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驱动蛋白-2 马达 KIF3B 突变导致常染色体显性纤毛病。

Mutations in the Kinesin-2 Motor KIF3B Cause an Autosomal-Dominant Ciliopathy.

机构信息

CHU Nantes, Service de Génétique Médicale, 9 quai Moncousu, 44093 Nantes Cedex 1, France; Université de Nantes, CNRS, INSERM, l'institut du thorax, 44000 Nantes, France.

CHU Nantes, Service de Génétique Médicale, 9 quai Moncousu, 44093 Nantes Cedex 1, France; Université de Nantes, CNRS, INSERM, l'institut du thorax, 44000 Nantes, France; Center for Human Disease Modeling, Duke University Medical Center, Durham, NC 27701, USA.

出版信息

Am J Hum Genet. 2020 Jun 4;106(6):893-904. doi: 10.1016/j.ajhg.2020.04.005. Epub 2020 May 7.

Abstract

Kinesin-2 enables ciliary assembly and maintenance as an anterograde intraflagellar transport (IFT) motor. Molecular motor activity is driven by a heterotrimeric complex comprised of KIF3A and KIF3B or KIF3C plus one non-motor subunit, KIFAP3. Using exome sequencing, we identified heterozygous KIF3B variants in two unrelated families with hallmark ciliopathy phenotypes. In the first family, the proband presents with hepatic fibrosis, retinitis pigmentosa, and postaxial polydactyly; he harbors a de novo c.748G>C (p.Glu250Gln) variant affecting the kinesin motor domain encoded by KIF3B. The second family is a six-generation pedigree affected predominantly by retinitis pigmentosa. Affected individuals carry a heterozygous c.1568T>C (p.Leu523Pro) KIF3B variant segregating in an autosomal-dominant pattern. We observed a significant increase in primary cilia length in vitro in the context of either of the two mutations while variant KIF3B proteins retained stability indistinguishable from wild type. Furthermore, we tested the effects of KIF3B mutant mRNA expression in the developing zebrafish retina. In the presence of either missense variant, rhodopsin was sequestered to the photoreceptor rod inner segment layer with a concomitant increase in photoreceptor cilia length. Notably, impaired rhodopsin trafficking is also characteristic of recessive KIF3B models as exemplified by an early-onset, autosomal-recessive, progressive retinal degeneration in Bengal cats; we identified a c.1000G>A (p.Ala334Thr) KIF3B variant by genome-wide association study and whole-genome sequencing. Together, our genetic, cell-based, and in vivo modeling data delineate an autosomal-dominant syndromic retinal ciliopathy in humans and suggest that multiple KIF3B pathomechanisms can impair kinesin-driven ciliary transport in the photoreceptor.

摘要

动力蛋白-2 作为正向纤毛内运输 (IFT) 马达,促进纤毛的组装和维持。分子马达的活性由一个异三聚体复合物驱动,该复合物由 KIF3A 和 KIF3B 或 KIF3C 加上一个非马达亚基 KIFAP3 组成。我们通过外显子组测序,在两个无关联的具有标志性纤毛病表型的家族中发现了杂合的 KIF3B 变体。在第一个家族中,先证者表现为肝纤维化、视网膜色素变性和轴后多指;他携带一个新发生的 c.748G>C(p.Glu250Gln)变体,影响由 KIF3B 编码的驱动蛋白马达结构域。第二个家族是一个六代遗传家族,主要受视网膜色素变性影响。受影响的个体携带杂合的 c.1568T>C(p.Leu523Pro)KIF3B 变体,呈常染色体显性遗传模式。我们观察到在这两种突变的背景下,初级纤毛长度显著增加,而变体 KIF3B 蛋白的稳定性与野生型无法区分。此外,我们在发育中的斑马鱼视网膜中测试了 KIF3B 突变 mRNA 表达的影响。在存在错义变体的情况下,视蛋白被隔离到光感受器棒内节层,同时光感受器纤毛长度增加。值得注意的是,视蛋白运输受损也是隐性 KIF3B 模型的特征,例如孟加拉猫的早发性、常染色体隐性、进行性视网膜变性;我们通过全基因组关联研究和全基因组测序鉴定了一个 c.1000G>A(p.Ala334Thr)KIF3B 变体。总之,我们的遗传、基于细胞的和体内建模数据描绘了人类常染色体显性综合征性视网膜纤毛病,并表明多种 KIF3B 发病机制可损害光感受器中的驱动蛋白驱动的纤毛运输。

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