Department of Molecular, Cell, and Developmental Biology, University of California at Los Angeles, Los Angeles, California.
Department of Human Genetics, David Geffen School of Medicine at the University of California at Los Angeles, Los Angeles, California.
Hum Mutat. 2018 Jan;39(1):152-166. doi: 10.1002/humu.23362. Epub 2017 Nov 6.
Defects in the biosynthesis and/or function of primary cilia cause a spectrum of disorders collectively referred to as ciliopathies. A subset of these disorders is distinguished by profound abnormalities of the skeleton that include a long narrow chest with markedly short ribs, extremely short limbs, and polydactyly. These include the perinatal lethal short-rib polydactyly syndromes (SRPS) and the less severe asphyxiating thoracic dystrophy (ATD), Ellis-van Creveld (EVC) syndrome, and cranioectodermal dysplasia (CED) phenotypes. To identify new genes and define the spectrum of mutations in the skeletal ciliopathies, we analyzed 152 unrelated families with SRPS, ATD, and EVC. Causal variants were discovered in 14 genes in 120 families, including one newly associated gene and two genes previously associated with other ciliopathies. These three genes encode components of three different ciliary complexes; FUZ, which encodes a planar cell polarity complex molecule; TRAF3IP1, which encodes an anterograde ciliary transport protein; and LBR, which encodes a nuclear membrane protein with sterol reductase activity. The results established the molecular basis of SRPS type IV, in which mutations were identified in four different ciliary genes. The data provide systematic insight regarding the genotypes associated with a large cohort of these genetically heterogeneous phenotypes and identified new ciliary components required for normal skeletal development.
原发性纤毛生物合成和/或功能缺陷导致一系列统称为纤毛病的疾病。这些疾病中有一部分的骨骼严重异常,包括长而窄的胸部、明显短的肋骨、极短的四肢和多指(趾)畸形。这些疾病包括围产期致死性短肋多指畸形综合征(SRPS)和较轻的致死性先天性胸壁发育不良(ATD)、Ellis-van Creveld 综合征(EVC)和颅面外胚层发育不良(CED)表型。为了鉴定新的基因并确定骨骼纤毛病突变谱,我们分析了 152 个无关的 SRPS、ATD 和 EVC 家系。在 120 个家系中发现了 14 个基因中的因果变异,包括一个新关联基因和两个先前与其他纤毛病相关的基因。这三个基因编码三个不同纤毛复合物的组成部分;FUZ,编码平面细胞极性复合物分子;TRAF3IP1,编码顺行纤毛运输蛋白;LBR,编码具有固醇还原酶活性的核膜蛋白。研究结果确立了 SRPS 型 IV 的分子基础,在该型中鉴定了四个不同纤毛基因中的突变。这些数据为研究这些遗传异质性表型的大型队列的相关基因型提供了系统的见解,并确定了新的纤毛组成部分,这些组成部分对于正常骨骼发育是必需的。