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代谢网络中通量的控制

Control of fluxes in metabolic networks.

作者信息

Basler Georg, Nikoloski Zoran, Larhlimi Abdelhalim, Barabási Albert-László, Liu Yang-Yu

机构信息

Department of Chemical and Biomolecular Engineering, University of California, Berkeley, California 94720, USA; Department of Environmental Protection, Estación Experimental del Zaidín CSIC, Granada, 18008 Spain;

Systems Biology and Mathematical Modeling, Max Planck Institute of Molecular Plant Physiology, Potsdam, 14476 Germany;

出版信息

Genome Res. 2016 Jul;26(7):956-68. doi: 10.1101/gr.202648.115. Epub 2016 May 19.

Abstract

Understanding the control of large-scale metabolic networks is central to biology and medicine. However, existing approaches either require specifying a cellular objective or can only be used for small networks. We introduce new coupling types describing the relations between reaction activities, and develop an efficient computational framework, which does not require any cellular objective for systematic studies of large-scale metabolism. We identify the driver reactions facilitating control of 23 metabolic networks from all kingdoms of life. We find that unicellular organisms require a smaller degree of control than multicellular organisms. Driver reactions are under complex cellular regulation in Escherichia coli, indicating their preeminent role in facilitating cellular control. In human cancer cells, driver reactions play pivotal roles in malignancy and represent potential therapeutic targets. The developed framework helps us gain insights into regulatory principles of diseases and facilitates design of engineering strategies at the interface of gene regulation, signaling, and metabolism.

摘要

理解大规模代谢网络的调控是生物学和医学的核心。然而,现有方法要么需要指定细胞目标,要么只能用于小型网络。我们引入了描述反应活性之间关系的新耦合类型,并开发了一个高效的计算框架,该框架无需任何细胞目标即可对大规模代谢进行系统研究。我们确定了促进来自生命各王国的23个代谢网络调控的驱动反应。我们发现单细胞生物比多细胞生物需要的调控程度更低。在大肠杆菌中,驱动反应受到复杂的细胞调控,这表明它们在促进细胞调控方面具有卓越作用。在人类癌细胞中,驱动反应在恶性肿瘤中起关键作用,并代表潜在的治疗靶点。所开发的框架有助于我们深入了解疾病的调控原理,并促进在基因调控、信号传导和代谢界面设计工程策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87c6/4937563/aea3afad9337/956f01.jpg

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