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Enhanced Acid Tolerance in Bifidobacterium longum by Adaptive Evolution: Comparison of the Genes between the Acid-Resistant Variant and Wild-Type Strain

机译:通过适应性进化增强长双歧杆菌的耐酸性:耐酸变异株和野生株之间的基因比较

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摘要

Acid stress can affect the viability of probiotics, especially Bifidobacterium. This study aimed to improve the acid tolerance of Bifidobacterium longum BBMN68 using adaptive evolution. The stress response, and genomic differences of the parental strain and the variant strain were compared by acid stress. The highest acid-resistant mutant strain (BBMN68m) was isolated from more than 100 asexual lines, which were adaptive to the acid stress for 10 th, 20 th, 30 th, 40 th, and 50 th repeats, respectively. The variant strain showed a significant increase in acid tolerance under conditions of pH 2.5 for 2 h (from 7.92 to 4.44 log CFU/ml) compared with the wildtype strain (WT, from 7.87 to 0 log CFU/ml). The surface of the variant strain was also smoother. Comparative whole-genome analysis showed that the galactosyl transferase D gene (cpsD, bbmn68_1012), a key gene involved in exopolysaccharide (EPS) synthesis, was altered by two nucleotides in the mutant, causing alteration in amino acids, pI (from 8.94 to 9.19), and predicted protein structure. Meanwhile, cpsD expression and EPS production were also reduced in the variant strain (p < 0.05) compared with WT, and the exogenous WT-EPS in the variant strain reduced its acid-resistant ability. These results suggested EPS was related to acid responses of BBMN68.
机译:酸胁迫会影响益生菌,尤其是双歧杆菌的生存能力。这项研究旨在通过适应性进化来提高长双歧杆菌BBMN68的耐酸性。通过酸胁迫比较了亲本菌株和变异菌株的胁迫响应以及基因组差异。从100多个无性系中分离出了最高耐酸突变株(BBMN68m),它们分别适应于10、20、30、40和50次重复的酸胁迫。与野生型菌株(WT,从7.87至0 log CFU / ml)相比,该变体菌株在pH 2.5的条件下显示2小时的耐酸性显着提高(从7.92至4.44 log CFU / ml)。变异株的表面也更光滑。对比全基因组分析显示,半乳糖基转移酶D基因(cpsD,bbmn68_1012)是胞外多糖(EPS)合成的关键基因,被突变体中的两个核苷酸改变,导致氨基酸pI改变(从8.94到9.19) ),并预测蛋白质的结构。同时,与野生型相比,变异株中的cpsD表达和EPS产生也降低了(p <0.05),并且变异株中的外源WT-EPS降低了其耐酸能力。这些结果表明EPS与BBMN68的酸反应有关。

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