Molecular response of Deinococcus radiodurans to simulated microgravity explored by proteometabolomic approach

Sci Rep. 2019 Dec 5;9(1):18462. doi: 10.1038/s41598-019-54742-6.

Abstract

Regarding future space exploration missions and long-term exposure experiments, a detailed investigation of all factors present in the outer space environment and their effects on organisms of all life kingdoms is advantageous. Influenced by the multiple factors of outer space, the extremophilic bacterium Deinococcus radiodurans has been long-termly exposed outside the International Space Station in frames of the Tanpopo orbital mission. The study presented here aims to elucidate molecular key components in D. radiodurans, which are responsible for recognition and adaptation to simulated microgravity. D. radiodurans cultures were grown for two days on plates in a fast-rotating 2-D clinostat to minimize sedimentation, thus simulating reduced gravity conditions. Subsequently, metabolites and proteins were extracted and measured with mass spectrometry-based techniques. Our results emphasize the importance of certain signal transducer proteins, which showed higher abundances in cells grown under reduced gravity. These proteins activate a cellular signal cascade, which leads to differences in gene expressions. Proteins involved in stress response, repair mechanisms and proteins connected to the extracellular milieu and the cell envelope showed an increased abundance under simulated microgravity. Focusing on the expression of these proteins might present a strategy of cells to adapt to microgravity conditions.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Physiological / genetics
  • Bacterial Proteins / analysis
  • Bacterial Proteins / metabolism*
  • Deinococcus / metabolism*
  • Extremophiles / metabolism*
  • Gene Expression Regulation, Bacterial / physiology
  • Mass Spectrometry
  • Metabolomics / methods
  • Proteomics / methods
  • Space Flight
  • Stress, Physiological / genetics
  • Weightlessness Simulation / adverse effects*

Substances

  • Bacterial Proteins