Sandbox Reserved 1625: Difference between revisions

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Three <scene name='83/832931/Heme/6'>hemes</scene> are present in the CydA subunit. These three hemes form a triangle to maximize subunit stability<ref name="Safarian">PMID:31604309</ref><ref name="Alexander">PMID:31723136</ref><ref name="Safarian2">PMID:27126043</ref>, which is an evolutionary conserved feature across bd oxidases<ref name="Safarian">PMID:31604309</ref>.  Heme b<sub>558</sub> acts as the primary [https://en.wikipedia.org/wiki/Electron_acceptor electron acceptor] by catalyzing the [https://en.wikipedia.org/wiki/Hydroquinone#Redox oxidation of quinol]<ref name="Alexander">PMID:31723136</ref>. Conserved <scene name='83/832931/Met393/1'>His186 and Met393</scene> help to stabilize heme b558<ref name="Alexander">PMID:31723136</ref>. Heme b<sub>558</sub> transfers the electrons to heme b595, which transfers them to the active site heme d<ref name= "Safarian">PMID:31604309</ref>.  Multiple residues help stabilzie this electron trasnfer including a conserved <scene name='83/832931/Trp441/6'>Trp441</scene> that assists heme b<sub>595</sub> in transferring electrons to heme d<ref name="Safarian2">PMID:27126043</ref>.  A conserved <scene name='83/832931/Hemeb595/2'>Glu445</scene> is also essential for charge stabilization of heme b<sub>595</sub><ref name="Alexander">PMID:31723136</ref>, while <scene name='83/832931/Hemeh19/3'>His19</scene> stabilizes heme d<ref name="Safarian2">PMID:27126043</ref>. As heme d collects the electrons from heme b<sub>595</sub>, <scene name='83/832931/Heme_d/3'>Glu99</scene> in the O-channel facilities the binding of oxygen to heme d, and <scene name='83/832931/Heme_d/3'>Ser108, Glu107, and Ser140</scene> in the H-channel facilitate proton transfer to heme d<ref name="Safarian">PMID:31604309</ref>. Similar to the three hemes, the <scene name='83/832931/Uq8/3'>ubiquinone-8</scene> (UQ-8) molecule found in CydB mimics the triangular formation to stabilize the subunit<ref name="Safarian">PMID:31604309</ref>.  
Three <scene name='83/832931/Heme/6'>hemes</scene> are present in the CydA subunit. These three hemes form a triangle to maximize subunit stability<ref name="Safarian">PMID:31604309</ref><ref name="Alexander">PMID:31723136</ref><ref name="Safarian2">PMID:27126043</ref>, which is an evolutionary conserved feature across bd oxidases<ref name="Safarian">PMID:31604309</ref>.  Heme b<sub>558</sub> acts as the primary [https://en.wikipedia.org/wiki/Electron_acceptor electron acceptor] by catalyzing the [https://en.wikipedia.org/wiki/Hydroquinone#Redox oxidation of quinol]<ref name="Alexander">PMID:31723136</ref>. Conserved <scene name='83/832931/Met393/1'>His186 and Met393</scene> help to stabilize heme b558<ref name="Alexander">PMID:31723136</ref>. Heme b<sub>558</sub> transfers the electrons to heme b595, which transfers them to the active site heme d<ref name= "Safarian">PMID:31604309</ref>.  Multiple residues help stabilzie this electron trasnfer including a conserved <scene name='83/832931/Trp441/6'>Trp441</scene> that assists heme b<sub>595</sub> in transferring electrons to heme d<ref name="Safarian2">PMID:27126043</ref>.  A conserved <scene name='83/832931/Hemeb595/2'>Glu445</scene> is also essential for charge stabilization of heme b<sub>595</sub><ref name="Alexander">PMID:31723136</ref>, while <scene name='83/832931/Hemeh19/3'>His19</scene> stabilizes heme d<ref name="Safarian2">PMID:27126043</ref>. As heme d collects the electrons from heme b<sub>595</sub>, <scene name='83/832931/Heme_d/3'>Glu99</scene> in the O-channel facilities the binding of oxygen to heme d, and <scene name='83/832931/Heme_d/3'>Ser108, Glu107, and Ser140</scene> in the H-channel facilitate proton transfer to heme d<ref name="Safarian">PMID:31604309</ref>. Similar to the three hemes, the <scene name='83/832931/Uq8/3'>ubiquinone-8</scene> (UQ-8) molecule found in CydB mimics the triangular formation to stabilize the subunit<ref name="Safarian">PMID:31604309</ref>.  
===Mechanism===
===Mechanism===
Quinol is used as the initial [https://en.wikipedia.org/wiki/Electron_donor electron donor]  and heme b<sub>558</sub> is the initial electron acceptor.  <scene name='83/832931/Heme/6'>Heme b558</scene> transfers the electrons to <scene name='83/832931/Heme/6'>heme b595</scene>, which transfers the electrons to <scene name='83/832931/Heme/6'>heme d</scene>.  Concurrently, the <scene name='83/832931/Overall_h_channel/1'>H-channel</scene> will collect protons and <scene name='83/832931/O_channel_overall/2'>o-channel</scene> will collect oxygen atoms that will flow to heme d (Fig. 3).  With electrons, oxygen, and protons available, heme d can successfully reduce dioxygen to water (Fig. 4).  [[Image:mech4.png|500 px|center|thumb|''Figure 4''. Summarized mechanism of cytochrome bd-oxidase in ''E. coli''. Electrons are passed from quinol to heme b<sub>558</sub> to heme b<sub>595</sub> to heme d. Protons and oxygen atoms flow into the H-channel and O-channel to heme d. Heme d catalzyes the reduction of oxygen to water.]]
Quinol is used as the initial [https://en.wikipedia.org/wiki/Electron_donor electron donor]  and heme b<sub>558</sub> is the initial electron acceptor.  <scene name='83/832931/Heme/6'>Heme b558</scene> transfers the electrons to <scene name='83/832931/Heme/6'>heme b595</scene>, which transfers the electrons to <scene name='83/832931/Heme/6'>heme d</scene>.  Concurrently, the <scene name='83/832931/Overall_h_channel/1'>H-channel</scene> will collect protons and <scene name='83/832931/O_channel_overall/2'>O-channel</scene> will collect oxygen atoms that will flow to heme d (Fig. 3).  With electrons, oxygen, and protons available, heme d can successfully reduce dioxygen to water (Fig. 2, 4).  [[Image:mech4.png|500 px|center|thumb|''Figure 4''. Summarized mechanism of cytochrome bd-oxidase in ''E. coli''. Electrons are passed from quinol to heme b<sub>558</sub> to heme b<sub>595</sub> to heme d. Protons and oxygen atoms flow into the H-channel and O-channel to heme d. Heme d catalzyes the reduction of oxygen to water.]]
== Relevance ==
== Relevance ==
The cytochrome ''bd'' oxidase is essential for bacteria to thrive in the human body by enhancing bacterial growth and colonization.  Any alteration of the ''bd'' oxdiase Cyd subunits will most likely produce a nonfunctional mutant cytochrome ''bd'' oxidase<ref name="Moosa">PMID: 28760899</ref>, which inhibits bacterial growth.  If ''E. coli'' were missing or possessed ineffective CydA and B subunits, bacterial growth ceased.<ref name="Hughes">PMID: 28182951</ref>.  With [https://en.wikipedia.org/wiki/Colitis colitis], ''E. coli'' mutants that were missing CydAB colonized poorly in comparison to the wild type  levels of colonization<ref name="Hughes">PMID: 28182951</ref>.  The cytochrome ''bd'' oxidase is the main component in nitric oxide (NO) tolerance in bacteria, which is released by neutrophils and macrophages when the host is infected<ref name="Shepherd">PMID: 27767067</ref>. ''E. coli'' growth seen in urinary tract infections is mainly due to the NO resistant bd oxidase. Without the CydA  and CydB subunits, bacteria could not colonize in high NO conditions<ref name="Shepherd">PMID: 27767067</ref>.  Cytochrome ''bd'' oxidases are essential for life in other pathogenic bacteria such as [https://en.wikipedia.org/wiki/Mycobacterium_tuberculosis ''M. tuberculosis''].  Deletion of the CydA and CydB subunits dramatically decreased the growth of ''M. tb'' compared to the wild type when exposed to imidazo[1,2-α]pyridine, a known inhibitor of respiratory enzymes<ref name="Arora">PMID:25155596</ref>.  Upregulation of the cytochrome ''bd'' oxidase Cyd genes resulted in a mutant strain of ''M. tb'' that was resistant to imidazo[1,2-α]pyridine<ref name="Arora">PMID:25155596</ref>.
The cytochrome ''bd'' oxidase is essential for bacteria to thrive in the human body by enhancing bacterial growth and colonization.  Any alteration of the ''bd'' oxdiase Cyd subunits will most likely produce a nonfunctional mutant cytochrome ''bd'' oxidase<ref name="Moosa">PMID: 28760899</ref>, which inhibits bacterial growth.  If ''E. coli'' were missing or possessed ineffective CydA and B subunits, bacterial growth ceased.<ref name="Hughes">PMID: 28182951</ref>.  With [https://en.wikipedia.org/wiki/Colitis colitis], ''E. coli'' mutants that were missing CydAB colonized poorly in comparison to the wild type  levels of colonization<ref name="Hughes">PMID: 28182951</ref>.  The cytochrome ''bd'' oxidase is the main component in nitric oxide (NO) tolerance in bacteria, which is released by neutrophils and macrophages when the host is infected<ref name="Shepherd">PMID: 27767067</ref>. ''E. coli'' growth seen in urinary tract infections is mainly due to the NO resistant bd oxidase. Without the CydA  and CydB subunits, bacteria could not colonize in high NO conditions<ref name="Shepherd">PMID: 27767067</ref>.  Cytochrome ''bd'' oxidases are essential for life in other pathogenic bacteria such as [https://en.wikipedia.org/wiki/Mycobacterium_tuberculosis ''M. tuberculosis''].  Deletion of the CydA and CydB subunits dramatically decreased the growth of ''M. tb'' compared to the wild type when exposed to imidazo[1,2-α]pyridine, a known inhibitor of respiratory enzymes<ref name="Arora">PMID:25155596</ref>.  Upregulation of the cytochrome ''bd'' oxidase Cyd genes resulted in a mutant strain of ''M. tb'' that was resistant to imidazo[1,2-α]pyridine<ref name="Arora">PMID:25155596</ref>.

Revision as of 00:16, 20 April 2020

This Sandbox is Reserved from Jan 13 through September 1, 2020 for use in the course CH462 Biochemistry II taught by R. Jeremy Johnson at the Butler University, Indianapolis, USA. This reservation includes Sandbox Reserved 1598 through Sandbox Reserved 1627.
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Cytochrome bd-1 oxidase in Escherichia coli

Cartoon representation of E. coli cytochrome bd-1 oxidase designed from PDB: 6RX4. Blue= CydA; green= CydB; yellow= CydX; pink= CydS; gray = hemes and UQ-8.

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References

Student Contributors

  • Grace Bassler
  • Emily Neal
  • Marisa Villarreal