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Revealing the Dynamic Allosteric Changes Required for Formation of the Cysteine Synthase Complex by Hydrogen-Deuterium Exchange MS
Author(s) -
Brenda Rosa,
Eleanor R. Dickinson,
Marialaura Marchetti,
Barbara Campanini,
Barbara Pioselli,
Stefano Bettati,
Kasper D. Rand
Publication year - 2021
Publication title -
molecular and cellular proteomics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.757
H-Index - 187
eISSN - 1535-9484
pISSN - 1535-9476
DOI - 10.1016/j.mcpro.2021.100098
Subject(s) - allosteric regulation , hydrogen–deuterium exchange , chemistry , cysteine , deuterium , atp synthase , hydrogen , biochemistry , biophysics , enzyme , biology , physics , organic chemistry , quantum mechanics
CysE and CysK, the last two enzymes of the cysteine biosynthetic pathway, engage in a bienzyme complex, cysteine synthase, with yet incompletely characterized three-dimensional structure and regulatory function. Being absent in mammals, the two enzymes and their complex are attractive targets for antibacterial drugs. We have used hydrogen/deuterium exchange MS to unveil how complex formation affects the conformational dynamics of CysK and CysE. Our results support a model where CysE is present in solution as a dimer of trimers, and each trimer can bind one CysK homodimer. When CysK binds to one CysE monomer, intratrimer allosteric communication ensures conformational and dynamic symmetry within the trimer. Furthermore, a long-range allosteric signal propagates through CysE to induce stabilization of the interface between the two CysE trimers, preparing the second trimer for binding the second CysK with a nonrandom orientation. These results provide new molecular insights into the allosteric formation of the cysteine synthase complex and could help guide antibacterial drug design.

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