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F Eckardt-Schupp

Showing results (1-10 of 33) with videos related to

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Mutagenesis|November 1, 1986
A mismatch repair-based model can explain some features of u.v. mutagenesis in yeastW Siede, F Eckardt-Schupp
Mutation Research|September 1, 1993
Bridge-building between mathematical theory and molecular biology: the REV2 gene as paradigmF Eckardt-Schupp, F Ahne
Biochimie|April 24, 1999
Radiation inducible DNA repair processes in eukaryotesF Eckardt-Schupp, C Klaus
Current Genetics|January 1, 1986
DNA repair genes of Saccharomyces cerevisiae: complementing rad4 and rev2 mutations by plasmids which cannot be propagated in Escherichia coliW Siede, F Eckardt-Schupp
Current Genetics|July 1, 1991
Repair of gamma ray-induced S1 nuclease hypersensitive sites in yeast depends on homologous mitotic recombination and a RAD18-dependent functionE M Geigl, F Eckardt-Schupp
Molecular Microbiology|May 1, 1990
Chromosome-specific identification and quantification of S1 nuclease-sensitive sites in yeast chromatin by pulsed-field gel electrophoresisE M Geigl, F Eckardt-Schupp
Molecular Microbiology|July 1, 1991
The repair of double-strand breaks and S1 nuclease-sensitive sites can be monitored chromosome-specifically in Saccharomyces cerevisiae using pulse-field gel electrophoresisE M Geigl, F Eckardt-Schupp
Current Genetics|October 1, 1992
The REV2 gene of Saccharomyces cerevisiae: cloning and DNA sequenceF Ahne, M Baur, F Eckardt-Schupp
Mutagenesis|January 1, 1990
Genetic and biochemical analysis of glutathione-deficient mutants of Saccharomyces cerevisiaeM Kistler, K Maier, F Eckardt-Schupp
Nucleic Acids Research|February 15, 1997
The RAD5 gene product is involved in the avoidance of non-homologous end-joining of DNA double strand breaks in the yeast Saccharomyces cerevisiaeF Ahne, B Jha, F Eckardt-Schupp
Pageof 4

Showing results (1-10 of 33) with videos related to

Sort By:
Pageof 4
Mutagenesis|November 1, 1986
A mismatch repair-based model can explain some features of u.v. mutagenesis in yeastW Siede, F Eckardt-Schupp
Mutation Research|September 1, 1993
Bridge-building between mathematical theory and molecular biology: the REV2 gene as paradigmF Eckardt-Schupp, F Ahne
Biochimie|April 24, 1999
Radiation inducible DNA repair processes in eukaryotesF Eckardt-Schupp, C Klaus
Current Genetics|January 1, 1986
DNA repair genes of Saccharomyces cerevisiae: complementing rad4 and rev2 mutations by plasmids which cannot be propagated in Escherichia coliW Siede, F Eckardt-Schupp
Current Genetics|July 1, 1991
Repair of gamma ray-induced S1 nuclease hypersensitive sites in yeast depends on homologous mitotic recombination and a RAD18-dependent functionE M Geigl, F Eckardt-Schupp
Molecular Microbiology|May 1, 1990
Chromosome-specific identification and quantification of S1 nuclease-sensitive sites in yeast chromatin by pulsed-field gel electrophoresisE M Geigl, F Eckardt-Schupp
Molecular Microbiology|July 1, 1991
The repair of double-strand breaks and S1 nuclease-sensitive sites can be monitored chromosome-specifically in Saccharomyces cerevisiae using pulse-field gel electrophoresisE M Geigl, F Eckardt-Schupp
Current Genetics|October 1, 1992
The REV2 gene of Saccharomyces cerevisiae: cloning and DNA sequenceF Ahne, M Baur, F Eckardt-Schupp
Mutagenesis|January 1, 1990
Genetic and biochemical analysis of glutathione-deficient mutants of Saccharomyces cerevisiaeM Kistler, K Maier, F Eckardt-Schupp
Nucleic Acids Research|February 15, 1997
The RAD5 gene product is involved in the avoidance of non-homologous end-joining of DNA double strand breaks in the yeast Saccharomyces cerevisiaeF Ahne, B Jha, F Eckardt-Schupp
Pageof 4