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哺乳动物和青蛙心肌中的双折射信号。对电-机械耦联的启示。

Birefringence signals in mammalian and frog myocardium. E-C coupling implications.

作者信息

Weiss R E, Morad M

出版信息

J Gen Physiol. 1983 Jul;82(1):79-117. doi: 10.1085/jgp.82.1.79.

Abstract

Birefringence signals from mammalian and frog hearts were studied. The period between excitation and the onset of contraction in which optical signals were free of movement artifact was determined by changes in scattered incandescent light and changes in laser diffraction patterns. The birefringence signal preceding contraction was found to behave as a change in retardation and was not contaminated measurably by linear dichroic or isotropic absorption changes. There were two components of the birefringence signal in mammalian heart muscles but only one component in the frog heart. The first component of the birefringence signals in both mammalian and frog hearts had a time course coincident with the action potential upstroke. The second component in mammalian preparations was sensitive to inotropic interventions, such as variation of extracellular Ca2+, stimulation frequency, temperature, and epinephrine, in a manner that correlated with the maximum rate of rise of tension. Caffeine (2-10 mM) not only failed to generate a second component in the frog heart, but also suppressed the second component in the mammalian heart while potentiating twitch tension. The results suggest that the second component of the birefringence signal in the mammalian myocardium is related to Ca2+ release from the sarcoplasmic reticulum.

摘要

对来自哺乳动物和青蛙心脏的双折射信号进行了研究。通过散射白炽光的变化和激光衍射图案的变化来确定激发与收缩开始之间光学信号没有运动伪影的时间段。发现收缩前的双折射信号表现为相位延迟的变化,并且未被线性二向色性或各向同性吸收变化显著污染。哺乳动物心肌中的双折射信号有两个成分,而青蛙心脏中只有一个成分。哺乳动物和青蛙心脏中双折射信号的第一个成分的时间进程与动作电位的上升支一致。哺乳动物标本中的第二个成分对变力干预敏感,例如细胞外Ca2+的变化、刺激频率、温度和肾上腺素,其方式与张力上升的最大速率相关。咖啡因(2 - 10 mM)不仅未能在青蛙心脏中产生第二个成分,而且在增强抽搐张力的同时抑制了哺乳动物心脏中的第二个成分。结果表明,哺乳动物心肌中双折射信号的第二个成分与肌浆网中Ca2+的释放有关。

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