TY - JOUR
T1 - X-ray crystal structure and catalytic properties of Thr252Ile mutant of cytochrome P450cam
T2 - Roles of Thr252 and water in the active center
AU - Hishiki, Takako
AU - Shimada, Hideo
AU - Nagano, Shingo
AU - Egawa, Tsuyoshi
AU - Kanamori, Yasukazu
AU - Makino, Ryu
AU - Park, Sam Yong
AU - Adachi, Shin ichi
AU - Shiro, Yoshitsugu
AU - Ishimura, Yuzuru
PY - 2000/1/1
Y1 - 2000/1/1
N2 - The structure-function relationship in cytochrome P450cam monooxygenase was studied by employing its active site mutant Thr252Ile. X-ray crystallographic analyses of the ferric d-camphor-bound form of the mutant revealed that the mutation caused a structural change in the active site giving an enlarged oxygen-binding pocket that did not contain any hydrophilic group such as the OH group of Thr and H2O. The enzyme showed a low monooxygenase activity of ca. 1/10 of the activity of the wild-type enzyme. Kinetic analyses of each catalytic step revealed that the rate of proton-coupled reduction of the oxygenated intermediate of the enzyme, a ternary complex of dioxygen and d-camphor with the ferrous enzyme, decreased to about 1/30 of that of the wild-type enzyme, while the rates of other catalytic steps including the reduction of the ferric d-camphor-bound form by reduced putidaredoxin did not change significantly. These results indicated that a hydrophilic group(s) such as water and/or hydroxyl group in the active site is prerequisite to a proton supply for the reduction of the oxygenated intermediate, thereby giving support for the operation of a proton transfer network composed of Thr252, Asp251, and two other amino acids and water proposed by previous investigators.
AB - The structure-function relationship in cytochrome P450cam monooxygenase was studied by employing its active site mutant Thr252Ile. X-ray crystallographic analyses of the ferric d-camphor-bound form of the mutant revealed that the mutation caused a structural change in the active site giving an enlarged oxygen-binding pocket that did not contain any hydrophilic group such as the OH group of Thr and H2O. The enzyme showed a low monooxygenase activity of ca. 1/10 of the activity of the wild-type enzyme. Kinetic analyses of each catalytic step revealed that the rate of proton-coupled reduction of the oxygenated intermediate of the enzyme, a ternary complex of dioxygen and d-camphor with the ferrous enzyme, decreased to about 1/30 of that of the wild-type enzyme, while the rates of other catalytic steps including the reduction of the ferric d-camphor-bound form by reduced putidaredoxin did not change significantly. These results indicated that a hydrophilic group(s) such as water and/or hydroxyl group in the active site is prerequisite to a proton supply for the reduction of the oxygenated intermediate, thereby giving support for the operation of a proton transfer network composed of Thr252, Asp251, and two other amino acids and water proposed by previous investigators.
KW - Cytochrome P450cam
KW - Oxygen activation
KW - Proton transfer
KW - Site-directed mutagenesis
KW - X-ray crystallography
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U2 - 10.1093/oxfordjournals.jbchem.a022848
DO - 10.1093/oxfordjournals.jbchem.a022848
M3 - Article
C2 - 11098139
AN - SCOPUS:0034534875
SN - 0021-924X
VL - 128
SP - 965
EP - 974
JO - Journal of biochemistry
JF - Journal of biochemistry
IS - 6
ER -