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Cytochrome bd oxidase plays a key role in protecting [https://en.wikipedia.org/wiki/Gram-negative_bacteria gram-negative bacteria], more specifically [https://en.wikipedia.org/wiki/Heterotroph heterotrophs], from high oxidative stress (ie. preventing free radicals in intracellular space in prokaryotes). <ref name=”Jünemann”>PMID:9332500</ref> Other organisms, like humans, have mechanisms that do the same thing but are more intricate due to the organism’s higher levels of complexity.
Cytochrome bd oxidase plays a key role in protecting [https://en.wikipedia.org/wiki/Gram-negative_bacteria gram-negative bacteria], more specifically [https://en.wikipedia.org/wiki/Heterotroph heterotrophs], from high oxidative stress (ie. preventing free radicals in intracellular space in prokaryotes). <ref name=”Jünemann”>PMID:9332500</ref> Other organisms, like humans, have mechanisms that do the same thing but are more intricate due to the organism’s higher levels of complexity.
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The ''Geobacillus thermodenitrificans'' organism utilizes the bd oxidase mechanism. The oxygen enters the enzyme through the selective <scene name='83/832926/Potential_oxygen_entry_site/1'>oxygen entry site</scene> that funnels the extracellular oxygen to <scene name='83/838655/Bd_oxidase_heme_d/1'>Heme D</scene> in the active site. The electrons for the reaction are provided by ubiquinone molecule bound to the <scene name='83/838655/Bdoxidase_q_loop/2'>Q loop</scene>. The protons for the reaction are provided by one of two <scene name='83/838655/Bdoxidase_proton_pathways/1'>potential proton pathways</scene>, either the <scene name='83/838655/Bdoxidase_cyda_pathway/6'>CydA pathway</scene>or <scene name='83/838655/Bdoxidase_cydb_pathway/3'>CydB pathway</scene>. Both of the proton pathways utilize the intracellular water molecules for the proton source, and shuttle them to <scene name='83/838655/Bd_oxidase_heme_b_595/1'>Heme B595</scene>.
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The ''Geobacillus thermodenitrificans'' is a facultative aerobic thermophilic bacterium that utilizes the bd oxidase mechanism. The oxygen enters the enzyme through the selective <scene name='83/832926/Potential_oxygen_entry_site/1'>oxygen entry site</scene> that funnels the extracellular oxygen to <scene name='83/838655/Bd_oxidase_heme_d/1'>Heme D</scene> in the active site. The electrons for the reaction are provided by ubiquinone molecule bound to the <scene name='83/838655/Bdoxidase_q_loop/2'>Q loop</scene>. The protons for the reaction are provided by one of two <scene name='83/838655/Bdoxidase_proton_pathways/1'>potential proton pathways</scene>, either the <scene name='83/838655/Bdoxidase_cyda_pathway/6'>CydA pathway</scene>or <scene name='83/838655/Bdoxidase_cydb_pathway/3'>CydB pathway</scene>. Both of the proton pathways utilize the intracellular water molecules for the proton source, and shuttle them to <scene name='83/838655/Bd_oxidase_heme_b_595/1'>Heme B595</scene>.
= Biological Importance of Reducing O₂ =
= Biological Importance of Reducing O₂ =

Revision as of 19:03, 20 April 2020

bd oxidase; Geobacillus thermodenitrificans

bd oxidase (PDB: 5doq)

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References

  1. Giuffre A, Borisov VB, Arese M, Sarti P, Forte E. Cytochrome bd oxidase and bacterial tolerance to oxidative and nitrosative stress. Biochim Biophys Acta. 2014 Jul;1837(7):1178-87. doi:, 10.1016/j.bbabio.2014.01.016. Epub 2014 Jan 31. PMID:24486503 doi:http://dx.doi.org/10.1016/j.bbabio.2014.01.016
  2. 2.0 2.1 2.2 2.3 2.4 2.5 2.6 2.7 2.8 2.9 Safarian S, Hahn A, Mills DJ, Radloff M, Eisinger ML, Nikolaev A, Meier-Credo J, Melin F, Miyoshi H, Gennis RB, Sakamoto J, Langer JD, Hellwig P, Kuhlbrandt W, Michel H. Active site rearrangement and structural divergence in prokaryotic respiratory oxidases. Science. 2019 Oct 4;366(6461):100-104. doi: 10.1126/science.aay0967. PMID:31604309 doi:http://dx.doi.org/10.1126/science.aay0967
  3. Das A, Silaghi-Dumitrescu R, Ljungdahl LG, Kurtz DM Jr. Cytochrome bd oxidase, oxidative stress, and dioxygen tolerance of the strictly anaerobic bacterium Moorella thermoacetica. J Bacteriol. 2005 Mar;187(6):2020-9. doi: 10.1128/JB.187.6.2020-2029.2005. PMID:15743950 doi:http://dx.doi.org/10.1128/JB.187.6.2020-2029.2005
  4. Junemann S. Cytochrome bd terminal oxidase. Biochim Biophys Acta. 1997 Aug 22;1321(2):107-27. doi:, 10.1016/s0005-2728(97)00046-7. PMID:9332500 doi:http://dx.doi.org/10.1016/s0005-2728(97)00046-7
  5. Borisov VB, Gennis RB, Hemp J, Verkhovsky MI. The cytochrome bd respiratory oxygen reductases. Biochim Biophys Acta. 2011 Nov;1807(11):1398-413. doi:, 10.1016/j.bbabio.2011.06.016. Epub 2011 Jul 1. PMID:21756872 doi:http://dx.doi.org/10.1016/j.bbabio.2011.06.016
  6. Safarian S, Rajendran C, Muller H, Preu J, Langer JD, Ovchinnikov S, Hirose T, Kusumoto T, Sakamoto J, Michel H. Structure of a bd oxidase indicates similar mechanisms for membrane-integrated oxygen reductases. Science. 2016 Apr 29;352(6285):583-6. doi: 10.1126/science.aaf2477. PMID:27126043 doi:http://dx.doi.org/10.1126/science.aaf2477
  7. Thesseling A, Rasmussen T, Burschel S, Wohlwend D, Kagi J, Muller R, Bottcher B, Friedrich T. Homologous bd oxidases share the same architecture but differ in mechanism. Nat Commun. 2019 Nov 13;10(1):5138. doi: 10.1038/s41467-019-13122-4. PMID:31723136 doi:http://dx.doi.org/10.1038/s41467-019-13122-4

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