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中文摘要
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描述(申请人提供):随着每一次心跳,少量的钙通过膜通道进入细胞内,触发从细胞内储存的大量钙的释放。由此导致的细胞内钙离子的增加具有双重作用:1)使收缩;2)影响形成动作电位的离子电流。因此,在心力衰竭等疾病状态下,心肌细胞钙转运不当可能会导致心功能受损和致命性心律失常。研究表明,不稳定的钙调节和心律失常与细胞内储存到胞浆的“泄漏”增加有关。尤其是遗传性的儿茶酚胺能多形性室性心动过速(CPVT)会导致渗漏增加和由钙离子自发释放引发的危险的室性心律失常。因此,这种疾病是一个明显的例子,说明了心肌细胞中离子运输和电信号之间的密切联系。然而,钙通道增加心律失常风险的机制仍不清楚。我们假设,由于钙信号的内在复杂性和心肌细胞内的竞争作用,泄漏只有在特定条件下才是有害的。创新实验和计算模型的结合将定量确定控制钙泄漏的因素,并定义泄漏何时危险,何时保护的界限。总之,提出的研究将对影响CPVT和心力衰竭心律失常风险的因素有重要的洞察力。该项目可细分为以下具体目标:目标1:在健康细胞中确定控制钙泄漏的因素。目的2:确定心力衰竭渗漏增加的机制。目的:研究Ryanodine受体门控改变可在肌浆网钙含量降低的情况下增加心律失常风险的机制。这项工作将为健康心脏细胞中钙离子的正常调节和病理上发生的缺陷提供基本的新信息。通过建立一个了解正常和缺陷钙释放的量化框架,这些研究可以帮助确定心脏治疗的深思熟虑的靶点。 公共卫生相关性:心肌细胞钙调节不当已被认为是导致心律不稳定和潜在致命性心律失常的重要因素。该项目旨在对钙调节的变化如何导致心脏功能的改善和更大的稳定性,或潜在的危险的不稳定,建立一个量化的理解。这些研究将为可能有效预防不稳定和危险心律的治疗提供新的见解。
英文摘要
DESCRIPTION (provided by applicant): With each heartbeat, a small amount of calcium entering the cell through membrane channels triggers the release of a larger amount of calcium from intracellular stores. The resulting increase in intracellular calcium has the dual effects of both: 1) enabling contraction and 2) influencing the ionic currents that shape of the action potential. Improper transport of calcium in cardiac myocytes can therefore contribute to both impaired ventricular function and lethal cardiac arrhythmias in disease states such as heart failure. Studies suggest that unstable calcium regulation and arrhythmias are associated with increased "leak" from intracellular stores to the cytosol. In particular, the inherited disorder catecholaminergic polymorphic ventricular tachycardia (CPVT) results in both increased leak and dangerous ventricular arrhythmias triggered by spontaneous release of calcium. This disease therefore represents an obvious example of the close links between ion transport and electrical signaling in heart cells. However, the mechanisms by which calcium link can increase arrhythmia risk remain unclear. We hypothesize that, because of the inherent complexity of calcium signaling and competing effects within cardiac myocytes, leak is only deleterious under certain conditions. A combination of innovative experiments and computational modeling will quantitatively determine the factors that control calcium leak and define the boundaries of when leak is dangerous and when it is protective. Together the studies proposed will yield significant insight into the factors that influence arrhythmia risk in CPVT and in heart failure. The project can be sub-divided into the following Specific Aims: Aim 1: Determine, in healthy cells, the factors that control calcium leak. Aim 2: Determine the mechanisms underlying increased leak in heart failure. Aim 3: Determine the mechanisms by which altered gating of ryanodine receptors can increase the risk of arrhythmia despite reduced sarcoplasmic reticulum calcium content. The work will provide fundamental new information concerning both the normal regulation of Ca2+ in healthy heart cells and the defects that occur in pathology. By developing a quantitative framework for understanding normal and defective calcium release, these studies can help identify thoughtful targets for cardiac therapies PUBLIC HEALTH RELEVANCE: Improper regulation of calcium in heart cells has been identified as an important factor contributing to instability and potentially lethal heart rhythms. This project is aimed at developing a quantitative understanding of how changes in calcium regulation can lead to either improved heart function and greater stability, or to potentially dangerous instability. The studies will provide new insight into therapies that are likely to be effective at preventing instability and dangerous heart rhythms.
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Predicting determinants of susceptibility to drug-induced arrhythmias
Computational methods for mechanistic understanding of inter-sample variability
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