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The Journal of Biological Chemistry|January 5, 1989
Enzymatic methylation of L-isoaspartyl residues derived from aspartyl residues in affinity-purified calmodulin. The role of conformational flexibility in spontaneous isoaspartyl formationI M Ota, S ClarkeThe Journal of Biological Chemistry|April 15, 1989
Succinimide formation from aspartyl and asparaginyl peptides as a model for the spontaneous degradation of proteinsR C Stephenson, S ClarkeThe Journal of Biological Chemistry|January 5, 1986
Metabolism of a synthetic L-isoaspartyl-containing hexapeptide in erythrocyte extracts. Enzymatic methyl esterification is followed by nonenzymatic succinimide formationE D Murray, S ClarkeAnalytical Biochemistry|July 1, 1985
Analysis of erythrocyte protein methyl esters by two-dimensional gel electrophoresis under acidic separating conditionsC M O'Connor, S ClarkeBiochimica Et Biophysica Acta|September 3, 1990
The fidelity of protein synthesis: can mischarging by aspartyl-tRNA(Asp) synthetase lead to the formation of isoaspartyl residues in proteins?J A Momand, S ClarkeThe Journal of Biological Chemistry|August 5, 1989
Enzymatic methylation of 23-29-kDa bovine retinal rod outer segment membrane proteins. Evidence for methyl ester formation at carboxyl-terminal cysteinyl residuesI M Ota, S ClarkeThe Journal of Biological Chemistry|December 25, 1980
Identification of aspartic acid as a site of methylation in human erythrocyte membrane proteinsC A Janson, S ClarkeBrain Research|May 1, 1984
Bilateral transitory projection to visual areas from auditory cortex in kittensG M Innocenti, S ClarkeThe 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 ClarkePageof 294