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World journal of microbiology & biotechnology, 2017-06, Vol.33 (6), p.112-112, Article 112
2017

Details

Autor(en) / Beteiligte
Titel
Radiation resistance in thermophiles: mechanisms and applications
Ist Teil von
  • World journal of microbiology & biotechnology, 2017-06, Vol.33 (6), p.112-112, Article 112
Ort / Verlag
Dordrecht: Springer Netherlands
Erscheinungsjahr
2017
Link zum Volltext
Quelle
SpringerLink (Online service)
Beschreibungen/Notizen
  • The study of prokaryotic life in high temperature environments viz., geothermal areas, hot, acidic geysers and undersea hydrothermal vents has revealed the existence of thermophiles (or hyperthermophiles). These microorganisms possess various stress adaptation mechanisms which enable them to bypass multiple physical and chemical barriers for survival. The discovery of radiation resistant thermophile Deinococcus geothermalis has given new insights into the field of radiation microbiology. The ability of radiation resistant thermophiles to deal with the lethal effects of ionizing radiations like DNA damage, oxidative bursts and protein damage has made them a model system for exobiology and interplanetary transmission of life. They might be an antiquity of historical transport process that brought microbial life on Earth. These radiation resistant thermophiles are resistant to desiccation as well and maintain their homeostasis by advance DNA repair mechanisms, reactive oxygen species (ROS) detoxification system and accumulation of compatible solutes. Moreover, engineered radioresistant thermophilic strains are the best candidate for bioremediation of radionuclide waste while the extremolytes produced by these organisms may have predicted therapeutic uses. So, the present article delineate a picture of radiation resistance thermophiles, their adaptive mechanisms to evade stress viz., radiation and desiccation, their present applications along with new horizons in near future.
Sprache
Englisch
Identifikatoren
ISSN: 0959-3993
eISSN: 1573-0972
DOI: 10.1007/s11274-017-2279-5
Titel-ID: cdi_proquest_miscellaneous_1895278341
Format
Schlagworte
Actinobacteria - physiology, Actinobacteria - radiation effects, Adaptive radiation, Applied Microbiology, Archaea - physiology, Archaea - radiation effects, Astrobiology, Bacteria - genetics, Bacteria - radiation effects, Bacterial Physiological Phenomena - genetics, Bacterial Physiological Phenomena - radiation effects, Biochemistry, Biodegradation, Environmental, Biomedical and Life Sciences, Bioremediation, Biotechnology, Cyanobacteria - physiology, Cyanobacteria - radiation effects, Deinococcus - genetics, Deinococcus - physiology, Deinococcus - radiation effects, Deinococcus geothermalis, Deoxyribonucleic acid, Desiccation, Detoxification, DNA, DNA damage, DNA Damage - radiation effects, DNA Repair, Drying, Earth, Environmental Engineering/Biotechnology, Environmental Microbiology, Exobiology, Genomes, Geothermal areas, Geysers, Halobacterium - physiology, Halobacterium - radiation effects, High temperature, High temperature environments, Homeostasis, Hot Temperature, Hydrothermal plumes, Hydrothermal vents, Hyperthermophiles, Lethal effects, Life Sciences, Microbiology, Microorganisms, Organic chemistry, Organisms, Proteins, Pyrococcus - physiology, Pyrococcus - radiation effects, Radiation, Radiation tolerance, Radiation, Ionizing, Radioisotopes, Reactive oxygen species, Reactive Oxygen Species - radiation effects, Respiratory Burst - radiation effects, Review, Solutes, Stress, Physiological, Sulfolobus - physiology, Sulfolobus - radiation effects, Thermococcus - physiology, Thermococcus - radiation effects, Thermophiles, Thermophilic microorganisms, Transport processes, Undersea, Vents

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