Implication of amino acid metabolism and cell surface integrity for the thermotolerance mechanism in the thermally adapted acetic acid bacterium TH-3.

Nami Matsumoto, Minenosuke Matsutani, Yoko Tanimoto, Rina Nakanishi, Shuhei Tanaka, Yu Kanesaki, Gunjana Theeragool, Naoya Kataoka, Toshiharu Yakushi, Kazunobu Matsushita

Journal: Journal of bacteriology 2023;205(11):e0010123

PMID: 37930061

Abstract

, an industrial vinegar-producing strain, is suffered by fermentation stress such as fermentation heat and/or high concentrations of acetic acid. By an experimental evolution approach, we have obtained a stress-tolerant strain, exhibiting significantly increased growth and acetic acid fermentation ability at higher temperatures. In this study, we report that only the three gene mutations of ones accumulated during the adaptation process, , , and , were sufficient to reproduce the increased thermotolerance of . These mutations resulted in cell envelope modification, including increased phospholipid and lipopolysaccharide synthesis, increased respiratory activity, and cell size reduction. The phenotypic changes may cooperatively work to make the adapted cell thermotolerant by enhancing cell surface integrity, nutrient or oxygen availability, and energy generation.

Address: Department of Biological Chemistry, Faculty of Agriculture, Yamaguchi University , Yamaguchi, Japan.; Graduate School of Science and Technology for Innovation, Yamaguchi University , Yamaguchi, Japan.; NODAI Genome Research Center, Tokyo University of Agriculture , Tokyo, Japan.; Research Institute of Green Science and Technology, Shizuoka University , , Shizuoka, Japan.; Department of Microbiology, Faculty of Science, Kasetsart University , Bangkok, Thailand.; Research Center for Thermotolerant Microbial Resources, Yamaguchi University , Yamaguchi, Japan.
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