首页> 美国卫生研究院文献>The Journal of Biological Chemistry >The Conformational Changes Induced by Ubiquinone Binding in the Na+-pumping NADH:Ubiquinone Oxidoreductase (Na+-NQR) Are Kinetically Controlled by Conserved Glycines 140 and 141 of the NqrB Subunit
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The Conformational Changes Induced by Ubiquinone Binding in the Na+-pumping NADH:Ubiquinone Oxidoreductase (Na+-NQR) Are Kinetically Controlled by Conserved Glycines 140 and 141 of the NqrB Subunit

机译:Na +抽水的NADH:泛醌氧化还原酶(Na + -NQR)中泛醌结合引起的构象变化受NqrB亚基的保守甘氨酸140和141动力学控制。

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摘要

Na+-pumping NADH:ubiquinone oxidoreductase (Na+-NQR) is responsible for maintaining a sodium gradient across the inner bacterial membrane. This respiratory enzyme, which couples sodium pumping to the electron transfer between NADH and ubiquinone, is not present in eukaryotes and as such could be a target for antibiotics. In this paper it is shown that the site of ubiquinone reduction is conformationally coupled to the NqrB subunit, which also hosts the final cofactor in the electron transport chain, riboflavin. Previous work showed that mutations in conserved NqrB glycine residues 140 and 141 affect ubiquinone reduction and the proper functioning of the sodium pump. Surprisingly, these mutants did not affect the dissociation constant of ubiquinone or its analog HQNO (2-n-heptyl-4-hydroxyquinoline N-oxide) from Na+-NQR, which indicates that these residues do not participate directly in the ubiquinone binding site but probably control its accessibility. Indeed, redox-induced difference spectroscopy showed that these mutations prevented the conformational change involved in ubiquinone binding but did not modify the signals corresponding to bound ubiquinone. Moreover, data are presented that demonstrate the NqrA subunit is able to bind ubiquinone but with a low non-catalytically relevant affinity. It is also suggested that Na+-NQR contains a single catalytic ubiquinone binding site and a second site that can bind ubiquinone but is not active.
机译:Na + 泵吸的NADH:泛醌氧化还原酶(Na + -NQR)负责维持整个细菌内膜的钠梯度。这种呼吸酶将钠泵送至NADH和泛醌之间的电子转移耦合,在真核生物中不存在,因此可能是抗生素的靶标。在本文中,表明泛醌还原位点在构象上与NqrB亚基偶联,后者在电子传输链中也具有最终的辅因子核黄素。先前的工作表明,保守的NqrB甘氨酸残基140和141中的突变会影响泛醌的还原和钠泵的正常运行。令人惊讶的是,这些突变体没有影响泛醌或其类似物HQNO(2-n-庚基-4-羟基喹啉N-氧化物)从Na + -NQR的解离常数,这表明这些残基没有直接参与泛醌结合位点,但可能控制其可及性。确实,氧化还原诱导的差异光谱表明,这些突变阻止了泛醌结合所涉及的构象变化,但并未改变与结合的泛醌相对应的信号。此外,提供的数据表明NqrA亚基能够结合泛醌但具有低的非催化相关亲和力。还建议Na + -NQR包含一个催化的泛醌结合位点和一个可以结合泛醌但不起作用的第二个位点。

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