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Critical Reviews in Biotechnology|January 1, 1988
Engineering thermostability in subtilisin BPN' by in vitro mutagenesisM L Rollence, D Filpula, M W Pantoliano, et al.Biochemistry|November 28, 1995
Prodomain mutations at the subtilisin interface: correlation of binding energy and the rate of catalyzed foldingL Wang, S Ruvinov, S Strausberg, et al.Biochemistry|May 2, 2001
Stability and global fold of the mouse prohormone convertase 1 pro-domainM A Tangrea, P Alexander, P N Bryan, et al.Nucleic Acids Research|October 1, 1978
Physical properties of inner histone-DNA complexesP N Bryan, E B Wright, M H Hsie, et al.Nucleic Acids Research|June 1, 1977
Conformational states of chromatin nu bodies induced by ureaD E Olins, P N Bryan, R E Harrington, et al.Biochemistry|August 26, 1997
Engineering the independent folding of the subtilisin BPN' prodomain: analysis of two-state folding versus protein stabilityS Ruvinov, L Wang, B Ruan, et al.International Journal of Peptide and Protein Research|March 1, 1996
Generation of soluble and active subtilisin and alpha-chymotrypsin in organic solvents via hydrophobic ion pairingJ D Meyer, B S Kendrick, J E Matsuura, et al.Biochemistry|April 21, 1987
Protein engineering of subtilisin BPN': enhanced stabilization through the introduction of two cysteines to form a disulfide bondM W Pantoliano, R C Ladner, P N Bryan, et al.Bio/Technology (Nature Publishing Company)|July 1, 1995
Directed evolution of a subtilisin with calcium-independent stabilityS L Strausberg, P A Alexander, D T Gallagher, et al.Biochemistry|September 5, 1989
Large increases in general stability for subtilisin BPN' through incremental changes in the free energy of unfoldingM W Pantoliano, M Whitlow, J F Wood, et al.Pageof 9