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The Journal of Biological Chemistry|February 4, 1994
Mutations of noncatalytic sulfhydryl groups influence the stability, folding, and oxidative susceptibility of rhodaneseD M Miller-Martini, J M Chirgwin, P M Horowitz
The Journal of Biological Chemistry|March 10, 1985
Evidence for dynamically determined conformational states in rhodanese catalysisS F Chow, P M Horowitz, J Westley, et al.
Protein Expression and Purification|October 1, 1995
Chinese hamster rhodanese cDNA: activity of the expressed protein is not blocked by a C-terminal extensionR J Trevino, J Hunt, P M Horowitz, et al.
Journal of Protein Chemistry|October 23, 1997
Preformed GroES oligomers are not required as functional cochaperoninsJ W Seale, J M Chirgwin, B Demeler, et al.
The Journal of Biological Chemistry|March 10, 1982
Controlled proteolysis by subtilisin as a probe for cyanide-induced conformational changes in Pseudomonas cytochrome oxidaseP M Horowitz, B B Muhoberac, K Falksen, et al.
Biochemical and Biophysical Research Communications|June 15, 1987
Interaction of tubulin with the macromolecular apolar probe, octyl sepharoseA R Prasad, V Prasad, R F Ludueña, et al.
Biochemistry|April 2, 1996
Reversible oligomerization and denaturation of the chaperonin GroESJ W Seale, B M Gorovits, J Ybarra, et al.
Biochemistry|August 26, 1986
Studies of the secondary structures of amelogenin from bovine tooth enamelV Renugopalakrishnan, E S Strawich, P M Horowitz, et al.
The Journal of Biological Chemistry|October 27, 1997
Conditions for nucleotide-dependent GroES-GroEL interactions. GroEL14(groES7)2 is favored by an asymmetric distribution of nucleotidesB M Gorovits, J Ybarra, J W Seale, et al.
The Journal of Biological Chemistry|August 25, 1982
Activation of Pseudomonas cytochrome oxidase by limited proteolysis with subtilisinP M Horowitz, K Falksen, B B Muhoberac, et al.
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