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The Journal of Biological Chemistry|October 3, 2000
Reverse methionine biosynthesis from S-adenosylmethionine in eukaryotic cellsD Thomas, A Becker, Y Surdin-KerjanGenetic Analysis, Techniques and Applications|June 1, 1990
An improved strategy for generating a family of unidirectional deletions on large DNA fragmentsD Thomas, Y Surdin-KerjanMolecular & General Genetics : MGG|May 1, 1989
Structure of the HOM2 gene of Saccharomyces cerevisiae and regulation of its expressionD Thomas, Y Surdin-KerjanMolecular & General Genetics : MGG|April 1, 1991
The synthesis of the two S-adenosyl-methionine synthetases is differently regulated in Saccharomyces cerevisiaeD Thomas, Y Surdin-KerjanMicrobiology and Molecular Biology Reviews : MMBR|December 31, 1997
Metabolism of sulfur amino acids in Saccharomyces cerevisiaeD Thomas, Y Surdin-KerjanThe Journal of Biological Chemistry|December 5, 1987
SAM1, the structural gene for one of the S-adenosylmethionine synthetases in Saccharomyces cerevisiae. Sequence and expressionD Thomas, Y Surdin-KerjanThe Journal of Biological Chemistry|September 15, 1990
Gene-enzyme relationship in the sulfate assimilation pathway of Saccharomyces cerevisiae. Study of the 3'-phosphoadenylylsulfate reductase structural geneD Thomas, R Barbey, Y Surdin-KerjanMolecular and Cellular Biology|April 1, 1992
MET4, a leucine zipper protein, and centromere-binding factor 1 are both required for transcriptional activation of sulfur metabolism in Saccharomyces cerevisiaeD Thomas, I Jacquemin, Y Surdin-KerjanJournal of Bacteriology|September 1, 1993
Cysteine biosynthesis in Saccharomyces cerevisiae occurs through the transsulfuration pathway which has been built up by enzyme recruitmentH Cherest, D Thomas, Y Surdin-KerjanFEBS Letters|June 1, 1993
Evolutionary relationships between yeast and bacterial homoserine dehydrogenasesD Thomas, R Barbey, Y Surdin-KerjanPageof 618