Suppr超能文献

两株新分离的链霉菌中聚(ε-L-赖氨酸)的生物合成

Biosynthesis of poly(epsilon-L-lysine)s in two newly isolated strains of Streptomyces sp.

作者信息

Hirohara Hideo, Takehara Munenori, Saimura Masayuki, Ikezaki Atsushi, Miyamoto Masahiro

机构信息

Department of Materials Science, University of Shiga Prefecture, Hassaka, Hikone 522-8533, Japan.

出版信息

Appl Microbiol Biotechnol. 2006 Nov;73(2):321-31. doi: 10.1007/s00253-006-0479-2. Epub 2006 Sep 7.

Abstract

The biosynthesis of poly(epsilon-L-lysine) (epsilon-PL) in the two newly isolated strains of Streptomyces lydicus USE-11 (USE-11) and Streptomyces sp. USE-51 (USE-51) was studied by a newly developed two-stage culture method of cell growth at pH 6.8 and epsilon-PL production at pH 4.5. USE-11 synthesized epsilon-PL consisting of about 28 residues at a high production level, whereas USE-51 did the polymer with 15 ones at a low level. The secreted epsilon-PLs in culture media were digested in a neutral pH range with a peptide hydrolase(s) produced by the epsilon-PL producers. The optimum production levels were presumed to be dependent upon the inherent epsilon-PL synthesis machinery of each producer. The production in USE-51 was sharply dependent upon cell density as was often observed in the production of antibiotics, whereas that in USE-11 was scarcely affected by the density. The SO(4)(2-) was found to be essential for the epsilon-PL production in both strains. This might suggest the involvement of a thiol group in the polymerization reactions including the activation of L-lysine. This study indicates that USE-11 is a most suitable strain for the exploration of the epsilon-PL biosynthesis at the molecular level as well as for the technical applications.

摘要

采用新开发的两阶段培养方法,即先在pH 6.8条件下进行细胞生长,然后在pH 4.5条件下生产聚(ε-L-赖氨酸)(ε-PL),对两株新分离的利迪链霉菌USE-11(USE-11)和链霉菌属USE-51(USE-51)中ε-PL的生物合成进行了研究。USE-11能高效合成由约28个残基组成的ε-PL,而USE-51合成的聚合物含15个残基,产量较低。培养基中分泌的ε-PL在中性pH范围内会被ε-PL产生菌产生的一种或多种肽水解酶消化。推测最佳产量水平取决于各产生菌固有的ε-PL合成机制。USE-51的产量与细胞密度密切相关,这在抗生素生产中经常观察到,而USE-11的产量几乎不受细胞密度影响。发现SO₄²⁻对两株菌的ε-PL生产都是必需的。这可能表明硫醇基团参与了包括L-赖氨酸活化在内的聚合反应。本研究表明,USE-11是在分子水平探索ε-PL生物合成以及进行技术应用的最合适菌株。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验