Molecular determinants of the balance between co-repressor and co-activator recruitment to the retinoic acid receptor

被引:29
|
作者
Benko, S
Love, JD
Beládi, M
Schwabe, JWR
Nagy, L
机构
[1] Univ Debrecen, Med & Hlth Sci Ctr, Res Ctr Mol Med, Dept Biochem & Mol Biol, H-4012 Debrecen, Hungary
[2] MRC, Mol Biol Lab, Cambridge CB2 2QH, England
关键词
D O I
10.1074/jbc.M306199200
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 repressive and activating states of nuclear hormone receptors are achieved through the recruitment of cofactor proteins. The binding of co-repressors and coactivators is believed to be mutually exclusive and principally regulated by ligand binding. To understand the molecular determinants of the switch induced by ligand in the retinoic acid receptor and in particular the intrinsic role of the ligand binding domain (LBD) in cofactor binding and release, we carried out extensive mutational analysis of surface residues of the LBD. As seen previously we found that co-repressor and co-activator molecules bind to overlapping docking sites on the surface of the retinoic acid receptor alpha LBD. Perturbation of this surface impaired both co- activator and co- repressor association resulting in a transcriptionally inert receptor. Unexpectedly mutation of two residues, Trp-225 and Ala-392, which lie outside the docking site, had opposite effects on co- activator and co- repressor binding. W225A was a constitutive repressor that failed to bind co- activator and exhibited an increased, and ligand-insensitive, interaction with co- repressor. A392R, on the other hand, had reduced affinity for co- repressors and increased affinity for co- activators and behaved as a constitutive, but still ligand-inducible, activator. Analysis of known structures showed that these mutations lie in the proximity of helix 12 (H12), and their effects are likely to be the result of perturbations in the behavior of H12. These data suggest that residues in the close vicinity of H12 regulate cofactor affinity and determine the basal activity of receptors.
引用
收藏
页码:43797 / 43806
页数:10
相关论文
共 50 条
  • [21] Structural Insights into the Interaction of the Intrinsically Disordered Co-activator TIF2 with Retinoic Acid Receptor Heterodimer (RXR/RAR)
    Senicourt, Lucile
    le Maire, Albane
    Allemand, Frederic
    Carvalho, JoAo E.
    Guee, Laura
    Germain, Pierre
    Schubert, Michael
    Bernado, Pau
    Bourguet, William
    Sibille, Nathalie
    JOURNAL OF MOLECULAR BIOLOGY, 2021, 433 (09)
  • [22] ETO recruitment of the nuclear receptor co-repressor (NCoR) and histone deacetylase activity is required for giainulocyte but not monocyte differentiation
    Saunthararajah, Y
    Ibanez, V
    Sharma, A
    Wang, JX
    Verma, A
    BLOOD, 2002, 100 (11) : 149B - 149B
  • [23] Neurofibromin Is an Estrogen Receptor-α Transcriptional Co-repressor in Breast Cancer
    Zheng, Ze-Yi
    Anurag, Meenakshi
    Lei, Jonathan T.
    Cao, Jin
    Singh, Purba
    Peng, Jianheng
    Kennedy, Hilda
    Nhu-Chau Nguyen
    Chen, Yue
    Lavere, Philip
    Li, Jing
    Du, Xin-Hui
    Cakar, Burcu
    Song, Wei
    Kim, Beom-Jun
    Shi, Jiejun
    Seker, Sinem
    Chan, Doug W.
    Zhao, Guo-Qiang
    Chen, Xi
    Banks, Kimberly C.
    Lanman, Richard B.
    Shafaee, Maryam Nemati
    Zhang, Xiang H-F
    Vasaikar, Suhas
    Zhang, Bing
    Hilsenbeck, Susan G.
    Li, Wei
    Foulds, Charles E.
    Ellis, Matthew J.
    Chang, Eric C.
    CANCER CELL, 2020, 37 (03) : 387 - +
  • [24] Mechanisms of androgen receptor activation in advanced prostate cancer: differential co-activator recruitment and gene expression
    G N Brooke
    M G Parker
    C L Bevan
    Oncogene, 2008, 27 : 2941 - 2950
  • [25] Lysine Methylation of Nuclear Co-Repressor Receptor Interacting Protein 140
    Huq, M. D. Mostaqul
    Ha, Sung Gil
    Barcelona, Helene
    Wei, Li-Na
    JOURNAL OF PROTEOME RESEARCH, 2009, 8 (03) : 1156 - 1167
  • [26] Mechanisms of androgen receptor activation in advanced prostate cancer: differential co-activator recruitment and gene expression
    Brooke, G. N.
    Parker, M. G.
    Bevan, C. L.
    ONCOGENE, 2008, 27 (21) : 2941 - 2950
  • [27] RANK ligand converts the NCoR/HDAC3 co-repressor to a PGC1(3-and RNA-dependent co-activator of osteoclast gene expression
    Abe, Yohei
    Kofman, Eric R.
    Almeida, Maria
    Ouyang, Zhengyu
    Ponte, Filipa
    Mueller, Jasmine R.
    Cruz-Becerra, Grisel
    Sakai, Mashito
    Prohaska, Thomas A.
    Spann, Nathanael J.
    Resende-Coelho, Ana
    Seidman, Jason S.
    Stender, Joshua D.
    Taylor, Havilah
    Fan, Weiwei
    Link, Verena M.
    Cobo, Isidoro
    Schlachetzki, Johannes C. M.
    Hamakubo, Takao
    Jepsen, Kristen
    Sakai, Juro
    Downes, Michael
    Evans, Ronald M.
    Yeo, Gene W.
    Kadonaga, James T.
    Manolagas, Stavros C.
    Rosenfeld, Michael G.
    Glass, Christopher K.
    MOLECULAR CELL, 2023, 83 (19) : 3421 - +
  • [28] Dithiophenes potentiate differentiation of APL cells by lowering the threshold for ligand mediated co-repressor/co-activator exchange with RARα and enhancing changes in ATRA regulated gene expression.
    Xu, K
    Chung, D
    Glasow, A
    Jing, YK
    Guidez, F
    Stegmaier, K
    Golub, TR
    Zelent, A
    Waxman, S
    BLOOD, 2003, 102 (11) : 859A - 859A
  • [29] All in the Family: A Portrait of a Nuclear Receptor Co-Activator Complex
    Fant, Charli B.
    Taatjes, Dylan J.
    MOLECULAR CELL, 2015, 57 (06) : 952 - 954
  • [30] The t(5;17) acute promyelocytic leukemia fusion protein NPM-RAR interacts with co-repressor and co-activator proteins and exhibits both positive and negative transcriptional properties
    Redner, RL
    Chen, JD
    Rush, EA
    Li, H
    Pollock, SL
    BLOOD, 2000, 95 (08) : 2683 - 2690