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Indigenous and Environmental Modulation of Frequencies of Mutation in Lactobacillus plantarum▿ †

机译:植物乳杆菌突变频率的本地和环境调节▿

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摘要

Reliability of microbial (starter) strains in terms of quality, functional properties, growth performance, and robustness is essential for industrial applications. In an industrial fermentation process, the bacterium should be able to successfully withstand various adverse conditions during processing, such as acid, osmotic, temperature, and oxidative stresses. Besides the evolved defense mechanisms, stress-induced mutations participate in adaptive evolution for survival under stress conditions. However, this may lead to accumulation of mutant strains, which may be accompanied by loss of desired functional properties. Defining the effects of specific fermentation or processing conditions on the mutation frequency is an important step toward preventing loss of genome integrity and maintaining the productivity of industrial strains. Therefore, a set of Lactobacillus plantarum mutator reporter strains suitable for qualitative and quantitative analysis of low-frequency mutation events was developed. The mutation reporter system constructed was validated by using chemical mutagenesis (N-methyl-N′-nitro-N-nitrosoguanidine) and by controlled expression of endogenous candidate mutator genes (e.g., a truncated derivative of the L. plantarum hexA gene). Growth at different temperatures, under low-pH conditions, at high salt concentrations, or under starvation conditions did not have a significant effect on the mutation frequency. However, incubation with sublethal levels of hydrogen peroxide resulted in a 100-fold increase in the mutation frequency compared to the background mutation frequency. Importantly, when cells of L. plantarum were adapted to 42°C prior to treatment with sublethal levels of hydrogen peroxide, there was a 10-fold increase in survival after peroxide treatment, and there was a concomitant 50-fold decrease in the mutation frequency. These results show that specific environmental conditions encountered by bacteria may significantly influence the genetic stability of strains, while protection against mutagenic conditions may be obtained by pretreatment of cultures with other, nonmutagenic stress conditions.
机译:微生物(发酵剂)菌株在质量,功能特性,生长性能和耐用性方面的可靠性对于工业应用至关重要。在工业发酵过程中,细菌应能够成功承受加工过程中的各种不利条件,例如酸,渗透,温度和氧化应激。除了进化的防御机制外,应激诱导的突变参与应激条件下生存的适应性进化。然而,这可能导致突变菌株的积累,这可能伴随着所需功能特性的丧失。定义特定发酵或加工条件对突变频率的影响是防止基因组完整性丧失和维持工业菌株生产力的重要一步。因此,开发了一套适用于定性和定量分析低频突变事件的植物乳杆菌突变报告基因菌株。通过使用化学诱变(N-甲基-N'-硝基-N-亚硝基胍)并通过受控表达内源性候选突变基因(例如植物乳杆菌hexA基因的截短衍生物)验证了构建的突变报告系统。在不同温度,低pH条件,高盐浓度或饥饿条件下的生长对突变频率没有显着影响。然而,与背景突变频率相比,亚致死水平的过氧化氢孵育导致突变频率增加了100倍。重要的是,当植物乳杆菌的细胞在用亚致死水平的过氧化氢处理之前适应了42°C时,过氧化物处理后的存活率提高了10倍,伴随的突变频率降低了50倍。这些结果表明,细菌遇到的特定环境条件可能会显着影响菌株的遗传稳定性,而对诱变条件的保护可通过用其他非诱变胁迫条件进行预处理来获得。

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