Regulation of NF-κB2 p100 processing by its cis-acting domain

被引:45
作者
Qing, GL [1 ]
Qu, ZX [1 ]
Xiao, GT [1 ]
机构
[1] Rutgers State Univ, Dept Cell Biol & Neurosci, Nelson Biol Lab, Piscataway, NJ 08854 USA
关键词
D O I
10.1074/jbc.M406619200
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
Processing of NF-kappaB2 precursor protein p100 to generate p52 is tightly regulated. However, this proteolytic event could be actively induced by the NF-kappaB-inducing kinase and the human T-cell leukemia virus-encoded oncoprotein Tax or be constitutively turned on due to the loss of the C-terminal portion of p100. Whereas NF-kappaB-inducing kinase-mediated p100 processing requires beta-transducin repeat-containing protein, constitutive processing of p100 is independent of this protein. On the other hand, Tax-induced processing of p100 appears to be both beta-transducin repeat-containing protein-dependent and -independent. We show here that, besides the C-terminal sequences, multiple functional regions, including the two alpha-helices, dimerization domain, nuclear localization sequence, and glycine-rich region, located in the N terminus of p100, also play important roles in both constitutive and inducible processing, suggesting a common mechanism for p100 processing. We further demonstrate that with the help of the C-terminal death domain and IkappaB kinase alpha-targeting serines, the C-terminal ankyrin-repeat domain of p100 strongly interacts with its N-terminal dimerization domain and nuclear localization sequence, thereby bringing the C- and N-terminal sequences together to form a three-dimensional domain. This presumptive domain is not only responsible for suppression of constitutive processing but also required for inducible processing of p100. Taken together, these studies highlight the mechanism by which the different sequences within p100 work in concert to regulate its processing and shed light on the mechanisms of how p100 processing is tightly and delicately controlled.
引用
收藏
页码:18 / 27
页数:10
相关论文
共 47 条
[11]   GENERATION OF P50 SUBUNIT OF NF-KAPPA-B BY PROCESSING OF P105 THROUGH AN ATP-DEPENDENT PATHWAY [J].
FAN, CM ;
MANIATIS, T .
NATURE, 1991, 354 (6352) :395-398
[12]   Genetic evidence for the essential role of β-transducin repeat-containing protein in the inducible processing of NF-κB2/p100 [J].
Fong, A ;
Sun, SC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (25) :22111-22114
[13]  
FRACCHIOLLA NS, 1993, ONCOGENE, V8, P2839
[14]   Mice deficient in nuclear factor (NF)-κB/p52 present with defects in humoral responses, germinal center reactions, and splenic microarchitecture [J].
Franzoso, G ;
Carlson, L ;
Poljak, L ;
Shores, EW ;
Epstein, S ;
Leonardi, A ;
Grinberg, A ;
Tran, T ;
Scharton-Kersten, T ;
Anver, M ;
Love, P ;
Brown, K ;
Siebenlist, U .
JOURNAL OF EXPERIMENTAL MEDICINE, 1998, 187 (02) :147-159
[15]   NF-κB and rel proteins:: Evolutionarily conserved mediators of immune responses [J].
Ghosh, S ;
May, MJ ;
Kopp, EB .
ANNUAL REVIEW OF IMMUNOLOGY, 1998, 16 :225-260
[16]   Missing pieces in the NF-κB puzzle [J].
Ghosh, S ;
Karin, M .
CELL, 2002, 109 :S81-S96
[17]   The generation of nfkb2 p52:: mechanism and efficiency [J].
Heusch, M ;
Lin, L ;
Geleziunas, R ;
Greene, WC .
ONCOGENE, 1999, 18 (46) :6201-6208
[18]   CIS-ACTING TRANSCRIPTIONAL REGULATORY SEQUENCES IN THE GIBBON APE LEUKEMIA-VIRUS (GALV) LONG TERMINAL REPEAT [J].
HOLBROOK, NJ ;
GULINO, A ;
RUSCETTI, F .
VIROLOGY, 1987, 157 (01) :211-219
[19]   The crystal structure of the IκBα/NF-κB complex reveals mechanisms of NF-κB inactivation [J].
Huxford, T ;
Huang, DB ;
Malek, S ;
Ghosh, G .
CELL, 1998, 95 (06) :759-770
[20]   Gastric hyperplasia and increased proliferative responses of lymphocytes in mice lacking the COOH-terminal ankyrin domain of NF-kappa B2 [J].
Ishikawa, H ;
Carrasco, D ;
Claudio, E ;
Ryseck, RP ;
Bravo, R .
JOURNAL OF EXPERIMENTAL MEDICINE, 1997, 186 (07) :999-1014