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将内源性斑马鱼基因座进行靶向破坏,作为快速视杆光感受器退化的模型。

Targeted disruption of the endogenous zebrafish locus as models of rapid rod photoreceptor degeneration.

作者信息

Zelinka Christopher P, Sotolongo-Lopez Mailin, Fadool James M

机构信息

Department of Biological Science, Florida State University, Tallahassee, FL.

Program in Neuroscience, Florida State University, Tallahassee, FL.

出版信息

Mol Vis. 2018 Aug 27;24:587-602. eCollection 2018.

Abstract

PURPOSE

Retinitis pigmentosa (RP) is a collection of genetic disorders that results in the degeneration of light-sensitive photoreceptor cells, leading to blindness. RP is associated with more than 70 loci that may display dominant or recessive modes of inheritance, but mutations in the gene encoding the visual pigment rhodopsin (RHO) are the most frequent cause. In an effort to develop precise mutations in zebrafish as novel models of photoreceptor degeneration, we describe the generation and germline transmission of a series of novel clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9-induced insertion and deletion (indel) mutations in the major zebrafish locus, .

METHODS

One- or two-cell staged zebrafish embryos were microinjected with in vitro transcribed mRNA encoding Cas9 and a single guide RNA (gRNA). Mutations were detected by restriction fragment length polymorphism (RFLP) and DNA sequence analyses in injected embryos and offspring. Immunolabeling with rod- and cone-specific antibodies was used to test for histological and cellular changes.

RESULTS

Using gRNAs that targeted highly conserved regions of , a series of dominant and recessive alleles were recovered that resulted in the rapid degeneration of rod photoreceptors. No effect on cones was observed. Targeting the 5'-coding sequence of led to the recovery of several indels similar to disease-associated alleles. A frame shift mutation leading to a premature stop codon (T17*) resulted in rod degeneration when brought to homozygosity. Immunoblot and fluorescence labeling with a Rho-specific antibody suggest that this is indeed a null allele, illustrating that the Rho expression is essential for rod survival. Two in-frame mutations were recovered that disrupted the highly conserved N-linked glycosylation consensus sequence at N15. Larvae heterozygous for either of the alleles demonstrated rapid rod degeneration. Targeting of the 3'-coding region of resulted in the recovery of an allele encoding a premature stop codon (S347*) upstream of the conserved VSPA sorting sequence and a second in-frame allele that disrupted the putative phosphorylation site at S339. Both alleles resulted in rod death in a dominant inheritance pattern. Following the loss of the targeting sequence, immunolabeling for Rho was no longer restricted to the rod outer segment, but it was also localized to the plasma membrane.

CONCLUSIONS

The efficiency of CRISPR/Cas9 for gene targeting, coupled with the large number of mutations associated with RP, provided a backdrop for the rapid isolation of novel alleles in zebrafish that phenocopy disease. These novel lines will provide much needed in-vivo models for high throughput screens of compounds or genes that protect from photoreceptor degeneration.

摘要

目的

视网膜色素变性(RP)是一组遗传性疾病,可导致对光敏感的光感受器细胞退化,最终导致失明。RP与70多个位点相关,这些位点可能呈现显性或隐性遗传模式,但编码视色素视紫红质(RHO)的基因突变是最常见的病因。为了在斑马鱼中产生精确的突变作为光感受器退化的新型模型,我们描述了在主要斑马鱼基因座中一系列新型成簇规律间隔短回文重复序列(CRISPR)/Cas9诱导的插入和缺失(indel)突变的产生及种系传递。

方法

将体外转录的编码Cas9和单个引导RNA(gRNA)的mRNA显微注射到单细胞或双细胞期的斑马鱼胚胎中。通过限制性片段长度多态性(RFLP)和DNA序列分析检测注射胚胎及其后代中的突变。使用视杆细胞和视锥细胞特异性抗体进行免疫标记,以检测组织学和细胞变化。

结果

使用靶向高度保守区域的gRNA,获得了一系列显性和隐性等位基因,这些等位基因导致视杆光感受器迅速退化。未观察到对视锥细胞的影响。靶向的5'编码序列导致获得了几个与疾病相关等位基因相似的indel。一个导致提前终止密码子(T17*)的移码突变纯合时导致视杆细胞退化。用Rho特异性抗体进行免疫印迹和荧光标记表明这确实是一个无效等位基因,说明Rho表达对视杆细胞存活至关重要。获得了两个框内突变,它们破坏了N15处高度保守的N-连接糖基化共有序列。这两个等位基因中任何一个的杂合幼虫都表现出视杆细胞的快速退化。靶向的3'编码区域导致获得一个在保守的VSPA分选序列上游编码提前终止密码子(S347*)的等位基因和另一个破坏S339处假定磷酸化位点的框内等位基因。这两个等位基因均以显性遗传模式导致视杆细胞死亡。在靶向序列缺失后,Rho的免疫标记不再局限于视杆细胞外段,还定位于质膜。

结论

CRISPR/Cas9基因靶向的效率,加上与RP相关的大量突变,为在斑马鱼中快速分离模拟疾病的新型等位基因提供了背景。这些新型品系将为高通量筛选保护光感受器免于退化的化合物或基因提供急需的体内模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d5d/6128699/fa7a9a48c764/mv-v24-587-f1.jpg

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