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Biochemistry|July 29, 2000
Molecular structure of Escherichia coli PurT-encoded glycinamide ribonucleotide transformylaseJ B Thoden, S Firestine, A Nixon, et al.Ciba Foundation Symposium|January 1, 1991
Screening combinatorial antibody libraries for catalytic acyl transfer reactionsL Sastry, M Mubaraki, K D Janda, et al.Proceedings of the National Academy of Sciences of the United States of America|September 20, 2001
Creating multiple-crossover DNA libraries independent of sequence identityS Lutz, M Ostermeier, G L Moore, et al.Science (New York, N.Y.)|April 15, 1994
A mass spectrometric solution to the address problem of combinatorial librariesC L Brummel, I N Lee, Y Zhou, et al.Biochemical and Biophysical Research Communications|May 30, 1989
Computational studies on pterins and speculations on the mechanism of action of dihydrofolate reductaseT Uchimaru, S Tsuzuki, K Tanabe, et al.Biochemistry|September 17, 1996
Characterization of the metal-binding sites of the beta-lactamase from Bacteroides fragilisM W Crowder, Z Wang, S L Franklin, et al.Biochemistry|May 20, 1986
Structural and mechanistic studies on the HeLa and chicken liver proteins that catalyze glycinamide ribonucleotide synthesis and formylation and aminoimidazole ribonucleotide synthesisS C Daubner, M Young, R D Sammons, et al.The Journal of Biological Chemistry|February 25, 1983
ADP-mediated dissociation of stable complexes of recA protein and single-stranded DNAM M Cox, D A Soltis, I R Lehman, et al.Biochemistry|August 15, 2001
Backbone dynamics in dihydrofolate reductase complexes: role of loop flexibility in the catalytic mechanismM J Osborne, J Schnell, S J Benkovic, et al.Proceedings of the National Academy of Sciences of the United States of America|October 1, 1986
Importance of a hydrophobic residue in binding and catalysis by dihydrofolate reductaseR J Mayer, J T Chen, K Taira, et al.Pageof 30