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= Biological Importance of Reducing O₂ =
= Biological Importance of Reducing O₂ =


Oxygen toxicity is a fatal problem among all organisms, but can easily occur in prokaryotes due to their low oxygen tolerance. In prokaryotes, the [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3171616/ cytochrome bd oxygen reductases] function to quickly reduce the concentration of O₂ into H₂O to protect the cell from detrimental effects. Without proper functioning of these enzymes, or if O₂ concentrations are too high, the concentrations of the intermediates formed from the reduction reaction will increase and can be detrimental. As a result of the vitality of reducing O₂ in prokaryotes, knowledge on bd oxidases can help develop drugs that target these enzymes to combat bacterial infection.<ref name=”Borisov”>PMID:21756872</ref>
Oxygen toxicity is a fatal problem among all organisms, but can easily occur in prokaryotes due to their low oxygen tolerance. In prokaryotes, the [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3171616/ cytochrome bd oxygen reductases] function to quickly reduce the concentration of O₂ into H₂O to protect the cell from detrimental effects. Without proper functioning of these enzymes, or if O₂ concentrations are too high, the concentrations of the intermediates formed from the reduction reaction will increase and can be detrimental. As a result of the vitality of reducing O₂ in prokaryotes, knowledge on bd oxidases can help develop drugs that target these enzymes to combat bacterial infection.<ref name=”Borisov”>PMID:21756872</ref>


=Structure=
=Structure=
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==Electron Source==
==Electron Source==


An electron source is needed in order for the redox reaction of O₂ to occur. Cytochrome bd oxidase uses the quinol molecule [https://en.wikipedia.org/wiki/Coenzyme_Q10 ubiquinone] as an electron donor. The chemical structure of ubiquinone is shown in Fig. 2. [[Image:Ubiquinone.jpg|200 px|right|thumb|Figure 2. Chemical structure of ubiquinone.]] As shown in the <scene name='83/838655/Bdoxidase_structure_full/4'>overall structure</scene> the <scene name='83/838655/Bdoxidase_q_loop/2'>Q loop</scene> is on the extracellular surface and provides a binding site for ubiquinone.<ref name = ”Safarian” /> As mentioned in the Active Site section, Heme <scene name='83/838655/Bdoxidase_qloop_zoom/3'>B558 is closest in proximity to the Q loop</scene> and thus is the suggested [https://en.wikipedia.org/wiki/Electron_acceptor electron acceptor]. This suggestion is further supported by the conservation of <scene name='83/838655/Bdoxidase_trp/2'>Trp374</scene> often found as intermediate electron receptors in biological [https://en.wikipedia.org/wiki/Electron_transport_chain electron transfer chains].<ref name =”Safarian” />
An electron source is needed in order for the redox reaction of O₂ to occur. Cytochrome bd oxidase uses the quinol molecule [https://en.wikipedia.org/wiki/Coenzyme_Q10 ubiquinone] as an electron donor. The chemical structure of ubiquinone is shown in Fig. 2. [[Image:Ubiquinone.jpg|200 px|right|thumb|Figure 2. Chemical structure of ubiquinone.]] As shown in the <scene name='83/838655/Bdoxidase_structure_full/4'>overall structure</scene> the <scene name='83/838655/Bdoxidase_q_loop/2'>Q loop</scene> is on the extracellular surface and provides a binding site for ubiquinone.<ref name = ”Safarian” /> As mentioned in the Active Site section, Heme <scene name='83/838655/Bdoxidase_qloop_zoom/3'>B558 is closest in proximity to the Q loop</scene> and thus is the suggested [https://en.wikipedia.org/wiki/Electron_acceptor electron acceptor]. This suggestion is further supported by the conservation of <scene name='83/838655/Bdoxidase_trp/2'>Trp374</scene> often found as intermediate electron receptors in biological [https://en.wikipedia.org/wiki/Electron_transport_chain electron transfer chains].<ref name =”Safarian” />


==Potential Proton Pathways==
==Potential Proton Pathways==
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The protons that are required in the pathway are not provided by a pump, but rather via intracellular water. The <scene name='83/838655/Bdoxidase_proton_pathways/1'>potential proton pathways</scene> utilize amino acids with charges that help shuttle the protons from the intracellular side of the protein to <scene name='83/838655/Bd_oxidase_heme_b_595/1'>Heme B595</scene>. in the active site. The <scene name='83/838655/Bdoxidase_cyda_pathway_glu108/1'>CydA pathway</scene> passes through the <scene name='83/838655/Bdoxidase_cyda_subunit/2'>CydA subunit</scene>, and is shown in <font color='purple'><b>purple</b></font> in Figure 4. The <scene name='83/838655/Bdoxidase_cydb_pathway/3'>CydB pathway</scene> proceeds through the <scene name='83/838655/Bdoxidase_cydb_subunit/2'>CydB subunit</scene>, and is shown in <font color='green'><b>green</b></font> in Figure 4.
The protons that are required in the pathway are not provided by a pump, but rather via intracellular water. The <scene name='83/838655/Bdoxidase_proton_pathways/1'>potential proton pathways</scene> utilize amino acids with charges that help shuttle the protons from the intracellular side of the protein to <scene name='83/838655/Bd_oxidase_heme_b_595/1'>Heme B595</scene>. in the active site. The <scene name='83/838655/Bdoxidase_cyda_pathway_glu108/1'>CydA pathway</scene> passes through the <scene name='83/838655/Bdoxidase_cyda_subunit/2'>CydA subunit</scene>, and is shown in <font color='purple'><b>purple</b></font> in Figure 4. The <scene name='83/838655/Bdoxidase_cydb_pathway/3'>CydB pathway</scene> proceeds through the <scene name='83/838655/Bdoxidase_cydb_subunit/2'>CydB subunit</scene>, and is shown in <font color='green'><b>green</b></font> in Figure 4.


As shown above, the electrons required for the reduction mechanism come from a ubiquinol molecule (Fig. 2) that simultaneously binds to the <scene name='83/838655/Bdoxidase_q_loop/2'>Q loop</scene> and gets oxidized giving 4e<sup>-</sup> to <scene name='83/838655/Bd_oxidase_heme_558/2'>Heme B558</scene>. Once at <scene name='83/838655/Bd_oxidase_heme_558/2'>Heme B558</scene> the 4e<sup>-</sup> will be shuttled directly to <scene name='83/838655/Bd_oxidase_heme_d/1'>Heme D</scene> to be used in the reduction of O₂. The electron pathway is depicted in <font color='blue'><b>blue</b></font> in Figure 4.
As shown above, the electrons required for the reduction mechanism come from a ubiquinol molecule (Fig. 2) that simultaneously binds to the <scene name='83/838655/Bdoxidase_q_loop/2'>Q loop</scene> and gets oxidized giving 4e<sup>-</sup> to <scene name='83/838655/Bd_oxidase_heme_558/2'>Heme B558</scene>. Once at <scene name='83/838655/Bd_oxidase_heme_558/2'>Heme B558</scene> the 4e<sup>-</sup> will be shuttled directly to <scene name='83/838655/Bd_oxidase_heme_d/1'>Heme D</scene> to be used in the reduction of O₂. The electron pathway is depicted in <font color='blue'><b>blue</b></font> in Figure 4.


When all of these elements of the reduction aggregate in the active site, the protons and electrons are shuttled to <scene name='83/838655/Bd_oxidase_heme_d/1'>Heme D</scene>, where the actual reduction occurs. The 2H₂O molecules are then expelled, as seen in <font color='red'><b>red</b></font> in Figure 4. The shuttling of these electrons and protons also helps assist with the electric chemical potential in the [https://en.wikipedia.org/wiki/Cell_membrane cellular membrane].
When all of these elements of the reduction aggregate in the active site, the protons and electrons are shuttled to <scene name='83/838655/Bd_oxidase_heme_d/1'>Heme D</scene>, where the actual reduction occurs. The 2H₂O molecules are then expelled, as seen in <font color='red'><b>red</b></font> in Figure 4. The shuttling of these electrons and protons also helps assist with the electric chemical potential in the [https://en.wikipedia.org/wiki/Cell_membrane cellular membrane].

Revision as of 19:07, 20 April 2020

bd oxidase; Geobacillus thermodenitrificans

bd oxidase (PDB: 5doq)

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References


Student Contributors

Emma H Harris

Carson E Middlebrook