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Substrate Specificities of Deuterolysin fromAspergillus oryzaeand Electron Paramagnetic Resonance Measurement of Cobalt-substituted Deuterolysin
Author(s) -
Yuko Doi,
Byung Rho Lee,
Masamichi Ikeguchi,
Yasunori OHOBA,
Tadaaki Ikoma,
Shozo TeroKubota,
Seigo Yamauchi,
Koji Takahashi,
Eiji Ichishima
Publication year - 2003
Publication title -
bioscience biotechnology and biochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.509
H-Index - 116
eISSN - 1347-6947
pISSN - 0916-8451
DOI - 10.1271/bbb.67.264
Subject(s) - electron paramagnetic resonance , aspergillus oryzae , cobalt , chemistry , substrate (aquarium) , peptide , divalent , crystallography , resonance (particle physics) , stereochemistry , enzyme , nuclear magnetic resonance , inorganic chemistry , organic chemistry , biochemistry , biology , ecology , physics , particle physics
The substrate specificities of deuterolysin, a 19-kDa zinc-protease (EC 3.4.24.39) from Aspergillus oryzae, were investigated at pH 9.0 with various fluorogenic acyl-peptide-4-methylcoumaryl-7-amides (peptide-MCAs). N-Butoxycarbonyl-Arg-Val-Arg-Arg-MCA was the best substrate for deuterolysin. We therefore measured its kinetic parameters. Deuterolysin had high activity toward the peptide bonds next to pairs of basic residues in calf thymus histone H4. The specificity of cobalt-substituted deuterolysin (Co-deuterolysin) for peptide-MCAs was similar to that of native deuterolysin. The CD spectrum of Co-deuterolysin was similar to that of the native deuterolysin. The metal coordination sphere of Co-deuterolysin was analyzed by Q-band (33.9570 GHz) electron paramagnetic resonance (EPR) spectroscopy. Using computer simulation of EPR, we found the g principal values to be g(xx) = 5.20, g(yy) = 4.75, and g(zz) = 2.24; the metal center was a divalent cobalt ion in a high spin state.

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