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Reconstrucción (estabilización) de los ligamentos del codo

Updated Sep 2026

Esta página se tradujo automáticamente y todavía no la ha revisado un médico. La versión en inglés es la versión oficial.

¿Por qué se ha sugerido esta operación?

El Dr. Kieran Hirpara, cirujano de extremidades superiores en el Mater Private Hospital Rockhampton, adapta el tratamiento a su lesión específica. Por lo general, los pacientes son derivados a nuestra clínica por su médico de cabecera; si un fisioterapeuta le ha recomendado que nos consulte, igualmente necesitará una derivación de su médico de cabecera para poder acceder al reembolso de Medicare. En su consulta, tomamos su historia clínica, examinamos su codo y, si es necesario, solicitamos estudios de imagen para determinar cuál es el problema.

La reconstrucción de los ligamentos del codo es una intervención mediante la cual se repara un ligamento desgastado o roto utilizando un fragmento de tendón de donante, con el fin de mantener la articulación estable. Normalmente la recomendamos cuando, tras otros tratamientos, el codo sigue mostrando tendencia a “ceder” o no permanece en su posición correcta. También se indica cuando el codo solo puede mantenerse en su sitio si se mantiene casi completamente estirado, o cuando una fractura cerca de la articulación ha provocado inestabilidad. El objetivo es lograr un codo estable que pueda moverse, usarse y confiarse sin dolor. La reconstrucción con injerto alogénico restaura la estabilidad del codo en aproximadamente el 85 % de los casos de inestabilidad rotatoria posterolateral. Discutiremos todo esto con usted y decidiremos conjuntamente si este procedimiento se adapta a su codo y a sus objetivos.

Antes de la operación

En las semanas previas a la cirugía, finalizamos la planificación mediante estudios como radiografías, resonancias magnéticas (un estudio que muestra los tejidos blandos, como los ligamentos) o ecografías. El día de la operación, no debe ingerir alimentos durante siete horas antes. Pedimos que se respeten esas siete horas para poder adelantar su intervención si la lista de quirófanos lo permite; su cirujano le confirmará el tiempo exacto de ayuno. Es posible que deba suspender algunos medicamentos antes de la cirugía; le daremos instrucciones claras sobre cuáles y por cuánto tiempo. Lleve una lista por escrito de todos los fármacos que toma, incluyendo pastillas, gotas y cremas. Organice que alguien lo lleve a casa después de la operación. Use ropa holgada y cómoda, cuyas mangas puedan deslizarse por encima del codo. Si padece otras enfermedades, es posible que también necesite análisis de sangre o una consulta con el anestesista (el médico encargado de administrar la anestesia).

El día de la intervención

Llega usted a la unidad de admisiones quirúrgicas del hospital, donde se le registrará y preparará para el quirófano. Allí conocerá al anestesista. Esta operación se realiza bajo anestesia general. En ocasiones se añade un bloqueo nervioso regional para aliviar el dolor postoperatorio; el anestesista hablará con usted al respecto ese mismo día. A continuación, se le lleva al quirófano, donde se lleva a cabo la intervención. Una vez finalizada, despierta usted en la sala de recuperación, donde las enfermeras le vigilan mientras la anestesia va desapareciendo. Cuando su estado sea estable, será trasladado a la planta de hospitalización o podrá volver a casa, según el tipo de procedimiento y su recuperación.

El objetivo de este día es sencillo: devolver suficiente estabilidad al codo para que pueda empezar a moverse poco después de la cirugía. Mantener el codo inmóvil durante mucho tiempo después de la operación suele provocar rigidez, por lo que el movimiento temprano forma parte del plan de tratamiento.

Qué implica la operación

Los pasos exactos dependen de qué estructuras alrededor del codo están dañadas; planificamos todo esto a partir de sus estudios de imagen antes del día de la intervención. Si hay una fractura, el cirujano repara primero los fragmentos óseos mediante tornillos o una placa pequeña. En caso de que un fragmento óseo en la parte superior del antebrazo no pueda repararse, podría sustituirse por un implante metálico. Una vez que el hueso queda estabilizado, se reparan o reconstruyen los ligamentos desgarrados.

La reconstrucción de un ligamento consiste en crear uno nuevo a partir de un fragmento de tendón; este puede provenir de tejido de donante o de su propio cuerpo. Pequeñas anclas fijan el nuevo ligamento a los huesos en los lugares adecuados, y el cirujano verifica que el codo mantenga su articulación en toda su amplitud de movimiento antes de finalizar. En ocasiones, se añade una cinta de sutura resistente junto a la reparación, que actúa como un refuerzo interno y sostiene el ligamento mientras cicatriza. Si el codo sigue sin mantenerse estable, se puede colocar una bisagra temporal para mantenerlo en posición mientras todo se asienta.

Con frecuencia, la operación se realiza mediante incisiones pequeñas en lugar de una sola incisión larga. Para ciertas reconstrucciones ligamentosas, una incisión de unos 2 a 3 cm es suficiente. Realizar la intervención a través de incisiones pequeñas protege los tendones y músculos sanos alrededor de la articulación, evitando alterar el propio revestimiento articular.

Una vez finalizada la reparación, las incisiones se cierran con puntos de sutura y se cubren con un vendaje. El objetivo de toda la operación es obtener un codo estable que pueda comenzar a moverse poco después, ya que mantenerlo inmóvil durante demasiado tiempo suele provocar rigidez.

Después de la operación

Despertará en la sala de recuperación, donde las enfermeras lo vigilarán de cerca mientras el efecto de la anestesia desaparece. Su brazo estará en un cabestrillo o apoyado en almohadas, con un vendaje sobre las heridas. Le administraremos analgésicos y comprobaremos que surtan efecto antes de permitirle moverse. Alguien debe acompañarlo durante las primeras 24 horas después de volver a casa. Su equipo le indicará si podrá irse a casa el mismo día o si deberá permanecer una noche en el hospital. Dejamos el vendaje puesto durante unos 10 días; por favor, no lo retire antes de ese plazo a menos que se lo indiquemos. Lo cambiamos o lo retiramos cuando venga a la consulta. La mayoría de las personas pueden caminar y realizar tareas ligeras de inmediato, pero debe mantener el codo apoyado en el cabestrillo mientras se mueva.

Recuperación

Durante los primeros días, el codo le dolerá y se hinchará. Esto mejora gradualmente. El descanso, mantener el brazo elevado y los analgésicos que le proporcionamos aliviarán la molestia. Es normal sentir cierto dolor al empezar a mover la articulación; este dolor disminuye con el paso de las semanas.

Se irá a casa con el brazo en un cabestrillo. Podrá caminar y realizar tareas ligeras de inmediato, pero deberá mantener el codo apoyado en el cabestrillo mientras esté de pie. La mano y la muñeca pueden moverse desde el principio; los ejercicios suaves para ellas suelen comenzar a los pocos días. La terapia de la mano tras la cirugía la llevará a cabo Ruby Doolan en Extend Rehabilitation. Ruby es terapeuta especializada en mano: ella le guiará en los ejercicios y le confeccionará cualquier férula que necesite. El objetivo de la terapia es lograr un movimiento temprano y constante, pues mantener el codo inmóvil durante mucho tiempo suele provocar rigidez.

A medida que la hinchazón disminuya, podrá utilizar más el brazo: para comer, escribir y realizar tareas domésticas ligeras. Una vez que el cirujano considere que la reparación es segura, se retirará el cabestrillo y comenzará a doblar y estirar el codo por sí mismo. Al principio, el movimiento suele mejorar rápidamente; después, el progreso se vuelve más lento. Cuando pueda agarrar y sostener objetos sin dolor, las actividades cotidianas le resultarán más fáciles. No es seguro conducir mientras el brazo permanezca en cabestrillo; además, deberá ser capaz de sujetar el volante con ambas manos y reaccionar en caso de una frenada de emergencia, sin depender de fuertes analgésicos. Nuestra guía sobre conducción tras una cirugía de miembro superior explica cuándo puede volver a conducir.

Cada persona sana a su propio ritmo. Su cronograma personal puede variar; su cirujano y terapeuta le guiarán durante todo el proceso.

Qué puede salir mal

La mayoría de los pacientes evolucionan bien, pero en ocasiones pueden surgir problemas. Su cirujano y el equipo lo vigilarán de cerca para detectar cualquier incidencia a tiempo.

El nervio que discurre por la parte interna del codo puede irritarse después de la cirugía. Es posible que note hormigueo, sensación de pinchazos o entumecimiento en el dedo anular y el meñique. Con frecuencia esto se resuelve por sí solo; sin embargo, avísenos si no mejora o si los dedos parecen débiles.

En algunos casos, el codo permanece flojo o da la impresión de volver a “ceder”. Si siente inestabilidad en el codo o si éste se disloca, comuníquese con la clínica de inmediato.

El codo también puede volverse rígido. Es posible que le resulte difícil estirar o doblar el brazo por completo; el movimiento podría sentirse bloqueado en lugar de doloroso. Mencione esto en su revisión, pues la terapia adicional o un tratamiento posterior pueden ser de ayuda.

Las infecciones son poco frecuentes pero graves. Esté atento a un dolor profundo y pulsátil que no ceda con analgésicos comunes, a enrojecimiento que se extienda desde la herida o a secreción de líquido. Si observa alguno de estos síntomas, llame a la clínica ese mismo día; si presenta fiebre o malestar general, acuda a urgencias.

Los pequeños anclajes o tornillos metálicos utilizados para fijar la reparación pueden irritar los tejidos, o una articulación temporaria podría aflojarse. Es posible que note un nuevo chasquido, sensación de “traba” o un bulto bajo la piel. Coméntelo en su próxima revisión.

Cuando se emplea un fragmento de su propio tendón para reconstruir el ligamento, esa zona puede permanecer sensible o dolorida durante un tiempo. Avísenos si el dolor empeora en lugar de mejorar.

En ocasiones se forma hueso donde no debería, alrededor o dentro de la articulación. Esto puede limitar el movimiento o provocar sensación de “traba” y fricción. Si el codo deja de mejorar, indíquelo en su revisión.

En raras ocasiones, la cicatriz puede abrirse o supurar. Si la herida se abre, se enrojece o comienza a secretar líquido, comuníquese con nosotros sin esperar.

En la tabla de complicaciones de esta página se detallan las tasas típicas, por si desea conocer los datos específicos.

¿Cuándo deben llamarnos?

La mayoría de los problemas aparecen en las primeras etapas; preferimos que nos informen lo antes posible. Llámenos si tiene fiebre, si la herida se vuelve más roja o comienza a supurar líquido, o si el dolor empeora en lugar de mejorar. Acuda a urgencias si presenta hinchazón o dolor en la pantorrilla, o si experimenta dificultad respiratoria repentina. Llámenos de inmediato si sus dedos anular y meñique se entumecen, si siente debilidad en la mano o si no puede mover el brazo en absoluto. Si su codo se disloca o parece volver a “ceder”, comuníquese con la clínica ese mismo día.


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

  • An all-arthroscopic technique for reconstruction of the lateral ulnar collateral ligament (LUCL) is reproducible and avoids residual instability [1].
  • Open posterolateral ligament plication and LUCL repair using an all-suture construct allows for complete posterolateral stabilization of the elbow with a single implant and bone preservation [2].
  • A suture-augmented LUCL and radial collateral ligament reconstruction method provides a reproducible, anatomically based construct that restores posterolateral elbow stability [3].
  • The suture-augmented LUCL and radial collateral ligament reconstruction method addresses the complex spectrum of lateral-sided injuries observed in posterolateral rotatory instability (PLRI) [3].
  • An arthroscopic LUCL plication/reconstruction with augmented lateral collateral ligament imbrication is a minimally invasive method that allows effective management of elbow instability [4].
  • The arthroscopic LUCL plication/reconstruction with augmented lateral collateral ligament imbrication promotes quicker patient recovery and long-term functional restoration [4].
  • The use of suture button fixation for repair of the lateral ulnar collateral ligament in terrible triad injuries has not been previously described [5].
  • Reconstruction of the lateral ulnar collateral ligament with a tendon graft offers an alternative that restores stability through a dynamic “sling effect” rather than rigid constraint [6].

Anatomy & Pathophysiology

Bony Anatomy

  • The elbow is a trocho-ginglymoid joint consisting of medial and lateral articulations that provide bony stability [11].
  • The trochlea articulates with the ulna within the greater sigmoid notch to create the ulnohumeral, hinged, or trochoid portion of the elbow joint [11].
  • The ulnohumeral articulation has highly congruent anatomy through almost 180° of articular contact, except for the bare area of the greater sigmoid notch which is devoid of cartilage [11].
  • The coronoid has a medial and lateral facet which buttresses the trochlea anteriorly [11].
  • The sublime tubercle is located just distal and medial to the coronoid and provides the attachment site for the anterior bundle of the medial ulnar collateral ligament [11].
  • The medial epicondyle forms the attachment site for the origins of the flexor pronator mass and is larger and more posteriorly oriented than the lateral epicondyle [11].
  • The capitellum and radial head form the radiocapitellar joint [11].
  • The radius is held in close approximation to the ulna at the proximal radioulnar joint by the annular ligament [11].
  • The area of the ulna which articulates with the margin of the radial head at the proximal radioulnar joint is known as the lesser sigmoid notch [11].
  • The radial head is a concave elliptical structure covered with articular cartilage along the radiocapitellar joint and approximately 270° of the articular margin [11].
  • The radial head articulates with both the capitellum and the lesser sigmoid notch [11].
  • The lateral epicondyle is the origin of the lateral extensor musculature [11].
  • The origin of the lateral ulnar collateral ligamentous complex is located just distal to the lateral epicondyle at the geometric center of the radiocapitellar articulation [11].
  • The distal humeral articulation is angled 30° from the longitudinal axis [11].
  • The anterior humeral line should pass through the center of the axis of rotation [11].
  • The axis of rotation is 5° to 7° angulated in the coronal plane to the epicondylar axis, with the medial side more distal than the lateral side [11].
  • The angulation of the distal humeral articulation accounts for the change from a valgus carrying angle to a more varus position as the elbow is flexed [11].
  • There is a high correlation between the size of the radius and capitellum on the left and right sides in the same individual [11].
  • The olecranon allows for a broad attachment site of the triceps [11].
  • The ulna medially bends approximately 8° at 8 cm from the tip of the olecranon [11].
  • The articulation to the tip of the coronoid is approximately 30° from the long axis of the ulna in the sagittal plane [11].
  • The radial head should line up with the capitellum at all arm positions on all radiographic views [12, 13].
  • Tensile forces are present at the medial elbow and compressive forces are present at the lateral elbow [12, 13].

Ligaments & Stability

  • Elbow stability is conferred by bony articular anatomy and ligamentous structures on the medial and lateral sides [9].
  • The three primary stabilizers of the elbow are the ulnohumeral articulation, the medial ulnar collateral ligament, and the lateral ulnar collateral ligament complex [9].
  • Secondary stabilizers of the elbow include the radiocapitellar articulation, the common flexor tendon, the common extensor tendon, and the joint capsule [9].
  • The lateral ulnar collateral ligament is the posterolateral stabilizer of the elbow [12, 13].
  • The medial or ulnar collateral ligament is the primary valgus stabilizer of the elbow [12, 13].
  • The anterior bundle of the medial ulnar collateral ligament is the most important component for stability [12, 13].
  • The posterior bundle of the medial ulnar collateral ligament has the greatest change in length and becomes taut at flexion beyond 120 degrees [12, 13].
  • The lateral ulnar collateral ligament arises from the epicondyle and inserts on the annular ligament [18].
  • A separate band of the lateral ligamentous complex, the lateral ulnar collateral ligament, arises at the lateral epicondyle and blends with fibers of the annular ligament before inserting on the tubercle on the crest of the supinator of the ulna [18].
  • The lateral ulnar collateral ligament is described as the main lateral stabilizer, taut in flexion and extension [18].
  • Disruption of the lateral ulnar collateral ligament results in posterolateral rotatory instability [18].
  • The lateral collateral ligament contributes 14% of the varus stability of the elbow with the joint in full extension [18].
  • The lateral collateral ligament contributes 9% of the varus stability of the elbow with the joint in 90 degrees of flexion [18].
  • The remainder of varus stability is contributed by the bony articular surfaces and the anterior capsule, with the bony surfaces providing the stability [18].
  • The ulnar collateral ligament plays an important role in valgus stability [18].
  • Valgus stability is divided equally among the ulnar collateral ligament, the anterior capsule, and the bony articulation with the elbow in full extension [18].
  • At 90 degrees of flexion, the ulnar collateral ligament provides 55% of the stability to valgus stress [18].
  • The anterior bundle of the ulnar collateral ligament is the primary stabilizer for valgus stress at 90 degrees of flexion [18].
  • The primary stabilizers of the elbow are the anterior band of the medial ulnar collateral ligament and the lateral collateral ligament complex, consisting of the lateral collateral ligament, annular ligament, and the lateral ulnar collateral ligament [18].
  • Secondary stabilizers consist of the capsule, the ulnohumeral and radiocapitellar articulations, and dynamic stabilizers consisting of all muscle-tendon units that cross the elbow joint [18].
  • Dynamic stabilizers include the biceps, brachialis, triceps, wrist flexors, and wrist extensors [18].
  • Insufficiency of one or more stabilizers may result in a spectrum of instability from subtle valgus or posterolateral rotatory instability to recurrent dislocation [18].
  • The typical injury pattern for traumatic elbow dislocation involves a fall on a slightly flexed extremity with a valgus internal rotation force of the forearm [18].
  • In traumatic elbow dislocation, structures are disrupted on the lateral side, progressing medially as more force is applied [18].
  • When recurrence or persistence in instability results from traumatic dislocation, the posterolateral structures are most commonly affected [18].
  • Medial structures can also be involved in traumatic dislocation and cause significant instability [18].
  • A coronoid fracture in association with disruption of the posterior band of the ulnar collateral ligament can result in symptomatic posteromedial instability [18].
  • Isolated medial side disruptions from valgus stress can result from football tackling, gymnastics, or throwing a javelin [18].
  • Valgus instability from attritional disruption of the anterior bundle of the medial ulnar collateral ligament is the most common form of recurrent elbow instability [18].
  • The anterior bundle of the medial ulnar collateral ligament is divided into two nonisometric bands: an anterior band taut at 0 to 60 degrees and a posterior band taut at 60 to 120 degrees [18].
  • During the acceleration phase of throwing, up to 60 N of force is applied to the medial ulnar collateral ligament, which is near its tensile failure point [18].
  • Pitcher fatigue, poor mechanics, or repetition overuse can result in bundle fiber failure, partial tearing, and eventual complete disruption of the medial ulnar collateral ligament [18].
  • Failure of the primary stabilizer results in increased stress on secondary stabilizers [18].
  • Increased stress on secondary stabilizers can result in capsular contractures, chondromalacia, osteophytes, and loose bodies from compression of the radiocapitellar joint and shear forces to the posteromedial tip of the olecranon [18].
  • Ulnar nerve symptoms may develop from traction, scarring, or osteophyte impingement following primary stabilizer failure [18].

Muscles & Soft Tissue

  • The brachialis is the strongest elbow flexor and attaches to the coronoid 11 mm distal to the tip [12, 13].
  • The biceps brachii inserts at the ulnar margin of the radial tuberosity, with the long head proximal and short head distal [12, 13].
  • The biceps brachii is a powerful supinator of the forearm [12, 13].
  • The primary elbow extensor, the triceps, inserts on the olecranon process [12, 13].
  • The mobile wad consists of the brachioradialis, extensor carpi radialis longus, and extensor carpi radialis brevis [12, 13].
  • The flexor-pronator mass consists of the pronator teres, flexor carpi radialis, palmaris longus, flexor carpi ulnaris, and flexor digitorum superficialis [12, 13].
  • The common origin of the extensor muscles is attached to the lateral condyle and need not be disturbed in a lateral approach to a fracture of the lateral condyle [14].
  • The radial nerve enters the interval between the brachialis and brachioradialis muscles in the proximal angle of the lateral approach wound [14].
  • The deep branch of the radial nerve enters the supinator muscle and must be protected during lateral approach dissection [14].
  • The common extensor tendon is a secondary stabilizer of the lateral elbow [8].
  • The articular capsule is a secondary stabilizer of the lateral elbow [8].

Pathophysiology & Instability

  • Elbow instability may be congenital, traumatic, or attritional [18].
  • In a long-term follow-up study of simple elbow dislocations, 60% of patients had residual stiffness with loss of extension and residual pain [18].
  • In a long-term follow-up study of simple elbow dislocations, only 8% of patients had functional instability [18].
  • When fractures are associated with elbow dislocation, resulting in loss of bony stability provided by the greater sigmoid notch of the ulna or the radiocapitellar joint, greater instability and disability can be anticipated [18].
  • The docking technique for lateral ulnar collateral ligament reconstruction has shown recurrent instability rates as high as 25% [8].
  • Postoperative stiffness is a known complication of lateral ulnar collateral ligament reconstruction and occurs not uncommonly [8].

Classification

  • The docking technique originally described by Jones et al. in 2012 is the most common method in use in contemporary practice for LUCL reconstruction [8].
  • The docking technique has shown recurrent instability rates as high as 25% [8].
  • A knotless, onlay technique performs LUCL reconstruction with a tendon graft without violation of the extensor origin and soft tissue envelop [8].
  • The use of knotless anchors and an onlay technique shortens operative time, reduces the required surgical exposure, and removes the risk of tunnel osteolysis or fracture and resultant graft failure while maintaining a broad bone surface for graft incorporation [8].
  • Minimally-invasive dissection prevents iatrogenic injury to the common extensor origin, an important secondary stabilizer of the lateral elbow, and the articular capsule [8].
  • Remaining extracapsular with a minimally-invasive technique avoids plication of the capsular structures or risk of formation of intra-articular adhesions, theoretically reducing the risk of any postoperative loss of range of motion [8].

Clinical Presentation

  • Posterolateral rotatory instability of the elbow involves a complex spectrum of lateral-sided injuries [3].
  • High-grade atraumatic posterolateral rotatory instability is a clinical presentation managed by arthroscopic lateral collateral ligament reconstruction with tendon graft [6].
  • Subacute and chronic posterolateral rotatory instability is a clinical presentation managed by suture-augmented lateral ulnar collateral ligament and radial collateral ligament reconstruction [3].
  • Terrible triad injuries are a clinical presentation in which lateral ulnar collateral ligament repair using suture button fixation is indicated [5].

Investigations

Physical Examination

  • Elbow stability is determined by primary stabilizers (ulnohumeral articulation, MUCL, LUCL complex) and secondary stabilizers (radiocapitellar articulation, common flexor tendon, common extensor tendon, joint capsule) [9].
  • The normal elbow has a range of motion from 0° to 140° from extension to flexion and 75° and 85° in pronation and supination respectively [9].
  • A functional arc in each plane is 100° for flexion and extension and forearm rotation [9].
  • The physical exam is directed by history and the location of the patient's pain in the anterior, posterior, medial, or lateral aspect of the elbow [9].

Imaging

  • Plain radiographs remain the hallmark and the best screening test for elbow evaluation [9].
  • AP, lateral, and oblique radiographs are standard for elbow evaluation [17].
  • CT is helpful when assessing for malunion architecture and the location and pattern of osteophytes and/or loose bodies [17].
  • Three-dimensional CT is used to check for heterotopic ossification [17].
  • CT is not necessary when the stiffness is entirely soft-tissue related [17].
  • MRI can be used to evaluate ligaments and tendons, but it is rarely indicated for elbow stiffness [17].
  • Magnetic resonance evaluation of the elbow includes imaging of ligament complexes [16].
  • MR evaluation of instability patterns including the soft-tissue lesions that result from dislocation is emphasized [16].
  • MRI may be most helpful in evaluating associated injuries including partial or complete tears of the MCL in valgus extension overload syndrome [20].
  • CT with two-dimensional reconstruction and three-dimensional surface rendering best visualizes the pathology of valgus extension overload syndrome [20].
  • Radiographic evaluations are essential when diagnosing an OCD lesion of the elbow, however important aspects of the OCD lesions may be better seen with MRI [21].

Treatment

Arthroscopic Techniques

  • An all-arthroscopic reconstruction of the lateral ulnar collateral ligament is a reproducible technique that avoids residual instability [1].
  • Arthroscopic lateral ulnar collateral ligament plication or reconstruction with augmented lateral collateral ligament imbrication is a minimally invasive method that promotes quicker patient recovery and long-term functional restoration [4].
  • Arthroscopic lateral ulnar collateral ligament reconstruction with a tendon graft restores stability through a dynamic "sling effect" rather than rigid constraint [6].
  • Arthroscopic-assisted lateral ulnar collateral ligament reconstruction provides less insult and dissection to the soft tissue at the lateral side of the elbow [7].
  • Arthroscopic-assisted lateral ulnar collateral ligament reconstruction serves as an excellent tool to diagnose concomitant intraarticular pathologies [7].

Open and Mini-Invasive Techniques

  • Open posterolateral ligament plication and lateral ulnar collateral ligament repair using an all-suture construct allows for complete posterolateral stabilization of the elbow with a single implant and bone preservation [2].
  • Suture-augmented lateral ulnar collateral ligament and radial collateral ligament reconstruction provides a reproducible, anatomically based construct that restores posterolateral elbow stability [3].
  • Suture-augmented lateral ulnar collateral ligament and radial collateral ligament reconstruction addresses the complex spectrum of lateral-sided injuries observed in posterolateral rotatory instability [3].
  • A mini-invasive approach for lateral ulnar collateral ligament reconstruction uses a knotless, onlay technique that performs reconstruction without violation of the extensor origin and soft tissue envelop [8].
  • The knotless, onlay technique for lateral ulnar collateral ligament reconstruction shortens operative time and reduces the required surgical exposure [8].
  • The knotless, onlay technique for lateral ulnar collateral ligament reconstruction removes the risk of tunnel osteolysis or fracture and resultant graft failure while maintaining a broad bone surface for graft incorporation [8].
  • Minimally-invasive dissection for lateral ulnar collateral ligament reconstruction prevents iatrogenic injury to the common extensor origin and the articular capsule [8].
  • Minimally-invasive dissection for lateral ulnar collateral ligament reconstruction allows for earlier rehabilitation and return of range of motion, reduced postoperative pain, and reduced operative time [8].
  • Fluoroscopic guidance during minimally-invasive lateral ulnar collateral ligament reconstruction can help to reduce injuries to unintended structures [8].
  • Remaining extracapsular during lateral ulnar collateral ligament reconstruction avoids plication of the capsular structures and the risk of formation of intra-articular adhesions [8].
  • Remaining extracapsular during lateral ulnar collateral ligament reconstruction theoretically reduces the risk of postoperative loss of range of motion [8].

Specific Indications and Constructs

  • Suture button fixation for repair of the lateral ulnar collateral ligament in terrible triad injuries has not been previously described [5].

Complications

  • The docking technique for LUCL reconstruction has shown recurrent instability rates as high as 25% [8].
  • Postoperative stiffness is a known complication of LUCL reconstruction and occurs not uncommonly [8].
  • The use of a knotless, onlay technique removes the risk of tunnel osteolysis or fracture and resultant graft failure [8].
  • Minimally-invasive dissection prevents iatrogenic injury to the common extensor origin, an important secondary stabilizer of the lateral elbow [8].
  • Minimally-invasive dissection prevents iatrogenic injury to the articular capsule [8].
  • Remaining extracapsular with a minimally-invasive technique avoids plication of the capsular structures [8].
  • Remaining extracapsular with a minimally-invasive technique avoids the risk of formation of intra-articular adhesions [8].
  • Fluoroscopic guidance can help to reduce injuries to unintended structures that could be foreseen due to a limited exposure [8].

Recovery

  • The arthroscopic reconstruction of the lateral ulnar collateral ligament avoids residual instability [1].
  • The open posterolateral ligament plication and lateral ulnar collateral ligament repair technique allows for complete posterolateral stabilization of the elbow [2].
  • The open posterolateral ligament plication and lateral ulnar collateral ligament repair technique achieves bone preservation [2].
  • The suture-augmented lateral ulnar collateral ligament and radial collateral ligament reconstruction restores posterolateral elbow stability [3].
  • The arthroscopic lateral ulnar collateral ligament plication/reconstruction with augmented lateral collateral ligament imbrication promotes quicker patient recovery [4].
  • The arthroscopic lateral ulnar collateral ligament plication/reconstruction with augmented lateral collateral ligament imbrication promotes long-term functional restoration [4].
  • Reconstruction of the lateral ulnar collateral ligament with a tendon graft restores stability through a dynamic “sling effect” rather than rigid constraint [6].

Key Evidence

  • [L5] The presented arthroscopic technique is reproducible and achieves the reconstruction of the LUCL of the elbow as well as avoids residual instability. [1] (10.1016/j.eats.2024.103096)
  • [L5] The technique allows for complete posterolateral stabilization of the elbow with a single implant and bone preservation. [2] (10.1016/j.eats.2024.103172)
  • [L5] The described method provides a reproducible, anatomically based construct that restores posterolateral elbow stability and addresses the complex spectrum of lateral-sided injuries observed in PLRI. [3] (10.1016/j.eats.2025.103797)
  • [L5] This minimally invasive method allows effective management of elbow instability while promoting quicker patient recovery and long-term functional restoration. [4] (10.1016/j.eats.2025.103529)
  • [L4] The use of suture button fixation for repair of lateral ulnar collateral ligament has not been previously described. [5] (10.1016/j.eats.2023.10.004)
  • [L5] Reconstruction of the lateral ulnar collateral ligament with a tendon graft offers an alternative, restoring stability through a dynamic “sling effect” rather than rigid constraint. [6] (10.1002/atn2.70037)
  • [L5] It provides less insult and dissection to the soft tissue at the lateral side of the elbow while being an excellent tool to diagnose any concomitant intraarticular pathologies. [7] (10.1016/j.eats.2024.103101)
  • [L5] [8] (10.1002/atn2.70135)

References

[1] Posterolateral Elbow Dislocation: An All‐Arthroscopic Reconstruction of the Lateral Ulnar Collateral Ligament. Arthroscopy Techniques. 2024. DOI: 10.1016/j.eats.2024.103096

[2] Open Posterolateral Ligament Plication and Lateral Ulnar Collateral Ligament Repair in Posterolateral Rotatory Instability of the Elbow Using an All‐Suture Construct. Arthroscopy Techniques. 2024. DOI: 10.1016/j.eats.2024.103172

[3] Suture‐Augmented Lateral Ulnar Collateral Ligament and Radial Collateral Ligament Reconstruction for Subacute and Chronic Posterolateral Rotatory Instability. Arthroscopy Techniques. 2025. DOI: 10.1016/j.eats.2025.103797

[4] Arthroscopic Lateral Ulnar Collateral Ligament Plication/Reconstruction With Augmented Lateral Collateral Ligament Imbrication. Arthroscopy Techniques. 2025. DOI: 10.1016/j.eats.2025.103529

[5] Suture Button Repair for Lateral Ulnar Collateral Ligament in Terrible Triad Injuries: Surgical Technique. Arthroscopy Techniques. 2024. DOI: 10.1016/j.eats.2023.10.004

[6] Arthroscopic Lateral Collateral Ligament Reconstruction With Tendon Graft in High‐Grade Atraumatic Posterolateral Rotatory Instability in Elbows. Arthroscopy Techniques. 2026. DOI: 10.1002/atn2.70037

[7] Arthroscopic‐Assisted Lateral Ulnar Collateral Ligament Reconstruction for Posterolateral Rotatory Instability of the Elbow: A Technical Note. Arthroscopy Techniques. 2024. DOI: 10.1016/j.eats.2024.103101

[8] Lateral Ulnar Collateral Ligament Reconstruction Through a Mini‐Invasive Approach. Arthroscopy Techniques. 2026. DOI: 10.1002/atn2.70135

[9] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy, Biomechanics, Physical Examination, and Imaging of the Elbow > Summary and Conclusions.

[11] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Anatomy, Biomechanics, Physical Examination, and Imaging of the Elbow > Anatomy > Bony Anatomy.

[12] Miller S Review Of Orthopaedics. SECTION 16 PATELLAR TRACKING IN TOTAL KNEE ARTHROPLASTY > TABLE 2.3 Shoulder Spaces.

[13] Miller S Review Of Orthopaedics. Genetics of musculoskeletal conditions and abnormalities are summarized in Table 1.27 > TABLE 2.3 Shoulder Spaces.

[14] Campbell S Operative Orthopaedics 4 Volume Set. LATERAL APPROACHES.

[16] Orthopaedic Knowledge Update Sports Medicine 6. Magnetic Resonance Imaging of the Elbow > Annotated References.

[17] Aaos Comprehensive Orthopaedic Review 3. Elbow Stiffness* > IV. Evaluation.

[18] Campbell S Operative Orthopaedics 4 Volume Set. POSTERIOR SURGICAL APPROACH FOR QUADRILATERAL SPACE SYNDROME > MCLAUGHLIN PROCEDURE > ARTHROSCOPIC SURGERY.

[20] Aaos Comprehensive Orthopaedic Review 3. Elbow Injuries in the Athlete* > III. Valgus Extension Overload Syndrome and Posterior Impingement.

[21] Orthopaedic Knowledge Update. Osteochondritis Dissecans of the Knee and Elbow* > Summary.

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