Extremophiles: Difference between revisions
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Extremophiles are organisms that thrive in (and may require) extreme environments. Most known extremophiles are microbes. Those that thrive in very hot environments are called ''thermophiles'' or ''hyperthermophiles'', while those that thrive in very salty environments are called ''halophiles''. Extremophiles can be contrasted with organisms that live in less extreme environments. Such organisms may be called ''mesophiles'' (living at moderate temperatures) or ''neutrophiles'' (living at neutral pH). | Extremophiles are organisms that thrive in (and may require) extreme environments. Most known extremophiles are microbes. Those that thrive in very hot environments are called ''thermophiles'' or ''hyperthermophiles'', while those that thrive in very salty environments are called ''halophiles''. Extremophiles can be contrasted with organisms that live in less extreme environments. Such organisms may be called ''mesophiles'' (living at moderate temperatures) or ''neutrophiles'' (living at neutral pH). | ||
Proteins of thermophiles and halophiles tend to be more stable, easier to manage in the laboratory, and easier to crystallize than proteins from mesophiles. Consequently, extremophile proteins have been very useful in crystallography and [[Structural genomics|structural genomics]], yielding many new structures<ref>PMID: 17563834</ref><ref>PMID: 19156357</ref>. For example, the [[Nobel_Prizes_for_3D_Molecular_Structure|Nobel Prize-winning]] structures of the [[Ribosome|ribosome]] were determined using proteins from the thermophile ''Thermus thermophilus'' and the halophile ''Haloarcula marismortui'' (see 2009 at [[Nobel Prizes for 3D Molecular Structure#Twenty-First_Century]]). | Proteins of thermophiles and halophiles tend to be more stable, easier to manage in the laboratory, and easier to crystallize than proteins from mesophiles. [[Salt bridges]] are more numerous in these proteins, contributing to their stabiliity. Consequently, extremophile proteins have been very useful in crystallography and [[Structural genomics|structural genomics]], yielding many new structures<ref>PMID: 17563834</ref><ref>PMID: 19156357</ref>. For example, the [[Nobel_Prizes_for_3D_Molecular_Structure|Nobel Prize-winning]] structures of the [[Ribosome|ribosome]] were determined using proteins from the thermophile ''Thermus thermophilus'' and the halophile ''Haloarcula marismortui'' (see 2009 at [[Nobel Prizes for 3D Molecular Structure#Twenty-First_Century]]). | ||
Most applications of the polymerase chain reaction (PCR) method now rely on thermostable Taq Polymerase, an enzyme from ''Thermus aquauatics'' - see [[1taq]], [[1tau]], [[1bgx]]; Kary Mullis shared the [http://nobelprize.org/nobel_prizes/chemistry/laureates/1993/ 1993 Nobel Prize in Chemistry] for the invention of PCR. | Most applications of the polymerase chain reaction (PCR) method now rely on thermostable Taq Polymerase, an enzyme from ''Thermus aquauatics'' - see [[1taq]], [[1tau]], [[1bgx]]; Kary Mullis shared the [http://nobelprize.org/nobel_prizes/chemistry/laureates/1993/ 1993 Nobel Prize in Chemistry] for the invention of PCR. | ||