Werner Dean, Kozin Scott H, Brozovich Marc, Porter Scott T, Junkin David, Seigler Sorin
Department of Anesthesia, Temple University Hospital, Philadelphia, PA, USA.
J Hand Surg Am. 2003 Nov;28(6):1044-51. doi: 10.1016/s0363-5023(03)00425-8.
The purpose of this study was to determine the normal biomechanical properties of the passive capsuloligamentous structures about the finger metacarpophalangeal (MCP) joints subjected to dynamic varus/valgus loading and to equate these findings to the clinical situation.
The finger MCP joints from 9 fresh-frozen cadaver hands were tested in a custom-designed testing apparatus that applied a varus/valgus force in each direction. Testing was performed at 0 degrees, 30 degrees, 60 degrees, and 90 degrees of MCP joint flexion. Load-displacement curves were generated for each specimen. A nonlinear hysteresis curve was apparent on loading and unloading. A region of collateral ligament laxity was identified whereby minimal torque (< 0.5 Nm) caused progressive joint angulation. Subsequently incremental load was required to produce further joint angulation. The slope of this region was used to calculate early and late collateral ligament stiffness.
The index and long fingers showed a significant decrease in the region of collateral ligament laxity between 0 degrees and 90 degrees. The long finger collateral ligament laxity also diminished significantly between 30 degrees and 90 degrees. The collateral ligament laxity did not significantly change in the ring and small digits throughout MCP joint flexion. The early or late phase of collateral ligament stiffness was not affected by the amount of MCP joint flexion across any of the digits, except in late radial collateral ligament stiffness of the long finger between 0 degrees and 60 degrees.
The additional stability and clinical observation of tightening of the MCP in flexion appears related to the decreased laxity of the collateral ligaments and not to alterations in the biomechanical properties of the collateral ligaments.
本研究的目的是确定手指掌指(MCP)关节周围的被动关节囊韧带结构在动态内翻/外翻负荷下的正常生物力学特性,并将这些发现与临床情况进行对比。
对9只新鲜冷冻尸体手的手指MCP关节在定制设计的测试装置中进行测试,该装置在每个方向施加内翻/外翻力。测试在MCP关节屈曲0度、30度、60度和90度时进行。为每个标本生成负荷-位移曲线。加载和卸载时出现明显的非线性滞后曲线。确定了侧副韧带松弛区域,即最小扭矩(<0.5 Nm)会导致关节逐渐成角。随后需要增加负荷才能使关节进一步成角。该区域的斜率用于计算早期和晚期侧副韧带刚度。
示指和中指在0度至90度之间侧副韧带松弛区域有显著减小。中指侧副韧带松弛在30度至90度之间也显著减小。在整个MCP关节屈曲过程中,环指和小指的侧副韧带松弛没有显著变化。除了中指在0度至60度之间的晚期桡侧副韧带刚度外,任何手指的MCP关节屈曲程度均不影响侧副韧带刚度的早期或晚期阶段。
MCP关节在屈曲时额外的稳定性以及临床观察到的紧张现象似乎与侧副韧带松弛度降低有关,而非侧副韧带生物力学特性的改变。