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Improvements in serial femtosecond crystallography of photosystem II by optimizing crystal uniformity using microseeding procedures
Author(s) -
Mohamed Ibrahim,
Ruchira Chatterjee,
Julia Hellmich,
Rosalie Tran,
Martin Bommer,
Vittal K. Yachandra,
Junko Yano,
Jan Kern,
Athina Zouni
Publication year - 2015
Publication title -
structural dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.415
H-Index - 29
ISSN - 2329-7778
DOI - 10.1063/1.4919741
Subject(s) - femtosecond , photosystem ii , crystallography , crystal (programming language) , materials science , crystal structure , computer science , chemistry , optics , physics , photosynthesis , laser , biochemistry , programming language
In photosynthesis, photosystem II (PSII) is the multi-subunit membrane protein complex that catalyzes photo-oxidation of water into dioxygen through the oxygen evolving complex (OEC). To understand the water oxidation reaction, it is important to get structural information about the transient and intermediate states of the OEC in the dimeric PSII core complex (dPSIIcc). In recent times, femtosecond X-ray pulses from the free electron laser (XFEL) are being used to obtain X-ray diffraction (XRD) data of dPSIIcc microcrystals at room temperature that are free of radiation damage. In our experiments at the XFEL, we used an electrospun liquid microjet setup that requires microcrystals less than 40 μ m in size. In this study, we explored various microseeding techniques to get a high yield of monodisperse uniform-sized microcrystals. Monodisperse microcrystals of dPSIIcc of uniform size were a key to improve the stability of the jet and the quality of XRD data obtained at the XFEL. This was evident by an improvement of the quality of the datasets obtained, from 6.5Å, using crystals grown without the micro seeding approach, to 4.5Å using crystals generated with the new method.

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