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Patients › Knee

Reconstrução do LMPF

Updated Sep 2026
Illustration: knee

Esta página foi traduzida automaticamente e ainda não foi verificada por um médico. A versão em inglês é a versão oficial.

Por que esta cirurgia foi recomendada

Esta cirurgia reconstrói um ligamento localizado na face interna da rótula. Esse ligamento, chamado LMPF (ligamento patelofemoral medial), mantém a rótula no seu sulco ósseo e impede que ela se desloque. Recomendamos a cirurgia quando a rótula já se deslocou mais de uma vez e quando o uso de órteses ou fisioterapia não trouxe melhora suficiente. Ela não é indicada apenas para dor na rótula ou para casos de artrose degenerativa. Antes de decidir, avaliamos a rótula, a forma da articulação e a cartilagem localizada atrás da rótula. Em alguns casos, também é necessário realizar um procedimento para mover ou remodelar o osso; planejamos isso caso a morfologia da sua articulação exija tal intervenção. O objetivo da cirurgia é manter a rótula em posição, permitindo que você movimente e utilize o joelho sem que ele ceda.

Antes da operação

Serão necessárias algumas imagens diagnósticas antes da cirurgia, para que possamos planejá-la. Geralmente, trata-se de um raio-X e de uma ressonância magnética, que produzem imagens detalhadas dos tecidos moles do seu joelho. Às vezes, também se utiliza ultrassom.

Nas semanas que antecedem a operação, forneceremos instruções claras. Você deverá parar de comer e beber sete horas antes da cirurgia. Pedimos sete horas em vez de seis para que possamos adiantar o seu procedimento caso a lista de cirurgias avance mais cedo. Alguns medicamentos talvez precisem ser suspensos; informaremos quais e quando. Traga uma lista escrita de todos os medicamentos que toma, incluindo suplementos. Organize também para que alguém o leve para casa após a cirurgia, pois você não poderá dirigir. No dia da operação, use roupas largas e confortáveis.

Caso tenha outras condições médicas, poderá ser necessário fazer exames de sangue ou uma consulta com o anestesista (o especialista que cuidará de você durante a cirurgia). A maioria das pessoas, porém, não precisa de nenhum dos dois.

No dia da cirurgia

Você chega à unidade de admissão cirúrgica do hospital, onde será registrado e preparado para a sala de operações. Lá, encontrará o anestesista. Esta cirurgia é realizada sob anestesia geral. Às vezes, um bloqueio nervoso regional é adicionado para alívio da dor pós-operatória; o anestesista conversará com você sobre isso no próprio dia. Em seguida, você é levado à sala de operações, onde a cirurgia é realizada.

Você acorda na área de recuperação, onde os enfermeiros monitoram você enquanto a anestesia vai passando. Assim que seu estado se estabilizar, você será encaminhado para o quarto ou poderá ir para casa, dependendo do tipo de procedimento e da sua recuperação. Caso vá para casa no mesmo dia, a pessoa que você combinou anteriormente o levará de carro.

O que envolve a operação

O cirurgião reconstrói o LMPF, o ligamento localizado na face interna da rótula que a mantém em seu sulco ósseo. O novo ligamento é feito a partir de um pedaço de tendão, que pode ser retirado do próprio corpo do paciente — geralmente dos tendões isquiotibiais — ou de tecido tendinoso doado. Ambos os tipos têm a mesma eficácia, e o cirurgião escolherá aquele mais adequado para você.

O cirurgião faz pequenos cortes ao redor do joelho para alcançar a rótula e o fêmur adjacente. Em seguida, o enxerto tendinoso é fixado na face interna da rótula e no fêmur, garantindo que a rótula permaneça em seu sulco durante a flexão e extensão do joelho. O enxerto é fixado no local por meio de pequenos parafusos ou âncoras (dispositivos minúsculos inseridos no osso), que o mantêm firme enquanto cicatriza. Por fim, os cortes são fechados com pontos de sutura e cobertos com curativo.

Às vezes, também é necessário corrigir a forma da articulação do joelho. Caso a rótula esteja posicionada muito alto ou o sulco em que ela desliza seja muito raso, o cirurgião pode, durante a mesma operação, reposicionar ou remodelar o osso da parte anterior da tíbia. Essa decisão é tomada previamente, com base nos raios-X e exames de imagem do paciente. Se houver danos na cartilagem atrás da rótula, esse problema também pode ser tratado simultaneamente.

O objetivo de todo esse procedimento é garantir que a rótula permaneça em seu sulco durante os movimentos, flexões e quando o paciente exerce carga sobre a perna.

Após a operação

Você acordará na sala de recuperação, onde as enfermeiras cuidarão de você enquanto o efeito da anestesia passa. O seu joelho ficará coberto por um curativo, e talvez você receba uma manga de suporte em vez de uma órtese pesada. As enfermeiras ajudarão a controlar qualquer dor e farão visitas regulares para verificar seu estado. A maioria dos pacientes consegue ficar de pé e dar alguns passos com ajuda no mesmo dia; um fisioterapeuta poderá ensinar como caminhar com segurança. Como você pode sentir sonolência ou instabilidade, alguém deve permanecer ao seu lado nas primeiras 24 horas após voltar para casa. Sua equipe informará se você poderá ir para casa no mesmo dia ou se precisará ficar uma noite no hospital. Deixamos o curativo por cerca de 10 dias; por favor, não o retire antes disso, a menos que lhe seja indicado. Trocamos ou retiramos o curativo durante as consultas de acompanhamento.

Recuperação

Nos primeiros dias, o seu joelho ficará dolorido e inchado. Isso é normal e deve melhorar gradualmente nas semanas seguintes. O repouso, o uso de gelo e os analgésicos prescritos pela sua equipe ajudarão a aliviar o desconforto. Manter a perna elevada enquanto está sentado também contribui para reduzir o inchaço.

Na maioria das pessoas, já no dia da cirurgia é possível ficar de pé e dar alguns passos com ajuda. Depois disso, um fisioterapeuta orienta a sua reabilitação. Inicialmente, os exercícios visam dobrar e esticar o joelho, além de reativar os músculos da coxa. À medida que a mobilidade retorna, passa-se para exercícios de fortalecimento e atividades que envolvem várias articulações, como agachamentos controlados ou subidas em degraus. O fisioterapeuta adaptará o programa às suas necessidades e o fará progredir conforme o joelho permitir. Você poderá circular pela casa e realizar tarefas cotidianas leves, porém deve evitar torções, giros bruscos ou dar impulso forte com a perna operada até que a equipe autorize.

A recuperação varia de pessoa para pessoa; o seu cronograma pode ser diferente do de outros pacientes. O cirurgião e o fisioterapeuta o guiarão em cada etapa. É importante ter paciência: retornar ao esporte antes de o joelho estar totalmente preparado pode causar mais dor e piorar a função articular posteriormente. Aguardar até que a força, a mobilidade e a confiança estejam restauradas dá ao novo ligamento a melhor chance de desempenhar bem seu papel. Algumas pessoas também sentem receio de que a rótula volte a “ceder” ao retomarem as atividades; isso é comum, e conversar sobre isso com a sua equipe ajuda a superar essa preocupação.

O que pode dar errado

A maioria dos pacientes tem bons resultados, mas, ocasionalmente, podem surgir problemas. O seu cirurgião e a equipe monitoram você de perto para detectar qualquer questão precocemente.

O problema mais comum é a rigidez, na qual o joelho não dobra tanto quanto deveria. Você pode perceber que não consegue dobrar ou esticar completamente o joelho, ou que ele parece rígido e resiste aos movimentos. Isso pode acontecer se o novo ligamento estiver um pouco apertado demais. Informe a equipe na próxima consulta; o tratamento precoce com fisioterapia costuma ajudar.

A rótula ainda pode deslocar-se ou sair do lugar, embora isso seja raro. Você sentiria aquela mesma sensação súbita de o joelho ceder que já conhecia antes da cirurgia, geralmente acompanhada de dor e inchaço. Caso isso ocorra, entre em contato com a clínica. Às vezes, a sensação é mais leve: uma impressão de que a rótula pode deslizar, ou uma perda de confiança no joelho ao girá-lo. Mencione isso na consulta, pois pode ser avaliado e tratado.

Raramente, a rótula pode fraturar. Isso provoca dor aguda e súbita na parte da frente do joelho, frequentemente com inchaço; você pode não conseguir colocar peso na perna ou esticar o joelho contra a gravidade. Se isso acontecer, vá ao pronto-socorro.

A posição em que o enxerto é fixado ao fêmur é importante. Se não estiver exatamente correta, a rótula pode continuar instável ou o joelho pode não se mover de forma suave. Se, após vários meses, o joelho ainda não parecer estável, mencione isso na consulta para que seja avaliado.

Algumas pessoas precisam de uma cirurgia adicional. As razões incluem deslocamento persistente da rótula, rigidez contínua ou desconforto causado pelos pequenos parafusos ou âncoras usados para fixar o enxerto. Se sentir uma dor persistente perto de algum desses elementos, ou notar que o joelho trava, avise-nos.

Se a sua cirurgia também envolveu movimentar ou remodelar o osso na parte da frente da tíbia, a probabilidade geral de complicações aumenta um pouco, embora a rótula tenda a permanecer mais estável. A equipe conversará sobre isso com você antes da cirurgia.

A tabela de complicações nesta página lista as taxas típicas, caso deseje conhecer os detalhes.

Quando nos ligar

A maioria dos problemas aparece logo no início, e preferimos saber deles o quanto antes. Ligue para nós se tiver febre, se a pele ao redor da ferida ficar mais vermelha ou começar a vazar líquido, ou se a dor piorar muito de repente. Vá ao pronto-socorro se tiver inchaço ou dor na panturrilha, ou falta de ar, pois esses podem ser sinais de um coágulo sanguíneo. Vá também ao pronto-socorro se a perna ficar dormente, mudar de cor ou se você não conseguir movê-la.


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 sulcus terminalis is a small ridge on the lateral femoral condyle just distal to the intercondylar notch that separates the patellofemoral and tibiofemoral articular surfaces [3].
  • The trochlear groove separates the femoral condyles anteriorly and constitutes the patellofemoral articulation [3].
  • The intercondylar notch is of variable width and is the site of attachment of the cruciate ligaments [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 tibial tuberosity is the site of attachment of the patellar tendon and is typically located in the midline anteriorly but may be slightly lateral [3].
  • Gerdy’s tubercle is the insertion site of the iliotibial band and is located 2 to 3 cm lateral to the tibial tubercle on the proximal tibia [3].
  • The patella is the largest sesamoid bone in the body and averages 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 articular surface of the patella contains a vertical, central ridge that separates the broader lateral facet from the medial facet, and a smaller, more medial facet called the odd facet [3].
  • The posterior slope of the tibia is a mean of 10.7° in the medial plateau and 7.2° in the lateral plateau [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 below the joint line [17].
  • The MCL originates on the femoral sulcus approximately 3.2 cm proximal and 4.8 cm posterior to the articular surface of the femur at the knee [17].
  • The lateral trochlear facet resists lateral subluxation of the patella [17].
  • The sulcus terminalis is a transverse ridge extending from the oblique facets of the femoral trochlea that is deeper on the lateral condyle than on the medial condyle [17].
  • The PCL inserts on the anteromedial wall of the intercondylar notch and the ACL inserts on the posterolateral wall [17].

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 inferior geniculate arteries pass deep to their respective collateral ligaments [3].
  • The blood supply of the patella is derived from the geniculate artery complex with some contribution from the anterior tibial recurrent artery and primarily exists in the middle to inferior portions of the patella [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 largest nerve providing innervation of the intra-articular knee is the posterior articular branch of the tibial nerve [3].
  • The posterior articular branch of the tibial nerve supplies the infrapatellar fat pad, the synovial covering over the cruciate ligaments, and the periphery of the meniscus [3].
  • Nerves to the cruciate ligaments contain vasomotor and pain fibers as well as mechanoreceptors that may be involved in proprioception [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 region of the anterior knee and proximal tibia [3].
  • The popliteus artery travels through the adductor hiatus, where it is relatively immobile, and distally through the fibrous arch deep to the soleus muscle [23].
  • The common peroneal nerve travels along the posterior edge of the biceps femoris and continues distally around the fibular neck [23].
  • The tibial nerve, after branching from the sciatic nerve, courses distally through the center of the popliteus fossa [23].

Ligaments

  • The ACL travels from the medial border of the lateral femoral condyle to its insertion site anterolateral to the medial tibial spine [1].
  • The ACL prevents anterior translation and rotation of the tibia on the femur [1].
  • The PCL prevents posterior subluxation of the tibia on the femur [1].
  • The PCL runs from the lateral aspect of the medial femoral condyle to the posterior aspect of the tibia, just below the joint line [1].
  • The medial collateral ligament has superficial and deep portions which stabilize the knee to valgus stresses [1].
  • The lateral collateral or fibular collateral ligament runs from the lateral femoral condyle to the head of the fibula [1].
  • The lateral collateral ligament is the main stabilizer against varus stress [1].
  • The popliteofibular ligament is present in 90% of knees and runs from the tendon of the popliteus muscle to the styloid on the posterior fibular head [1].
  • The ACL is composed of 90% type I collagen and 10% type III collagen [3].
  • The mean length of the ACL is 33 mm and the mean midsubstance width is 11 mm [3].
  • The femoral attachment of the ACL is a semicircular area (20 mm long and 10 mm wide) on the posteromedial aspect of the lateral femoral condyle [3].
  • The tibial attachment of the ACL is a broad, irregular, oval-shaped area (30 mm long and 10 mm wide) slightly medial and anterior to the midline and between the medial and lateral tibial spinous processes [3].
  • The ACL is an intra-articular ligament but technically extrasynovial as it is surrounded by synovium [15].
  • The ACL has a variable length of 22 to 41 mm and width of 7 to 12 mm, consistently narrowest in the midsubstance [15].
  • The femoral origin of the ACL is on the posteromedial edge of the lateral femoral condyle, posterior to the lateral intercondylar ridge (Resident’s ridge) [15].
  • The AM bundle of the ACL arises from the superior and anterior aspects of the femoral attachment and the PL bundle arises from the posterior and inferior aspects [15].
  • The AM and PL bundles of the ACL are often separated by the lateral bifurcate ridge [15].
  • Using a clock-face description based on the posterior outlet of the femoral intercondylar notch, the bulk of the AM bundle is attached between 9.30 and 11.30 o'clock and the PL bundle between 8.30 and 10 o'clock [15].
  • The distance on the femur between the centers of the AM and PL bundles varies from 8 to 10 mm [15].
  • The tibial footprint of the ACL is on the tibial plateau in the anterior intercondylar fossa between the medial and lateral tibial spines [15].
  • The tibial insertion of the ACL is 120% larger than the femoral insertion [15].
  • The tibial insertion of the ACL is anterolateral to the medial tibial spine, with some fibers passing deep to the transverse meniscal ligament and some merging with the anterior aspect of the lateral meniscus [15].
  • The most commonly used landmarks for the tibial footprint of the ACL are the anterior aspect of the PCL (7 to 10.4 mm anterior to the PCL), the posterior border of the anterior horn of the lateral meniscus, and the medial tibial spine [15].
  • The center of the PL bundle is 4 ± 1 mm from the medial tibial spine and the center of the AM bundle is 5 ± 1 mm from this landmark [15].
  • The PCL has a mean length of 38 mm and mean width of 13 mm [17].
  • The PCL has a broad, crescent-shaped femoral attachment on the anterolateral medial femoral condyle with a mean length of 30 mm and mean width of 5 mm [17].
  • The tibial insertion of the PCL onto the posterior central sulcus is 10 to 15 mm distal to the joint line of the knee [17].
  • The middle geniculate artery is the primary blood supply to the PCL [17].
  • The popliteal artery is near the PCL, and the distance increases with knee flexion [17].
  • The posterior articular branch of the posterior tibial nerve provides innervation to the PCL [17].
  • The anterolateral bundle of the PCL is stronger and stiffer than the posteromedial bundle [17].
  • The anterolateral bundle of the PCL is tight in knee flexion and the posteromedial bundle is tight in knee extension [17].
  • The ACL is typically subjected to peak loads of 170 N during walking and up to 500 N with running [18].
  • The ultimate strength of the ACL in young patients is about 1750 N [18].
  • The ACL fails by serial tearing at 10% to 15% elongation [18].
  • Sectioning the PCL increases contact pressures in the medial compartment and the patellofemoral joint [18].
  • The ACL's primary function is to resist anterior translation of the tibia relative to the femur [23].
  • The ACL's secondary function is to resist varus/valgus stresses in full extension [23].
  • The PCL's primary function is to resist posterior translation of the tibia relative to the femur [23].
  • The PCL's secondary function is to resist tibial external rotation [23].
  • The MCL resists valgus stress [23].
  • The FCL resists varus stress [23].
  • The posterolateral corner (PLC) resists posterior translation, external rotation, and varus angulation of the tibia [23].
  • The posteromedial corner (PMC) resists valgus stress [23].
  • The anteromedial bundle of the ACL is tight in knee flexion and the posterolateral bundle is tight in knee extension [17].
  • The posterolateral bundle of the ACL is responsible for preventing the pivot-shift phenomenon and stabilizes against anterior translation with 30° of knee flexion [17].
  • The anteromedial bundle of the ACL increases anterior tibial translation at 60° and 90° of knee flexion [17].
  • The AM bundle of the ACL originates proximal to the bifurcate ridge and is tight in flexion [4].
  • The PL bundle of the ACL originates distal to the bifurcate ridge and is tight in extension [4].
  • The AM bundle of the ACL is primarily an anterior restraint evaluated by Lachman and anterior drawer tests [4].
  • The PL bundle of the ACL is primarily a rotatory restraint evaluated by pivot shift test [4].
  • The ACL has a length of 30 mm and diameter of 11 mm [4].
  • The sMCL proximal division resists valgus tibial translation and tibial external rotation [4].
  • The sMCL distal division resists tibial external rotation in knee extension and tibial internal rotation [4].
  • The deep MCL resists valgus translation and tibial internal and external rotation [4].
  • The posterior oblique ligament resists tibial internal rotation (especially in knee extension) and tibial external rotation [4].
  • The lateral collateral ligament resists varus tibial translation and tibial external rotation (especially at 30 degrees of knee flexion) [4].
  • The popliteus tendon resists tibial external rotation (especially in knee flexion) and varus tibial translation [4].
  • The popliteofibular ligament resists tibial external rotation (especially in knee flexion) and posterior tibial displacement [4].
  • The oblique popliteal ligament resists knee hyperextension and varus tibial translation [4].

Menisci

  • The menisci are C-shaped fibrocartilaginous disks in the knee that provide shock absorption, allow for increased congruency between joint surfaces, enhance joint stability, and aid in distribution of synovial fluid [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 there is 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 than the medial meniscus carries for the medial compartment [1].
  • The knee menisci are wedge-shaped fibrocartilaginous structures situated between the femoral condyles and tibial plateau [13].
  • The medial meniscus has a semicircular shape, which covers 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, whereas the anterior horn is narrower [13].
  • The anterior horn of the medial meniscus attaches to the tibia anterior to the ACL near the intercondylar fossa [13].
  • The transverse, or intermeniscal, ligament connects the anterior horns of the medial and lateral menisci [13].
  • The posterior root attachment of the medial meniscus lies in the posterior intercondylar fossa between the lateral meniscus and PCL [13].
  • The meniscotibial (coronary) ligament stabilizes the medial meniscus through its attachment from the inferior aspect of the posterior horn to the tibia [13].
  • The medial meniscus is firmly attached to the deep medial collateral ligament and joint capsule, limiting its mobility [13].
  • The lateral meniscus has a more circular C-shape with symmetric sizes of the anterior and posterior horns [13].
  • The lateral meniscus anterior root attaches anterior to the intercondylar eminence and just lateral to the ACL insertion site on the tibia [13].
  • The lateral meniscus posterior root attaches posterior to the lateral tibial spine just anterior to the medial meniscus posterior root [13].
  • The popliteomeniscal fascicles extend from the lateral meniscus to the posterior capsule to create the popliteal hiatus [13].
  • The meniscofemoral ligaments are variably present structures which connect the posterior horn of the lateral meniscus to the medial femoral condyle [13].
  • The ligament of Humphrey crosses anterior to the PCL and the ligament of Wrisberg crosses posteriorly [13].
  • The less continuous attachment of the lateral meniscus to the capsule allows for greater meniscal mobility [13].
  • Mean lateral meniscus excursion is 11.2 mm versus a mean medial meniscus excursion of 5.1 mm occurring from knee extension to flexion [13].
  • Menisci have three zones based on vasculature and extracellular matrix composition: white-white (ww), red-white (rw), and red-red (rr) [13].
  • The inner one-third of the meniscus is avascular and called the white-white zone (WWZ) [13].
  • The middle zone is called the red-white zone (RWZ) because it has limited vasculature [13].
  • The back one-third is called the red-red zone (RRZ) because it is the most vascularized tissue region that has access to blood supply through vessels arising from the geniculate arteries [13].
  • The menisci are crescent-shaped, fibrocartilaginous structures with a triangular cross section [17].
  • The menisci consist of type I collagen fibers arranged obliquely, radially, and vertically [17].
  • Vascular supply to the menisci is derived from the geniculate arteries, which penetrate into 20% to 30% of the peripheral medial meniscus and 10% to 25% of the peripheral lateral meniscus [17].
  • The menisci are attached to collateral ligaments via coronary ligaments [17].
  • The medial meniscus is crescent-shaped and attaches more anterior and posterior [17].
  • The lateral meniscus is circular in shape and covers a larger proportion of the tibial plateau [17].
  • The anterior attachment of the lateral meniscus is adjacent to the tibial insertion of the ACL [17].

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].
  • Imaging 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 should be inspected for acute fracture, lateral capsular avulsion (Segond fracture), loose bodies, Pellegrini-Stieda lesion (MCL calcification), and evidence of patellar dislocation [9].
  • Lateral capsular avulsion (meniscotibial ligament) is pathognomonic but not essential for ACL injury [21].
  • Avulsion of the medial femoral epicondyle (Pellegrini-Stieda lesion) may appear within a few weeks of proximal MCL avulsion injury [21].
  • Stress radiographs should be obtained in patients prior to skeletal maturity to rule out an epiphyseal fracture [9].
  • 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 should be inspected for fibular head avulsions in patients with suspected LCL injury [30].
  • With chronic posterolateral instability, degenerative changes of the lateral compartment are often noted on radiographs, including lateral joint space narrowing with osteophytes and subchondral sclerosis [30].
  • Stress radiographs can help to better quantify the amount of varus angulation present in LCL injuries [30].

Computed Tomography

  • Computed tomography provides a three-dimensional study with 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 on MRI [21].
  • The presence of edema, intra-articular fluid, disruption of ligament fibers, and an atypical ligament contour may suggest cruciate ligament injury on MRI [21].
  • Patterns of meniscal injury can be identified by location (anterior, midbody, posterior, peripheral, articular), pattern (horizontal, longitudinal, radial, complex), and displacement on MRI [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].
  • Edema, avulsion, or discontinuity may be identified for the MCL/lateral collateral ligament (LCL) or associated posteromedial and posterolateral ligamentous complexes on MRI [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 is useful for confirming MCL injury and identifying the site of injury [9].
  • MRI is useful to detect the presence of meniscal and other injuries to the knee in the context of MCL injury [9].
  • Relative indications for an MRI 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 is not indicated if the joint space is significantly narrowed on radiograph in the arthritic patient population [29].
  • MRI is used when osteonecrosis is suspected in the arthritic patient population [29].
  • MRI can be used to evaluate articular cartilage morphology [25].
  • A systematic review quantified the accuracy of MRI for detection of meniscal injury and ACL tear [27].
  • Compositional MRI techniques (ie, T1ρ, T2*, dGEMRIC, gagCEST) have been used for early recognition of cartilage degeneration [27].

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 for MCL injuries [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, with 1-4 mm indicating a grade I injury, 5–9 mm indicating a grade II injury, and 10–15 mm indicating a complete or grade III injury for MCL injuries [9].
  • Grade I and II MCL injuries typically have a firm end point, whereas a grade III 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].
  • Baseline varus opening is widely variable and should be compared to the contralateral leg [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 most useful test to evaluate for posterolateral instability is the dial test [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, an isolated PCL at 90 degrees, and to both structures when there is greater rotation at 30 and 90 degrees compared to the uninjured leg [30].
  • A careful neurovascular examination should be performed as the incidence of neurovascular injury, particularly peroneal nerve injury, has been reported in 12–29% of posterolateral knee injuries [30].
  • An examination under anesthesia can be valuable when physical examination is unreliable because of the patient guarding the knee [9].
  • Diagnostic arthroscopy can be used to evaluate for coexisting pathology [9].
  • Both examination under anesthesia and diagnostic arthroscopy have largely been replaced by MRI [9].

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” [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; 24 to 72 hours are needed for a complete study [21].

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).

[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.

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

[23] Aaos Comprehensive Orthopaedic Review 3. Knee Dislocations and Patellar Fractures* > I. Knee Dislocations.

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

[27] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Knee Arthroscopy and Preservation, Knee Reconstruction > Annotated References.

[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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