Lipidic cubic phase serial femtosecond crystallography structure of a photosynthetic reaction centre

Author:

Båth PetraORCID,Banacore Analia,Börjesson Per,Bosman Robert,Wickstrand Cecilia,Safari Cecilia,Dods Robert,Ghosh SwagathaORCID,Dahl Peter,Ortolani Giorgia,Björg Ulfarsdottir Tinna,Hammarin Greger,García Bonete María-JoséORCID,Vallejos Adams,Ostojić Lucija,Edlund Petra,Linse Johanna-Barbara,Andersson Rebecka,Nango Eriko,Owada ShigekiORCID,Tanaka Rie,Tono KensukeORCID,Joti YasumasaORCID,Nureki Osamu,Luo Fangjia,James DanielORCID,Nass KarolORCID,Johnson Philip J. M.,Knopp GregorORCID,Ozerov Dmitry,Cirelli ClaudioORCID,Milne ChristopherORCID,Iwata So,Brändén GiselaORCID,Neutze RichardORCID

Abstract

Serial crystallography is a rapidly growing method that can yield structural insights from microcrystals that were previously considered to be too small to be useful in conventional X-ray crystallography. Here, conditions for growing microcrystals of the photosynthetic reaction centre of Blastochloris viridis within a lipidic cubic phase (LCP) crystallization matrix that employ a seeding protocol utilizing detergent-grown crystals with a different crystal packing are described. LCP microcrystals diffracted to 2.25 Å resolution when exposed to XFEL radiation, which is an improvement of 0.15 Å over previous microcrystal forms. Ubiquinone was incorporated into the LCP crystallization media and the resulting electron density within the mobile QB pocket is comparable to that of other cofactors within the structure. As such, LCP microcrystallization conditions will facilitate time-resolved diffraction studies of electron-transfer reactions to the mobile quinone, potentially allowing the observation of structural changes associated with the two electron-transfer reactions leading to complete reduction of the ubiquinone ligand.

Funder

Vetenskapsrådet

Horizon 2020 Framework Programme

European Commission

Japan Society for the Promotion of Science

Japan Agency for Medical Research and Development

Publisher

International Union of Crystallography (IUCr)

Subject

Structural Biology

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