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The Journal of Biological Chemistry|June 10, 1984
Inhibition of protein carboxyl methylation by S-adenosyl-L-homocysteine in intact erythrocytes. Physiological consequencesJ R Barber, S ClarkeArchives of Biochemistry and Biophysics|October 24, 1998
A highly active protein repair enzyme from an extreme thermophile: the L-isoaspartyl methyltransferase from Thermotoga maritimaJ K Ichikawa, S ClarkeGenomics|July 15, 1996
Rapid mapping of genomic P1 clones: the mouse L-isoaspartyl/D-aspartyl methyltransferase geneD C MacLaren, S ClarkeSomatosensory & Motor Research|July 15, 2000
Hierarchy within human SI: supporting data from cytochrome oxidase, acetylcholinesterase and NADPH-diaphorase staining patternsA C Eskenasy, S ClarkeThe Journal of Biological Chemistry|May 25, 1992
Maturation of isoprenylated proteins in Saccharomyces cerevisiae. Multiple activities catalyze the cleavage of the three carboxyl-terminal amino acids from farnesylated substrates in vitroC A Hrycyna, S ClarkeProtein Expression and Purification|February 1, 1995
Expression and purification of a human recombinant methyltransferase that repairs damaged proteinsD C MacLaren, S ClarkeBiochemical and Biophysical Research Communications|August 30, 1984
Membrane protein carboxyl methylation does not appear to be involved in the response of erythrocytes to cytoskeletal stressJ R Barber, S ClarkeBiochemistry|October 26, 1993
Purification and characterization of a novel metalloendopeptidase from Saccharomyces cerevisiaeC A Hrycyna, S ClarkeThe Journal of Biological Chemistry|September 5, 1986
Chemical conversion of aspartyl peptides to isoaspartyl peptides. A method for generating new methyl-accepting substrates for the erythrocyte D-aspartyl/L-isoaspartyl protein methyltransferaseP N McFadden, S ClarkeBiochemical and Biophysical Research Communications|November 15, 1985
Specific recognition of altered polypeptides by widely distributed methyltransferasesC M O'Connor, S ClarkePageof 90