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动态 pH 诱导的 PsbO 蛋白在类囊体腔波动酸度下构象变化。

Dynamic pH-induced conformational changes of the PsbO protein in the fluctuating acidity of the thylakoid lumen.

机构信息

Department of Plant Physiology, Umeå University, Umeå, SE-907 36, Sweden.

Department of Chemistry, Umeå University, Umeå, SE-901 87, Sweden.

出版信息

Physiol Plant. 2019 May;166(1):288-299. doi: 10.1111/ppl.12948. Epub 2019 Mar 18.

Abstract

The PsbO protein is an essential extrinsic subunit of photosystem II, the pigment-protein complex responsible for light-driven water splitting. Water oxidation in photosystem II supplies electrons to the photosynthetic electron transfer chain and is accompanied by proton release and oxygen evolution. While the electron transfer steps in this process are well defined and characterized, the driving forces acting on the liberated protons, their dynamics and their destiny are all largely unknown. It was suggested that PsbO undergoes proton-induced conformational changes and forms hydrogen bond networks that ensure prompt proton removal from the catalytic site of water oxidation, i.e. the Mn CaO cluster. This work reports the purification and characterization of heterologously expressed PsbO from green algae Chlamydomonas reinhardtii and two isoforms from the higher plant Solanum tuberosum (PsbO1 and PsbO2). A comparison to the spinach PsbO reveals striking similarities in intrinsic protein fluorescence and CD spectra, reflecting the near-identical secondary structure of the proteins from algae and higher plants. Titration experiments using the hydrophobic fluorescence probe ANS revealed that eukaryotic PsbO proteins exhibit acid-base hysteresis. This hysteresis is a dynamic effect accompanied by changes in the accessibility of the protein's hydrophobic core and is not due to reversible oligomerization or unfolding of the PsbO protein. These results confirm the hypothesis that pH-dependent dynamic behavior at physiological pH ranges is a common feature of PsbO proteins and causes reversible opening and closing of their β-barrel domain in response to the fluctuating acidity of the thylakoid lumen.

摘要

PsbO 蛋白是光系统 II 的必需的外在亚基,光系统 II 是负责光驱动水分解的色素-蛋白复合物。光系统 II 中的水氧化为光合电子传递链提供电子,并伴随着质子释放和氧气的释放。虽然这个过程中的电子转移步骤已经被很好地定义和描述,但自由质子所受的驱动力、它们的动力学和它们的命运在很大程度上仍然未知。有人提出,PsbO 会发生质子诱导的构象变化,并形成氢键网络,从而确保迅速将质子从水氧化的催化位点(即 MnCaO 簇)中去除。这项工作报道了从绿藻莱茵衣藻中异源表达的 PsbO 及其来自高等植物马铃薯的两种同工型(PsbO1 和 PsbO2)的纯化和表征。与菠菜 PsbO 的比较表明,内在蛋白荧光和 CD 光谱非常相似,反映了藻类和高等植物蛋白质的二级结构几乎相同。使用疏水性荧光探针 ANS 的滴定实验表明,真核 PsbO 蛋白表现出酸碱滞后。这种滞后是一种动态效应,伴随着蛋白质疏水区的可及性变化,而不是由于 PsbO 蛋白的可逆寡聚化或展开。这些结果证实了这样的假设,即在生理 pH 范围内 pH 依赖性动态行为是 PsbO 蛋白的共同特征,并导致其β-桶结构域的可逆开启和关闭,以响应类囊体腔中酸度的波动。

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