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通过MET6和SAM2共表达结合柠檬酸钠添加来提高甲硫氨酸和ATP的可用性,增强了酿酒酵母中S-腺苷甲硫氨酸(SAM)的积累。

Improving methionine and ATP availability by MET6 and SAM2 co-expression combined with sodium citrate feeding enhanced SAM accumulation in Saccharomyces cerevisiae.

作者信息

Chen Hailong, Wang Zhou, Wang Zhilai, Dou Jie, Zhou Changlin

机构信息

School of Life Science and Technology, China Pharmaceutical University, 24 Tong Jia Xiang, Nanjing, 210009, People's Republic of China.

出版信息

World J Microbiol Biotechnol. 2016 Apr;32(4):56. doi: 10.1007/s11274-016-2010-y. Epub 2016 Feb 29.

Abstract

S-adenosyl-L-methionine (SAM), biosynthesized from methionine and ATP, exhibited diverse pharmaceutical applications. To enhance SAM accumulation in S. cerevisiae CGMCC 2842 (wild type), improvement of methionine and ATP availability through MET6 and SAM2 co-expression combined with sodium citrate feeding was investigated here. Feeding 6 g/L methionine at 12 h into medium was found to increase SAM accumulation by 38 % in wild type strain. Based on this result, MET6, encoding methionine synthase, was overexpressed, which caused a 59 % increase of SAM. To redirect intracellular methionine into SAM, MET6 and SAM2 (encoding methionine adenosyltransferase) were co-expressed to obtain the recombinant strain YGSPM in which the SAM accumulation was 2.34-fold of wild type strain. The data obtained showed that co-expression of MET6 and SAM2 improved intracellular methionine availability and redirected the methionine to SAM biosynthesis. To elevate intracellular ATP levels, 6 g/L sodium citrate, used as an auxiliary energy substrate, was fed into the batch fermentation medium, and an additional 19 % increase of SAM was observed after sodium citrate addition. Meanwhile, it was found that addition of sodium citrate improved the isocitrate dehydrogenase activity which was associated with the intracellular ATP levels. The results demonstrated that addition of sodium citrate improved intracellular ATP levels which promoted conversion of methionine into SAM. This study presented a feasible approach with considerable potential for developing highly SAM-productive strains based on improving methionine and ATP availability.

摘要

S-腺苷-L-甲硫氨酸(SAM)由甲硫氨酸和ATP生物合成,具有多种药物应用。为了提高酿酒酵母CGMCC 2842(野生型)中SAM的积累,本文研究了通过共表达MET6和SAM2并添加柠檬酸钠来提高甲硫氨酸和ATP的可利用性。发现在12小时向培养基中添加6 g/L甲硫氨酸可使野生型菌株的SAM积累增加38%。基于此结果,过表达编码甲硫氨酸合酶的MET6,使SAM增加了59%。为了将细胞内的甲硫氨酸重定向到SAM的合成中,共表达MET6和SAM2(编码甲硫氨酸腺苷转移酶)以获得重组菌株YGSPM,其SAM积累量是野生型菌株的2.34倍。所得数据表明,MET6和SAM2的共表达提高了细胞内甲硫氨酸的可利用性,并将甲硫氨酸重定向到SAM的生物合成中。为了提高细胞内ATP水平,将6 g/L柠檬酸钠作为辅助能量底物添加到分批发酵培养基中,添加柠檬酸钠后观察到SAM额外增加了19%。同时,发现添加柠檬酸钠提高了与细胞内ATP水平相关的异柠檬酸脱氢酶活性。结果表明,添加柠檬酸钠提高了细胞内ATP水平,促进了甲硫氨酸向SAM的转化。本研究提出了一种可行的方法,在基于提高甲硫氨酸和ATP可利用性来开发高产SAM菌株方面具有相当大的潜力。

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