Unexpected influence of ionic strength on branched-pathway interactions between β-lactamases and β-halogenopenicillanates (original) (raw)

Unexpected influence of ionic strength on branched-pathway interactions between beta-lactamases and beta-halogenopenicillanates

Fabien de Meester

The Biochemical journal, 1989

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Unexpected influence of ionic strength on branched-pathway interactions between f-lactamases and f-halogenopenicillanates

Fabien de Meester

2005

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Interactions between active-site serine beta-lactamases and so-called beta-lactamase-stable antibiotics. Kinetic and molecular modelling studies

Jean-marie Frère

European Journal of Biochemistry, 1993

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Professeur Labia

FEMS Microbiology Letters, 2000

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Gianfranco Amicosante

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Structural Basis of the Inhibition of Class A β-Lactamases and Penicillin-Binding Proteins by 6-β-Iodopenicillanate

P. Charlier, Bernard Joris

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J. Alvarez-idaboy

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Drifted catalytic properties of β-lactamases due to unconstrained use of antibiotics

Pranab Karmaker

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Kinetic interactions of tazobactam with beta-lactamases from all major structural classes

Karen Bush

Antimicrobial Agents and Chemotherapy, 1993

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Penicillanic acid sulfone: an unexpected isotope effect in the interaction of 6.alpha.- and 6.beta.-monodeuterio and of 6,6-dideuterio derivatives with RTEM .beta.-lactamase from Escherichia coli. Crystal structure of penicillanic acid sulfone

Daniel Brenner

Biochemistry, 1981

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Biochemical exploration of β-lactamase inhibitors

Varshaa arer

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The importance of a critical protonation state and the fate of the catalytic steps in class A β-lactamases and penicillin-binding proteins

Timothy Stemmler

2004

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Theoretical Calculations of β-Lactam Antibiotics. Part VII. Influence of the solvent on the basic hydrolysis of the β-lactam ring

Josefa Donoso

Helvetica Chimica Acta, 1996

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Cross-class metallo-β-lactamase inhibition by bisthiazolidines reveals multiple binding modes

Graciela Mahler

Proceedings of the National Academy of Sciences of the United States of America, 2016

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Inactivation of a class A and a class C β-lactamase by 6β-(hydroxymethyl) penicillanic acid sulfone

Robert Bonomo

2011

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Catalytic properties of class A β-lactamases: efficiency and diversity

Jean-marie Frère

Biochemical Journal, 1998

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Detecting a Quasi-stable Imine Species on the Reaction Pathway of SHV-1 β-Lactamase and 6β-(Hydroxymethyl)penicillanic Acid Sulfone

Marianne Pusztai-Carey

Biochemistry, 2015

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Penicillanic acid sulfones inactivate the extended-spectrum β-lactamase CTX-M-15 through formation of a serine-lysine cross-Link: an alternative mechanism of β-lactamase inhibition.

Stuart Shapiro

mBio, 2022

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Efficient Inhibition of Class A and Class D beta-Lactamases by Michaelis Complexes

John Buynak

Journal of Biological Chemistry, 2007

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Drifted catalytic properties of β-lactamases due to unconstrained use of antibiotics

Ariful Haque

Journal of Bio-Science, 2012

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N-(Phenylacetyl)glycyl-D-aziridine-2-carboxylate, an acylic amide substrate of .beta.-lactamases: importance of the shape of the substrate in .beta.-lactamase evolution

rex pratt

Biochemistry, 1991

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The Importance of a Critical Protonation State and the Fate of the Catalytic Steps in Class A -Lactamases and Penicillin-binding Proteins

Timothy Stemmler

Journal of Biological Chemistry, 2004

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Noncovalent interaction energies in covalent complexes: TEM-1 β-lactamase and β-lactams

George Minasov

Proteins: Structure, Function, and Genetics, 2002

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Positive effect of natural and negatively charged cyclodextrins on the stabilization of penicillins towards β-lactamase degradation due to inclusion and external guest–host association. An NMR and MS study

Leondios Leondiadis, Irene Mavridis

Organic & Biomolecular Chemistry, 2006

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The β-lactamase of Enterobacter cloacae P99. Chemical properties, N-terminal sequence and interaction with 6β-halogenopenicillanates

Fabien de Meester

Biochemical Journal, 1985

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Interactions between Avibactam and Ceftazidime-Hydrolyzing Class D β-Lactamases

Alain Brans

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Mechanism of Acyl–Enzyme Complex Formation from the Henry–Michaelis Complex of Class C β-Lactamases with β-Lactam Antibiotics

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The Role of Residue 238 of TEM-1 beta -Lactamase in the Hydrolysis of Extended-spectrum Antibiotics

T. Palzkill

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Protonation of the beta -lactam nitrogen is the trigger event in the catalytic action of class A beta -lactamases

Boris Atanasov

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Methodology for the study of beta-lactamases

Karen Bush

Antimicrobial Agents and Chemotherapy, 1986

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Kinetic Study of Two Novel Enantiomeric Tricyclic -Lactams Which Efficiently Inactivate Class C -Lactamases

Boris Turk

Antimicrobial Agents and Chemotherapy, 2001

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Role of β-lactam carboxyl group on binding of penicillins and cephalosporins to class C β-lactamases

Josefa Donoso, J. Frau

Proteins: Structure, Function, and Genetics, 2003

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The catalytic mechanism of beta-lactamases: NMR titration of an active-site lysine residue of the TEM-1 enzyme

Jean-marie Frère

Proceedings of the National Academy of Sciences, 1996

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6-beta-Iodopenicillanate as a probe for the classification of beta-lactamases

steven cartwright

The Biochemical journal, 1986

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