Metabolic adaptability shifts of cell membrane fatty acids of Komagataeibacter hansenii HDM1-3 improve acid stress resistance and survival in acidic environments

Author:

Li Yuanjing12,Yan Pengfei2,Lei Qingyun3,Li Bingyu1,Sun Yue1,Li Shuangfei1,Lei Hong24,Xie Ning1

Affiliation:

1. grid.263488.3 0000 0001 0472 9649 Shenzhen Key Laboratory of Microbial Genetic Engineering, College of Life Sciences and Oceanography Shenzhen University 518060 Shenzhen People’s Republic of China

2. grid.412067.6 0000 0004 1760 1291 Engineering Research Center of Agricultural Microbiology Technology, Ministry of Education Heilongjiang University 150500 Harbin People’s Republic of China

3. grid.495261.d 0000 0004 1797 8750 College of Culture and Media Hezhou University 542800 Hezhou People’s Republic of China

4. grid.412067.6 0000 0004 1760 1291 Key Laboratory of Molecular Biology, College of Heilongjiang Province, School of Life Sciences Heilongjiang University 150080 Harbin People’s Republic of China

Abstract

Abstract Komagataeibacter hansenii HDM1-3 (K. hansenii HDM1-3) has been widely applied for producing bacterial cellulose (BC). The yield of BC has been frequently limited by the acidification during sugar metabolism, due to the generation of organic acids such as acetic acid. In this study, the acid resistance mechanism of K. hansenii HDM1-3 has been investigated from the aspect of metabolic adaptability of cell membrane fatty acids. Firstly, we observed that the survival rate of K. hansenii HDM1-3 was decreased with lowered pH values (adjusted with acetic acids), accompanied by increased leakage rate. Secondly, the cell membrane adaptability in response to acid stress was evaluated, including the variations of cell membrane fluidity and fatty acid composition. The proportion of unsaturated fatty acids was increased (especially, C18-1w9c and C19-Cyc), unsaturation degree and chain length of fatty acids were also increased. Thirdly, the potential molecular regulation mechanism was further elucidated. Under acid stress, the fatty acid synthesis pathway was involved in the structure and composition variations of fatty acids, which was proved by the activation of both fatty acid dehydrogenase (des) and cyclopropane fatty acid synthase (cfa) genes, as well as the addition of exogenous fatty acids. The fatty acid synthesis of K. hansenii HDM1-3 may be mediated by the activation of two-component sensor signaling pathways in response to the acid stress. The acid resistance mechanism of K. hansenii HDM1-3 adds to our knowledge of the acid stress adaptation, which may facilitate the development of new strategies for improving the industrial performance of this species under acid stress.

Funder

Heilongjiang Provincial Science and Technology Department

Department of Education, Heilongjiang Province

Shenzhen science and technology application demonstration project

Shenzhen science and technology key project

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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