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Biochemistry|May 28, 1996
Substrate binding and catalysis by ubiquitin C-terminal hydrolases: identification of two active site residuesC N Larsen, J S Price, K D WilkinsonBiochemistry|October 17, 1989
Affinity chromatography using protein immobilized via arginine residues: purification of ubiquitin carboxyl-terminal hydrolasesP J Duerksen-Hughes, M M Williamson, K D WilkinsonBiochemistry|November 3, 1987
Structure and function of ubiquitin: evidence for differential interactions of arginine-74 with the activating enzyme and the proteases of ATP-dependent proteolysisP J Duerksen-Hughes, X X Xu, K D WilkinsonBiochemistry|October 21, 1986
Synthesis and characterization of ubiquitin ethyl ester, a new substrate for ubiquitin carboxyl-terminal hydrolaseK D Wilkinson, M J Cox, A N Mayer, et al.Science (New York, N.Y.)|October 22, 1993
FMR1 protein: conserved RNP family domains and selective RNA bindingC T Ashley, K D Wilkinson, D Reines, et al.Biochemistry|September 9, 1986
Structure and activities of a variant ubiquitin sequence from bakers' yeastK D Wilkinson, M J Cox, L B O'Connor, et al.Biochemistry|August 10, 2000
Nonhydrolyzable diubiquitin analogues are inhibitors of ubiquitin conjugation and deconjugationL Yin, B Krantz, N S Russell, et al.Proceedings of the National Academy of Sciences of the United States of America|May 1, 1980
A suggestion for naming faces of ring compoundsI A Rose, K R Hanson, K D Wilkinson, et al.The Journal of Biological Chemistry|October 25, 1996
Functional requirements of the active site position 185 in the human enzyme galactose-1-phosphate uridylyltransferaseB B Quimby, L Wells, K D Wilkinson, et al.Proceedings of the National Academy of Sciences of the United States of America|June 1, 1985
Three-dimensional structure of ubiquitin at 2.8 A resolutionS Vijay-Kumar, C E Bugg, K D Wilkinson, et al.Pageof 5