Glutathionylation of the p50 subunit of NF-κB:: a mechanism for redox-induced inhibition of DNA binding

被引:314
作者
Pineda-Molina, E
Klatt, P
Vázquez, J
Marina, A
de Lacoba, MG
Pérez-Sala, D
Lamas, S
机构
[1] Inst Reina Sofia Invest Nefrol, Ctr Invest Biol, Dept Estructura & Func Prot, E-28006 Madrid, Spain
[2] CSIC, Ctr Biol Mol Severo Ochoa, Lab Quim Prot & Prote, E-28006 Madrid, Spain
关键词
D O I
10.1021/bi011459o
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 cellular redox status can modify the function of NF-KB, whose DNA-binding activity can be inhibited by oxidative, nitrosative, and nonphysiological agents such as diamide, iodoacetamide, or N-ethylmaleimide. This inhibitory effect has been proposed to be mediated by the oxidation of a conserved cysteine in its DNA-binding domain (Cys62) through unknown biochemical mechanisms. The aim of this work was to identify new oxidative modifications in Cys62 involved in the redox regulation of the NF-kappaB subunit p50. To address this problem, we exposed p50, both the native form (p50WT) and its corresponding mutant in Cys62 (C62S), to changes in the redox pair glutathione/glutathione disulfide (GSH/GSSG) ratio ranging from 100 to 0.1, which may correspond to intracellular (patho)physiological states. A ratio between 1 and 0.1 resulted in a 40-70% inhibition of the DNA binding of p50WT, having no effect on the C62S mutant. Mass spectrometry studies, molecular modeling, and incorporation of H-3-glutathione assays were consistent with an S-glutathionylation of p50WT in Cys62 . Maximal incorporation of H-3-glutathione to the p50WT and C62S was of 0.4 and 0.1 Mol of H-3-GSH/mol of protein, respectively. Because this covalent glutathione incorporation did not show a perfect correlation with the observed inhibition in the DNA-binding activity of p50WT, we searched for other modifications contributing to the maximal inhibition. MALDI-TOF and nanospray-QIT studies revealed the formation of sulfenic acid as an alternative or concomitant oxidative modification of p50. In summary, these data are consistent with new oxidative modifications in p50 that could be involved in redox regulatory mechanisms for NF-kappaB. These postranslational modifications could represent a molecular basis for the coupling of pro-oxidative stimuli to gene expression.
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收藏
页码:14134 / 14142
页数:9
相关论文
共 43 条
[21]   Recent advances towards understanding redox mechanisms in the activation of nuclear factor κB [J].
Janssen-Heininger, YMW ;
Poynter, ME ;
Baeuerle, PA .
FREE RADICAL BIOLOGY AND MEDICINE, 2000, 28 (09) :1317-1327
[22]   Redox regulation of c-Jun DNA binding by reversible S-glutathiolation [J].
Klatt, P ;
Molina, EP ;
De Lacoba, MG ;
Padilla, CA ;
Martínez-Galisteo, E ;
Bárcena, JA ;
Lamas, S .
FASEB JOURNAL, 1999, 13 (12) :1481-1490
[23]   Novel application of S-nitrosoglutathione-sepharose to identify proteins that are potential targets for S-nitrosoglutathione-induced mixed-disulphide formation [J].
Klatt, P ;
Molina, EP ;
Pérez-Sala, D ;
Lamas, S .
BIOCHEMICAL JOURNAL, 2000, 349 :567-578
[24]  
Marina A, 1999, J MASS SPECTROM, V34, P17, DOI 10.1002/(SICI)1096-9888(199901)34:1<17::AID-JMS746>3.3.CO
[25]  
2-Y
[26]   Inhibition of NF-κB by S-nitrosylation [J].
Marshall, HE ;
Stamler, JS .
BIOCHEMISTRY, 2001, 40 (06) :1688-1693
[27]   ROLE OF CYSTEINE62 IN DNA RECOGNITION BY THE P50 SUBUNIT OF NF-KAPPA-B [J].
MATTHEWS, JR ;
KASZUBSKA, W ;
TURCATTI, G ;
WELLS, TNC ;
HAY, RT .
NUCLEIC ACIDS RESEARCH, 1993, 21 (08) :1727-1734
[28]   THIOREDOXIN REGULATES THE DNA-BINDING ACTIVITY OF NF-CHI-B BY REDUCTION OF A DISULFIDE BOND INVOLVING CYSTEINE 62 [J].
MATTHEWS, JR ;
WAKASUGI, N ;
VIRELIZIER, JL ;
YODOI, J ;
HAY, RT .
NUCLEIC ACIDS RESEARCH, 1992, 20 (15) :3821-3830
[29]   REGULATION OF THE TRANSCRIPTION FACTORS NF-KAPPA-B AND AP-1 BY REDOX CHANGES [J].
MEYER, M ;
PAHL, HL ;
BAEUERLE, PA .
CHEMICO-BIOLOGICAL INTERACTIONS, 1994, 91 (2-3) :91-100
[30]   DNA-BINDING AND I-KAPPA-B INHIBITION OF THE CLONED P65 SUBUNIT OF NF-KAPPA-B, A REL-RELATED POLYPEPTIDE [J].
NOLAN, GP ;
GHOSH, S ;
LIOU, HC ;
TEMPST, P ;
BALTIMORE, D .
CELL, 1991, 64 (05) :961-969