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PMID: 20163138 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Constitutive NADPH-dependent electron transferase activity of the Nox4 dehydrogenase domain.

Biochemistry ·Vol. 49 ·No. 11 ·2010-03-23 ·Pages 2433-42

Nisimoto Y, Jackson HM, Ogawa H, Kawahara T, Lambeth JD

Abstract

NADPH oxidase 4 (Nox4) is constitutively active, while Nox2 requires the cytosolic regulatory subunits p47(phox) and p67(phox) and activated Rac with activation by phorbol 12-myristate 13-acetate (PMA). This study was undertaken to identify the domain on Nox4 that confers constitutive activity. Lysates from Nox4-expressing cells exhibited constitutive NADPH- but not NADH-dependent hydrogen peroxide production with a K(m) for NADPH of 55 +/- 10 microM. The concentration of Nox4 in cell lysates was estimated using Western blotting and allowed calculation of a turnover of approximately 200 mol of H(2)O(2) min(-1) (mol of Nox4)(-1). A chimeric protein (Nox2/4) consisting of the Nox2 transmembrane (TM) domain and the Nox4 dehydrogenase (DH) domain showed H(2)O(2) production in the absence of cytosolic regulatory subunits. In contrast, chimera Nox4/2, consisting of the Nox4 TM and Nox2 DH domains, exhibited PMA-dependent activation that required coexpression of regulatory subunits. Nox DH domains from several Nox isoforms were purified and evaluated for their electron transferase activities. Nox1 DH, Nox2 DH, and Nox5 DH domains exhibited barely detectable activities toward artificial electron acceptors, while the Nox4 DH domain exhibited significant rates of reduction of cytochrome c (160 min(-1), largely superoxide dismutase-independent), ferricyanide (470 min(-1)), and other electron acceptors (artificial dyes and cytochrome b(5)). Rates were similar to those observed for H(2)O(2) production by the Nox4 holoenzyme in cell lysates. The activity required added FAD and was seen with NADPH but not NADH. These results indicate that the Nox4 DH domain exists in an intrinsically activated state and that electron transfer from NADPH to FAD is likely to be rate-limiting in the NADPH-dependent reduction of oxygen by holo-Nox4.

MeSH Terms
Cell Extracts Cell Line Cell Membrane/metabolism Cytosol/metabolism Electron Transport Flavin-Adenine Dinucleotide/metabolism Holoenzymes/chemistry,metabolism Humans Kinetics Membrane Glycoproteins/chemistry,metabolism NADP/metabolism NADPH Oxidase 2 NADPH Oxidase 4 NADPH Oxidases/chemistry,genetics,isolation & purification,metabolism Oxidoreductases/chemistry,metabolism Protein Folding Protein Structure, Tertiary Protein Transport Reactive Oxygen Species/metabolism Sequence Homology, Amino Acid Solubility Substrate Specificity Transferases/chemistry,metabolism
Chemicals
Cell Extracts Holoenzymes Membrane Glycoproteins Reactive Oxygen Species Flavin-Adenine Dinucleotide NADP Oxidoreductases CYBB protein, human NADPH Oxidase 2 NADPH Oxidase 4 NADPH Oxidases NOX4 protein, human Transferases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Nisimoto Yukio
Department of Pathology and Laboratory Medicine, Emory University Medical School, Atlanta, Georgia 30322, USA.
Jackson Heather M
Ogawa Hisamitsu
Kawahara Tsukasa
Lambeth J David
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Article Info
Journal
Biochemistry
Abbr.
Biochemistry
ISSN
1520-4995
Published
2010-03-23
Pages
2433-42
Language
English
Region
United States
NLM ID
0370623
PMCID
PMC2839512
Subset
IM
Grants
NCI NIH HHS · CA105116 · United States
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