NAD(P)H-hydrate dehydratase- a metabolic repair enzyme and its role in Bacillus subtilis stress adaptation

PLoS One. 2014 Nov 13;9(11):e112590. doi: 10.1371/journal.pone.0112590. eCollection 2014.

Abstract

Background: One of the strategies for survival stress conditions in bacteria is a regulatory adaptive system called general stress response (GSR), which is dependent on the SigB transcription factor in Bacillus sp. The GSR is one of the largest regulon in Bacillus sp., including about 100 genes; however, most of the genes that show changes in expression during various stresses have not yet been characterized or assigned a biochemical function for the encoded proteins. Previously, we characterized the Bacillus subtilis168 osmosensitive mutant, defective in the yxkO gene (encoding a putative ribokinase), which was recently assigned in vitro as an ADP/ATP-dependent NAD(P)H-hydrate dehydratase and was demonstrated to belong to the SigB operon.

Methods and results: We show the impact of YxkO on the activity of SigB-dependent Pctc promoter and adaptation to osmotic and ethanol stress and potassium limitation respectively. Using a 2DE approach, we compare the proteomes of WT and mutant strains grown under conditions of osmotic and ethanol stress. Both stresses led to changes in the protein level of enzymes that are involved in motility (flagellin), citrate cycle (isocitrate dehydrogenase, malate dehydrogenase), glycolysis (phosphoglycerate kinase), and decomposition of Amadori products (fructosamine-6-phosphate deglycase). Glutamine synthetase revealed a different pattern after osmotic stress. The patterns of enzymes for branched amino acid metabolism and cell wall synthesis (L-alanine dehydrogenase, aspartate-semialdehyde dehydrogenase, ketol-acid reductoisomerase) were altered after ethanol stress.

Conclusion: We performed the first characterization of a Bacillus subtilis168 knock-out mutant in the yxkO gene that encodes a metabolite repair enzyme. We show that such enzymes could play a significant role in the survival of stressed cells.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Physiological / genetics*
  • Alanine Dehydrogenase / genetics
  • Alanine Dehydrogenase / metabolism
  • Aspartate-Semialdehyde Dehydrogenase / genetics
  • Aspartate-Semialdehyde Dehydrogenase / metabolism
  • Bacillus subtilis / drug effects
  • Bacillus subtilis / enzymology
  • Bacillus subtilis / genetics*
  • Bacterial Proteins / genetics*
  • Bacterial Proteins / metabolism
  • Escherichia coli / genetics
  • Escherichia coli / metabolism
  • Ethanol / pharmacology
  • Flagellin / genetics
  • Flagellin / metabolism
  • Gene Deletion
  • Gene Expression Regulation, Bacterial*
  • Glutamate-Ammonia Ligase / genetics
  • Glutamate-Ammonia Ligase / metabolism
  • Heat-Shock Response / genetics*
  • Isocitrate Dehydrogenase / genetics
  • Isocitrate Dehydrogenase / metabolism
  • Ketol-Acid Reductoisomerase / genetics
  • Ketol-Acid Reductoisomerase / metabolism
  • Malate Dehydrogenase / genetics
  • Malate Dehydrogenase / metabolism
  • Operon
  • Osmolar Concentration
  • Phosphoglycerate Kinase / genetics
  • Phosphoglycerate Kinase / metabolism
  • Phosphotransferases (Alcohol Group Acceptor) / deficiency
  • Phosphotransferases (Alcohol Group Acceptor) / genetics*

Substances

  • Bacterial Proteins
  • Flagellin
  • Ethanol
  • Malate Dehydrogenase
  • Isocitrate Dehydrogenase
  • Ketol-Acid Reductoisomerase
  • Aspartate-Semialdehyde Dehydrogenase
  • Alanine Dehydrogenase
  • Phosphotransferases (Alcohol Group Acceptor)
  • Phosphoglycerate Kinase
  • Glutamate-Ammonia Ligase

Grants and funding

The study was supported by projects of Ministry of Education, Youth and Sports of the Czech Republic (LC06066) and by the Charles University by project of Specific University Research (SVV-2014-260081). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.