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Developing controllable hypermutable Clostridium cells through manipulating its methyl-directed mismatch repair system

机译:通过操纵其甲基化错配修复系统来开发可控制的高变梭菌细胞

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摘要

Development of controllable hypermutable cells can greatly benefit understanding and harnessing microbial evolution. However, there have not been any similar systems developed for Clostridium, an important bacterial genus. Here we report a novel two-step strategy for developing controllable hypermutable cells of Clostridium acetobutylicum, an important and representative industrial strain. Firstly, the mutS/L operon essential for methyldirected mismatch repair (MMR) activity was inactivated from the genome of C. acetobutylicum to generate hypermutable cells with over 250-fold increased mutation rates. Secondly, a proofreading control system carrying an inducibly expressed mutS/L operon was constructed. The hypermutable cells and the proofreading control system were integrated to form a controllable hypermutable system SMBMutC, of which the mutation rates can be regulated by the concentration of anhydrotetracycline (aTc). Duplication of the miniPthl-tetR module of the proofreading control system further significantly expanded the regulatory space of the mutation rates, demonstrating hypermutable Clostridium cells with controllable mutation rates are generated. The developed C. acetobutylicum strain SMBMutC2 showed higher survival capacities than the control strain facing butanol-stress, indicating greatly increased evolvability and adaptability of the controllable hypermutable cells under environmental challenges.
机译:可控超变细胞的发展可以极大地帮助理解和利用微生物的进化。但是,还没有为重要的细菌属梭状芽胞杆菌开发任何类似的系统。在这里,我们报告了一种新的两步策略,用于开发丙酮丁醇梭菌(一种重要且具有代表性的工业菌株)的可控超变细胞。首先,从丙酮丁醇梭菌的基因组中失活了甲基定向错配修复(MMR)活性所必需的mutS / L操纵子,以产生突变率提高了250倍的高变细胞。其次,构建了带有诱导表达的mutS / L操纵子的校对控制系统。将超可变细胞和校对控制系统整合在一起,形成一个可控制的超可变系统SMBMutC,该系统的突变率可以通过脱水四环素(aTc)的浓度来调节。校对控制系统的miniPthl-tetR模块的重复进一步显着扩展了突变率的调控空间,证明了产生了可控突变率的高变梭菌细胞。与面对丁醇胁迫的对照菌株相比,已开发的丙酮丁醇梭菌菌株SMBMutC2具有更高的存活能力,表明在环境挑战下可控超变细胞的进化能力和适应性大大提高。

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