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Current understanding of sulfur assimilation metabolism to biosynthesize L-cysteine and recent progress of its fermentative overproduction in microorganisms

机译:目前对硫磺同化代谢的理解生物合成L-半胱氨酸及其在微生物中发酵过量生产的最新进展

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摘要

To all organisms, sulfur is an essential and important element. The assimilation of inorganic sulfur molecules such as sulfate and thiosulfate into organic sulfur compounds such as L-cysteine and L-methionine (essential amino acid for human) is largely contributed by microorganisms. Of these, special attention is given to thiosulfate (S2O32-) assimilation, because thiosulfate relative to often utilized sulfate (SO42-) as a sulfur source is proposed to be more advantageous in microbial growth and biotechnological applications like L-cysteine fermentative overproduction toward industrial manufacturing. In Escherichia coli as well as other many bacteria, the thiosulfate assimilation pathway is known to depend on O-acetyl-L-serine sulfhydrylase B. Recently, another yet-unidentified CysM-independent thiosulfate pathway was found in E. coli. This pathway is expected to consist of the initial part of the thiosulfate to sulfite (SO32-) conversion, and the latter part might be shared with the final part of the known sulfate assimilation pathway [sulfite - sulfide (S2-) - L-cysteine]. The catalysis of thiosulfate to sulfite is at least partly mediated by thiosulfate sulfurtransferase (GlpE). In this mini-review, we introduce updated comprehensive information about sulfur assimilation in microorganisms, including this topic. Also, we introduce recent advances of the application study about l-cysteine overproduction, including the GlpE overexpression.
机译:对于所有生物,硫是必不可少的和重要的因素。将无机硫分子如硫酸盐和硫代硫酸盐的同化分化为有机硫化合物如L-半胱氨酸和L-甲硫氨酸(人类的必需氨基酸)大部分由微生物贡献。其中,特别注意硫代硫酸盐(S2O32-)同化,因为硫代硫酸盐相对于通常使用的硫酸盐(SO 42-)作为硫源,以L-半胱氨酸发酵生产(L-半胱氨酸发酵生产)更有利制造业。在大肠杆菌以及其他许多细菌中,已知硫代硫酸盐同化途径取决于O-乙酰基-L-丝氨酸巯基酶B.最近,在大肠杆菌中发现了另一种尚未识别的Cysm-undysm-硫代硫酸盐途径。该途径预期由硫代硫酸硫酸盐(SO 32-)转化的初始部分组成,后者可能与已知的硫酸盐同化途径的最终部分共享[亚硫酸盐。硫化物(S2-) - & l-半胱氨酸]。将硫代硫酸硫酸硫酸酯的催化剂至少部分地由硫代硫酸盐磺​​酸硫酸硫酸盐(GLPE)介导。在这个迷你审查中,我们介绍了关于微生物中硫磺同化的更新的全面信息,包括这个主题。此外,我们介绍了最近对L-半胱氨酸过产的应用研究的进展,包括GLPE过度表达。

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