing PA (Rosenberg; flexion) views are used to assess cartilage loss from the posterior femur and tibial plateau [21].
  • Patellofemoral views are used to assess patellofemoral alignment (tilt/subluxation), patellar and trochlear morphology, osteochondral injury, and patellofemoral arthritis [21].
  • A notch view is used to assess posterior femoral cartilage, notch width, and osteophytes [21].
  • Radiographs may identify subchondral sclerosis, joint space narrowing, subchondral cysts (variable), osteophytes (variable), and joint subluxation in osteoarthritis [21].
  • Radiographs may identify joint space loss and peripheral bone erosion in inflammatory arthropathy [21].
  • Radiographs may identify subchondral radiolucency, most common in the medial femoral condyle, in osteochondral defects [21].
  • Radiographs may identify linear radiolucency or radiodensity, most common in the proximal medial tibia, in stress fractures [21].
  • Radiographs may identify a mixed sclerotic pattern with a subchondral, epiphyseal, or metaphyseal location in osteonecrosis [21].
  • Radiographs may identify malalignment, osteophytes, cysts, and joint space loss in patellofemoral disease [21].
  • Radiographs should be inspected for acute fracture, lateral capsular avulsion (Segond fracture), loose bodies, Pellegrini-Stieda lesion (MCL calcification), and evidence of patellar dislocation in patients with suspected significant knee injury [9].
  • Stress radiographs should be obtained in patients prior to skeletal maturity to rule out an epiphyseal fracture [9].
  • Stress radiographs can help to better quantify the amount of varus angulation present in LCL injuries [30].
  • Radiographs can underestimate isolated chondral lesions but may demonstrate joint space narrowing, osteophytes, sclerosis, and cysts [25].
  • Weight-bearing AP and lateral views and an axial view of the patellofemoral joint should be reviewed for articular cartilage evaluation [25].
  • The ability to detect subtle narrowing or an isolated chondral defect on the flexion surface may be improved with a semiflexed PA view [25].
  • Long leg alignment views are used to determine the mechanical axis [25].
  • If the mechanical axis traverses the involved compartment (varus knees with medial compartment lesions or valgus knees with lateral compartment lesions), realignment may need to be considered as an initial procedure or as an adjunct to a cartilage restorative procedure [25].
  • Radiographs are still the standard for initial evaluation of knee arthritis [29].
  • Images for knee arthritis evaluation should include weight-bearing AP and lateral views, a view of the weight-bearing knee flexed at 45-degree angle imaged posterior to anterior, a sunrise view (Merchant view), extension and flexion lateral views, and a standing full-length AP radiograph [29].
  • A standing full-length AP radiograph from hip joint to ankle joint is used to evaluate limb alignment and knee deformity and to identify femoral and/or tibial bone deformity [29].
  • The KL rating grades extent of OA based on review of AP knee radiograph [29].
  • Primary features used for KL rating include osteophytes (periarticular and tibial spine), joint space narrowing, subchondral sclerosis with or without subchondral cysts, and altered shape of periarticular bones [29].
  • KL Grade 0 indicates normal knee features with no OA [29].
  • KL Grade 1 indicates OA possibly present [29].
  • KL Grade 2 indicates OA present with minimal severity [29].
  • KL Grade 3 indicates OA present with moderate severity [29].
  • KL Grade 4 indicates OA present with severe severity [29].
  • Knee arthroplasty is recommended when Grade 4 findings are present [29].

Computed Tomography

  • CT provides a three-dimensional study performed with ionizing radiation that provides enhanced bone detail [21].
  • Imaging in the axial, sagittal, and coronal planes may help visualize fracture lines and displacement, osteolytic lesions around joint arthroplasty, and cortical disruption in cases of infection or neoplasia [21].
  • Three-dimensional reconstructions may help with preoperative planning for complex intra-articular fractures, multiplanar osteotomy for limb malalignment, and reconstitution of bone loss in joint arthroplasty [21].
  • Axial plane imaging of the hip and knee can help assess the rotational alignment of components of a total knee arthroplasty in cases of patellar maltracking [21].
  • Three-dimensional CT with remodeling is used for preoperative planning for reconstruction associated with dysplasia, post-trauma planning, and complex total knee arthroplasty (TKA) planning [29].

Magnetic Resonance Imaging

  • Increasing strength of the magnetic field (measured in Tesla units) increases the resolution of images [21].
  • An injected contrast agent (intravenous or intra-articular) may help delineate specific tissues of interest in MRI [21].
  • MRI may suggest cruciate ligament injury through the presence of edema, intra-articular fluid, disruption of ligament fibers, and an atypical ligament contour [21].
  • MRI can identify patterns of meniscal injury by location (anterior, midbody, posterior, peripheral, articular), pattern (horizontal, longitudinal, radial, complex), and displacement [21].
  • MRI may identify the degree of articular cartilage injury (chondrosis, full-thickness cartilage loss), the presence of associated bone marrow edema, and the location (medial condyle, lateral condyle, trochlea, patella; anterior, posterior) [21].
  • MRI may identify edema, avulsion, or discontinuity for the MCL/lateral collateral ligament (LCL) or associated posteromedial and posterolateral ligamentous complexes [21].
  • MRI may be used to assess the continuity of the quadriceps or patellar tendon [21].
  • MRI may be used to assess the margin of resection for a neoplasm, identify vascular malformation, or define the location of nerves or vessels relative to popliteal cysts [21].
  • MRI can be helpful in confirming MCL diagnosis and helping to rule out concomitant meniscal injury [9].
  • Relative indications for an MRI in MCL injury include an uncertain ACL status despite multiple examinations, evaluation of a suspected meniscal tear, or preoperative evaluation for a planned MCL reconstruction or repair [9].
  • MRI is often a useful adjunct for diagnosing posterolateral corner and LCL injuries in the severely injured knee [30].
  • MRI findings can refocus the examination to the posterolateral structures when posterolateral injury can often go unnoticed during an initial evaluation [30].
  • MRI should be obtained as a useful adjunct to help diagnose posterolateral corner injuries [30].
  • MRI can be used to evaluate articular cartilage morphology [25].
  • MRI is grossly overused in the arthritic patient population [29].
  • If the joint space is significantly narrowed on radiograph, then MRI is not indicated [29].
  • MRI is used when osteonecrosis is suspected [29].

Nuclear Medicine

  • Nuclear medicine involves labeled radionuclide injection followed by delayed imaging of gamma radiation [21].
  • Areas of increased radionuclide concentration appear bright or “hot” in nuclear medicine imaging [21].
  • Nuclear medicine provides a nonspecific study that does not define the etiology of an abnormality but rather the presence of an abnormality that may correlate with a clinical concern [21].
  • Increased radionuclide activity in bone may be a normal postoperative finding for up to 6 to 12 months after a fracture repair or arthroplasty [21].
  • Technetium-99 (Tc-99) is a radionuclide that may help identify infection, neoplasia, occult fracture, bone healing, active phases of heterotopic ossification, implant loosening, or failure of osseointegration [21].
  • Gallium-67 (Ga-67) is a radionuclide that may help differentiate between aseptic and septic prosthetic loosening [21].
  • 24 to 72 hours are needed for a complete Gallium-67 (Ga-67) study [21].

Physical Examination

  • The physical examination begins with observation of the patient’s gait [1].
  • The uninjured knee is examined as a basis of comparison with the injured knee [1].
  • Any swelling or effusion should be noted during physical examination [1].
  • A small effusion will cause obliteration of the recesses on the medial and lateral aspects of the patellar tendon [1].
  • With a larger effusion, diffuse swelling is present in the region of the suprapatellar pouch [1].
  • A fluid wave can be palpated on the sides of the patella with a larger effusion [1].
  • Active and then passive range of motion is tested carefully [1].
  • The knee is palpated to define areas of localized tenderness [1].
  • The joint lines are located at the level of the inferior pole of the patella when the knee is flexed to 90 degrees [1].
  • Laxity to valgus stresses is assessed by the amount of medial joint space opening that occurs at 30 degrees of flexion [9].
  • It is important to stress the knee at 30 degrees of flexion because with the knee in full extension the posterior capsule and PCL will stabilize the knee to valgus stress [9].
  • Zero opening is considered normal for valgus stress testing [9].
  • 1-4 mm of medial joint space opening indicates a grade I MCL injury [9].
  • 5–9 mm of medial joint space opening indicates a grade II MCL injury [9].
  • 10–15 mm of medial joint space opening indicates a complete or grade III MCL injury [9].
  • Grade I and II MCL injuries typically have a firm end point to valgus stress [9].
  • A grade III MCL injury tends to have a soft end point to valgus stress [9].
  • The integrity of the LCL is assessed by placing a varus stress, with the knee in full extension and 30 degrees of flexion [30].
  • The average baseline for varus opening is 7 degrees [30].
  • Exam findings with an isolated LCL injury should include varus laxity at 30 degrees of flexion and no instability in full extension [30].
  • The dial test is the most useful test to evaluate for posterolateral instability [30].
  • The dial test is performed at 30 and 90 degrees of flexion with a significant difference being an angle 5 degrees or greater than the contralateral leg [30].
  • Injury to the posterolateral capsule alone is confirmed with greater external rotation at 30 degrees [30].
  • An isolated PCL injury is confirmed with greater external rotation at 90 degrees [30].
  • Injury to both posterolateral capsule and PCL is confirmed when there is greater rotation at 30 and 90 degrees compared to the uninjured leg [30].
  • A careful neurovascular examination should be performed for LCL and/or posterolateral corner injury as the incidence of neurovascular injury, particularly peroneal nerve injury, has been reported in 12–29% of posterolateral knee injuries [30].
  • Patients commonly present with a history of a precipitating traumatic event or previous surgery for articular cartilage defects [25].
  • An effusion, motion deficits, or limb malalignment may be observed in patients with articular cartilage defects [25].
  • Knee stability should be compared with the normal side in patients with articular cartilage defects [25].
  • Patient assessment of knee pain includes a physical examination and diagnostic radiographic modalities [29].
  • Pain with weight bearing is aggravated by stairs, inclines, and transition from sit to stand in knee arthritis [29].
  • Bowing deformity and instability are seen later in the presentation of knee arthritis [29].
  • Knee thrust indicates ligament stretch-out (i.e., abnormal) on the convex side of thrust and is seen later in the clinical presentation of knee arthritis [29].
  • A varus thrust occurs when the knee pushes outward during stance phase of gait, overloading the medial compartment [29].
  • A valgus thrust occurs when the knee pushes inward during stance phase of gait, overloading the lateral compartment [29].

References

[1] A Lange Medical Book Current Diagnosis Treatment In Orthopedics Fifth Edition. 3Sports Medicine > Image KNEE INJURIES.

[3] Aaos Comprehensive Orthopaedic Review 3. Anatomy and Biomechanics of the Knee > I. Anatomy.

[4] Miller S Review Of Orthopaedics. SECTION 1 KNEE > ANATOMY (FIG. 4.1).

[5] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > SECTION 1 KNEE > ANATOMY (FIG. 4.1).

[7] Orthopaedic Knowledge Update Sports Medicine 6. Cruciate Ligament Injuries > Anterior Cruciate Ligament Injury > Anatomy and Biomechanics.

[9] A Lange Medical Book Current Diagnosis Treatment In Orthopedics Fifth Edition. 3Sports Medicine > 1. Medial Collateral Ligament Injuries.

[13] Orthopaedic Basic Science Fifth Edition Print Ebook. Biology and Mechanics of the Skeletal Extracellular Matrix > Gross Anatomy.

[15] Rockwood And Green S Fractures In Adults. 59: Patellar Fractures and Dislocations and Extensor Mechanism Injuries > Anterior Cruciate Ligament Anatomy.

[17] Aaos Comprehensive Orthopaedic Review 3. Radiographic Evaluation and Surgical Anatomy of the Knee > II. Surgical Anatomy of the Knee.

[18] Miller S Review Of Orthopaedics. ARTHRODESIS PERSON > Kinetics.

[19] Miller S Review Of Orthopaedics. Genetics of musculoskeletal conditions and abnormalities are summarized in Table 1.27 > ARTHRODESIS PERSON > Kinetics.

[21] Aaos Comprehensive Orthopaedic Review 3. Radiographic Evaluation and Surgical Anatomy of the Knee > I. Radiographic Evaluation.

[25] Aaos Comprehensive Orthopaedic Review 3. Articular Cartilage Injury and Treatment > IV. Full-­Thickness Outerbridge Grade IV Defects.

[29] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > SECTION 11 KNEE ARTHRITIS ASSESSMENT.

[30] A Lange Medical Book Current Diagnosis Treatment In Orthopedics Fifth Edition. 3Sports Medicine > 2. Lateral Collateral Ligament Injuries.

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