Experimental and bioinformatic characterisation of the promoter region of the Marfan syndrome gene, FBN1

被引:22
作者
Summers, Kim M. [1 ,2 ]
Bokil, Nilesh J. [3 ]
Baisden, John M. [2 ]
West, Malcolm J. [4 ]
Sweet, Matthew J. [3 ]
Raggatt, Liza J. [3 ,5 ]
Hume, David A. [1 ,3 ]
机构
[1] Univ Edinburgh, Roslin Inst, Roslin EH25 9PS, Midlothian, Scotland
[2] Univ Queensland, Sch Chem & Mol Biosci, Brisbane, Qld 4072, Australia
[3] Univ Queensland, Inst Mol Biosci, Brisbane, Qld 4072, Australia
[4] Univ Queensland, Sch Med, Brisbane, Qld 4072, Australia
[5] Univ Queensland, Clin Res Ctr, Brisbane, Qld 4072, Australia
关键词
Marfan syndrome; Fibrillin-1; Gene expression; Dominant genetic conditions; Reporter genes; Promoter regions; Mesenchyme; EXTRACELLULAR-MATRIX; GENOME-WIDE; STEM-CELLS; TRANSCRIPTION; FAMILY; EXPRESSION; BINDING; DIFFERENTIATION; MOUSE; BONE;
D O I
10.1016/j.ygeno.2009.06.005
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Mutations in the FBN1 gene, encoding the extracellular matrix protein fibrillin-1, result in the dominant connective tissue disease Marfan syndrome. Marfan syndrome has a variable phenotype, even within families carrying the same FBN1 mutation. Differences in gene expression resulting from sequence differences in the promoter region of the FBN1 gene are likely to be involved in causing this phenotypic variability. In this report, we present an analysis of FBN1 transcription start site (TSS) use in mouse and human tissues. We found that transcription of FBN1 initiated primarily from a single CpG-rich promoter which was highly conserved in mammals. It contained potential binding sites for a number of factors implicated in mesenchyme differentiation and gene expression. The human osteosarcoma line MG63 had high levels of FBN1 mRNA and secreted fibrillin-1 protein to form extracellular matrix fibres. The human embryonic kidney line HEK293 and two breast cancer lines MCF7 and MDA-MB-231 had levels of FBN1 mRNA 1000 fold lower and produced negligible amounts of fibrillin-1 protein. Therefore MG63 appears to be the optimal cell line for examining tissue-specific, biologically relevant promoter activity for FBN1. In reporter assays, the conserved promoter region was more active in MG63 cells than in non-FBN1-expressing lines but additional elements outside the proximal promoter are probably required for optimal tissue-specific expression. Understanding the regulation of the FBN1 gene may lead to alternative therapeutic strategies for Marfan syndrome. (C) 2009 Elsevier Inc. All rights reserved.
引用
收藏
页码:233 / 240
页数:8
相关论文
共 48 条
[1]   Muscle differentiation: more complexity to the network of myogenic regulators [J].
Arnold, HH ;
Winter, B .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1998, 8 (05) :539-544
[2]   Mice and men:: Their promoter properties [J].
Bajic, Vladimir B. ;
Tan, Sin Lam ;
Christoffels, Alan ;
Schonbach, Christian ;
Lipovich, Leonard ;
Yang, Liang ;
Hofmann, Oliver ;
Kruger, Adele ;
Hide, Winston ;
Kai, Chikatoshi ;
Kawai, Jun ;
Hume, David A. ;
Carninci, Piero ;
Hayashizaki, Yoshihide .
PLOS GENETICS, 2006, 2 (04) :614-626
[3]   Recent lessons in gene expression, cell cycle control, and cell biology from adenovirus [J].
Berk, AJ .
ONCOGENE, 2005, 24 (52) :7673-7685
[4]   Unbiased location analysis of E2F1-binding sites suggests a widespread role for E2F1 in the human genome [J].
Bieda, M ;
Xu, XQ ;
Singer, MA ;
Green, R ;
Farnham, PJ .
GENOME RESEARCH, 2006, 16 (05) :595-605
[5]   The RUNX genes: Gain or loss of function in cancer [J].
Blyth, K ;
Cameron, ER ;
Neil, JC .
NATURE REVIEWS CANCER, 2005, 5 (05) :376-387
[6]   The role of Pax genes in the development of tissues and organs:: Pax3 and Pax7 regulate muscle progenitor cell functions [J].
Buckingham, Margaret ;
Relaix, Frederic .
ANNUAL REVIEW OF CELL AND DEVELOPMENTAL BIOLOGY, 2007, 23 :645-673
[7]   The transcriptional landscape of the mammalian genome [J].
Carninci, P ;
Kasukawa, T ;
Katayama, S ;
Gough, J ;
Frith, MC ;
Maeda, N ;
Oyama, R ;
Ravasi, T ;
Lenhard, B ;
Wells, C ;
Kodzius, R ;
Shimokawa, K ;
Bajic, VB ;
Brenner, SE ;
Batalov, S ;
Forrest, ARR ;
Zavolan, M ;
Davis, MJ ;
Wilming, LG ;
Aidinis, V ;
Allen, JE ;
Ambesi-Impiombato, X ;
Apweiler, R ;
Aturaliya, RN ;
Bailey, TL ;
Bansal, M ;
Baxter, L ;
Beisel, KW ;
Bersano, T ;
Bono, H ;
Chalk, AM ;
Chiu, KP ;
Choudhary, V ;
Christoffels, A ;
Clutterbuck, DR ;
Crowe, ML ;
Dalla, E ;
Dalrymple, BP ;
de Bono, B ;
Della Gatta, G ;
di Bernardo, D ;
Down, T ;
Engstrom, P ;
Fagiolini, M ;
Faulkner, G ;
Fletcher, CF ;
Fukushima, T ;
Furuno, M ;
Futaki, S ;
Gariboldi, M .
SCIENCE, 2005, 309 (5740) :1559-1563
[8]   Genome-wide analysis of mammalian promoter architecture and evolution [J].
Carninci, Piero ;
Sandelin, Albin ;
Lenhard, Boris ;
Katayama, Shintaro ;
Shimokawa, Kazuro ;
Ponjavic, Jasmina ;
Semple, Colin A. M. ;
Taylor, Martin S. ;
Engström, Par G. ;
Frith, Martin C. ;
Forrest, Alistair R. R. ;
Alkema, Wynand B. ;
Tan, Sin Lam ;
Plessy, Charles ;
Kodzius, Rimantas ;
Ravasi, Timothy ;
Kasukawa, Takeya ;
Fukuda, Shiro ;
Kanamori-Katayama, Mutsumi ;
Kitazume, Yayoi ;
Kawaji, Hideya ;
Kai, Chikatoshi ;
Nakamura, Mari ;
Konno, Hideaki ;
Nakano, Kenji ;
Mottagui-Tabar, Salim ;
Arner, Peter ;
Chesi, Alessandra ;
Gustincich, Stefano ;
Persichetti, Francesca ;
Suzuki, Harukazu ;
Grimmond, Sean M. ;
Wells, Christine A. ;
Orlando, Valerio ;
Wahlestedt, Claes ;
Liu, Edison T. ;
Harbers, Matthias ;
Kawai, Jun ;
Bajic, Vladimir B. ;
Hume, David A. ;
Hayashizaki, Yoshihide .
NATURE GENETICS, 2006, 38 (06) :626-635
[9]   Insights to substrate binding and processing by West Nile Virus NS3 protease through combined modeling, protease mutagenesis, and kinetic studies [J].
Chappell, Keith J. ;
Stoermer, Martin J. ;
Fairlie, David P. ;
Young, Paul R. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (50) :38448-38458
[10]   The new bone biology: Pathologic, molecular, and clinical correlates [J].
Cohen, M. Michael, Jr. .
AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2006, 140A (23) :2646-2706