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Biochemistry|March 20, 1990
Active site of mercuric reductase resides at the subunit interface and requires Cys135 and Cys140 from one subunit and Cys558 and Cys559 from the adjacent subunit: evidence from in vivo and in vitro heterodimer formationM D Distefano, M J Moore, C T WalshCancer Research|September 1, 1980
Increased activation of 1-beta-D-arabinofuranosylcytosine by hydroxyurea in L1210 cellsC T Walsh, R W Craig, R P AgarwalBiochemistry|January 28, 1997
X-ray crystal structures of the S229A mutant and wild-type MurB in the presence of the substrate enolpyruvyl-UDP-N-acetylglucosamine at 1.8-A resolutionT E Benson, C T Walsh, J M HogleBiochemistry|May 18, 1993
Purification and characterization of VanR and the cytosolic domain of VanS: a two-component regulatory system required for vancomycin resistance in Enterococcus faecium BM4147G D Wright, T R Holman, C T WalshBiochemistry|February 18, 1992
C-terminal cysteines of Tn501 mercuric ion reductaseM J Moore, S M Miller, C T WalshBiochemistry|October 23, 1984
Inactivation of the Pseudomonas striata broad specificity amino acid racemase by D and L isomers of beta-substituted alanines: kinetics, stoichiometry, active site peptide, and mechanistic studiesD Roise, K Soda, T Yagi, et al.The Journal of Biological Chemistry|July 5, 1992
Cyclosporin A, the cyclophilin class of peptidylprolyl isomerases, and blockade of T cell signal transductionC T Walsh, L D Zydowsky, F D McKeonArchives of Microbiology|January 1, 1988
Reversible conversion of coenzyme F420 to the 8-OH-AMP and 8-OH-GMP esters, F390-A and F390-G, on oxygen exposure and reestablishment of anaerobiosis in Methanobacterium thermoautotrophicumA Kiener, W H Orme-Johnson, C T WalshJournal of Bacteriology|February 1, 1988
Acinetobacter cyclohexanone monooxygenase: gene cloning and sequence determinationY C Chen, O P Peoples, C T WalshBiochemistry|November 19, 1985
Directed mutagenesis of the redox-active disulfide in the flavoenzyme mercuric ion reductaseP G Schultz, K G Au, C T WalshPageof 31