GLI3 frameshift mutations cause autosomal dominant Pallister-Hall syndrome

被引:373
作者
Kang, S
Graham, JM
Olney, AH
Biesecker, LG
机构
[1] NIH, NATL HUMAN GENOME RES INST, LAB GENET DIS RES, BETHESDA, MD 20892 USA
[2] CEDARS SINAI MED CTR, DEPT PEDIAT, CTR MED GENET BIRTH DEFECTS, LOS ANGELES, CA 90048 USA
[3] UNIV CALIF LOS ANGELES, SCH MED, LOS ANGELES, CA 90048 USA
[4] UNIV NEBRASKA, SCH MED, CTR HUMAN GENET, OMAHA, NE 68198 USA
关键词
D O I
10.1038/ng0397-266
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Pallister-Hail syndrome (PHS, M146510) was first described in 1980 in six newborns. It is a pleiotropic disorder of human development that comprises hypothalamic hamartoma, central polydactyly, and other malformations(1,2). This disorder is inherited as an autosomal dominant trait and has been mapped to 7p13 (S. Kang et al. Autosomal dominant Pallister-Hail syndrome maps to 7p13. Am. J. Hum. Genet. 59, A81 (1996)). colocalizing the PHS locus and the GLI3 zinc finger transcription factor gene(3). Large deletions or translocations resulting in haploinsufficiency of the GLI3 gene have been associated with Greig cephalopolysyndactyly syndrome (GCPS; M175700)(4-6) although no mutations have been identified in GCPS patients with normal karyotypes. Both PHS and GCPS have polysyndactyly, abnormal craniofacial features and are inherited in an autosomal dominant pattern, but they are clinically distinct(7,8). The polydactyly of CCPS is commonly preaxial and that of PHS is typically central or postaxial. No reported cases of CCPS have hypothalamic hamartoma and PHS does not cause hypertelorism or broadening of the nasal root or forehead. The co-localization of the loci for PHS and GCPS led us to investigate GLI3 as a candidate gene for PHS. Herein we report two PHS families with frameshift mutations in GLI3 that are 3' of the zinc finger-encoding domains, including one family with a de novo mutation. These data implicate mutations in GLI3 as the cause of autosomal dominant PHS, and suggest that frameshift mutations of the GLI3 transcription factor gene can alter the development of multiple organ systems in vertebrates.
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页码:266 / 268
页数:3
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