| Literature DB >> 33741910 |
Saminathan Ramakrishnan1, Jason R Stagno1, Chelsie E Conrad1,2, Jienyu Ding1, Ping Yu1, Yuba R Bhandari1, Yun-Tzai Lee1, Gary Pauly3, Oleksandr Yefanov4, Max O Wiedorn4, Juraj Knoska4,5, Dominik Oberthür4, Thomas A White4, Anton Barty4, Valerio Mariani4, Chufeng Li4,6, Wolfgang Brehm4, William F Heinz7, Valentin Magidson7, Stephen Lockett7, Mark S Hunter8, Sébastien Boutet8, Nadia A Zatsepin6,9, Xiaobing Zuo10, Thomas D Grant11, Suraj Pandey12, Marius Schmidt12, John C H Spence6, Henry N Chapman4,5,13, Yun-Xing Wang14.
Abstract
Time-resolved studies of biomacromolecular crystals have been limited to systems involving only minute conformational changes within the same lattice. Ligand-induced changes greater than several angstroms, however, are likely to result in solid-solid phase transitions, which require a detailed understanding of the mechanistic interplay between conformational and lattice transitions. Here we report the synchronous behavior of the adenine riboswitch aptamer RNA in crystal during ligand-triggered isothermal phase transitions. Direct visualization using polarized video microscopy and atomic force microscopy shows that the RNA molecules undergo cooperative rearrangements that maintain lattice order, whose cell parameters change distinctly as a function of time. The bulk lattice order throughout the transition is further supported by time-resolved diffraction data from crystals using an X-ray free electron laser. The synchronous molecular rearrangements in crystal provide the physical basis for studying large conformational changes using time-resolved crystallography and micro/nanocrystals.Entities:
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Year: 2021 PMID: 33741910 DOI: 10.1038/s41467-021-21838-5
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919