6533b85afe1ef96bd12b981a
RESEARCH PRODUCT
Changes in Energy Status of Saccharomyces cerevisiae Cells During Dehydration and Rehydration
Rasa ŽūKienėRimantas DaugelavičiusAlexander RapoportNeringa KuliešienėGalina KhroustalyovaChuang-rung Changsubject
0106 biological sciencesMicrobiology (medical)Saccharomyces cerevisiaeyeast01 natural sciencesMicrobiologyArticle03 medical and health scienceschemistry.chemical_compound010608 biotechnologyVirologymedicinebiochemistrydehydration–rehydrationDehydrationCryptobiosislcsh:QH301-705.5030304 developmental biology0303 health sciencesGrowth mediumStrain (chemistry)biologyMetabolismanhydrobiosisbiology.organism_classificationmedicine.diseaseYeastmitochondrialcsh:Biology (General)chemistryBiochemistryDesiccationmetabolismdescription
Anhydrobiosis is the state of life when cells are exposed to waterless conditions and gradually cease their metabolism. In this study, we determined the sequence of events in Saccharomyces cerevisiae energy metabolism during processes of dehydration and rehydration. The intensities of respiration and acidification of the medium, the amounts of phenyldicarbaundecaborane (PCB−) bound to yeast membranes, and the capabilities of cells to accumulate K+ were assayed using an electrochemical monitoring system, and the intracellular content of ATP was measured using a bioluminescence assay. Mesophilic, semi-resistant to desiccation S. cerevisiae strain 14 and thermotolerant, very resistant to desiccation S. cerevisiae strain 77 cells were compared. After 22 h of drying, it was possible to restore the respiration activity of very resistant to desiccation strain 77 cells, especially when glucose was available. PCB− binding also indicated considerably higher metabolic activity of dehydrated S. cerevisiae strain 77 cells. Electrochemical K+ content and medium acidification assays indicated that permeabilization of the plasma membrane in cells of both strains started almost simultaneously, after 8–10 h of desiccation, but semi-resistant strain 14 cells maintained the K+ gradient for longer and more strongly acidified the medium. For both cells, the fast rehydration in water was less efficient compared to reactivation in the growth medium, indicating the need for nutrients for the recovery. Higher viability of strain 77 cells after rehydration could be due to the higher stability of their mitochondria.
year | journal | country | edition | language |
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2021-02-01 |