| Literature DB >> 26359336 |
Thomas R M Barends1, Lutz Foucar2, Albert Ardevol3, Karol Nass2, Andrew Aquila4, Sabine Botha2, R Bruce Doak2, Konstantin Falahati5, Elisabeth Hartmann2, Mario Hilpert2, Marcel Heinz6, Matthias C Hoffmann7, Jürgen Köfinger3, Jason E Koglin7, Gabriela Kovacsova2, Mengning Liang7, Despina Milathianaki7, Henrik T Lemke7, Jochen Reinstein2, Christopher M Roome2, Robert L Shoeman2, Garth J Williams7, Irene Burghardt5, Gerhard Hummer3, Sébastien Boutet7, Ilme Schlichting1.
Abstract
The hemoprotein myoglobin is a model system for the study of protein dynamics. We used time-resolved serial femtosecond crystallography at an x-ray free-electron laser to resolve the ultrafast structural changes in the carbonmonoxy myoglobin complex upon photolysis of the Fe-CO bond. Structural changes appear throughout the protein within 500 femtoseconds, with the C, F, and H helices moving away from the heme cofactor and the E and A helices moving toward it. These collective movements are predicted by hybrid quantum mechanics/molecular mechanics simulations. Together with the observed oscillations of residues contacting the heme, our calculations support the prediction that an immediate collective response of the protein occurs upon ligand dissociation, as a result of heme vibrational modes coupling to global modes of the protein.Entities:
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Year: 2015 PMID: 26359336 DOI: 10.1126/science.aac5492
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728