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Histidine-α143 Assists 1,2-Hydroxyl Group Migration and Protects Radical Intermediates in Coenzyme B12-Dependent Diol Dehydratase

Authors :
Mamoru Yamanishi
Ai Yamasaki
Masahiro Kawata
Noriaki Komoto
Koichiro Kinoshita
Takamasa Tobimatsu
Tetsuo Toraya
Naoki Hieda
Takeshi Watanabe
Ken Ichi Ogura
Source :
Biochemistry. 47:3162-3173
Publication Year :
2008
Publisher :
American Chemical Society (ACS), 2008.

Abstract

Diol dehydratase of Klebsiella oxytoca contains an essential histidine residue. Its X-ray structure revealed that the migrating hydroxyl group on C2 of substrate is hydrogen-bonded to Hisalpha143. Mutant enzymes in which Hisalpha143 was mutated to another amino acid residue were expressed in Escherichia coli, purified, and examined for enzymatic activity. The Halpha143Q mutant was 34% as active as the wild-type enzyme. Halpha143A and Halpha143L showed only a trace of activity. Kinetic analyses indicated that the hydrogen bonding interaction between the hydroxyl group on C2 of substrate and the side chain of residue alpha143 is important not only for catalysis but also for protecting radical intermediates. Halpha143E and Halpha143K that did not exist as (alphabetagamma) 2 complexes were inactive. The deuterium kinetic isotope effect on the overall reaction suggested that a hydrogen abstraction step is fully rate-determining for the wild type and Halpha143Q and partially rate-determining for Halpha143A. The preference for substrate enantiomers was reversed by the Halpha143Q mutation in both substrate binding and catalysis. Upon the inactivation of the Halpha143A holoenzyme by 1,2-propanediol, cob(II)alamin without an organic radical coupling partner accumulated, 5'-deoxyadenosine was quantitatively formed from the coenzyme adenosyl group, and the apoenzyme itself was not damaged. This inactivation was thus concluded to be a mechanism-based inactivation. The holoenzyme of Halpha143Q underwent irreversible inactivation by O 2 in the absence of substrate at a much lower rate than the wild type.

Details

ISSN :
15204995 and 00062960
Volume :
47
Database :
OpenAIRE
Journal :
Biochemistry
Accession number :
edsair.doi.dedup.....cc5994984da0783e7ef3615965bdc444
Full Text :
https://doi.org/10.1021/bi7018095