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Dose-resolved serial synchrotron and XFEL structures of radiation-sensitive metalloproteins

Authors :
Ali Ebrahim
Tadeo Moreno-Chicano
Martin V. Appleby
Amanda K. Chaplin
John H. Beale
Darren A. Sherrell
Helen M. E. Duyvesteyn
Shigeki Owada
Kensuke Tono
Hiroshi Sugimoto
Richard W. Strange
Jonathan A. R. Worrall
Danny Axford
Robin L. Owen
Michael A. Hough
Source :
IUCrJ, Vol 6, Iss 4, Pp 543-551 (2019)
Publication Year :
2019
Publisher :
International Union of Crystallography, 2019.

Abstract

An approach is demonstrated to obtain, in a sample- and time-efficient manner, multiple dose-resolved crystal structures from room-temperature protein microcrystals using identical fixed-target supports at both synchrotrons and X-ray free-electron lasers (XFELs). This approach allows direct comparison of dose-resolved serial synchrotron and damage-free XFEL serial femtosecond crystallography structures of radiation-sensitive proteins. Specifically, serial synchrotron structures of a heme peroxidase enzyme reveal that X-ray induced changes occur at far lower doses than those at which diffraction quality is compromised (the Garman limit), consistent with previous studies on the reduction of heme proteins by low X-ray doses. In these structures, a functionally relevant bond length is shown to vary rapidly as a function of absorbed dose, with all room-temperature synchrotron structures exhibiting linear deformation of the active site compared with the XFEL structure. It is demonstrated that extrapolation of dose-dependent synchrotron structures to zero dose can closely approximate the damage-free XFEL structure. This approach is widely applicable to any protein where the crystal structure is altered by the synchrotron X-ray beam and provides a solution to the urgent requirement to determine intact structures of such proteins in a high-throughput and accessible manner.

Details

Language :
English
ISSN :
20522525 and 46169431
Volume :
6
Issue :
4
Database :
Directory of Open Access Journals
Journal :
IUCrJ
Publication Type :
Academic Journal
Accession number :
edsdoj.85919f46169431f8075520a1390d09b
Document Type :
article
Full Text :
https://doi.org/10.1107/S2052252519003956