Trp–His covalent adduct in bilirubin oxidase is crucial for effective bilirubin binding but has a minor role in electron transfer
Ковалентный аддукт Trp–His в билирубиноксидазе имеет решающее значение для эффективного связывания билирубина, но играет второстепенную роль в переносе электронов
2019-09-23
SCID: 54.1/wjts8m7q
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T1 copper coordinationTrp396-His398 covalent adductbilirubin oxidaseelectron transfersubstrate binding
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Abstract (AI)
Unlike any protein studied so far, the active site of bilirubin oxidase from Myrothecium verrucaria contains a unique type of covalent link between tryptophan and histidine side chains. The role of this post-translational modification in substrate binding and oxidation is not sufficiently understood. Our structural and mutational studies provide evidence that this Trp396-His398 adduct modifies T1 copper coordination and is an important part of the substrate binding and oxidation site. The presence of the adduct is crucial for oxidation of substituted phenols and it substantially influences the rate of oxidation of bilirubin. Additionally, we bring the first structure of bilirubin oxidase in complex with one of its products, ferricyanide ion, interacting with the modified tryptophan side chain, Arg356 and the active site-forming loop 393-398. The results imply that structurally and chemically distinct types of substrates, including bilirubin, utilize the Trp-His adduct mainly for binding and to a smaller extent for electron transfer.
Key Findings
1
A bilirubin oxidase–ferricyanide complex structure shows product interaction with modified Trp396, Arg356, and active-site loop 393–398.
2
Bilirubin oxidase from Myrothecium verrucaria contains a unique covalent Trp396–His398 adduct that modifies T1 copper coordination.
3
Distinct substrates primarily use the Trp–His adduct for binding, while its contribution to electron transfer is comparatively minor.
4
Structural and mutational evidence identifies the Trp–His adduct as an important component of the substrate-binding and oxidation site.
5
The adduct is crucial for oxidizing substituted phenols and substantially affects the rate of bilirubin oxidation.
Research Object
the Trp396–His398 covalent adduct in the active site of bilirubin oxidase from Myrothecium verrucaria
Research Subject
the adduct’s effects on T1 copper coordination, substrate binding, substrate oxidation, and electron transfer, including oxidation rates for substituted phenols and bilirubin
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2019-09-23
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