Disruption of Autoregulatory Feedback by a Mutation in a Remote, Ultraconserved PAX6 Enhancer Causes Aniridia

被引:143
作者
Bhatia, Shipra [1 ]
Bengani, Hemant [1 ]
Fish, Margaret [2 ]
Brown, Alison [1 ]
Divizia, Maria Teresa [3 ]
de Marco, Riccardo [4 ]
Damante, Guiseppe [5 ]
Grainger, Robert [2 ]
van Heyningen, Veronica [1 ]
Kleinjan, Dirk A. [1 ]
机构
[1] Univ Edinburgh, MRC Human Genet Unit, MRC IGMM, Edinburgh EH4 2XU, Midlothian, Scotland
[2] Univ Virginia, Dept Biol, Charlottesville, VA 22904 USA
[3] Gaslini Childrens Hosp, Med Genet Unit, I-16147 Genoa, Italy
[4] Inst G Gaslini, Ophtalmol Unit, I-16147 Genoa, Italy
[5] Azienda Osped Univ S Maria della Misericordia, Dipartimento Med Lab, I-33100 Udine, Italy
基金
英国医学研究理事会; 美国国家卫生研究院;
关键词
GENE; IDENTIFICATION; ELEMENTS; DOMAIN; TRANSGENESIS; EXPRESSION; DELETIONS; SEQUENCE;
D O I
10.1016/j.ajhg.2013.10.028
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The strictly regulated expression of most pleiotropic developmental control genes is critically dependent on the activity of long-range cis-regulatory elements. This was revealed by the identification of individuals with a genetic condition lacking coding-region mutations in the gene commonly associated with the disease but having a variety of nearby chromosomal abnormalities, collectively described as cis-ruption disease cases. The congenital eye malformation aniridia is caused by haploinsufficiency of the developmental regulator PAX6. We discovered a de novo point mutation in an ultraconserved cis-element located 150 kb downstream from PAX6 in an affected individual with intact coding region and chromosomal locus. The element SIMO acts as a strong enhancer in developing ocular structures. The mutation disrupts an autoregulatory PAX6 binding site, causing loss of enhancer activity, resulting in defective maintenance of PAX6 expression. These findings reveal a distinct regulatory mechanism for genetic disease by disruption of an autoregulatory feedback loop critical for maintenance of gene expression through development.
引用
收藏
页码:1126 / 1134
页数:9
相关论文
共 38 条
[1]   Deletion of ultraconserved elements yields viable mice [J].
Ahituv, Nadav ;
Zhu, Yiwen ;
Visel, Axel ;
Holt, Amy ;
Afzal, Veena ;
Pennacchio, Len A. ;
Rubin, Edward M. .
PLOS BIOLOGY, 2007, 5 (09) :1906-1911
[2]   Ultraconserved elements in the human genome [J].
Bejerano, G ;
Pheasant, M ;
Makunin, I ;
Stephen, S ;
Kent, WJ ;
Mattick, JS ;
Haussler, D .
SCIENCE, 2004, 304 (5675) :1321-1325
[3]   Highly conserved non-coding elements on either side of SOX9 associated with Pierre Robin sequence [J].
Benko, Sabina ;
Fantes, Judy A. ;
Amiel, Jeanne ;
Kleinjan, Dirk-Jan ;
Thomas, Sophie ;
Ramsay, Jacqueline ;
Jamshidi, Negar ;
Essafi, Abdelkader ;
Heaney, Simon ;
Gordon, Christopher T. ;
McBride, David ;
Golzio, Christelle ;
Fisher, Malcolm ;
Perry, Paul ;
Abadie, Veronique ;
Ayuso, Carmen ;
Holder-Espinasse, Muriel ;
Kilpatrick, Nicky ;
Lees, Melissa M. ;
Picard, Arnaud ;
Temple, I. Karen ;
Thomas, Paul ;
Vazquez, Marie-Paule ;
Vekemans, Michel ;
Roest Crollius, Hugues ;
Hastie, Nicholas D. ;
Munnich, Arnold ;
Etchevers, Heather C. ;
Pelet, Anna ;
Farlie, Peter G. ;
FitzPatrick, David R. ;
Lyonnet, Stanislas .
NATURE GENETICS, 2009, 41 (03) :359-364
[4]   Primary defects in the lens underlie complex anterior segment abnormalities of the Pax6 heterozygous eye [J].
Collinson, JM ;
Quinn, JC ;
Buchanan, MA ;
Kaufman, MH ;
Wedden, SE ;
West, JD ;
Hill, RE .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (17) :9688-9693
[5]   Discovery and assessment of conserved Pax6 target genes and enhancers [J].
Coutinho, Pedro ;
Pavlou, Sofia ;
Bhatia, Shipra ;
Chalmers, Kevin J. ;
Kleinjan, Dirk A. ;
van Heyningen, Veronica .
GENOME RESEARCH, 2011, 21 (08) :1349-1359
[6]   Genetic dissection of Pax6 dosage requirements in the developing mouse eye [J].
Davis-Silberman, N ;
Kalich, T ;
Oron-Karni, V ;
Marquardt, T ;
Kroeber, M ;
Tamm, ER ;
Ashery-Padan, R .
HUMAN MOLECULAR GENETICS, 2005, 14 (15) :2265-2276
[7]   A regulatory SNP causes a human genetic disease by creating a new transcriptional promoter [J].
De Gobbi, Marco ;
Viprakisit, Vip ;
Hughes, Jim R. ;
Fisher, Chris ;
Buckle, Veronica J. ;
Ayyub, Helena ;
Gibbons, Richard J. ;
Vernimmen, Douglas ;
Yoshinaga, Yuko ;
de Jong, Pieter ;
Cheng, Jan-Fang ;
Rubin, Edward M. ;
Wood, William G. ;
Bowden, Don ;
Higgs, Douglas R. .
SCIENCE, 2006, 312 (5777) :1215-1217
[8]  
EPSTEIN J, 1994, J BIOL CHEM, V269, P8355
[9]   ANIRIDIA-ASSOCIATED CYTOGENETIC REARRANGEMENTS SUGGEST THAT A POSITION EFFECT MAY CAUSE THE MUTANT PHENOTYPE [J].
FANTES, J ;
REDEKER, B ;
BREEN, M ;
BOYLE, S ;
BROWN, J ;
FLETCHER, J ;
JONES, S ;
BICKMORE, W ;
FUKUSHIMA, Y ;
MANNENS, M ;
DANES, S ;
VANHEYNINGEN, V ;
HANSON, I .
HUMAN MOLECULAR GENETICS, 1995, 4 (03) :415-422
[10]   Simple, fast, tissue-specific bacterial artificial chromosome transgenesis in Xenopus [J].
Fish, Margaret B. ;
Nakayama, Takuya ;
Grainger, Robert M. .
GENESIS, 2012, 50 (03) :307-315