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基于飞秒激光的诱变策略提高 Micromonospora sagamiensis ATCC 21826 产生微诺霉素的能力。

Femtosecond laser-based mutagenesis strategy for micronomicin production enhancement of Micromonospora sagamiensis ATCC 21826.

机构信息

Department of Biochemical Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, People's Republic of China.

出版信息

World J Microbiol Biotechnol. 2013 Jun;29(6):1121-7. doi: 10.1007/s11274-013-1261-0. Epub 2013 Jan 25.

Abstract

In this work, a mutant MX3004 with improved micronomicin (MCR) production was derived from Micromonospora sagamiensis ATCC21826, which was treated with femtosecond laser under the optimized irradiation conditions of 75 mW and 180 s, with a maximum of positive mutation rate of 17.8 % and the mortality rate of 69.2 %. A novel high-throughput method was established using microplate reader by quantifying the concentration of MCR for efficient screening of positive mutant from large numbers of mutants. Consequently, MX3004 displayed the highest MCR production capacity of 126 U/ml and a stable heredity (ten generations). Moreover, under the optimal fermentation conditions in a 7.5 l fermenter, the MCR production of MX3004 reached the maximum of 263 U/ml, which was increased by 484 % compared with the parent strain. The results suggest that femtosecond laser is a suitable method for the MCR production improvement and the screening method has a great potential application for aminoglycoside antibiotic production.

摘要

在这项工作中,从 Micromonospora sagamiensis ATCC21826 中衍生出了一种突变型 MX3004,该突变型对米卡星(MCR)的生产有了显著提高。MX3004 是通过飞秒激光处理获得的,优化后的照射条件为 75mW 和 180s,最大正突变率为 17.8%,死亡率为 69.2%。通过微孔板读数器建立了一种新型高通量方法,通过定量 MCR 的浓度来有效地从大量突变体中筛选出阳性突变体。结果,MX3004 表现出最高的米卡星生产能力为 126U/ml,且遗传稳定性良好(十代)。此外,在 7.5L 发酵罐的最佳发酵条件下,MX3004 的米卡星产量达到了 263U/ml 的最大值,与原始菌株相比提高了 484%。结果表明,飞秒激光是提高米卡星产量的一种合适方法,该筛选方法在氨基糖苷类抗生素生产中具有很大的潜在应用价值。

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