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Science (New York, N.Y.)|September 9, 1983
DNA-binding proteinsY Takeda, D H Ohlendorf, W F Anderson, et al.Biochemistry|February 5, 1991
Second-site revertants of an inactive T4 lysozyme mutant restore activity by restructuring the active site cleftA R Poteete, D P Sun, H Nicholson, et al.Journal of Molecular Biology|July 5, 1987
Kinetic studies on Cro repressor-operator DNA interactionJ G Kim, Y Takeda, B W Matthews, et al.Proceedings of the National Academy of Sciences of the United States of America|March 1, 1982
Structure of the DNA-binding region of lac repressor inferred from its homology with cro repressorB W Matthews, D H Ohlendorf, W F Anderson, et al.Journal of Structural Biology|November 1, 1996
Beta-sheet models for the ordered filamentous structure formed by a peptide that enhances the action of insulinL Weaver, J Stagsted, O Behnke, et al.Proteins|April 1, 1993
Perturbation of Trp 138 in T4 lysozyme by mutations at Gln 105 used to correlate changes in structure, stability, solvation, and spectroscopic propertiesP Pjura, L P McIntosh, J A Wozniak, et al.Protein Science : a Publication of the Protein Society|January 1, 1992
Structure of a stabilizing disulfide bridge mutant that closes the active-site cleft of T4 lysozymeR H Jacobson, M Matsumura, H R Faber, et al.Science (New York, N.Y.)|December 10, 1993
The role of backbone flexibility in the accommodation of variants that repack the core of T4 lysozymeE P Baldwin, O Hajiseyedjavadi, W A Baase, et al.Nature Structural Biology|June 17, 1998
A new DNA-binding motif in the Skn-1 binding domain-DNA complexP B Rupert, G W Daughdrill, B Bowerman, et al.Nature|April 30, 1981
Structure of the cro repressor from bacteriophage lambda and its interaction with DNAW F Anderson, D H Ohlendorf, Y Takeda, et al.Pageof 20