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GNB3基因的双等位基因突变导致一种独特形式的常染色体隐性先天性静止性夜盲症。

Biallelic Mutations in GNB3 Cause a Unique Form of Autosomal-Recessive Congenital Stationary Night Blindness.

作者信息

Vincent Ajoy, Audo Isabelle, Tavares Erika, Maynes Jason T, Tumber Anupreet, Wright Thomas, Li Shuning, Michiels Christelle, Condroyer Christel, MacDonald Heather, Verdet Robert, Sahel José-Alain, Hamel Christian P, Zeitz Christina, Héon Elise

机构信息

Department of Ophthalmology, The Hospital for Sick Children, Toronto, ON M5G 1X8, Canada; Program in Genetics and Genome Biology, The Hospital for Sick Children, Toronto, ON M5G 0A4, Canada; Department of Ophthalmology, University of Toronto, 340 College Street, Toronto, ON M5T 3A9, Canada.

INSERM, CNRS, Université Pierre et Marie Curie (Paris 6), Sorbornne Universités, Institut de la Vision, 17 rue Moreau, 75012 Paris, France; INSERM-DHOS CIC1423, Centre Hospitalier National d'Ophtalmologie (CHNO) des Quinze-Vingts, DHU Sight Restore, 28 Rue de Charenton, 75012 Paris, France; Institute of Ophthalmology, University College of London, London EC1V 9EL, UK.

出版信息

Am J Hum Genet. 2016 May 5;98(5):1011-1019. doi: 10.1016/j.ajhg.2016.03.021. Epub 2016 Apr 7.

Abstract

Congenital stationary night blindness (CSNB) is a heterogeneous group of non-progressive inherited retinal disorders with characteristic electroretinogram (ERG) abnormalities. Riggs and Schubert-Bornschein are subtypes of CSNB and demonstrate distinct ERG features. Riggs CSNB demonstrates selective rod photoreceptor dysfunction and occurs due to mutations in genes encoding proteins involved in rod phototransduction cascade; night blindness is the only symptom and eye examination is otherwise normal. Schubert-Bornschein CSNB is a consequence of impaired signal transmission between the photoreceptors and bipolar cells. Schubert-Bornschein CSNB is subdivided into complete CSNB with an ON bipolar signaling defect and incomplete CSNB with both ON and OFF pathway involvement. Both subtypes are associated with variable degrees of night blindness or photophobia, reduced visual acuity, high myopia, and nystagmus. Whole-exome sequencing of a family screened negative for mutations in genes associated with CSNB identified biallelic mutations in the guanine nucleotide-binding protein subunit beta-3 gene (GNB3). Two siblings were compound heterozygous for a deletion (c.170_172delAGA [p.Lys57del]) and a nonsense mutation (c.1017G>A [p.Trp339(∗)]). The maternal aunt was homozygous for the nonsense mutation (c.1017G>A [p.Trp339(∗)]). Mutational analysis of GNB3 in a cohort of 58 subjects with CSNB identified a sporadic case individual with a homozygous GNB3 mutation (c.200C>T [p.Ser67Phe]). GNB3 encodes the β subunit of G protein heterotrimer (Gαβγ) and is known to modulate ON bipolar cell signaling and cone transducin function in mice. Affected human subjects showed an unusual CSNB phenotype with variable degrees of ON bipolar dysfunction and reduced cone sensitivity. This unique retinal disorder with dual anomaly in visual processing expands our knowledge about retinal signaling.

摘要

先天性静止性夜盲(CSNB)是一组异质性的非进行性遗传性视网膜疾病,具有特征性的视网膜电图(ERG)异常。里格斯型和舒伯特 - 博恩施泰因型是CSNB的亚型,表现出不同的ERG特征。里格斯型CSNB表现为选择性视杆光感受器功能障碍,是由于编码参与视杆光转导级联反应的蛋白质的基因突变所致;夜盲是唯一症状,眼部检查其他方面正常。舒伯特 - 博恩施泰因型CSNB是光感受器与双极细胞之间信号传递受损的结果。舒伯特 - 博恩施泰因型CSNB又细分为具有ON双极信号缺陷的完全性CSNB和ON及OFF通路均受累的不完全性CSNB。这两种亚型均与不同程度的夜盲或畏光、视力下降、高度近视和眼球震颤有关。对一个经筛查与CSNB相关基因无突变的家族进行全外显子测序,发现鸟嘌呤核苷酸结合蛋白亚基β - 3基因(GNB3)存在双等位基因突变。两名同胞为一个缺失突变(c.170_172delAGA [p.Lys57del])和一个无义突变(c.1017G>A [p.Trp339(∗)])的复合杂合子。母亲的姑姑为该无义突变(c.1017G>A [p.Trp339(∗)])的纯合子。对58例CSNB患者队列中的GNB3进行突变分析,发现1例散发个体存在GNB3纯合突变(c.200C>T [p.Ser67Phe])。GNB3编码G蛋白异源三聚体(Gαβγ)的β亚基,已知其在小鼠中调节ON双极细胞信号传导和视锥转导素功能。受影响的人类受试者表现出一种不寻常的CSNB表型,伴有不同程度的ON双极功能障碍和视锥敏感性降低。这种在视觉处理方面具有双重异常的独特视网膜疾病扩展了我们对视网膜信号传导的认识。

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