Greedy reduction ofBacillus subtilisgenome yields emergent phenotypes of high resistance to a DNA damaging agent and low evolvability

Author:

Dervyn Etienne1ORCID,Planson Anne-Gaëlle1ORCID,Tanaka Kosei1,Chubukov Victor2,Guérin Cyprien3ORCID,Derozier Sandra3,Lecointe François1,Sauer Uwe2,Yoshida Ken-Ichi4,Nicolas Pierre3,Noirot Philippe1,Jules Matthieu1ORCID

Affiliation:

1. Université Paris-Saclay, INRAE, AgroParisTech, Micalis Institute , 78350  Jouy-en-Josas , France

2. Institute of Molecular Systems Biology , ETH Zurich, 8093 Zurich , Switzerland

3. Université Paris-Saclay , INRAE, MaIAGE, 78350  Jouy-en-Josas , France

4. Graduate School of Science, Technology and Innovation, Kobe University , Kobe, Japan

Abstract

AbstractGenome-scale engineering enables rational removal of dispensable genes in chassis genomes. Deviating from this approach, we applied greedy accumulation of deletions of large dispensable regions in the Bacillus subtilis genome, yielding a library of 298 strains with genomes reduced up to 1.48 Mb in size. High-throughput physiological phenotyping of these strains confirmed that genome reduction is associated with substantial loss of cell fitness and accumulation of synthetic-sick interactions. Transcriptome analysis indicated that <15% of the genes conserved in our genome-reduced strains exhibited a twofold or higher differential expression and revealed a thiol-oxidative stress response. Most transcriptional changes can be explained by loss of known functions and by aberrant transcription at deletion boundaries. Genome-reduced strains exhibited striking new phenotypes relative to wild type, including a very high resistance (increased >300-fold) to the DNA-damaging agent mitomycin C and a very low spontaneous mutagenesis (reduced 100-fold). Adaptive laboratory evolution failed to restore cell fitness, except when coupled with a synthetic increase of the mutation rate, confirming low evolvability. Although mechanisms underlying this emergent phenotype are not understood, we propose that low evolvability can be leveraged in an engineering strategy coupling reductive cycles with evolutive cycles under induced mutagenesis.

Funder

French National Research Agency

European Commission

Publisher

Oxford University Press (OUP)

Subject

Genetics

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1. Recent advances in non-model bacterial chassis construction;Current Opinion in Systems Biology;2023-12

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