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On the structure of the proton-binding site in the F(o) rotor of chloroplast ATP synthases.

机译:叶绿体ATP合成酶F(o)转子中质子结合位点的结构。

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摘要

The recently reported crystal structures of the membrane-embedded proton-dependent c-ring rotors of a cyanobacterial F(1)F(o) ATP synthase and a chloroplast F(1)F(o) ATP synthase have provided new insights into the mechanism of this essential enzyme. While the overall features of these c-rings are similar, a discrepancy in the structure and hydrogen-bonding interaction network of the H(+) sites suggests two distinct binding modes, potentially reflecting a mechanistic differentiation. Importantly, the conformation of the key glutamate side chain to which the proton binds is also altered. To investigate the nature of these differences, we use molecular dynamics simulations of both c-rings embedded in a phospholipid membrane. We observe that the structure of the c(15) ring from Spirulina platensis is unequivocally stable within the simulation time. By contrast, the proposed structure of the H(+) site in the chloroplast c(14) ring changes rapidly and consistently into that reported for the c(15) ring, indicating that the latter represents a common binding mode. To assess this hypothesis, we have remodeled the c(14) ring by molecular replacement using the published structure factors. The resulting structure provides clear evidence in support of a common binding site conformation and is also considerably improved statistically. These findings, taken together with a sequence analysis of c-subunits in the ATP synthase family, indicate that the so-called proton-locked conformation observed in the c(15) ring may be a common characteristic not only of light-driven systems such as chloroplasts and cyanobacteria but also of a selection of other bacterial species.
机译:最近报道的蓝藻F(1)F(o)ATP合酶和叶绿体F(1)F(o)ATP合酶的膜嵌入质子依赖的c环转子的晶体结构提供了对该机制的新见解这种必需的酶。虽然这些c环的总体特征是相似的,但在H(+)位点的结构和氢键相互作用网络中的差异表明了两种不同的结合模式,可能反映了机理上的差异。重要的是,质子结合的关键谷氨酸侧链的构型也被改变。为了研究这些差异的性质,我们使用嵌入在磷脂膜中的两个c环的分子动力学模拟。我们观察到螺旋藻c(15)环的结构在模拟时间内是绝对稳定的。相比之下,叶绿体c(14)环中H(+)位点的拟议结构迅速且一致地变为c(15)环的结构,表明后者代表了一种常见的结合模式。为了评估该假设,我们使用已发表的结构因子通过分子置换对c(14)环进行了重塑。所得结构提供了支持共同结合位点构象的明确证据,并且在统计学上也得到了显着改善。这些发现与ATP合酶家族中c亚基的序列分析一起表明,在c(15)环中观察到的所谓的质子锁构象不仅是光驱动系统的共同特征,而且除了叶绿体和蓝细菌外,还可以选择其他细菌。

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