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首页> 外文期刊>Journal of molecular cell biology >Attractor landscape analysis of the cardiac signaling network reveals mechanism-based therapeutic strategies for heart failure
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Attractor landscape analysis of the cardiac signaling network reveals mechanism-based therapeutic strategies for heart failure

机译:心脏信号通信网络的吸引子景观分析揭示了基于机制的心力衰竭治疗策略

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摘要

Apoptosis and hypertrophy of cardiomyocytes are the primary causes of heart failure (HF), a global leading cause of death, and are regulated through the complicated intracellular signaling network, limiting the development of effective treatments due to its complexity. To identify effective therapeutic strategies for HF at a system level, we develop a large-scale comprehensive mathematical model of the cardiac signaling network by integrating all available experimental evidence. Attractor landscape analysis of the network model identifies distinct sets of control nodes that effectively suppress apoptosis and hypertrophy of cardiomyocytes under ischemic or pressure overload-induced HF, the two major types of HF. Intriguingly, our system-level analysis suggests that intervention of these control nodes may increase the efficacy of clinical drugs for HF and, of most importance, different combinations of control nodes are suggested as potentially effective candidate drug targets depending on the types of HF. Our study provides a systematic way of developing mechanism-based therapeutic strategies for HF.
机译:心肌细胞的细胞凋亡和肥大是心力衰竭(HF)的主要原因,全球死亡原因,并通过复杂的细胞内信号网络调节,限制了由于其复杂性而有效的治疗。为了确定系统级别的有效治疗策略,通过整合所有可用的实验证据,我们通过整合所有可用的实验证据开发了心脏信号网络的大规模综合数学模型。网络模型的吸引子景观分析识别不同组的控制节点,有效地抑制了缺血性或压力过载诱导的HF下心肌细胞的细胞凋亡和肥大,两种主要类型的HF。有趣的是,我们的系统级分析表明,这些对照节点的干预可能会增加HF的临床药物的功效,并且最重要的是,根据HF的类型,表明对照节点的不同组合是潜在有效的候选药物靶标。我们的研究提供了一种制定基于机制的HF治疗策略的系统方法。

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