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青蛙肌肉纤维中的双曲型力-速度关系

Double-hyperbolic force-velocity relation in frog muscle fibres.

作者信息

Edman K A

机构信息

Department of Pharmacology, University of Lund, Sweden.

出版信息

J Physiol. 1988 Oct;404:301-21. doi: 10.1113/jphysiol.1988.sp017291.

Abstract
  1. The relationship between force and velocity of shortening was studied at 2.10 micron sarcomere length during fused tetani (1-3 degrees C) in single fibres isolated from the anterior tibialis muscle of Rana temporaria. The speed of shortening was recorded from the whole fibre and, in some experiments, simultaneously from a short (ca. 0.6 mm) segment, while the preparation was released to shorten isotonically at selected force levels ('load-clamp' recording). The segment was defined by opaque markers of hair that were placed on the fibre surface. The distance between the markers was recorded by means of a photo-electric detector system. 2. The force-velocity relation had two distinct regions, each one exhibiting an upwards concave shape, that were located within the ranges 0-78 and 78-100% of the measured isometric force (P0), respectively. The two portions of the force-velocity relation could be fitted well by hyperbolic functions or by single-exponential functions. The curvature was more pronounced in the high-force region than at low-intermediate loads. The transition between the two portions of the force-velocity relation (the 'break point' of the force-velocity curve) occurred at 78.4 +/- 0.4% of P0 (mean +/- S.E. of mean, n = 12) corresponding to 10.9 +/- 0.4% of maximum velocity of shortening (Vmax). The general shape of the force-velocity curve, and the appearance of a break point near 78% of P0, was the same when measurements were made from the whole fibre and from a short segment along the same fibre. 3. The 'negative' branch of the force-velocity relation was delineated for loads ranging from P0 to 1.6-1.8 P0 in five experiments. The negative branch formed a smooth continuation of the force-velocity relation recorded between 0.78 P0 and P0. The force-velocity relation was nearly flat between 0.90 P0 and 1.20 P0, the difference in speed of shortening or elongation being 1.8 +/- 0.3% (mean +/- S.E. of mean, n = 5) of Vmax over this range. 4. An increase in sarcomere length from 1.85 to 2.60 micron did not affect Vmax but caused a steady decrease in curvature of the force-velocity relation, both at low-intermediate loads and in the high-force range. Similar changes in shape of the force-velocity relation were produced by osmotic compression of the fibre in a Ringer solution made hypertonic by addition of 98 mM-sucrose.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 在1-3摄氏度的强直收缩状态下,对从林蛙胫前肌分离出的单根肌纤维,于2.10微米的肌节长度研究了收缩力与收缩速度之间的关系。从整个肌纤维记录收缩速度,在一些实验中,同时从一段短的(约0.6毫米)肌节记录,当标本在选定的力水平下释放以等张收缩时(“负荷钳”记录)。肌节由置于纤维表面的毛发不透明标记界定。标记间的距离通过光电检测系统记录。2. 力-速度关系有两个不同区域,每个区域呈向上凹的形状,分别位于测量的等长力(P0)的0-78%和78-100%范围内。力-速度关系的这两部分可用双曲线函数或单指数函数很好地拟合。在高力区域的曲率比在低-中负荷时更明显。力-速度关系两部分之间的转变(力-速度曲线的“断点”)出现在P0的78.4±0.4%处(平均值±平均值标准误,n = 12),对应于最大收缩速度(Vmax)的10.9±0.4%。当从整个肌纤维以及沿同一肌纤维的短肌节进行测量时,力-速度曲线的总体形状以及在P0的78%附近出现断点的情况是相同的。3. 在五个实验中,确定了力-速度关系的“负”支,其负荷范围为P0至1.6 - 1.8P0。负支是0.78P0至P0记录的力-速度关系的平滑延续部分。在0.90P0至1.20P0之间,力-速度关系几乎是平的,在此范围内收缩或伸长速度的差异为Vmax的1.8±0.3%(平均值±平均值标准误,n = 5)。4. 肌节长度从1.85微米增加到2.60微米不影响Vmax,但在低-中负荷和高力范围内导致力-速度关系曲率稳步下降。通过在添加98 mM蔗糖使其变为高渗的林格氏液中对纤维进行渗透压压缩,也产生了力-速度关系形状类似的变化。(摘要截短至400字)

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