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Current Pharmaceutical Design|December 14, 1999
Structural and mechanistic aspects of evolution of beta-lactamases and penicillin-binding proteinsI Massova, S MobasheryDrug Resistance Updates : Reviews and Commentaries in Antimicrobial and Anticancer Chemotherapy|August 22, 2001
Aminoglycoside-modifying enzymes: mechanisms of catalytic processes and inhibitionE Azucena, S MobasheryBioorganic & Medicinal Chemistry Letters|February 6, 1999
The use of neamine as a molecular template: inactivation of bacterial antibiotic resistance enzyme aminoglycoside 3'-phosphotransferase type IIaJ Roestamadji, S MobasheryBiochemistry|September 8, 1987
Inactivation of alanine racemase by beta-chloro-L-alanine released enzymatically from amino acid and peptide C10-esters of deacetylcephalothinS Mobashery, M JohnstonAntimicrobial Agents and Chemotherapy|July 2, 1999
Class C beta-lactamases operate at the diffusion limit for turnover of their preferred cephalosporin substratesA Bulychev, S MobasheryThe Journal of Biological Chemistry|June 15, 1986
Reactions of Escherichia coli TEM beta-lactamase with cephalothin and with C10-dipeptidyl cephalosporin estersS Mobashery, M JohnstonCurrent Medicinal Chemistry|May 29, 2001
Mechanism-based inhibition of zinc proteasesD H Kim, S MobasheryBiochemistry|May 17, 1988
Identification of amino acid residues involved in substrate recognition by the catalytic subunit of bovine cyclic AMP dependent protein kinase: peptide-based affinity labelsS Mobashery, E T KaiserArchivum Immunologiae Et Therapiae Experimentalis|September 14, 1999
Mechanistic and clinical aspects of beta-lactam antibiotics and beta-lactamasesL P Kotra, S MobasheryBiopolymers|January 1, 1990
Inactivation of the catalytic subunit of bovine cAMP-dependent protein kinase by a peptide-based affinity inactivatorS Mobashery, M Doughty, E T KaiserPageof 6