首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >The roles of the two proton input channels in cytochrome c oxidase from Rhodobacter sphaeroides probed by the effects of site-directed mutations on time-resolved electrogenic intraprotein proton transfer
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The roles of the two proton input channels in cytochrome c oxidase from Rhodobacter sphaeroides probed by the effects of site-directed mutations on time-resolved electrogenic intraprotein proton transfer

机译:通过定点突变对时间分辨电原性蛋白内质子转移的影响探究两个质子输入通道在球形红球菌细胞色素c氧化酶中的作用

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摘要

The crystal structures of cytochrome c oxidase from both bovine and Paracoccus denitrificans reveal two putative proton input channels that connect the heme-copper center, where dioxygen is reduced, to the internal aqueous phase. In this work we have examined the role of these two channels, looking at the effects of site-directed mutations of residues observed in each of the channels of the cytochrome c oxidase from Rhodobacter sphaeroides. A photoelectric technique was used to monitor the time-resolved electrogenic proton transfer steps associated with the photo-induced reduction of the ferryl-oxo form of heme a3 (Fe4+ = O2−) to the oxidized form (Fe3+OH). This redox step requires the delivery of a “chemical” H+ to protonate the reduced oxygen atom and is also coupled to proton pumping. It is found that mutations in the K channel (K362M and T359A) have virtually no effect on the ferryl-oxo-to-oxidized (F-to-Ox) transition, although steady-state turnover is severely limited. In contrast, electrogenic proton transfer at this step is strongly suppressed by mutations in the D channel. The results strongly suggest that the functional roles of the two channels are not the separate delivery of chemical or pumped protons, as proposed recently [Iwata, S., Ostermeier, C., Ludwig, B. & Michel, H. (1995) Nature (London) 376, 660–669]. The D channel is likely to be involved in the uptake of both “chemical” and “pumped” protons in the F-to-Ox transition, whereas the K channel is probably idle at this partial reaction and is likely to be used for loading the enzyme with protons at some earlier steps of the catalytic cycle. This conclusion agrees with different redox states of heme a3 in the K362M and E286Q mutants under aerobic steady-state turnover conditions.
机译:来自牛和反硝化球菌的细胞色素c氧化酶的晶体结构揭示了两个推定的质子输入通道,这些通道将血红铜中心(其中的双氧被还原)连接到内部水相。在这项工作中,我们检查了这两个通道的作用,研究了球形红球菌细胞色素C氧化酶的每个通道中观察到的残基的定点突变的影响。使用光电技术监测与光诱导还原血红素a3(Fe 4 + = O 2-< / sup>)转变为氧化形式(Fe 3 + OH -)。该氧化还原步骤需要输送“化学” H + 来质子化还原的氧原子,并且还与质子泵浦耦合。已发现,尽管稳态转换受到严重限制,但K通道中的突变(K362M和T359A)实际上对Ferryl-oxo-to-oxidized(F-to-Ox)的过渡没有影响。相反,D通道中的突变会强烈抑制此步骤中的电质子转移。结果强烈表明,这两个通道的功能性作用不是化学或泵送质子的单独输送,正如最近提出的[Iwata,S.,Ostermeier,C.,Ludwig,B.&Michel,H.(1995)Nature (伦敦)376,660–669]。 D通道可能在F到Ox的跃迁中参与“化学”质子和“泵浦”质子的吸收,而K通道在此部分反应时可能处于闲置状态,很可能用于加载在催化循环的某些较早步骤具有质子的酶。该结论与有氧稳态转换条件下K362M和E286Q突变体中血红素a3的不同氧化还原状态一致。

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