X-ray diffraction in temporally and spatially resolved biomolecular science

Author:

Helliwell John R.123,Brink Alice12345,Kaenket Surasak123,Starkey Victoria Laurina123,Tanley Simon W. M.123

Affiliation:

1. School of Chemistry

2. University of Manchester M13 9PL

3. UK

4. Department of Chemistry

5. University of the Free State

Abstract

Time-resolved Laue protein crystallography at the European Synchrotron Radiation Facility (ESRF) opened up the field of sub-nanosecond protein crystal structure analyses. There are a limited number of such time-resolved studies in the literature. Why is this? The X-ray laser now gives us femtosecond (fs) duration pulses, typically 10 fs up to ∼50 fs. Their use is attractive for the fastest time-resolved protein crystallography studies. It has been proposed that single molecules could even be studied with the advantage of being able to measure X-ray diffraction from a ‘crystal lattice free’ single molecule, with or without temporal resolved structural changes. This is altogether very challenging R&D. So as to assist this effort we have undertaken studies of metal clusters that bind to proteins, both ‘fresh’ and after repeated X-ray irradiation to assess their X-ray-photo-dynamics, namely Ta6Br12, K2PtI6 and K2PtBr6 bound to a test protein, hen egg white lysozyme. These metal complexes have the major advantage of being very recognisable shapes (pseudo spherical or octahedral) and thereby offer a start to (probably very difficult) single molecule electron density map interpretations, both static and dynamic. A further approach is to investigate the X-ray laser beam diffraction strength of a well scattering nano-cluster; an example from nature being the iron containing ferritin. Electron crystallography and single particle electron microscopy imaging offers alternatives to X-ray structural studies; our structural studies of crustacyanin, a 320 kDa protein carotenoid complex, can be extended either by electron based techniques or with the X-ray laser representing a fascinating range of options. General outlook remarks concerning X-ray, electron and neutron macromolecular crystallography as well as ‘NMR crystallography’ conclude the article.

Funder

Thailand Research Fund

Publisher

Royal Society of Chemistry (RSC)

Subject

Physical and Theoretical Chemistry

Reference35 articles.

1. Time–Resolved Diffraction, ed. J. R. Helliwell and P. M. Rentzepis, Oxford University Press, 1997

2. Time-resolved Macromolecular Crystallography, ed. D. W. J. Cruickshank, J. R. Helliwell and L.N. Johnson, Oxford Science Publications,1992

3. Laue crystallography: coming of age

4. Time-resolved structures of hydroxymethylbilane synthase (Lys59Gln mutant) as it is loaded with substrate in the crystal determined by Laue diffraction

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