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Optimizing Crystal Size of Photosystem II by Macroseeding: Toward Neutron Protein Crystallography

机译:通过宏观播种优化光系统II的晶体尺寸:向中子蛋白质结晶学迈进

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摘要

Photosystem II (PSII) catalyzes the photo-oxidation of water to molecular oxygen and protons. The water splitting reaction occurs inside the oxygen-evolving complex (OEC) via a Mn4CaO5 cluster. To elucidate the reaction mechanism, detailed structural information for each intermediate state of the OEC is required. Despite the current high-resolution crystal structure of PSII at 1.85 Å and other efforts to follow the structural changes of the Mn4CaO5 cluster using X-ray free electron laser (XFEL) crystallography in addition to spectroscopic methods, many details about the reaction mechanism and conformational changes in the catalytic site during water oxidation still remain elusive. In this study, we present a rarely found successful application of the conventional macroseeding method to a large membrane protein like the dimeric PSII core complex (dPSIIcc). Combining microseeding with macroseeding crystallization techniques allowed us to reproducibly grow large dPSIIcc crystals with a size of ~3 mm. These large crystals will help improve the data collected from spectroscopic methods like polarized extended X-ray absorption fine structure (EXAFS) and single crystal electron paramagnetic resonance (EPR) techniques and are a prerequisite for determining a three-dimensional structure using neutron diffraction.
机译:光系统II(PSII)催化水氧化成分子氧和质子。水分解反应通过Mn4CaO5团簇在放氧络合物(OEC)内部发生。为了阐明反应机理,需要有关OEC每种中间状态的详细结构信息。尽管目前的PSII的高分辨率晶体结构为1.85Å,并且除了采用分光镜方法外,还采用X射线自由电子激光(XFEL)晶体学来跟踪Mn4CaO5团簇的结构变化,但有关反应机理和构象的许多细节水氧化过程中催化部位的变化仍然难以捉摸。在这项研究中,我们目前很少发现成功的常规播种方法成功应用于大的膜蛋白,如二聚体PSII核心复合物(dPSIIcc)。将微晶种与大晶种结晶技术相结合,使我们能够可重复地生长出约3 mm的大dPSIIcc晶体。这些大晶体将有助于改善从光谱方法(如极化扩展X射线吸收精细结构(EXAFS)和单晶电子顺磁共振(EPR)技术)收集的数据,并且是使用中子衍射确定三维结构的先决条件。

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