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Onset of contractility in cardiac muscle

机译:心肌收缩力的发作

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摘要

1. A technique is described whereby (i) quick stretches and releases of controlled velocity, amplitude and time of onset can be applied to muscle. (ii) Releases from isometric to isotonic contraction can be performed at controlled delays relative to the stimulus, and displayed on a delayed expanded oscilloscope sweep. An isotonic lever system with an equivalent mass of 12·8 mg is described.2. Quick stretch of rabbit or cat papillary muscle after excitation does not result in a level of tension equal to or greater than normal peak isometric tension appropriate to the stretched length. Stretches applied during the first half of the rising phase of tension development give responses nearly identical to the same stretches applied before the stimulus (indicating that Starling's Law of the heart holds until this time). Stretches applied in the later phase of tension development or during relaxation result in diminished peak isometric tensions or accelerated relaxation.3. The rate of tension development following quick releases of isometrically contracting muscle to zero tension is not maximal until the releases are made 150-200 msec after excitation.4. Shortening velocity with light afterloads is not initially maximal nor constant for an appreciable period of time. The shortening velocity with heavy afterloads reaches its maximum more rapidly when the load is not lifted within the first 200 msec of a contraction which, if maintained isometric, would have required 400-500 msec to reach peak tension. With these heavier loads, a period of 100-200 msec of constant shortening velocity may occur.5. Freeloaded isotonic contractions show an inflexion in their shortening curves occurring 150-200 msec after excitation.6. Maximum rate of isotonic shortening following releases from isometric to isotonic contraction with a given load is not maximal until the releases occur about 200 msec after the stimulus.7. It is concluded that contractility in cardiac muscle is relatively slow in its onset with maximum capacity to shorten occurring about midway through the rising phase of isometric tension development.
机译:1.描述了一种技术,其中(i)可以将受控的速度,振幅和发作时间的快速伸展和释放施加到肌肉上。 (ii)从等轴测到等张收缩的释放可以在相对于刺激的受控延迟下进行,并显示在延迟的扩展示波器扫描上。介绍了等当量质量为12·8 mg的等张杠杆系统。2。激发后兔子或猫乳头肌的快速拉伸不会导致等于或大于适合于拉伸长度的正常峰值等轴测张力的水平。在紧张发展的上升阶段的前半部分施加的拉伸产生的响应几乎与刺激之前施加的相同拉伸(表明直到此时的心脏史达琳定律保持不变)相同。在张力发展的后期或松弛过程中施加的拉伸会导致等轴测峰值张力降低或加速松弛。等距收缩的肌肉快速释放至零张力后的张力发展速率直到激发后150-200毫秒才释放出来才最大。4。轻载后的缩短速度最初在一段可观的时间内不是最大,也​​不是恒定的。如果在收缩的前200毫秒内未举起负载,则重载后的缩短速度会更快地达到最大值,如果保持等轴测,则需要400-500毫秒才能达到峰值张力。在这些较重的负载下,可能会出现100-200毫秒的恒定缩短速度周期5。空载等渗收缩在激发后150-200毫秒出现缩短曲线的弯曲现象6。在给定载荷下,从等距收缩释放到等张收缩后,等张收缩的最大速率直到刺激发生后约200毫秒才发生释放才最大。7。结论是,心肌的收缩性在发作时相对较慢,在等轴测张力发展的上升阶段的中途出现最大收缩能力。

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