The low mutational flexibility of the EPSP synthase in Bacillus subtilis is due to a higher demand for shikimate pathway intermediates

Author:

Schwedt Inge12,Schöne Kerstin2,Eckert Maike1,Pizzinato Manon1,Winkler Laura2,Knotkova Barbora3,Richts Björn3,Hau Jann‐Louis4ORCID,Steuber Julia4,Mireles Raul5,Noda‐Garcia Lianet5,Fritz Günter4,Mittelstädt Carolin2,Hertel Robert26,Commichau Fabian M.12ORCID

Affiliation:

1. FG Molecular Microbiology, Institute for Biology University of Hohenheim Stuttgart Germany

2. FG Synthetic Microbiology Institute for Biotechnology, BTU Cottbus‐Senftenberg Senftenberg Germany

3. Department of General Microbiology, Institute of Microbiology and Genetics, GZMB Georg‐August University of Göttingen Göttingen Germany

4. FG Cellular Microbiology, Institute of Biology University of Hohenheim Stuttgart Germany

5. Department of Plant Pathology and Microbiology Hebrew University Rehovot Israel

6. Department of Genomic and Applied Microbiology, Institute of Microbiology and Genetics Georg‐August University of Göttingen Göttingen Germany

Abstract

AbstractGlyphosate (GS) inhibits the 5‐enolpyruvyl‐shikimate‐3‐phosphate (EPSP) synthase that is required for aromatic amino acid, folate and quinone biosynthesis in Bacillus subtilis and Escherichia coli. The inhibition of the EPSP synthase by GS depletes the cell of these metabolites, resulting in cell death. Here, we show that like the laboratory B. subtilis strains also environmental and undomesticated isolates adapt to GS by reducing herbicide uptake. Although B. subtilis possesses a GS‐insensitive EPSP synthase, the enzyme is strongly inhibited by GS in the native environment. Moreover, the B. subtilis EPSP synthase mutant was only viable in rich medium containing menaquinone, indicating that the bacteria require a catalytically efficient EPSP synthase under nutrient‐poor conditions. The dependency of B. subtilis on the EPSP synthase probably limits its evolvability. In contrast, E. coli rapidly acquires GS resistance by target modification. However, the evolution of a GS‐resistant EPSP synthase under non‐selective growth conditions indicates that GS resistance causes fitness costs. Therefore, in both model organisms, the proper function of the EPSP synthase is critical for the cellular viability. This study also revealed that the uptake systems for folate precursors, phenylalanine and tyrosine need to be identified and characterized in B. subtilis.

Funder

Deutsche Forschungsgemeinschaft

Georg-August-Universität Göttingen

Publisher

Wiley

Subject

Ecology, Evolution, Behavior and Systematics,Microbiology

Reference87 articles.

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