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Metabolic engineering of microorganisms for the production of L-arginine and its derivatives

机译:生产L-精氨酸及其衍生物的微生物的代谢工程

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摘要

L-arginine (ARG) is an important amino acid for both medicinal and industrial applications. For almost six decades, the research has been going on for its improved industrial level production using different microorganisms. While the initial approaches involved random mutagenesis for increased tolerance to ARG and consequently higher ARG titer, it is laborious and often leads to unwanted phenotypes, such as retarded growth. Discovery of L-glutamate (GLU) overproducing strains and using them as base strains for ARG production led to improved ARG production titer. Continued effort to unveil molecular mechanisms led to the accumulation of detailed knowledge on amino acid metabolism, which has contributed to better understanding of ARG biosynthesis and its regulation. Moreover, systems metabolic engineering now enables scientists and engineers to efficiently construct genetically defined microorganisms for ARG overproduction in a more rational and system-wide manner. Despite such effort, ARG biosynthesis is still not fully understood and many of the genes in the pathway are mislabeled. Here, we review the major metabolic pathways and its regulation involved in ARG biosynthesis in different prokaryotes including recent discoveries. Also, various strategies for metabolic engineering of bacteria for the overproduction of ARG are described. Furthermore, metabolic engineering approaches for producing ARG derivatives such as L-ornithine (ORN), putrescine and cyanophycin are described. ORN is used in medical applications, while putrescine can be used as a bio-based precursor for the synthesis of nylon-4,6 and nylon-4,10. Cyanophycin is also an important compound for the production of polyaspartate, another important bio-based polymer. Strategies outlined here will serve as a general guideline for rationally designing of cell-factories for overproduction of ARG and related compounds that are industrially valuable.Electronic supplementary materialThe online version of this article (doi:10.1186/s12934-014-0166-4) contains supplementary material, which is available to authorized users.
机译:L-精氨酸(ARG)是医学和工业应用中的重要氨基酸。近六十年来,一直在研究使用不同微生物提高工业水平的生产。尽管最初的方法涉及随机诱变,以提高对ARG的耐受性,并因此提高ARG效价,但这种方法费力且经常导致不良表型,例如生长迟缓。发现L-谷氨酸(GLU)高产菌株并将其用作ARG生产的基础菌株导致了ARG生产效价的提高。不断揭示分子机制的努力导致积累了有关氨基酸代谢的详细知识,这有助于人们更好地理解ARG生物合成及其调控。此外,系统代谢工程现在使科学家和工程师能够以更合理,更全系统的方式有效构建遗传定义的微生物,从而使ARG超量生产。尽管做出了这样的努力,ARG的生物合成仍未完全被理解,并且该途径中的许多基因被错误地标记。在这里,我们审查了包括新发现在内的不同原核生物在ARG生物合成中涉及的主要代谢途径及其调控。而且,描述了用于细菌的代谢工程化以用于ARG的过量产生的各种策略。此外,描述了用于产生ARG衍生物如L-鸟氨酸(ORN),腐胺和蓝霉素的代谢工程方法。 ORN用于医学应用,而腐胺可用作合成尼龙4,6和尼龙4,10的生物基前体。蓝藻素也是生产另一种重要的生物基聚合物聚天冬氨酸的重要化合物。本文概述的策略将作为合理设计细胞工厂以过量生产具有工业价值的ARG和相关化合物的一般指南。电子补充材料本文的在线版本(doi:10.1186 / s12934-014-0166-4)包含补充材料,授权用户可以使用。

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