首页> 美国卫生研究院文献>The Journal of Physiology >Tension as a function of sarcomere length and velocity of shortening in single skeletal muscle fibres of the frog.
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Tension as a function of sarcomere length and velocity of shortening in single skeletal muscle fibres of the frog.

机译:张力是青蛙单节肌长度和肌节长度和缩短速度的函数。

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摘要

1. Simple measurements of muscle tension at fixed fibre or segment length produce a range of length-tension relationships, depending primarily on the duration of the interval between stimulation onset and tension measurement, in contradiction with the simple predictions of current models. This has been explained by non-uniformity in sarcomere lengths, leading to internal motion and, in turn, to increasing tension because the force-velocity relationship has a much greater slope for slow lengthening than for slow shortening. 2. Previous attempts to reduce the effect of internal motion have been focused on decreasing the initial extent of non-uniformity and measuring tension early in a contraction, when non-uniformities are at a minimum. An alternative approach that has not been attempted previously is to reduce the non-linearity of the force-velocity relationship by avoiding the discontinuity in slope at zero velocity. This is accomplished by imposing overall fibre shortening at velocities sufficient to ensure that all sarcomeres are shortening. 3. When the tension maintained during shortening was measured and plotted against sarcomere length for each release velocity used, linear length-tension relationships resulted that extrapolated to a common sarcomere length intercept. This was true whether the release was applied early in the tetanus or near the end of the 'creep phase' of tension rise. These observations were duplicated by computer simulation using a multisarcomere model of a muscle fibre. 4. These results provide strong support for the view that cross-bridges function as independent force generators and for the explanation of the creep phase of fibre or segment isometric tension as being due to internal motion. The results also imply that the force-velocity relationship scales with sarcomere length without changing shape. 5. Using this novel method for obtaining length-tension relationships, the sarcomere length at which active tension fell to zero was found, by extrapolation, to be 3.65 microns in semitendinosus fibres and 3.53 microns in tibialis anterior fibres from the frog (Rana temporaria).
机译:1.在固定纤维或段长度上简单地测量肌肉张力会产生一系列长度-张力关系,这主要取决于刺激发作和张力测量之间的间隔持续时间,这与当前模型的简单预测相矛盾。这可以通过肌节长度的不均匀来解释,这导致内部运动,继而导致张力增加,因为力-速度关系对于慢速伸长比对慢速伸长具有更大的斜率。 2.以前减少内部运动影响的尝试集中在减少不均匀性的初始程度以及在不均匀性最小的情况下在收缩早期测量张力。以前未尝试过的另一种方法是通过避免零速度下的坡度不连续性来减少力-速度关系的非线性。这是通过以足以确保所有肉瘤都缩短的速度施加总体纤维缩短来实现的。 3.当测量在起酥油期间保持的张力并针对所使用的每种释放速度相对于肌节长度绘制曲线时,线性长度-张力关系导致推断到常见的肌节长度截距。无论是在破伤风的早期还是在紧张度上升的“蠕变阶段”即将结束时使用这种释放剂,都是如此。使用肌肉纤维的多肌节模型通过计算机模拟重复这些观察。 4.这些结果为以下观点提供了有力的支持:跨桥充当独立的力产生器,并解释了由于内部运动而引起的纤维蠕变阶段或段等距张力。结果还暗示力速关系随肌节长度而定,而不改变形状。 5.使用这种新颖的方法获得长度-张力关系,通过外推法发现,半腱肌纤维中蛙的活动长度降至零的肌节长度为3.65微米,而胫骨前肌中的肌节长度为3.53微米(蛙蛙) 。

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