The structure of DNA in anabiotic and mummified Escherichia coli cells
- Authors: Krupyanskii Y.F.1, Kovalenko V.V.1, Loiko N.G.1,2, Tereshkin E.V.1, Tereshkina K.B.1, Popov A.N.3
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Affiliations:
- Semenov Federal Research Center of Chemical Physics, Russian Academy of Sciences
- Federal Research Center “Fundamentals of Biotechnology”, Russian Academy of Sciences
- European Synchrotron Radiation Facility
- Issue: Vol 43, No 7 (2024)
- Pages: 102-110
- Section: Chemical physics of biological processes
- URL: https://vestnikugrasu.org/0207-401X/article/view/674929
- DOI: https://doi.org/10.31857/S0207401X24070102
- ID: 674929
Cite item
Abstract
The structural organization of DNA in “stressed” (with increased stress resistance), anabiotic and mummified cells obtained by introducing 4-hexylresorcinol in different concentrations at different stages of cell culture growth was studied using the synchrotron radiation diffraction technique. Experimental studies allow us to conclude that 4-hexylresorcinol is the initiator of the transition of cells into an anabiotic and mummified state in the stationary stage of growth. In the prestationary stage, in the studied concentration range, 4-hexylresorcinol initiates the transition of cells into a mummified state, but not into an anabiotic state, which indicates that DNA is unprepared for the crystallization process in these bacteria. The structure of DNA inside a cell in an anabiotic dormant state (almost complete absence of metabolism) and dormant state (starvation stress) coincide (form nanocrystalline structures). Data indicate the universality of DNA condensation or the universality of DNA protection by the Dps protein in the dormant state, regardless of the type of stress. The mummified state (complete absence of metabolism, irreversible to life) is very different in structure (has no order within the cell).
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About the authors
Yu. F. Krupyanskii
Semenov Federal Research Center of Chemical Physics, Russian Academy of Sciences
Author for correspondence.
Email: yufk@chph.ras.ru
Russian Federation, Moscow
V. V. Kovalenko
Semenov Federal Research Center of Chemical Physics, Russian Academy of Sciences
Email: yufk@chph.ras.ru
Russian Federation, Moscow
N. G. Loiko
Semenov Federal Research Center of Chemical Physics, Russian Academy of Sciences; Federal Research Center “Fundamentals of Biotechnology”, Russian Academy of Sciences
Email: yufk@chph.ras.ru
Russian Federation, Moscow; Moscow
E. V. Tereshkin
Semenov Federal Research Center of Chemical Physics, Russian Academy of Sciences
Email: yufk@chph.ras.ru
Russian Federation, Moscow
K. B. Tereshkina
Semenov Federal Research Center of Chemical Physics, Russian Academy of Sciences
Email: yufk@chph.ras.ru
Russian Federation, Moscow
A. N. Popov
European Synchrotron Radiation Facility
Email: yufk@chph.ras.ru
France, Grenoble Cedex 9
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