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Proceedings of the National Academy of Sciences of the United States of America|March 1, 1984
Cocrystals of the DNA-binding domain of phage 434 repressor and a synthetic phage 434 operatorJ Anderson, M Ptashne, S C HarrisonProceedings of the National Academy of Sciences of the United States of America|April 1, 1978
Mechanism of action of the cro protein of bacteriophage lambdaA Johnson, B J Meyer, M PtashneJournal of Molecular Biology|January 24, 1997
The activation defect of a lambda cI positive control mutantF W Whipple, M Ptashne, A HochschildThe EMBO Journal|August 1, 1996
Quantitation of putative activator-target affinities predicts transcriptional activating potentialsY Wu, R J Reece, M PtashneMolecular and Cellular Biology|December 1, 1986
DNA binding is not sufficient for nuclear localization of regulatory proteins in Saccharomyces cerevisiaeP A Silver, R Brent, M PtashneCell|September 22, 1989
A single glutamic acid residue plays a key role in the transcriptional activation function of lambda repressorF D Bushman, C Shang, M PtashneProceedings of the National Academy of Sciences of the United States of America|June 1, 1988
No strict alignment is required between a transcriptional activator binding site and the "TATA box" of a yeast geneD M Ruden, J Ma, M PtashneCell|April 1, 1985
Specific DNA binding of GAL4, a positive regulatory protein of yeastE Giniger, S M Varnum, M PtashneProceedings of the National Academy of Sciences of the United States of America|February 19, 2000
An artificial transcriptional activating region with unusual propertiesX Lu, A Z Ansari, M PtashneProceedings of the National Academy of Sciences of the United States of America|April 1, 1985
NH2-terminal arm of phage lambda repressor contributes energy and specificity to repressor binding and determines the effects of operator mutationsJ L Eliason, M A Weiss, M PtashnePageof 32