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青蛙肌肉纤维拉伸增强力量过程中被动元件的应变

Strain of passive elements during force enhancement by stretch in frog muscle fibres.

作者信息

Edman K A, Tsuchiya T

机构信息

Department of Pharmacology, University of Lund, Sweden.

出版信息

J Physiol. 1996 Jan 1;490 ( Pt 1)(Pt 1):191-205. doi: 10.1113/jphysiol.1996.sp021135.

DOI:10.1113/jphysiol.1996.sp021135
PMID:8745287
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1158656/
Abstract
  1. The force enhancement during and after stretch (0.15 micron per sarcomere) was studied during fused tetani of single fibres isolated from the anterior tibialis muscle of Rana temporaria (0.5-3.6 degrees C; sarcomere length, 2.05-2.65 microns). Changes in length were recorded simultaneously from the fibre as a whole (puller movement) and from marked segments (approximately 0.5 mm in length) of the same fibre. 2. The residual force enhancement after stretch (recorded at the end of a long tetanus) was found to be linearly related to the slow component of tension rise during the stretch ramp. 3. The fibres were released to shorten against a very small load at different times after stretch (load clamp). The shortening records derived after a preceding stretch exhibited a larger and steeper initial transient than that recorded in an isometric tetanus without stretch. The excess length change (LS; nanometres per half-sarcomere) recorded during the initial transient increased with the amplitude of stretch and was linearly related to the force enhancement produced by the stretch (FE; % of maximum tetanic tension) according to the following regression: LS = 0.200 FE + 8.65 (P < 0.001). The length changes recorded from the whole fibre agreed well with measurements from individual segments. 4. Slack-test measurements confirmed the existence of a large initial transient phase when the fibre was released to shorten after a preceding stretch. The excess length change determined from the slack tests agreed closely with the values derived from load-clamp recordings. 5. The results support the view that stretching a muscle fibre during tetanus leads to strain of elastic elements and, presumably, to variation of filament overlap due to non-uniform distribution of the length change within the fibre volume. Regions with greater filament overlap are likely to generate the long-lasting extra force referred to as 'residual force enhancement after stretch'. The elastic elements recruited during stretch can be presumed to play an essential part in this process by supporting regions in which the filament overlap has been reduced during the stretch ramp. Recoil of these elastic elements is responsible for the excess length change that is recorded during the initial transient after release as described under point 3.
摘要
  1. 在0.5 - 3.6摄氏度、肌节长度为2.05 - 2.65微米的情况下,对从林蛙胫前肌分离出的单根纤维进行强直收缩时,研究了拉伸过程中及拉伸后(每个肌节0.15微米)的力增强情况。从纤维整体(牵拉器移动)和同一纤维的标记段(长度约0.5毫米)同时记录长度变化。2. 发现拉伸后(在长时间强直收缩结束时记录)的残余力增强与拉伸斜坡期间张力上升的慢成分呈线性相关。3. 在拉伸后的不同时间,使纤维在非常小的负荷下释放以缩短(负荷钳制)。与未拉伸的等长强直收缩相比,先前拉伸后得到的缩短记录显示出更大且更陡的初始瞬变。初始瞬变期间记录的多余长度变化(LS;每半个肌节纳米)随拉伸幅度增加,并根据以下回归与拉伸产生的力增强(FE;最大强直张力的百分比)呈线性相关:LS = 0.200 FE + 8.65(P < 0.001)。从纤维整体记录的长度变化与各个段的测量结果吻合良好。4. 松弛测试测量证实,当纤维在先前拉伸后释放以缩短时,存在一个大的初始瞬变阶段。从松弛测试确定的多余长度变化与从负荷钳制记录得出的值非常接近。5. 这些结果支持这样的观点,即强直收缩期间拉伸肌肉纤维会导致弹性元件应变,并且大概会由于纤维体积内长度变化的不均匀分布而导致细丝重叠的变化。细丝重叠较大的区域可能会产生称为“拉伸后残余力增强”的持久额外力。可以假定拉伸期间募集的弹性元件通过支撑在拉伸斜坡期间细丝重叠减少的区域而在这个过程中起重要作用。如第3点所述这些弹性元件的回弹是释放后初始瞬变期间记录的多余长度变化的原因。

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