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首页> 外文期刊>Journal of Biomechanics >Transmission of forces within mammalian skeletal muscles.
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Transmission of forces within mammalian skeletal muscles.

机译:哺乳动物骨骼肌内的力传递。

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Most models of in vivo musculoskeletal function fail to take into account the diversity of force trajectories defined by muscle fiber architecture. It has been shown for many muscles, across species, that muscle fibers commonly end within muscle fascicles without reaching a myotendinous junction, and that many of these fibers show a progressive decline in cross-sectional area along the length of the muscle. The significance of these anatomical observations is that the tapering would seem to preclude forces generated at the largest cross-sectional area of the fibers being transmitted to the sarcomeres toward the ends of the tapered fiber. If all of the forces are transmitted via the sarcomeres arranged in series, those few sarcomeres at the smaller ends of the fibers must tolerate the stress exerted by the more numerous sarcomeres arranged in parallel at the portions of the fiber with larger cross-sectional areas. A logical alternative would be for forces to be transmitted laterally along the length of a fiber to the cell membrane and the extracellular matrix. Such a structural arrangement would permit an alternative force transmission vector and minimize the necessity for a precise level of force to be generated along the entire length of a fiber. There are cytoarchitectural and biochemical data demonstrating the presence of a subcellular network which is appropriately located to transmit forces from the active intracellular contractile elements to the extracellular intramuscular connective tissues. However, to fully comprehend how forces are transmitted from individual cross bridges to the tendon, it will be necessary to understand the interactions of all of the components of the muscle tendon complex from the molecular to the multicellular level. It is insufficient to know the physiology of the individual components in a restricted experimental paradigm and assume that these conditions account for the functional characteristics in vivo. Thus, the challenge is to understand how the sarcomeres and all of the associated structures transmit the forces of the whole muscle to its attachments.
机译:体内肌肉骨骼功能的大多数模型都没有考虑到由肌肉纤维结构定义的力量轨迹的多样性。对于跨物种的许多肌肉,已经显示出肌肉纤维通常在肌肉束内终止而不到达肌腱末端,并且这些纤维中的许多纤维沿肌肉的长度显示出横截面积的逐渐减小。这些解剖学观察的意义在于,锥度似乎排除了在纤维的最大横截面区域向锥形纤维末端传输到肉瘤的力。如果所有力都通过串联排列的肉瘤传递,那么在纤维较小端的那几个肉瘤必须能够承受由更多平行排列在纤维横截面积较大的部分的大量肉瘤所施加的应力。合理的选择是使力沿着纤维的长度横向传递到细胞膜和细胞外基质。这种结构布置将允许替代的力传递矢量,并且使沿着纤维的整个长度产生精确水平的力的必要性最小化。有细胞建筑学和生化数据证明存在亚细胞网络,该亚细胞网络适当地定位以将力从活性细胞内收缩元件传递至细胞外肌内结缔组织。但是,要完全理解力是如何从各个跨桥传递到肌腱的,就必须了解肌腱复合物的所有组件从分子到多细胞水平的相互作用。仅在受限的实验范式中了解单个组件的生理学并假设这些条件说明了体内的功能特征是不够的。因此,挑战在于了解肉瘤和所有相关结构如何将整个肌肉的力传递到其附件。

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