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生长分化因子 6 依赖性细胞存活对早发性视网膜营养不良的作用。

Contribution of growth differentiation factor 6-dependent cell survival to early-onset retinal dystrophies.

机构信息

Department of Ophthalmology, University of Alberta, Edmonton, AB, Canada.

出版信息

Hum Mol Genet. 2013 Apr 1;22(7):1432-42. doi: 10.1093/hmg/dds560. Epub 2013 Jan 9.

Abstract

Retinal dystrophies are predominantly caused by mutations affecting the visual phototransduction system and cilia, with few genes identified that function to maintain photoreceptor survival. We reasoned that growth factors involved with early embryonic retinal development would represent excellent candidates for such diseases. Here we show that mutations in the transforming growth factor-β (TGF-β) ligand Growth Differentiation Factor 6, which specifies the dorso-ventral retinal axis, contribute to Leber congenital amaurosis. Furthermore, deficiency of gdf6 results in photoreceptor degeneration, so demonstrating a connection between Gdf6 signaling and photoreceptor survival. In addition, in both murine and zebrafish mutant models, we observe retinal apoptosis, a characteristic feature of human retinal dystrophies. Treatment of gdf6-deficient zebrafish embryos with a novel aminopropyl carbazole, P7C3, rescued the retinal apoptosis without evidence of toxicity. These findings implicate for the first time perturbed TGF-β signaling in the genesis of retinal dystrophies, support the study of related morphogenetic genes for comparable roles in retinal disease and may offer additional therapeutic opportunities for genetically heterogeneous disorders presently only treatable with gene therapy.

摘要

视网膜营养不良主要是由影响视觉光转导系统和纤毛的突变引起的,只有少数几个基因被确定可以维持感光细胞的存活。我们推测,与早期胚胎视网膜发育有关的生长因子将是此类疾病的绝佳候选物。在这里,我们表明,转化生长因子-β(TGF-β)配体生长分化因子 6 的突变导致先天性黑蒙 Leber,该基因指定视网膜的背腹轴。此外,gdf6 的缺乏导致光感受器退化,因此证明了 Gdf6 信号与光感受器存活之间的联系。此外,在小鼠和斑马鱼突变模型中,我们观察到视网膜细胞凋亡,这是人类视网膜营养不良的一个特征。用一种新型的氨基丙基咔唑 P7C3 治疗 gdf6 缺陷型斑马鱼胚胎,可挽救视网膜细胞凋亡,而没有毒性的证据。这些发现首次表明,TGF-β 信号通路的紊乱与视网膜营养不良的发生有关,支持对相关形态发生基因的研究,这些基因在视网膜疾病中可能具有类似的作用,并可能为目前只能通过基因治疗治疗的遗传异质性疾病提供额外的治疗机会。

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