
AbstractPyrococcus yayanosii CH1, as the first and only obligate piezophilic hyperthermophilic microorganism discovered to date, extends the physical and chemical limits of life on Earth. It was isolated from the Ashadze hydrothermal vent at 4,100 m depth. Multi-omics analyses were performed to study the mechanisms used by the cell to cope with high hydrostatic pressure variations. In silico analyses showed that the P. yayanosii genome is highly adapted to its harsh environment, with a loss of aromatic amino acid biosynthesis pathways and the high constitutive expression of the energy metabolism compared with other non-obligate piezophilic Pyrococcus species. Differential proteomics and transcriptomics analyses identified key hydrostatic pressure-responsive genes involved in translation, chemotaxis, energy metabolism (hydrogenases and formate metabolism) and Clustered Regularly Interspaced Short Palindromic Repeats sequences associated with Cellular apoptosis susceptibility proteins.
Proteomics, Pyrococcus, Archaeal Proteins, Gene Expression Profiling, Computational Biology, Adaptation, Physiological, Article, Biosynthetic Pathways, DNA, Archaeal, Hydrothermal Vents, Stress, Physiological, Multigene Family, Hydrostatic Pressure, Computer Simulation, Amino Acids, Gene Expression Regulation, Archaeal, Energy Metabolism
Proteomics, Pyrococcus, Archaeal Proteins, Gene Expression Profiling, Computational Biology, Adaptation, Physiological, Article, Biosynthetic Pathways, DNA, Archaeal, Hydrothermal Vents, Stress, Physiological, Multigene Family, Hydrostatic Pressure, Computer Simulation, Amino Acids, Gene Expression Regulation, Archaeal, Energy Metabolism
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