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手部正中神经和指神经的原位张力。

Median and Digital Nerve In Situ Tension in the Hand.

机构信息

Allegheny Health Network, Pittsburgh, PA, USA.

University of Pittsburgh, PA, USA.

出版信息

Hand (N Y). 2022 Jan;17(1):38-42. doi: 10.1177/1558944720906497. Epub 2020 Feb 23.

Abstract

Digital nerves will experience tension under normal daily activities, and understanding the amount of tension experienced in these nerves relates directly to the necessary strength in nerve repairs. To begin quantification of tension, the tension borne by the median and digital nerves in cadaveric hands was quantified under conditions of finger hyperextension, nerve distraction, and finger flexion. Five cadaveric hands were mounted in a special fixture that allowed finger hyperextension and flexion and could apply known distractions while the tension borne by each digital nerve was measured. Sequential dissection exposed the digital nerves so that measurements of tension in the median, common, and proper digital nerves were conducted with finger hyperextension, nerve distraction, and finger flexion. Metacarpophalangeal (MCP) hyperextension of 30° created mean nerve tensions up to 0.64 N, 5 mm of nerve distraction created mean nerve tensions up to 1.23 N, and 90° of MCP flexion relieved up to a mean of 1.18 N of nerve tension. In situ tension is present in the median and digital nerves with digital motion. Finger hyperextension and nerve distraction produce tension, whereas finger flexion reduces tension. Existing nerve repairs are strong enough to withstand in situ nerve tensions produced by reasonable digital motion if the original nerve length is present.

摘要

在正常的日常活动中,数字神经会承受张力,而了解这些神经所承受的张力量直接关系到神经修复所需的强度。为了开始对张力进行量化,在手的尸体标本中量化了指伸肌腱过度伸展、神经牵拉和手指弯曲时正中神经和指神经所承受的张力。将五个尸体标本安装在一个特殊的固定装置中,该固定装置允许手指过度伸展和弯曲,并可以施加已知的牵拉,同时测量每个指神经所承受的张力。连续解剖暴露了指神经,因此可以在手指过度伸展、神经牵拉和手指弯曲时测量正中神经、普通和固有指神经的张力。掌指关节(MCP)的 30°过度伸展导致平均神经张力高达 0.64 N,5 毫米的神经牵拉导致平均神经张力高达 1.23 N,90°的 MCP 弯曲可缓解高达 1.18 N 的神经张力。在手指运动时,正中神经和指神经存在原位张力。手指过度伸展和神经牵拉会产生张力,而手指弯曲会减少张力。如果存在原始神经长度,现有的神经修复足以承受由合理的数字运动产生的原位神经张力。

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