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心力衰竭的系统生物学与生物力学模型

Systems biology and biomechanical model of heart failure.

作者信息

Louridas George E, Lourida Katerina G

机构信息

Department of Cardiology, Aristotle University, Thessaloniki, Greece.

出版信息

Curr Cardiol Rev. 2012 Aug;8(3):220-30. doi: 10.2174/157340312803217238.

Abstract

Heart failure is seen as a complex disease caused by a combination of a mechanical disorder, cardiac remodeling and neurohormonal activation. To define heart failure the systems biology approach integrates genes and molecules, interprets the relationship of the molecular networks with modular functional units, and explains the interaction between mechanical dysfunction and cardiac remodeling. The biomechanical model of heart failure explains satisfactorily the progression of myocardial dysfunction and the development of clinical phenotypes. The earliest mechanical changes and stresses applied in myocardial cells and/or myocardial loss or dysfunction activate left ventricular cavity remodeling and other neurohormonal regulatory mechanisms such as early release of natriuretic peptides followed by SAS and RAAS mobilization. Eventually the neurohormonal activation and the left ventricular remodeling process are leading to clinical deterioration of heart failure towards a multi-organic damage. It is hypothesized that approaching heart failure with the methodology of systems biology we promote the elucidation of its complex pathophysiology and most probably we can invent new therapeutic strategies.

摘要

心力衰竭被视为一种由机械功能紊乱、心脏重塑和神经激素激活共同引起的复杂疾病。为了定义心力衰竭,系统生物学方法整合基因和分子,解释分子网络与模块化功能单元之间的关系,并解释机械功能障碍与心脏重塑之间的相互作用。心力衰竭的生物力学模型令人满意地解释了心肌功能障碍的进展和临床表型的发展。心肌细胞中最早出现的机械变化和应力以及/或者心肌丧失或功能障碍会激活左心室腔重塑和其他神经激素调节机制,如利钠肽的早期释放,随后是交感神经系统(SAS)和肾素-血管紧张素-醛固酮系统(RAAS)的激活。最终,神经激素激活和左心室重塑过程会导致心力衰竭的临床恶化,进而发展为多器官损害。据推测,采用系统生物学方法研究心力衰竭,我们能够促进对其复杂病理生理学的阐明,而且很可能能够发明新的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f77b/3465828/0d1e5e831ed8/CCR-8-220_F2.jpg

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