Repression of chondrogenesis through binding of notch signaling proteins HES-1 and HEY-1 to N-box domains in the COL2A1 enhancer site

被引:91
作者
Grogan, Shawn P. [1 ]
Olee, Tsaiwei [1 ]
Hiraoka, Koji [1 ]
Lotz, Martin K. [1 ]
机构
[1] Scripps Res Inst, Div Arthrit Res, La Jolla, CA 92037 USA
来源
ARTHRITIS AND RHEUMATISM | 2008年 / 58卷 / 09期
关键词
D O I
10.1002/art.23730
中图分类号
R5 [内科学];
学科分类号
1002 [临床医学]; 100201 [内科学];
摘要
Objective. Notch signaling is implicated in the repression of mesenchymal stem cell (MSC) chondrogenic differentiation. The purpose of this study was to examine the mechanism of this repression and how it is modulated to permit chondrogenesis. Methods. Notch intracellular domain (NICD) protein levels were monitored via Western blotting throughout chondrogenic differentiation of human MSCs in pellet cultures. Overexpression of Notch signaling components and their effect on chondrogenesis was achieved by transfecting plasmids coding for NICD, HES-1, and HERP-2/HEY-1. COL2A1 and AGGRECAN expression was monitored via quantitative polymerase chain reaction analysis. Chromatin immunoprecipitation (ChIP) was used to test whether HES-1 and HEY-1 bind putative N-box domains in intron I of COL2A1. Results. High levels of NICD proteins were reduced during chondrogenesis of human MSCs, and this was mediated by transforming growth factor beta 3 (TGF beta 3). COL2A1 gene expression was repressed following overexpression of NICD (2-fold) and HES-1 (3-fold) and was markedly repressed by overexpression of HEY-1 (80-fold). HEY-1 repressed AGGRECAN expression 10-fold, while NICD and HES-1 had no effect. We identified 2 putative N-box domains adjacent to, and part of, the SOX9 enhancer binding site located in intron I of COL2A1. ChIP studies showed that endogenous HES-1 and HEY-1 bound to these sites. Transducin-like enhancer, the HES-1 corepressor protein, was displaced during chondrogenic differentiation and following TGF beta 3 treatment. Conclusion. These results reveal novel mechanisms by which Notch signaling represses gene expression. Notch signaling proteins act on the SOX9 binding site in the COL2A1 enhancer and prevent SOX9-mediated transcriptional activation of COL2A1 and, thus, chondrogenic differentiation.
引用
收藏
页码:2754 / 2763
页数:10
相关论文
共 51 条
[1]
Notch signaling: Cell fate control and signal integration in development [J].
Artavanis-Tsakonas, S ;
Rand, MD ;
Lake, RJ .
SCIENCE, 1999, 284 (5415) :770-776
[2]
Plasticity of clonal populations of dedifferentiated adult human articular chondrocytes [J].
Barbero, A ;
Ploegert, S ;
Heberer, M ;
Martin, I .
ARTHRITIS AND RHEUMATISM, 2003, 48 (05) :1315-1325
[3]
An overview of the Notch signalling pathway [J].
Baron, M .
SEMINARS IN CELL & DEVELOPMENTAL BIOLOGY, 2003, 14 (02) :113-119
[4]
SOX9 directly regulates the type-II collagen gene [J].
Bell, DM ;
Leung, KKH ;
Wheatley, SC ;
Ng, LJ ;
Zhou, S ;
Ling, KW ;
Sham, MH ;
Koopman, P ;
Tam, PPL ;
Cheah, KSE .
NATURE GENETICS, 1997, 16 (02) :174-178
[5]
Aspartate mutations in presenilin and γ-secretase inhibitors both impair Notch1 proteolysis and nuclear translocation with relative preservation of Notch1 signaling [J].
Berezovska, O ;
Jack, C ;
McLean, P ;
Aster, JC ;
Hicks, C ;
Xia, WM ;
Wolfe, MS ;
Kimberly, WT ;
Weinmaster, G ;
Selkoe, DJ ;
Hyman, BT .
JOURNAL OF NEUROCHEMISTRY, 2000, 75 (02) :583-593
[6]
Adjacent DNA sequences modulate Sox9 transcriptional activation at paired Sox sites in three chondrocyte-specific enhancer elements [J].
Bridgewater, LC ;
Walker, MD ;
Miller, GC ;
Ellison, TA ;
Holsinger, LD ;
Potter, JL ;
Jackson, TL ;
Chen, RK ;
Winkel, VL ;
Zhang, ZP ;
McKinney, S ;
de Crombrugghe, B .
NUCLEIC ACIDS RESEARCH, 2003, 31 (05) :1541-1553
[7]
Notch signaling in stem cell systems [J].
Chiba, Shigeru .
STEM CELLS, 2006, 24 (11) :2437-2447
[8]
Cardiovascular basic helix loop helix factor 1, a novel transcriptional repressor expressed preferentially in the developing and adult cardiovascular system [J].
Chin, MT ;
Maemura, K ;
Fukumoto, S ;
Jain, MK ;
Layne, MD ;
Watanabe, M ;
Hsieh, CM ;
Lee, ME .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (09) :6381-6387
[9]
Crowe R, 1999, DEVELOPMENT, V126, P987
[10]
Egan SE, 1998, CURR TOP MICROBIOL, V228, P273