Johnston Jamie A, Winges Sara A, Santello Marco
Department of Kinesiology, PEBE 107B, Orange Street, Arizona State University, Tempe, Arizona 85287-0404, USA.
J Neurophysiol. 2005 Jul;94(1):206-18. doi: 10.1152/jn.01134.2004. Epub 2005 Mar 2.
We recently examined the extent to which motor units of digit flexor muscles receive common input during multidigit grasping. This task elicited moderate to strong motor-unit synchrony (common input strength, CIS) across muscles (flexor digitorum profundus, FDP, and flexor pollicis longus, FPL) and across FDP muscle compartments, although the strength of this common input was not uniform across digit pairs. To further characterize the neural mechanisms underlying the control of multidigit grasping, we analyzed the relationship between firing of single motor units from these hand muscles in the frequency domain by computing coherence. We report three primary findings. First, in contrast to what has been reported in intrinsic hand muscles, motor units belonging to different muscles and muscle compartments of extrinsic digit flexors exhibited significant coherence in the 0- to 5- and 5- to 10-Hz frequency ranges and much weaker coherence in the higher 10-20 Hz range (maximum 0.0025 and 0.0008, respectively, pooled across all FDP compartment pairs). Second, the strength and incidence of coherence differed considerably across digit pairs. Third, contrary to what has been reported in the literature, across-muscle coherence can be stronger and more prevalent than within-muscle coherence, as FPL-FDP2 (thumb-index digit pair) exhibited the strongest and most prevalent coherence in our data (0.010 and 43% at 3 Hz, respectively). The heterogeneous organization of common input to these muscles and muscle compartments is discussed in relation to the functional role of individual digit pairs in the coordination of multiple digit forces in grasping.
我们最近研究了在多手指抓握过程中,手指屈肌的运动单位接收共同输入的程度。这项任务引发了不同肌肉(指深屈肌,FDP,和拇长屈肌,FPL)以及FDP肌肉各部分之间中度到强烈的运动单位同步性(共同输入强度,CIS),尽管这种共同输入的强度在不同手指对之间并不均匀。为了进一步描述多手指抓握控制背后的神经机制,我们通过计算相干性,在频域中分析了这些手部肌肉单个运动单位放电之间的关系。我们报告了三个主要发现。第一,与手部固有肌的报道相反,属于外在手指屈肌不同肌肉和肌肉部分的运动单位在0至5赫兹和5至10赫兹频率范围内表现出显著的相干性,而在较高的10至20赫兹范围内相干性则弱得多(所有FDP部分对的合并最大值分别为0.0025和0.0008)。第二,相干性的强度和发生率在不同手指对之间有很大差异。第三,与文献报道相反,跨肌肉的相干性可能比肌肉内的相干性更强且更普遍,因为在我们的数据中,FPL - FDP2(拇指 - 食指对)表现出最强且最普遍的相干性(在3赫兹时分别为0.010和43%)。我们讨论了这些肌肉和肌肉部分共同输入的异质性组织与单个手指对在抓握中多手指力量协调的功能作用之间的关系。