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Science (New York, N.Y.)|February 5, 1988
Replacements of Pro86 in phage T4 lysozyme extend an alpha-helix but do not alter protein stabilityT Alber, J A Bell, D P Sun, et al.Proceedings of the National Academy of Sciences of the United States of America|January 1, 1988
Disulfide bonds and thermal stability in T4 lysozymeR Wetzel, L J Perry, W A Baase, et al.Biochimica Et Biophysica Acta|October 20, 1975
Comparison of the predicted and observed secondary structure of T4 phage lysozymeB W MatthewsAdvances in Protein Chemistry|January 1, 1995
Studies on protein stability with T4 lysozymeB W MatthewsAnnual Review of Biochemistry|January 1, 1993
Structural and genetic analysis of protein stabilityB W MatthewsFASEB Journal : Official Publication of the Federation of American Societies for Experimental Biology|January 1, 1996
Structural and genetic analysis of the folding and function of T4 lysozymeB W MatthewsScience (New York, N.Y.)|February 10, 1989
Control of enzyme activity by an engineered disulfide bondM Matsumura, B W MatthewsScience (New York, N.Y.)|September 20, 1997
Toroidal structure of lambda-exonucleaseR Kovall, B W MatthewsBiochemistry|July 11, 1995
Specificity of ligand binding in a buried nonpolar cavity of T4 lysozyme: linkage of dynamics and structural plasticityA Morton, B W MatthewsProtein Science : a Publication of the Protein Society|December 1, 1993
Structures of randomly generated mutants of T4 lysozyme show that protein stability can be enhanced by relaxation of strain and by improved hydrogen bonding via bound solventP Pjura, B W MatthewsPageof 48