Clinical and genetic aspects of craniofrontonasal syndrome: Towards resolving a genetic paradox

被引:59
作者
Wieacker, P [1 ]
Wieland, I [1 ]
机构
[1] Otto Von Guericke Univ, Inst Humangenet, D-39120 Magdeburg, Germany
关键词
cramofrontonasal syndrome; CFND; hypertelorism; corpus callosum agenesis; midline defect; X chromosome; ephrin-B1; EFNB1; cellular interference; neurocristopathology;
D O I
10.1016/j.ymgme.2005.07.017
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Craniofrontonasal syndrome (CFNS) is characterized by body asymmetry, midline defects, skeletal abnormalities, and dermatological abnormalities. It is a very peculiar X-linked syndrome because females are affected whereas male carriers show no or only mild abnormalities. Using a combination of positional approach and candidate gene strategy the EFATB1 gene in Xq12 was identified as the major causative gene of this condition. So far, 46 EFNB1 mutations have been detected in CFNS patients. The majority of the mutations lead to premature termination codons. Because the encoded protein ephrin-B1 is involved in migration of neural crest cells we propose that CFNS is a novel type of neurocrestopathy. The absent or mild phenotype in male carriers may be explained by the promiscuity of the ephrin ligand/receptor system. The more severe manifestation in females may be explained by cellular interference that is caused by the combination of ephrin ligand/receptor promiscuity and the consequences of random X inactivation in distinct cellular compartments. (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:110 / 116
页数:7
相关论文
共 47 条
[1]   The T-box transcription factor gene TBX22 is mutated in X-linked cleft palate and ankyloglossia [J].
Braybrook, C ;
Doudney, K ;
Marçano, ACB ;
Arnason, A ;
Bjornsson, A ;
Patton, MA ;
Goodfellow, PJ ;
Moore, GE ;
Stanier, P .
NATURE GENETICS, 2001, 29 (02) :179-183
[2]   Congenital diaphragmatic hernia in a female patient with craniofrontonasal syndrome [J].
Brooks, AS ;
van Dooren, M ;
Hoogeboom, J ;
Gischler, S ;
Willems, PJ ;
Tibboel, D .
CLINICAL DYSMORPHOLOGY, 2002, 11 (02) :151-153
[3]   EphrinB ligands recruit GRIP family PDZ adaptor proteins into raft membrane microdomains [J].
Brückner, K ;
Labrador, JP ;
Scheiffele, P ;
Herb, A ;
Seeburg, PH ;
Klein, R .
NEURON, 1999, 22 (03) :511-524
[4]   X-inactivation profile reveals extensive variability in X-linked gene expression in females [J].
Carrel, L ;
Willard, HF .
NATURE, 2005, 434 (7031) :400-404
[5]   Control of skeletal patterning by EphrinB1-EphB interactions [J].
Compagni, A ;
Logan, M ;
Klein, R ;
Adams, RH .
DEVELOPMENTAL CELL, 2003, 5 (02) :217-230
[6]   EDhA4 is required for cell adhesion and rhombomere-boundary formation in the zebrafish [J].
Cooke, JE ;
Kemp, HA ;
Moens, CB .
CURRENT BIOLOGY, 2005, 15 (06) :536-542
[7]   Ephrins in reverse, park and drive [J].
Cowan, CA ;
Henkemeyer, M .
TRENDS IN CELL BIOLOGY, 2002, 12 (07) :339-346
[8]   The SH2/SH3 adaptor Grb4 transduces B-ephrin reverse signals [J].
Cowan, CA ;
Henkemeyer, M .
NATURE, 2001, 413 (6852) :174-179
[9]   Ephrin-B1 forward and reverse signaling are required during mouse development [J].
Davy, A ;
Aubin, J ;
Soriano, P .
GENES & DEVELOPMENT, 2004, 18 (05) :572-583
[10]   Three distinct molecular surfaces in ephrin-A5 are essential for a functional interaction with EphA3 [J].
Day, B ;
To, C ;
Himanen, JP ;
Smith, FM ;
Nikolov, DB ;
Boyd, AW ;
Lackmann, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (28) :26526-26532