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Molecular Endocrinology 17 (9): 1681-1692
Copyright © 2003 by The Endocrine Society


Minireview

Review of the in Vivo Functions of the p160 Steroid Receptor Coactivator Family

Jianming Xu and Qingtian Li

Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, Texas 77030

Address all correspondence and requests for reprints to: Jianming Xu, Ph.D., Department of Molecular and Cellular Biology, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030. E-mail: jxu{at}bcm.tmc.edu.

The p160 steroid receptor coactivator (SRC) gene family contains three homologous members, which serve as transcriptional coactivators for nuclear receptors and certain other transcription factors. These coactivators interact with ligand-bound nuclear receptors to recruit histone acetyltransferases and methyltransferases to specific enhancer/promotor regions, which facilitates chromatin remodeling, assembly of general transcription factors, and transcription of target genes. This minireview summarizes our current knowledge about the molecular structures, molecular mechanisms, temporal and spatial expression patterns, and biological functions of the SRC family. In particular, this article highlights the roles of SRC-1 (NCoA-1), SRC-2 (GRIP1, TIF2, or NCoA-2) and SRC-3 (p/CIP, RAC3, ACTR, AIB1, or TRAM-1) in development, organ function, endocrine regulation, and nuclear receptor function, which are defined by characterization of the genetically manipulated animal models. Furthermore, this article also reviews our current understanding of the role of SRC-3 in breast cancer and discusses possible mechanisms for functional specificity and redundancy among SRC family members.

NURSA Molecule Pages Link:

Nuclear Receptors:   ERα  |  ERβ
Coregulators:   PGC-1  |  SRC-1  |  GRIP1  |  AIB1



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Cancer Res.Home page
P. A. Hershberger, A. C. Vasquez, B. Kanterewicz, S. Land, J. M. Siegfried, and M. Nichols
Regulation of Endogenous Gene Expression in Human Non-Small Cell Lung Cancer Cells by Estrogen Receptor Ligands
Cancer Res., February 15, 2005; 65(4): 1598 - 1605.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
H.-Y. Wu, Y. Hamamori, J. Xu, S. C. Chang, T. Saluna, M.-F. Chang, B. W. O'Malley, and L. Kedes
Nuclear Hormone Receptor Coregulator GRIP1 Suppresses, whereas SRC1A and p/CIP Coactivate, by Domain-specific Binding of MyoD
J. Biol. Chem., February 4, 2005; 280(5): 3129 - 3137.
[Abstract] [Full Text] [PDF]


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Proc. Natl. Acad. Sci. USAHome page
P. Labhart, S. Karmakar, E. M. Salicru, B. S. Egan, V. Alexiadis, B. W. O'Malley, and C. L. Smith
Identification of target genes in breast cancer cells directly regulated by the SRC-3/AIB1 coactivator
PNAS, February 1, 2005; 102(5): 1339 - 1344.
[Abstract] [Full Text] [PDF]


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J. Cell Sci.Home page
J. L. Ruas, L. Poellinger, and T. Pereira
Role of CBP in regulating HIF-1-mediated activation of transcription
J. Cell Sci., January 15, 2005; 118(2): 301 - 311.
[Abstract] [Full Text] [PDF]


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Mol. Endocrinol.Home page
M. S. Ozers, K. M. Ervin, C. L. Steffen, J. A. Fronczak, C. S. Lebakken, K. A. Carnahan, R. G. Lowery, and T. J. Burke
Analysis of Ligand-Dependent Recruitment of Coactivator Peptides to Estrogen Receptor Using Fluorescence Polarization
Mol. Endocrinol., January 1, 2005; 19(1): 25 - 34.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
J. H. Kim and M. R. Stallcup
Role of the Coiled-coil Coactivator (CoCoA) in Aryl Hydrocarbon Receptor-mediated Transcription
J. Biol. Chem., November 26, 2004; 279(48): 49842 - 49848.
[Abstract] [Full Text] [PDF]


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Cancer Res.Home page
H. Zhang, S.-Q. Kuang, L. Liao, S. Zhou, and J. Xu
Haploid Inactivation of the Amplified-in-Breast Cancer 3 Coactivator Reduces the Inhibitory Effect of Peroxisome Proliferator-Activated Receptor {gamma} and Retinoid X Receptor on Cell Proliferation and Accelerates Polyoma Middle-T Antigen-Induced Mammary Tumorigenesis in Mice
Cancer Res., October 1, 2004; 64(19): 7169 - 7177.
[Abstract] [Full Text] [PDF]


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Mol. Endocrinol.Home page
D. Masiello, S.-Y. Chen, Y. Xu, M. C. Verhoeven, E. Choi, A. N. Hollenberg, and S. P. Balk
Recruitment of {beta}-Catenin by Wild-Type or Mutant Androgen Receptors Correlates with Ligand-Stimulated Growth of Prostate Cancer Cells
Mol. Endocrinol., October 1, 2004; 18(10): 2388 - 2401.
[Abstract] [Full Text] [PDF]


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Proc. Natl. Acad. Sci. USAHome page
N. Khidekel, S. B. Ficarro, E. C. Peters, and L. C. Hsieh-Wilson
Exploring the O-GlcNAc proteome: Direct identification of O-GlcNAc-modified proteins from the brain
PNAS, September 7, 2004; 101(36): 13132 - 13137.
[Abstract] [Full Text] [PDF]


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Genes Dev.Home page
A. H. Ludewig, C. Kober-Eisermann, C. Weitzel, A. Bethke, K. Neubert, B. Gerisch, H. Hutter, and A. Antebi
A novel nuclear receptor/coregulator complex controls C. elegans lipid metabolism, larval development, and aging
Genes & Dev., September 1, 2004; 18(17): 2120 - 2133.
[Abstract] [Full Text] [PDF]


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Mol. Endocrinol.Home page
P.-L. Xu, Y.-Q. Liu, S.-F. Shan, Y.-Y. Kong, Q. Zhou, M. Li, J.-P. Ding, Y.-H. Xie, and Y. Wang
Molecular Mechanism for the Potentiation of the Transcriptional Activity of Human Liver Receptor Homolog 1 by Steroid Receptor Coactivator-1
Mol. Endocrinol., August 1, 2004; 18(8): 1887 - 1905.
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Mol. Endocrinol.Home page
K.-H. Song, Y.-Y. Park, K. C. Park, C. Y. Hong, J. H. Park, M. Shong, K. Lee, and H.-S. Choi
The Atypical Orphan Nuclear Receptor DAX-1 Interacts with Orphan Nuclear Receptor Nur77 and Represses Its Transactivation
Mol. Endocrinol., August 1, 2004; 18(8): 1929 - 1940.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
C. Andrin and M. J. Hendzel
F-actin-dependent Insolubility of Chromatin-modifying Components
J. Biol. Chem., June 11, 2004; 279(24): 25017 - 25023.
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EndocrinologyHome page
H. J. Lim, I. Moon, and K. Han
Transcriptional Cofactors Exhibit Differential Preference toward Peroxisome Proliferator-Activated Receptors {alpha} and {delta} in Uterine Cells
Endocrinology, June 1, 2004; 145(6): 2886 - 2895.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
A. Goel and R. Janknecht
Concerted Activation of ETS Protein ER81 by p160 Coactivators, the Acetyltransferase p300 and the Receptor Tyrosine Kinase HER2/Neu
J. Biol. Chem., April 9, 2004; 279(15): 14909 - 14916.
[Abstract] [Full Text] [PDF]


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Cancer Res.Home page
L. Jia, C. S-Y. Choong, C. Ricciardelli, J. Kim, W. D. Tilley, and G. A Coetzee
Androgen Receptor Signaling: Mechanism of Interleukin-6 Inhibition
Cancer Res., April 1, 2004; 64(7): 2619 - 2626.
[Abstract] [Full Text] [PDF]


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Arterioscler. Thromb. Vasc. Bio.Home page
J. Huuskonen, P. E. Fielding, and C. J. Fielding
Role of p160 Coactivator Complex in the Activation of Liver X Receptor
Arterioscler. Thromb. Vasc. Biol., April 1, 2004; 24(4): 703 - 708.
[Abstract] [Full Text] [PDF]


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Proc. Natl. Acad. Sci. USAHome page
M. Mark, H. Yoshida-Komiya, M. Gehin, L. Liao, M.-J. Tsai, B. W. O'Malley, P. Chambon, and J. Xu
Partially redundant functions of SRC-1 and TIF2 in postnatal survival and male reproduction
PNAS, March 30, 2004; 101(13): 4453 - 4458.
[Abstract] [Full Text] [PDF]


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Cancer Res.Home page
S.-Q. Kuang, L. Liao, H. Zhang, A. V. Lee, B. W. O'Malley, and J. Xu
AIB1/SRC-3 Deficiency Affects Insulin-Like Growth Factor I Signaling Pathway and Suppresses v-Ha-ras-induced Breast Cancer Initiation and Progression in Mice
Cancer Res., March 1, 2004; 64(5): 1875 - 1885.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
J.-F. Mouillet, C. Sonnenberg-Hirche, X. Yan, and Y. Sadovsky
p300 Regulates the Synergy of Steroidogenic Factor-1 and Early Growth Response-1 in Activating Luteinizing Hormone-{beta} Subunit Gene
J. Biol. Chem., February 27, 2004; 279(9): 7832 - 7839.
[Abstract] [Full Text] [PDF]


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Mol. Endocrinol.Home page
E. Tzortzakaki, C. Spilianakis, E. Zika, A. Kretsovali, and J. Papamatheakis
Steroid Receptor Coactivator 1 Links the Steroid and Interferon {gamma} Response Pathways
Mol. Endocrinol., December 1, 2003; 17(12): 2509 - 2518.
[Abstract] [Full Text] [PDF]




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