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Biochemistry|January 14, 1986
Temperature dependence of the reduction potential of CuA in carbon monoxide inhibited cytochrome c oxidaseH Wang, D F Blair, W R Ellis, et al.Biochemistry|March 4, 1997
Multichannel analysis of single-turnover kinetics of cytochrome aa3 reduction of O2S Bose, R W Hendler, R I Shrager, et al.Biophysical Journal|May 1, 1981
Nuclear magnetic resonance studies of cation transport across vesicle bilayer membranesD Z Ting, P S Hagan, S I Chan, et al.Biochemistry|March 25, 1975
Nuclear magnetic resonance studies of histone IV solution conformationA E Pekary, H J Li, S I Chan, et al.Protein Science : a Publication of the Protein Society|September 22, 2001
The role of a beta-bulge in the folding of the beta-hairpin structure in ubiquitinP Y Chen, B G Gopalacushina, C C Yang, et al.Biochemistry|October 2, 1979
Resonance Raman spectra of cytochrome c oxidase. Excitation in the 600-nm regionD F Bocian, A T Lemley, N O Petersen, et al.The Journal of Biological Chemistry|January 3, 1997
Q-band electron nuclear double resonance (ENDOR) and X-band EPR of the sulfobetaine 12 heat-treated cytochrome c oxidase complexS M Musser, Y C Fann, R J Gurbiel, et al.Biochemistry|January 28, 1997
Uncompetitive substrate inhibition and noncompetitive inhibition by 5-n-undecyl-6-hydroxy-4,7-dioxobenzothiazole (UHDBT) and 2-n-nonyl-4-hydroxyquinoline-N-oxide (NQNO) is observed for the cytochrome bo3 complex: implications for a Q(H2)-loop proton translocation mechanismS M Musser, M H Stowell, H K Lee, et al.The Journal of Biological Chemistry|February 25, 1984
Halide binding by the purified halorhodopsin chromoprotein. II. New chloride-binding sites revealed by 35Cl NMRJ J Falke, S I Chan, M Steiner, et al.Proceedings of the National Academy of Sciences of the United States of America|January 15, 1992
Could CuB be the site of redox linkage in cytochrome c oxidase?R W Larsen, L P Pan, S M Musser, et al.Pageof 17