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2
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3
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A novel frameshift variant in associated with nonsyndromic retinitis pigmentosa, and a review of -related phenotypes.一种与非综合征性视网膜色素变性相关的新型移码变体,以及对 -相关表型的综述。
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本文引用的文献

1
Mutations in the heat-shock protein A9 (HSPA9) gene cause the EVEN-PLUS syndrome of congenital malformations and skeletal dysplasia.热休克蛋白A9(HSPA9)基因的突变会导致先天性畸形和骨骼发育异常的EVEN-PLUS综合征。
Sci Rep. 2015 Nov 24;5:17154. doi: 10.1038/srep17154.
2
A comprehensive catalogue of the coding and non-coding transcripts of the human inner ear.人类内耳编码和非编码转录本的综合目录。
Hear Res. 2016 Mar;333:266-274. doi: 10.1016/j.heares.2015.08.013. Epub 2015 Sep 1.
3
Joubert syndrome: a model for untangling recessive disorders with extreme genetic heterogeneity.乔伯特综合征:解开具有极端遗传异质性的隐性疾病之谜的模型。
J Med Genet. 2015 Aug;52(8):514-22. doi: 10.1136/jmedgenet-2015-103087. Epub 2015 Jun 19.
4
Nonsyndromic Early-Onset Cone-Rod Dystrophy and Limb-Girdle Muscular Dystrophy in a Consanguineous Israeli Family are Caused by Two Independent yet Linked Mutations in ALMS1 and DYSF.一个近亲通婚的以色列家庭中,非综合征性早发性视锥-视杆营养不良和肢带型肌营养不良由ALMS1和DYSF基因中的两个独立但相关的突变引起。
Hum Mutat. 2015 Sep;36(9):836-41. doi: 10.1002/humu.22822. Epub 2015 Jul 14.
5
Alström Syndrome: Mutation Spectrum of ALMS1.阿尔斯特伦综合征:ALMS1的突变谱
Hum Mutat. 2015 Jul;36(7):660-8. doi: 10.1002/humu.22796. Epub 2015 May 18.
6
A detailed clinical and molecular survey of subjects with nonsyndromic USH2A retinopathy reveals an allelic hierarchy of disease-causing variants.对非综合征性USH2A视网膜病变患者进行的详细临床和分子调查揭示了致病变异的等位基因层次结构。
Eur J Hum Genet. 2015 Oct;23(10):1318-27. doi: 10.1038/ejhg.2014.283. Epub 2015 Feb 4.
7
Causes and consequences of inherited cone disorders.遗传性圆锥细胞疾病的病因与后果。
Prog Retin Eye Res. 2014 Sep;42:1-26. doi: 10.1016/j.preteyeres.2014.05.001. Epub 2014 May 22.
8
Intestinal cell kinase, a protein associated with endocrine-cerebro-osteodysplasia syndrome, is a key regulator of cilia length and Hedgehog signaling.肠细胞激酶是一种与内分泌-脑-骨发育不良综合征相关的蛋白,是纤毛长度和 Hedgehog 信号通路的关键调节因子。
Proc Natl Acad Sci U S A. 2014 Jun 10;111(23):8541-6. doi: 10.1073/pnas.1323161111. Epub 2014 May 22.
9
FAM161A, associated with retinitis pigmentosa, is a component of the cilia-basal body complex and interacts with proteins involved in ciliopathies.FAM161A 与视网膜色素变性有关,是纤毛-基体复合物的一个组成部分,与纤毛病相关蛋白相互作用。
Hum Mol Genet. 2012 Dec 1;21(23):5174-84. doi: 10.1093/hmg/dds368. Epub 2012 Sep 1.
10
Cystogenesis and elongated primary cilia in Tsc1-deficient distal convoluted tubules.Tsc1 缺陷型远曲小管中的囊泡生成和延长的初级纤毛。
Am J Physiol Renal Physiol. 2012 Aug 15;303(4):F584-92. doi: 10.1152/ajprenal.00141.2012. Epub 2012 Jun 6.

CEP78基因的突变导致与原发性纤毛缺陷相关的视锥-视杆营养不良和听力损失。

Mutations in CEP78 Cause Cone-Rod Dystrophy and Hearing Loss Associated with Primary-Cilia Defects.

作者信息

Nikopoulos Konstantinos, Farinelli Pietro, Giangreco Basilio, Tsika Chrysanthi, Royer-Bertrand Beryl, Mbefo Martial K, Bedoni Nicola, Kjellström Ulrika, El Zaoui Ikram, Di Gioia Silvio Alessandro, Balzano Sara, Cisarova Katarina, Messina Andrea, Decembrini Sarah, Plainis Sotiris, Blazaki Styliani V, Khan Muhammad Imran, Micheal Shazia, Boldt Karsten, Ueffing Marius, Moulin Alexandre P, Cremers Frans P M, Roepman Ronald, Arsenijevic Yvan, Tsilimbaris Miltiadis K, Andréasson Sten, Rivolta Carlo

机构信息

Department of Computational Biology, Unit of Medical Genetics, University of Lausanne, 1011 Lausanne, Switzerland.

Center for Psychiatric Neuroscience, Department of Psychiatry, Lausanne University Hospital, 1008 Lausanne, Switzerland.

出版信息

Am J Hum Genet. 2016 Sep 1;99(3):770-776. doi: 10.1016/j.ajhg.2016.07.009.

DOI:10.1016/j.ajhg.2016.07.009
PMID:
27588451
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5011074/
Abstract

Cone-rod degeneration (CRD) belongs to the disease spectrum of retinal degenerations, a group of hereditary disorders characterized by an extreme clinical and genetic heterogeneity. It mainly differentiates from other retinal dystrophies, and in particular from the more frequent disease retinitis pigmentosa, because cone photoreceptors degenerate at a higher rate than rod photoreceptors, causing severe deficiency of central vision. After exome analysis of a cohort of individuals with CRD, we identified biallelic mutations in the orphan gene CEP78 in three subjects from two families: one from Greece and another from Sweden. The Greek subject, from the island of Crete, was homozygous for the c.499+1G>T (IVS3+1G>T) mutation in intron 3. The Swedish subjects, two siblings, were compound heterozygotes for the nearby mutation c.499+5G>A (IVS3+5G>A) and for the frameshift-causing variant c.633delC (p.Trp212Glyfs(∗)18). In addition to CRD, these three individuals had hearing loss or hearing deficit. Immunostaining highlighted the presence of CEP78 in the inner segments of retinal photoreceptors, predominantly of cones, and at the base of the primary cilium of fibroblasts. Interaction studies also showed that CEP78 binds to FAM161A, another ciliary protein associated with retinal degeneration. Finally, analysis of skin fibroblasts derived from affected individuals revealed abnormal ciliary morphology, as compared to that of control cells. Altogether, our data strongly suggest that mutations in CEP78 cause a previously undescribed clinical entity of a ciliary nature characterized by blindness and deafness but clearly distinct from Usher syndrome, a condition for which visual impairment is due to retinitis pigmentosa.

摘要

锥杆营养不良(CRD)属于视网膜变性疾病谱,这是一组遗传性疾病,其临床和遗传异质性极高。它主要与其他视网膜营养不良相区别,尤其是与更常见的色素性视网膜炎不同,因为锥光感受器的退化速度比杆光感受器更快,导致严重的中心视力缺陷。在对一组CRD患者进行外显子组分析后,我们在来自两个家庭的三名受试者中发现了孤儿基因CEP78的双等位基因突变:一名来自希腊,另一名来自瑞典。来自克里特岛的希腊受试者在第3内含子中c.499 + 1G>T(IVS3 + 1G>T)突变纯合。瑞典受试者是一对兄弟姐妹,是附近突变c.499 + 5G>A(IVS3 + 5G>A)和导致移码的变异c.633delC(p.Trp212Glyfs(∗)18)的复合杂合子。除了CRD,这三名个体还患有听力损失或听力缺陷。免疫染色突出显示CEP78存在于视网膜光感受器的内段,主要是锥体细胞,以及成纤维细胞初级纤毛的基部。相互作用研究还表明,CEP78与FAM161A结合,FAM161A是另一种与视网膜变性相关的纤毛蛋白。最后,对来自受影响个体的皮肤成纤维细胞分析显示,与对照细胞相比,纤毛形态异常。总之,我们的数据强烈表明,CEP78突变导致了一种先前未描述的具有纤毛性质的临床实体,其特征为失明和失聪,但明显不同于Usher综合征,后者的视力损害是由色素性视网膜炎引起的。