首页> 美国卫生研究院文献>The Journal of Physiology >Effects of solution tonicity on crossbridge properties and myosin lever arm disposition in intact frog muscle fibres
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Effects of solution tonicity on crossbridge properties and myosin lever arm disposition in intact frog muscle fibres

机译:溶液张力对完整青蛙肌肉纤维中跨桥特性和肌球蛋白杠杆臂位置的影响

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摘要

The aims of this study were to investigate the effects of solution tonicity on muscle properties, and to verify their consistence with the lever arm theory of force generation. Experiments were made in single muscle fibres and in fibre bundles from the frog, using both fast stretches and time-resolved X-ray diffraction, in isotonic Ringer solution (1T), hypertonic (1.4T) and hypotonic (0.8T) solutions. Fast stretches (0.4–0.6 ms duration and 16–25 nm per half-sarcomere (nm hs−1) amplitude) were applied at various tensions during the force development in isometric tetani. Force increased during the stretch up to a peak (critical tension, Pc) at which it started to fall, in spite of continued stretching. In all solutions, Pc was proportional to the initial isometric tension developed. For a given isometric tension, Pc increased with solution tonicity and occurred at a precise sarcomere elongation (critical length, Lc) which also increased with tonicity. M3 meridional layer line intensity (IM3) was measured during the application of sinusoidal length oscillations (1 kHz frequency, and about 2% fibre length amplitude) at tetanus plateau. IM3 changed during the length oscillations in a sinusoidal manner in phase opposition to length changes, but a double peak distortion occurred at the peak of the release phase. The presence of the distortion, which decreased with tonicity, allowed calculation of the mean position of the myosin head (S1) during the oscillation cycle. In agreement with the lever arm theory, both X-ray diffraction and mechanical data show that solution tonicity affects S1 mean position and consequently crossbridge individual extension and force, with no effect on crossbridge number. The force needed to break the single crossbridge was insensitive to solution tonicity suggesting a non-ionic nature of the actomyosin bond.
机译:这项研究的目的是研究溶液张力对肌肉特性的影响,并用力产生的杠杆臂理论验证它们的一致性。在等渗林格溶液(1T),高渗(1.4T)和低渗(0.8T)溶液中,使用快速拉伸和时间分辨X射线衍射,对青蛙的单个肌肉纤维和纤维束进行了实验。在等距破折床的力发展过程中,以各种张力施加快速拉伸(持续时间0.4-0.6 ms,每个半肌小节(nm hs -1 )振幅16-25 nm)。尽管继续拉伸,但拉伸过程中的力仍增加到一个峰值(临界张力,Pc),在此达到峰值。在所有解决方案中,Pc与所形成的初始等轴测张力成正比。对于给定的等轴测张力,Pc随着溶液张力的增加而增加,并出现在精确的肌小节伸长率(临界长度,Lc)处,而张力随张力的增加而增加。 M3经线层线强度(IM3)是在破伤风高原施加正弦曲线长度振动(频率为1 kHz,纤维长度幅度约为2%)时测量的。 IM3在长度振荡期间以与长度变化相反的正弦形式变化,但是在释放阶段的峰出现双峰畸变。畸变的存在随着张力的增加而减小,从而可以计算出振荡周期中肌球蛋白头部(S1)的平均位置。与杠杆臂理论相一致,X射线衍射和力学数据均表明,溶液张度会影响S1的平均位置,从而影响跨桥的个体延伸和作用力,而对跨桥数没有影响。破坏单个交叉桥所需的力对溶液的张力不敏感,表明肌动球蛋白键具有非离子性质。

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