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组学时代的代谢工程:阐明和调控调控网络。

Metabolic engineering in the -omics era: elucidating and modulating regulatory networks.

作者信息

Vemuri Goutham N, Aristidou Aristos A

机构信息

Center for Molecular BioEngineering, Drifmier Engineering Center, University of Georgia, Athens, 30605, USA.

出版信息

Microbiol Mol Biol Rev. 2005 Jun;69(2):197-216. doi: 10.1128/MMBR.69.2.197-216.2005.

Abstract

The importance of regulatory control in metabolic processes is widely acknowledged, and several enquiries (both local and global) are being made in understanding regulation at various levels of the metabolic hierarchy. The wealth of biological information has enabled identifying the individual components (genes, proteins, and metabolites) of a biological system, and we are now in a position to understand the interactions between these components. Since phenotype is the net result of these interactions, it is immensely important to elucidate them not only for an integrated understanding of physiology, but also for practical applications of using biological systems as cell factories. We present some of the recent "-omics" approaches that have expanded our understanding of regulation at the gene, protein, and metabolite level, followed by analysis of the impact of this progress on the advancement of metabolic engineering. Although this review is by no means exhaustive, we attempt to convey our ideology that combining global information from various levels of metabolic hierarchy is absolutely essential in understanding and subsequently predicting the relationship between changes in gene expression and the resulting phenotype. The ultimate aim of this review is to provide metabolic engineers with an overview of recent advances in complementary aspects of regulation at the gene, protein, and metabolite level and those involved in fundamental research with potential hurdles in the path to implementing their discoveries in practical applications.

摘要

调节控制在代谢过程中的重要性已得到广泛认可,目前正在进行多项研究(包括局部和全局研究),以了解代谢层次结构各个层面的调节机制。丰富的生物学信息使我们能够识别生物系统的各个组成部分(基因、蛋白质和代谢物),现在我们有能力理解这些组成部分之间的相互作用。由于表型是这些相互作用的最终结果,因此阐明它们不仅对于综合理解生理学非常重要,而且对于将生物系统用作细胞工厂的实际应用也至关重要。我们介绍了一些最近的“组学”方法,这些方法扩展了我们对基因、蛋白质和代谢物水平调节的理解,随后分析了这一进展对代谢工程发展的影响。尽管本综述绝非详尽无遗,但我们试图传达我们的观点,即在理解并随后预测基因表达变化与最终表型之间的关系时,整合来自代谢层次结构各个层面的全局信息绝对至关重要。本综述的最终目的是为代谢工程师提供基因、蛋白质和代谢物水平调节互补方面的最新进展概述,并为基础研究人员提供在将其发现应用于实际应用过程中可能遇到的潜在障碍。

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