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表征电压依赖性和钙依赖性耦合对动作电位稳定性的贡献:对复极交替的影响。

Characterizing the contribution of voltage- and calcium-dependent coupling to action potential stability: implications for repolarization alternans.

作者信息

Jordan Peter N, Christini David J

机构信息

Department of Physiology and Biophysics, Weill Graduate School of Medical Sciences of Cornell University, New York, New York 10021, USA.

出版信息

Am J Physiol Heart Circ Physiol. 2007 Oct;293(4):H2109-18. doi: 10.1152/ajpheart.00609.2007. Epub 2007 Jun 22.

Abstract

Experiments have provided suggestive but inconclusive insights into the relative contributions of transmembrane voltage and intracellular calcium handling to the development of cardiac electrical instabilities such as repolarization alternans. In this study, we applied a novel combination of techniques (action potential voltage clamping, calcium-transient clamping, and stability analysis) to cardiac cell models to more clearly determine the roles that voltage- and calcium-dependent coupling play in regulating action potential stability and the development of alternans subsequent to the loss of stability. Using these techniques, we are able to demonstrate that voltage- and calcium-dependent coupling exhibit varying degrees of influence on action potential stability across models. Our results indicate that cellular dynamic instabilities such as alternans may be initiated by either voltage- or calcium-dependent mechanisms or by some combination of the two. Based on these modeling results, we propose novel single-cell experiments that incorporate action-potential voltage clamping, calcium imaging, and real-time measurement of action potential stability. These experiments will make it possible to experimentally determine the relative contribution of voltage coupling to the regulation of action potential stability in real cardiac myocytes, thereby providing further insights into the mechanism of alternans.

摘要

实验已经对跨膜电压和细胞内钙处理在诸如复极化交替等心脏电不稳定发展过程中的相对作用提供了启发性但尚无定论的见解。在本研究中,我们将一种新技术组合(动作电位电压钳制、钙瞬变钳制和稳定性分析)应用于心脏细胞模型,以更清楚地确定电压依赖性和钙依赖性耦合在调节动作电位稳定性以及稳定性丧失后交替现象发展中所起的作用。使用这些技术,我们能够证明电压依赖性和钙依赖性耦合在不同模型中对动作电位稳定性表现出不同程度的影响。我们的结果表明,诸如交替现象等细胞动态不稳定可能由电压依赖性机制、钙依赖性机制或两者的某种组合引发。基于这些建模结果,我们提出了新颖的单细胞实验,该实验结合了动作电位电压钳制、钙成像以及动作电位稳定性的实时测量。这些实验将有可能通过实验确定电压耦合对真实心肌细胞中动作电位稳定性调节的相对贡献,从而为交替现象的机制提供进一步的见解。

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