A-ATP Synthase

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The A1Ao [[ATP synthase]] from archaea represents a class of chimeric ATPases/synthase , whose function and general structural design share characteristics both with vacuolar V1Vo ATPases and with F1Fo <ref>[[Media:http://www.youtube.com/watch?v=W3KxU63gcF4 ATP synthases]]</ref> <ref> http://www.ncbi.nlm.nih.gov/pubmed/16563431 </ref> A1A0 ATP synthase catalyzes the formation of the energy currency ATP by a membrane-embedded electrically-driven motor. The archaeon in this study, [[Pyrococcus]] horikoshii OT3 is an anaerobic thermophile residing in oceanic deep sea vents with optimal growth at 100degrees Anaerobic fermentation is the principle metabolic pathway. The membrane-embedded electrically-driven motor (A0) is very different in archaea with sometimes novel, exceptional subunit composition and coupling stoichiometries that may reflect the differences in energy-conserving mechanisms as well as adaptation to temperatures at or above 100 degrees C.
The A1Ao [[ATP synthase]] from archaea represents a class of chimeric ATPases/synthase , whose function and general structural design share characteristics both with vacuolar V1Vo ATPases and with F1Fo <ref>[[Media:http://www.youtube.com/watch?v=W3KxU63gcF4 ATP synthases]]</ref> <ref> http://www.ncbi.nlm.nih.gov/pubmed/16563431 </ref> A1A0 ATP synthase catalyzes the formation of the energy currency ATP by a membrane-embedded electrically-driven motor. The archaeon in this study, [[Pyrococcus]] horikoshii OT3 is an anaerobic thermophile residing in oceanic deep sea vents with optimal growth at 100degrees Anaerobic fermentation is the principle metabolic pathway. The membrane-embedded electrically-driven motor (A0) is very different in archaea with sometimes novel, exceptional subunit composition and coupling stoichiometries that may reflect the differences in energy-conserving mechanisms as well as adaptation to temperatures at or above 100 degrees C.
<ref> http://www.mendeley.com/research/bioenergetics-archaea-atp-synthesis-under-harsh-environmental-conditions/ </ref> Because some archaea are rooted close to the origin in the tree of life, these unusual mechanisms are considered to have developed very early in the history of life and, therefore, may represent first energy-conserving mechanisms. <ref> http://www.mendeley.com/research/bioenergetics-archaea-atp-synthesis-under-harsh-environmental-conditions/ </ref>
<ref> http://www.mendeley.com/research/bioenergetics-archaea-atp-synthesis-under-harsh-environmental-conditions/ </ref> Because some archaea are rooted close to the origin in the tree of life, these unusual mechanisms are considered to have developed very early in the history of life and, therefore, may represent first energy-conserving mechanisms. <ref> http://www.mendeley.com/research/bioenergetics-archaea-atp-synthesis-under-harsh-environmental-conditions/ </ref>
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[http://en.wikipedia.org/wiki/Vanadate vanadate) F-ATP is a proton gradient for prokaryotic and eukaryotic. Subunit B of F1-ATPase is involved in immobilization and polarization of a H2O molecule to facilitate nucleophilic attack at the y-phosphate of ATP.
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F-ATP is a proton gradient for prokaryotic and eukaryotic. Subunit B of F1-ATPase is involved in immobilization and polarization of a H2O molecule to facilitate nucleophilic attack at the y-phosphate of ATP.
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F1---closest in structure to a DNA helices
F1---closest in structure to a DNA helices
F0---
F0---

Revision as of 08:51, 16 November 2011

PDB ID 3p20

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Mutants

changed to alanine

k240 =stabilizes trans state

t241=Kd's resolved, stabilizes trans, nucleotide binding induces sidechain conformational deviation

References

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Kaitlin Chase MacCulloch, Michal Harel, Alexander Berchansky

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