High-Capacity Redox Control at the Plasma Membrane of Mammalian Cells: Trans-Membrane, Cell Surface, and Serum NADH-Oxidases

被引:68
作者
Berridge, Michael V. [1 ]
Tan, An S. [1 ]
机构
[1] Wellington Sch Med, Malaghan Inst Med Res, Wellington, New Zealand
关键词
D O I
10.1089/ars.2000.2.2-231
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The high capacity of proliferating mammalian cells to transfer electrons from cytosolic NADH to extracellular electron acceptors like oxygen is poorly understood and not widely recognized. Nevertheless, trans-plasma membrane electron transport (plasma membrane redox control) probably ranks alongside the Na+/H+ antiport system (pH control) and glucose transport in facilitating cellular responses to physiological stimuli. These plasma membrane transport systems are acutely responsive to receptor ligation by growth factors, polypeptide hormones, and other cell activators. A novel tetrazolium-based cell proliferation assay that we have shown to measure an NADH-oxidoreductase component of the trans-plasma membrane electron transport system has allowed direct comparisons with NADH: ferricyanide-oxidoreductase and respiratory burst NADPH-oxidoreductase. In addition, an NAD(P)H-oxidase at the cell surface and an NADH-oxidase activity in body fluids can be measured by modifying the basic cell proliferation assay. As determined by reduction of the cell-impermeable tetrazolium reagent, WST-1, electron transfer across the plasma membrane of dividing cells can exceed that of fully activated human peripheral blood neutrophils. Cellular reduction of WST-1 is dependent on the presence of an intermediate electron acceptor and is inhibited by superoxide dismutase (SOD) and by oxygen, implying indirect involvement of superoxide in WST-1 reduction. Cell-surface NAD(P) H-oxidase and serum NADH-oxidase are shown to be distinct from trans-plasma membrane NADH-oxidoreductase by their differential sensitivity to capsaicin and pCMBS. The glycolytic metabolism of cancer cells may be linked to changes in trans-plasma membrane NADH: WST-1-oxidoreductase activity and to increased serum NADH-oxidase in cancer. Antiox. Redox Signal. 2, 231-242.
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收藏
页码:231 / 242
页数:12
相关论文
共 39 条
[1]   Transforming oncogenes regulate glucose transport by increasing transporter affinity for glucose: Contrasting effects of oncogenes and heat stress in a murine marrow-derived cell line [J].
Ahmed, N ;
Berridge, MV .
LIFE SCIENCES, 1998, 63 (21) :1887-1903
[2]   Regulation of glucose transport by interleukin-3 in growth factor-dependent and oncogene-transformed bone marrow-derived cell lines [J].
Ahmed, N ;
Berridge, MV .
LEUKEMIA RESEARCH, 1997, 21 (07) :609-618
[3]  
Asard H., 1998, PLASMA MEMBRANE REDO
[4]  
Berridge M.V., 1996, BIOCHEMICA, V4, P15
[5]   Cell-Surface NAD(P)H-Oxidase: Relationship to Trans-Plasma Membrane NADH-Oxidoreductase and a Potential Source of Circulating NADH-Oxidase [J].
Berridge, Michael V. ;
Tan, An S. .
ANTIOXIDANTS & REDOX SIGNALING, 2000, 2 (02) :277-288
[6]   Trans-plasma membrane electron transport: a cellular assay for NADH- and NADPH-oxidase based on extracellular, superoxide-mediated reduction of the sulfonated tetrazolium salt WST-1 [J].
Berridge, MV ;
Tan, AS .
PROTOPLASMA, 1998, 205 (1-4) :74-82
[7]   CHARACTERIZATION OF THE CELLULAR REDUCTION OF 3-(4,5-DIMETHYLTHIAZOL-2-YL)-2,5-DIPHENYLTETRAZOLIUM BROMIDE (MTT) - SUBCELLULAR-LOCALIZATION, SUBSTRATE DEPENDENCE, AND INVOLVEMENT OF MITOCHONDRIAL ELECTRON-TRANSPORT IN MTT REDUCTION [J].
BERRIDGE, MV ;
TAN, AS .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1993, 303 (02) :474-482
[8]   INTERLEUKIN-3 FACILITATES GLUCOSE-TRANSPORT IN A MYELOID CELL-LINE BY REGULATING THE AFFINITY OF THE GLUCOSE-TRANSPORTER FOR GLUCOSE - INVOLVEMENT OF PROTEIN-PHOSPHORYLATION IN TRANSPORTER ACTIVATION [J].
BERRIDGE, MV ;
TAN, AS .
BIOCHEMICAL JOURNAL, 1995, 305 :843-851
[9]  
BERRIDGE MV, 1999, Patent No. 334232
[10]   A GROWTH FACTOR-STIMULATED AND HORMONE-STIMULATED NADH OXIDASE FROM RAT-LIVER PLASMA-MEMBRANE [J].
BRIGHTMAN, AO ;
WANG, J ;
MIU, RKM ;
SUN, IL ;
BARR, R ;
CRANE, FL ;
MORRE, DJ .
BIOCHIMICA ET BIOPHYSICA ACTA, 1992, 1105 (01) :109-117