Laumonnier Frédéric, Ronce Nathalie, Hamel Ben C J, Thomas Paul, Lespinasse James, Raynaud Martine, Paringaux Christine, Van Bokhoven Hans, Kalscheuer Vera, Fryns Jean-Pierre, Chelly Jamel, Moraine Claude, Briault Sylvain
Service de GénétiquehyphenINSERM U316, CHU Bretonneau, Tours, France.
Am J Hum Genet. 2002 Dec;71(6):1450-5. doi: 10.1086/344661. Epub 2002 Nov 8.
Physical mapping of the breakpoints of a pericentric inversion of the X chromosome (46,X,inv[X][p21q27]) in a female patient with mild mental retardation revealed localization of the Xp breakpoint in the IL1RAPL gene at Xp21.3 and the Xq breakpoint near the SOX3 gene (SRY [sex determining region Y]-box 3) (GenBank accession number NM_005634) at Xq26.3. Because carrier females with microdeletion in the IL1RAPL gene do not present any abnormal phenotype, we focused on the Xq breakpoint. However, we were unable to confirm the involvement of SOX3 in the mental retardation in this female patient. To validate SOX3 as an X-linked mental retardation (XLMR) gene, we performed mutation analyses in families with XLMR whose causative gene mapped to Xq26-q27. We show here that the SOX3 gene is involved in a large family in which affected individuals have mental retardation and growth hormone deficiency. The mutation results in an in-frame duplication of 33 bp encoding for 11 alanines in a polyalanine tract of the SOX3 gene. The expression pattern during neural and pituitary development suggests that dysfunction of the SOX3 protein caused by the polyalanine expansion might disturb transcription pathways and the regulation of genes involved in cellular processes and functions required for cognitive and pituitary development.
对一名患有轻度智力障碍的女性患者的X染色体臂间倒位(46,X,inv[X][p21q27])断点进行物理图谱分析,结果显示Xp断点位于Xp21.3的IL1RAPL基因处,Xq断点位于Xq26.3的SOX3基因(SRY[性别决定区Y]盒3)(GenBank登录号NM_005634)附近。由于IL1RAPL基因存在微缺失的携带女性未表现出任何异常表型,我们将重点放在Xq断点上。然而,我们无法证实该女性患者的智力障碍与SOX3有关。为了验证SOX3作为X连锁智力障碍(XLMR)基因,我们对致病基因定位于Xq26 - q27的XLMR家族进行了突变分析。我们在此表明,SOX3基因与一个大家族的疾病有关,该家族中受影响个体患有智力障碍和生长激素缺乏症。该突变导致SOX3基因多聚丙氨酸区域中编码11个丙氨酸的33 bp框内重复。神经和垂体发育过程中的表达模式表明,多聚丙氨酸扩增导致的SOX3蛋白功能障碍可能会扰乱转录途径以及参与认知和垂体发育所需细胞过程和功能的基因调控。