Another significant structural feature of bd oxidase is the <scene name='83/832924/Q_loop/3'>Q-loop</scene> which is located between TM helices 6 and 7 of the CydA subunit.<ref name="Alexander">PMID:31723136</ref> The periplasmic Q-loop in ''E. coli'' stretches over a length of 136 amino acid residues, making it much longer than the Q-loop in ''Geobacillus thermodentrificans''.<ref name="Safarian">PMID: 27126043</ref> The Q-loop is likely involved in [https://en.wikipedia.org/wiki/Quinone quinone] binding and oxidation. The N-terminal end of this Q-loop is very flexible and likely functions as the hinge that allows for quinone binding while the C-terminal end is much more rigid which provides stabilization for the enzyme.<ref name="Alexander">PMID:31723136</ref>
Another significant structural feature of bd oxidase is the <scene name='83/832924/Q_loop/3'>Q-loop</scene> which is located between TM helices 6 and 7 of the CydA subunit.<ref name="Alexander">PMID:31723136</ref> The periplasmic Q-loop in ''E. coli'' stretches over a length of 136 amino acid residues, making it much longer than the Q-loop in ''Geobacillus thermodentrificans''.<ref name="Safarian">PMID: 27126043</ref> The Q-loop is likely involved in [https://en.wikipedia.org/wiki/Quinone quinone] binding and oxidation. The N-terminal end of this Q-loop is very flexible and likely functions as the hinge that allows for quinone binding while the C-terminal end is much more rigid which provides stabilization for the enzyme.<ref name="Alexander">PMID:31723136</ref>
== Molecular Function ==
== Molecular Function ==
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E. coli bd oxidase is made up of four individual subunits.[2] The two major subunits, CydA and CydB, are each composed of one peripheral helix and two bundles of four transmembrane helices. The CydA subunit plays the most important role in the oxygen reduction reaction as it contains the Q-loop as well as all three heme groups. The CydB subunit harbors the ubiquinone molecule which provides structural support to the subunit that mimics the three hemes found in CydA.[3][4] The remaining two subunits, CydS and CydX, are both single helix structures that assist in the oxygen reduction reaction. Unique to E. coli, the CydS subunit binds to CydA to block oxygen from directly binding to heme b595. The CydX subunit promotes the assembly and stability of the oxidase complex. CydX is composed of 37 mostly hydrophilic amino acid residues, including Glu25 that is exposed to the cytoplasm and prevents the helix from fully entering the membrane.[2]
Q-Loop
Another significant structural feature of bd oxidase is the Q-loop which is located between TM helices 6 and 7 of the CydA subunit.[2] The periplasmic Q-loop in E. coli stretches over a length of 136 amino acid residues, making it much longer than the Q-loop in Geobacillus thermodentrificans.[3] The Q-loop is likely involved in quinone binding and oxidation. The N-terminal end of this Q-loop is very flexible and likely functions as the hinge that allows for quinone binding while the C-terminal end is much more rigid which provides stabilization for the enzyme.[2]
Molecular Function
H and O channels
Figure 3. H and o-channels of cytochrome bd-oxidase in E. coli. Channels are outlined in gray, water is shown as spheres, and various amino acids are labeled above.
Interestingly, the o-channel does not exist in the cytochromebd oxidase of Geobacillus Thermodenitrificans; instead, oxygen binds directly to the active site[4]. The CydS subunit found in E. coli blocks this alternate oxygen entry site, which allows oxygen to travel through the o-channel[3][2]. The presence of an o-channel affects oxidase activity, as the E. coli oxidase acts as a "true" oxidase, while the G. th bd oxidase contributes more to detoxification[2].
Hemes
There are three heme molecules present in the CydA subunit that form a triangle to maximize subunit stability[2][3][4], which is an evolutionary conserved feature across bd oxidases[3]. Similar to the hemes, the ubiquinone-8 (UQ-8) molecule found in CydB mimics the triangular formation to stabilize the subunit[3]. Heme b558 acts as the primary electron acceptor by catalyzing the oxidation of quinol[2]. Conserved His186 and Met393 help to stabilize heme b558[2]. Heme b558 transfers the electrons to heme b595, which transfers them to the active site heme d[3]. A conserved Trp441 assists heme b595 in transferring electrons to heme d[4]. A conserved Glu445 is essential for charge stabilization of heme b595[2], while His19 stabilizes heme d[4]. As heme d collects the electrons from heme b595, Glu99 in the o-channel facilities the binding of oxygen to heme d, and Ser109, Glu107, and Ser140 in the h-channel facilitate proton transfer to heme d[3]. With electrons, oxygen, and protons available, heme d can successfully reduce dioxygen to water.
Relevance
The cytochrome bd oxidase is essential for bacteria to thrive in the human body. Terminal oxidases in bacteria are needed for formate oxidation activity, which provides a sustainability advantage for bacterial growth. If E. coli are missing or possess ineffective CydA and B subunits, their advantage is eliminated[5]. Specifically with colitis, E. coli mutants that were missing CydAB colonized quite poorly, while the wild type colonized at high levels[5]. 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[6]. E. coli growth seen in urinary tract infections is mainly due to the NO resistant bd oxidase, but without the CydA A and B subunits, bacteria cannot colonize in high NO conditions[6]. Cytochrome bd oxidases are essential in other bacteria, specifically in M. tuberculosis. Other known oxidases can be inhibited to prevent the spreading of M. tb, however the cytochrome bd oxidase not only allows M. tb to survive, but to colonize. Without the CydAB subunits, M. tb growth dramatically decreases when exposed to imidazo[1,2-α]pyridine, a known inhibitor of ATP synthase[7].
Due to that fact that it is only found in prokaryotes and considering its relevance in notable bacterial infections, inhibitors that target cytochrome bd oxidase are quite practical. Compounds that target heme b558[1], create unusable forms of oxygen[8], and target the o-channel [9] have shown tremendous potential in halting bacterial growth.
↑ 1.01.1Harikishore A, Chong SSM, Ragunathan P, Bates RW, Gruber G. Targeting the menaquinol binding loop of mycobacterial cytochrome bd oxidase. Mol Divers. 2020 Jan 14. pii: 10.1007/s11030-020-10034-0. doi:, 10.1007/s11030-020-10034-0. PMID:31939065 doi:https://dx.doi.org/10.1007/s11030-020-10034-0
↑ 3.003.013.023.033.043.053.063.073.083.093.10Safarian 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:https://dx.doi.org/10.1126/science.aay0967Cite error: Invalid <ref> tag; name "Safarian" defined multiple times with different content
↑ 4.04.14.24.34.4Safarian 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:https://dx.doi.org/10.1126/science.aaf2477
↑ 5.05.1Hughes ER, Winter MG, Duerkop BA, Spiga L, Furtado de Carvalho T, Zhu W, Gillis CC, Buttner L, Smoot MP, Behrendt CL, Cherry S, Santos RL, Hooper LV, Winter SE. Microbial Respiration and Formate Oxidation as Metabolic Signatures of Inflammation-Associated Dysbiosis. Cell Host Microbe. 2017 Feb 8;21(2):208-219. doi: 10.1016/j.chom.2017.01.005. PMID:28182951 doi:https://dx.doi.org/10.1016/j.chom.2017.01.005
↑ 6.06.1Shepherd M, Achard ME, Idris A, Totsika M, Phan MD, Peters KM, Sarkar S, Ribeiro CA, Holyoake LV, Ladakis D, Ulett GC, Sweet MJ, Poole RK, McEwan AG, Schembri MA. The cytochrome bd-I respiratory oxidase augments survival of multidrug-resistant Escherichia coli during infection. Sci Rep. 2016 Oct 21;6:35285. doi: 10.1038/srep35285. PMID:27767067 doi:https://dx.doi.org/10.1038/srep35285
↑Arora K, Ochoa-Montano B, Tsang PS, Blundell TL, Dawes SS, Mizrahi V, Bayliss T, Mackenzie CJ, Cleghorn LA, Ray PC, Wyatt PG, Uh E, Lee J, Barry CE 3rd, Boshoff HI. Respiratory flexibility in response to inhibition of cytochrome C oxidase in Mycobacterium tuberculosis. Antimicrob Agents Chemother. 2014 Nov;58(11):6962-5. doi: 10.1128/AAC.03486-14., Epub 2014 Aug 25. PMID:25155596 doi:https://dx.doi.org/10.1128/AAC.03486-14
↑Lu P, Heineke MH, Koul A, Andries K, Cook GM, Lill H, van Spanning R, Bald D. The cytochrome bd-type quinol oxidase is important for survival of Mycobacterium smegmatis under peroxide and antibiotic-induced stress. Sci Rep. 2015 May 27;5:10333. doi: 10.1038/srep10333. PMID:26015371 doi:https://dx.doi.org/10.1038/srep10333