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动态钳在心律失常研究中的应用:在药物靶点发现和安全药理学测试中的作用。

Applications of Dynamic Clamp to Cardiac Arrhythmia Research: Role in Drug Target Discovery and Safety Pharmacology Testing.

作者信息

Ortega Francis A, Grandi Eleonora, Krogh-Madsen Trine, Christini David J

机构信息

Physiology, Biophysics, and Systems Biology Graduate Program, Weill Cornell Graduate School of Medical Sciences, New York, NY, United States.

Department of Pharmacology, University of California, Davis, Davis, CA, United States.

出版信息

Front Physiol. 2018 Jan 4;8:1099. doi: 10.3389/fphys.2017.01099. eCollection 2017.

Abstract

Dynamic clamp, a hybrid-computational-experimental technique that has been used to elucidate ionic mechanisms underlying cardiac electrophysiology, is emerging as a promising tool in the discovery of potential anti-arrhythmic targets and in pharmacological safety testing. Through the injection of computationally simulated conductances into isolated cardiomyocytes in a real-time continuous loop, dynamic clamp has greatly expanded the capabilities of patch clamp outside traditional static voltage and current protocols. Recent applications include fine manipulation of injected artificial conductances to identify promising drug targets in the prevention of arrhythmia and the direct testing of model-based hypotheses. Furthermore, dynamic clamp has been used to enhance existing experimental models by addressing their intrinsic limitations, which increased predictive power in identifying pro-arrhythmic pharmacological compounds. Here, we review the recent advances of the dynamic clamp technique in cardiac electrophysiology with a focus on its future role in the development of safety testing and discovery of anti-arrhythmic drugs.

摘要

动态钳是一种混合计算实验技术,已被用于阐明心脏电生理学的离子机制,正在成为发现潜在抗心律失常靶点和进行药理安全性测试的一种有前景的工具。通过在实时连续循环中将计算模拟的电导注入分离的心肌细胞,动态钳极大地扩展了膜片钳在传统静态电压和电流协议之外的能力。最近的应用包括对注入的人工电导进行精细操作,以识别预防心律失常的有前景的药物靶点,以及对基于模型的假设进行直接测试。此外,动态钳已被用于通过解决现有实验模型的内在局限性来增强这些模型,这提高了识别促心律失常药理化合物的预测能力。在此,我们回顾了动态钳技术在心脏电生理学方面的最新进展,重点关注其在安全性测试开发和抗心律失常药物发现中的未来作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0df8/5758594/71e798c380c4/fphys-08-01099-g0001.jpg

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