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Colenso, C. K.

Publications and source records attributed to Colenso, C. K..

2 recordsLinked to original sources

Tautomer-specific deacylation and {Omega}-loop flexibility explain carbapenem-hydrolyzing, broad-spectrum activity of the KPC-2 β-lactamase

KPC-2 (Klebsiella pneumoniae carbapenemase-2) is a globally disseminated serine-{beta}-lactamase (SBL) responsible for extensive {beta}-lactam antibiotic resistance in Gram-negative pathogens. SBLs inactivate {beta}-lactams via a mechanism involving a hydrolytically labile covalent acyl-enzyme intermediate. Carbapenems, the most potent {beta}-lactams, evade activity of many SBLs by forming long-lived inhibitory acyl-enzymes; however, carbapenemases such as KPC-2 efficiently catalyze deacylation of carbapenem-derived acyl-enzymes. We present high-resolution (1.25-1.4 [A]) crystal structures of KPC-2 acyl-enzymes with representative penicillins (ampicillin), cephalosporins (cefalothin) and carbapenems (imipenem, meropenem and ertapenem), obtained utilizing an isosteric deacylation-deficient mutant (E166Q). Mobility of the {Omega}-loop (residues 165-170) negatively correlates with antibiotic turnover rates (kcat), highlighting the role of this region in positioning catalytic residues for efficient hydrolysis of different {beta}-lactams. Carbapenem-derived acyl-enzyme structures reveal predominance of the {Delta}1-(2R) imine tautomer, except for the imipenem acyl-enzyme, which is present in dual occupancy in both {Delta}1-(2R) and (2S) configurations. Quantum mechanics/molecular mechanics (QM/MM) molecular dynamics simulations of deacylation of the KPC-2:meropenem acyl-enzyme, using an adaptive string method (ASM), show that the {Delta}1-(2R) isomer has a 7 kcal/mol higher barrier for the (rate-determining) formation of the tetrahedral deacylation intermediate than the {Delta}2 tautomer. The simulations identify tautomer-specific differences in hydrogen bonding networks involving the carbapenem C-3 carboxylate and the deacylating water, that, together with stabilization by protonated N-4 of accumulating negative charge during oxyanion formation, accelerate deacylation of the {Delta}2-enamine acyl-enzyme compared to the {Delta}1-imine. Taken together, our data show how the flexible {Omega}-loop helps confer broad spectrum activity upon KPC-2, while carbapenemase activity stems from efficient deacylation of the {Delta}2-enamine acyl-enzyme tautomer. Differentiation of the barriers associated with deacylation of these subtly different {beta}-lactam isomers further identifies ASM as a sensitive method for calculation of reaction energetics that can accurately model turnover and, potentially, predict the impact of substrate modifications or point mutations upon activity.

biochemistry↗

Sequence conservation and structural features that are common within TRP channels

TRP proteins are a large family of cation selective channels, surpassed in variety only by voltage-gated potassium channels. Detailed molecular mechanisms governing how membrane voltage, ligand binding, or temperature can induce conformational changes promoting the open state of the channel are still missing for TRP channels. Aiming to unveil distinctive structural features common to the transmembrane domains within the TRP family, we performed bioinformatic analyses over a large set of TRP channel genes. Here we report a discrete and exceptionally conserved set of residues. This fingerprint is composed of eleven residues localized at equivalent three-dimensional positions in TRP channels from the different subtypes. Moreover, these amino acids are arranged in three groups, connected by a set of aromatics located at the core of the transmembrane structure. We hypothesize that differences in the connectivity between these different groups of residues harbors the apparent differences in coupling strategies used by TRP subgroups.

evolutionary biology↗