Constitutive expression of the global regulator AbrB restores the growth defect of a genome-reduced Bacillus subtilis strain and improves its metabolite production

Author:

Yamamoto Junya1,Chumsakul Onuma2,Toya Yoshihiro3,Morimoto Takuya4,Liu Shenghao4,Masuda Kenta4,Kageyama Yasushi4,Hirasawa Takashi5,Matsuda Fumio3,Ogasawara Naotake2,Shimizu Hiroshi3,Yoshida Ken-ichi1,Oshima Taku6,Ishikawa Shu1

Affiliation:

1. Graduate School of Science, Technology and Innovation, Kobe University , Nada, Kobe 657-8501, Japan

2. Graduate School of Biological Sciences, Nara Institute of Science and Technology , Ikoma, Nara 630-0192, Japan

3. Department of Bioinformatic Engineering, Graduate School of Information Science and Technology, Osaka University , Suita, Osaka 565-0871, Japan

4. Biological Science Laboratories, Kao Corporation , Akabane, Tochigi 321-3497, Japan

5. School of Life Science and Technology, Tokyo Institute of Technology , Yokohama, Kanagawa 226-8501, Japan

6. Department of Biotechnology, Toyama Prefectural University , Imizu, Toyama 939-0398, Japan

Abstract

Abstract Partial bacterial genome reduction by genome engineering can improve the productivity of various metabolites, possibly via deletion of non-essential genome regions involved in undesirable metabolic pathways competing with pathways for the desired end products. However, such reduction may cause growth defects. Genome reduction of Bacillus subtilis MGB874 increases the productivity of cellulases and proteases but reduces their growth rate. Here, we show that this growth defect could be restored by silencing redundant or less important genes affecting exponential growth by manipulating the global transcription factor AbrB. Comparative transcriptome analysis revealed that AbrB-regulated genes were upregulated and those involved in central metabolic pathway and synthetic pathways of amino acids and purine/pyrimidine nucleotides were downregulated in MGB874 compared with the wild-type strain, which we speculated were the cause of the growth defects. By constitutively expressing high levels of AbrB, AbrB regulon genes were repressed, while glycolytic flux increased, thereby restoring the growth rate to wild-type levels. This manipulation also enhanced the productivity of metabolites including γ-polyglutamic acid. This study provides the first evidence that undesired features induced by genome reduction can be relieved, at least partly, by manipulating a global transcription regulation system. A similar strategy could be applied to other genome engineering-based challenges aiming toward efficient material production in bacteria.

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,General Medicine

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