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A L Greenleaf

Showing results (1-10 of 55) with videos related to

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The Journal of Biological Chemistry|November 25, 1983
Amanitin-resistant RNA polymerase II mutations are in the enzyme's largest subunitA L Greenleaf
Trends in Biochemical Sciences|April 1, 1993
Positive patches and negative noodles: linking RNA processing to transcription?A L Greenleaf
Journal of Bacteriology|October 1, 1973
Appearance of a ribonucleic acid polymerase-binding protein in asporogenous mutants of Bacillus subtilisA L Greenleaf, R Losick
European Journal of Biochemistry|December 1, 1975
RNA polymerase B from Drosophila melanogaster larvae. Purification and partial characterizationA L Greenleaf, E K Bautz
Proceedings of the National Academy of Sciences of the United States of America|May 1, 1989
A protein kinase that phosphorylates the C-terminal repeat domain of the largest subunit of RNA polymerase IIJ M Lee, A L Greenleaf
The Journal of Biological Chemistry|October 25, 1985
A mutation in the largest subunit of RNA polymerase II alters RNA chain elongation in vitroD E Coulter, A L Greenleaf
The Journal of Biological Chemistry|April 25, 1997
Modulation of RNA polymerase II elongation efficiency by C-terminal heptapeptide repeat domain kinase IJ M Lee, A L Greenleaf
The Journal of Biological Chemistry|February 25, 1982
Properties of mutationally altered RNA polymerases II of DrosophilaD E Coulter, A L Greenleaf
The Journal of Biological Chemistry|September 9, 2000
The splicing factor, Prp40, binds the phosphorylated carboxyl-terminal domain of RNA polymerase IID P Morris, A L Greenleaf
The Journal of Biological Chemistry|May 25, 1990
The carboxyl-terminal repeat domain of RNA polymerase II is not required for transcription factor Sp1 to function in vitroW A Zehring, A L Greenleaf
Pageof 6

Showing results (1-10 of 55) with videos related to

Sort By:
Pageof 6
The Journal of Biological Chemistry|November 25, 1983
Amanitin-resistant RNA polymerase II mutations are in the enzyme's largest subunitA L Greenleaf
Trends in Biochemical Sciences|April 1, 1993
Positive patches and negative noodles: linking RNA processing to transcription?A L Greenleaf
Journal of Bacteriology|October 1, 1973
Appearance of a ribonucleic acid polymerase-binding protein in asporogenous mutants of Bacillus subtilisA L Greenleaf, R Losick
European Journal of Biochemistry|December 1, 1975
RNA polymerase B from Drosophila melanogaster larvae. Purification and partial characterizationA L Greenleaf, E K Bautz
Proceedings of the National Academy of Sciences of the United States of America|May 1, 1989
A protein kinase that phosphorylates the C-terminal repeat domain of the largest subunit of RNA polymerase IIJ M Lee, A L Greenleaf
The Journal of Biological Chemistry|October 25, 1985
A mutation in the largest subunit of RNA polymerase II alters RNA chain elongation in vitroD E Coulter, A L Greenleaf
The Journal of Biological Chemistry|April 25, 1997
Modulation of RNA polymerase II elongation efficiency by C-terminal heptapeptide repeat domain kinase IJ M Lee, A L Greenleaf
The Journal of Biological Chemistry|February 25, 1982
Properties of mutationally altered RNA polymerases II of DrosophilaD E Coulter, A L Greenleaf
The Journal of Biological Chemistry|September 9, 2000
The splicing factor, Prp40, binds the phosphorylated carboxyl-terminal domain of RNA polymerase IID P Morris, A L Greenleaf
The Journal of Biological Chemistry|May 25, 1990
The carboxyl-terminal repeat domain of RNA polymerase II is not required for transcription factor Sp1 to function in vitroW A Zehring, A L Greenleaf
Pageof 6