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微生物中甜菜碱的代谢及其生物技术应用

The metabolism and biotechnological application of betaine in microorganism.

作者信息

Zou Huibin, Chen Ningning, Shi Mengxun, Xian Mo, Song Yimin, Liu Junhong

机构信息

College of Chemical Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.

CAS Key Laboratory of Bio-based Materials, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, China.

出版信息

Appl Microbiol Biotechnol. 2016 May;100(9):3865-76. doi: 10.1007/s00253-016-7462-3. Epub 2016 Mar 23.

Abstract

Glycine betaine (betaine) is widely distributed in nature and can be found in many microorganisms, including bacteria, archaea, and fungi. Due to its particular functions, many microorganisms utilize betaine as a functional chemical and have evolved different metabolic pathways for the biosynthesis and catabolism of betaine. As in animals and plants, the principle role of betaine is to protect microbial cells against drought, osmotic stress, and temperature stress. In addition, the role of betaine in methyl group metabolism has been observed in a variety of microorganisms. Recent studies have shown that betaine supplementation can improve the performance of microbial strains used for the fermentation of lactate, ethanol, lysine, pyruvate, and vitamin B12, during which betaine can act as stress protectant or methyl donor for the biosynthesis of structurally complex compounds. In this review, we summarize the transport, synthesis, catabolism, and functions of betaine in microorganisms and discuss potential engineering strategies that employ betaine as a methyl donor for the biosynthesis of complex secondary metabolites such as a variety of vitamins, coenzymes, and antibiotics. In conclusion, the biocompatibility, C/N ratio, abundance, and comprehensive metabolic information of betaine collectively indicate that this molecule has great potential for broad applications in microbial biotechnology.

摘要

甘氨酸甜菜碱(甜菜碱)在自然界中广泛分布,可在许多微生物中找到,包括细菌、古菌和真菌。由于其特殊功能,许多微生物将甜菜碱用作功能性化学物质,并进化出了不同的甜菜碱生物合成和分解代谢途径。与动植物一样,甜菜碱的主要作用是保护微生物细胞免受干旱、渗透胁迫和温度胁迫。此外,在多种微生物中已观察到甜菜碱在甲基代谢中的作用。最近的研究表明,添加甜菜碱可以提高用于乳酸、乙醇、赖氨酸、丙酮酸和维生素B12发酵的微生物菌株的性能,在此过程中甜菜碱可以作为应激保护剂或甲基供体用于结构复杂化合物的生物合成。在这篇综述中,我们总结了甜菜碱在微生物中的转运、合成、分解代谢和功能,并讨论了将甜菜碱用作甲基供体以生物合成多种维生素、辅酶和抗生素等复杂次级代谢产物的潜在工程策略。总之,甜菜碱的生物相容性、碳氮比、丰度和综合代谢信息共同表明,该分子在微生物生物技术中具有广泛应用的巨大潜力。

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