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Life under Multiple Extreme Conditions: Diversity and Physiology of the Halophilic Alkalithermophiles

Journal

APPLIED AND ENVIRONMENTAL MICROBIOLOGY
Volume 78, Issue 12, Pages 4074-4082

Publisher

AMER SOC MICROBIOLOGY
DOI: 10.1128/AEM.00050-12

Keywords

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Funding

  1. National Science Foundation [MCB-060224, INT-021100]
  2. Air Force Office of Scientific Research [AFOSR 033835-01]
  3. Office Of Internatl Science &Engineering
  4. Office Of The Director [1132412] Funding Source: National Science Foundation

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Around the world, there are numerous alkaline, hypersaline environments that are heated either geothermally or through intense solar radiation. It was once thought that such harsh environments were inhospitable and incapable of supporting a variety of life. However, numerous culture-dependent and -independent studies revealed the presence of an extensive diversity of aerobic and anaerobic bacteria and archaea that survive and grow under these multiple harsh conditions. This diversity includes the halophilic alkalithermophiles, a novel group of polyextremophiles that require for growth and proliferation the multiple extremes of high salinity, alkaline pH, and elevated temperature. Life under these conditions undoubtedly involves the development of unique physiological characteristics, phenotypic properties, and adaptive mechanisms that enable control of membrane permeability, control of intracellular osmotic balance, and stability of the cell wall, intracellular proteins, and other cellular constituents. This minireview highlights the ecology and growth characteristics of the extremely halophilic alkalithermophiles that have been isolated thus far. Biochemical, metabolic, and physiological properties of the extremely halophilic alkalithermophiles are described, and their roles in resistance to the combined stressors of high salinity, alkaline pH, and high temperature are discussed. The isolation of halophilic alkalithermophiles broadens the physicochemical boundaries for life and extends the boundaries for the combinations of the maximum salinity, pH, and temperature that can support microbial growth.

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