| Literature DB >> 21775432 |
Cesar Carrasco-López1, Alzoray Rojas-Altuve, Weilie Zhang, Dusan Hesek, Mijoon Lee, Sophie Barbe, Isabelle André, Pilar Ferrer, Noella Silva-Martin, German R Castro, Martín Martínez-Ripoll, Shahriar Mobashery, Juan A Hermoso.
Abstract
AmpD is a cytoplasmic peptidoglycan (PG) amidase involved in bacterial cell-wall recycling and in induction of β-lactamase, a key enzyme of β-lactam antibiotic resistance. AmpD belongs to the amidase_2 family that includes zinc-dependent amidases and the peptidoglycan-recognition proteins (PGRPs), highly conserved pattern-recognition molecules of the immune system. Crystal structures of Citrobacter freundii AmpD were solved in this study for the apoenzyme, for the holoenzyme at two different pH values, and for the complex with the reaction products, providing insights into the PG recognition and the catalytic process. These structures are significantly different compared with the previously reported NMR structure for the same protein. The NMR structure does not possess an accessible active site and shows the protein in what is proposed herein as an inactive "closed" conformation. The transition of the protein from this inactive conformation to the active "open" conformation, as seen in the x-ray structures, was studied by targeted molecular dynamics simulations, which revealed large conformational rearrangements (as much as 17 Å) in four specific regions representing one-third of the entire protein. It is proposed that the large conformational change that would take the inactive NMR structure to the active x-ray structure represents an unprecedented mechanism for activation of AmpD. Analysis is presented to argue that this activation mechanism might be representative of a regulatory process for other intracellular members of the bacterial amidase_2 family of enzymes.Entities:
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Year: 2011 PMID: 21775432 PMCID: PMC3173140 DOI: 10.1074/jbc.M111.264366
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157