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高效的 CRISPR/Cas9 介导的玻璃翅实蝇(Homalodisca vitripennis (Germar))基因组修饰。

Efficient CRISPR/Cas9-mediated genome modification of the glassy-winged sharpshooter Homalodisca vitripennis (Germar).

机构信息

Department of Entomology, University of California, Riverside, CA, 92521, USA.

Department of Microbiology & Plant Pathology, University of California, Riverside, CA, 92521, USA.

出版信息

Sci Rep. 2022 Apr 19;12(1):6428. doi: 10.1038/s41598-022-09990-4.

Abstract

CRISPR/Cas9 technology enables the extension of genetic techniques into insect pests previously refractory to genetic analysis. We report the establishment of genetic analysis in the glassy-winged sharpshooter (GWSS), Homalodisca vitripennis, which is a significant leafhopper pest of agriculture in California. We use a novel and simple approach of embryo microinjection in situ on the host plant and obtain high frequency mutagenesis, in excess of 55%, of the cinnabar and white eye pigmentation loci. Through pair matings, we obtained 100% transmission of w and cn alleles to the G3 generation and also established that both genes are located on autosomes. Our analysis of wing phenotype revealed an unexpected discovery of the participation of pteridine pigments in wing and wing-vein coloration, indicating a role for these pigments beyond eye color. We used amplicon sequencing to examine the extent of off-target mutagenesis in adults arising from injected eggs, which was found to be negligible or non-existent. Our data show that GWSS can be easily developed as a genetic model system for the Hemiptera, enabling the study of traits that contribute to the success of invasive pests and vectors of plant pathogens. This will facilitate novel genetic control strategies.

摘要

CRISPR/Cas9 技术使遗传技术能够扩展到以前对遗传分析具有抗性的昆虫害虫。我们报告了在玻璃翼盲蝽(GWSS)中建立遗传分析,这是加利福尼亚农业中一种重要的叶蝉害虫。我们使用在宿主植物上原位胚胎微量注射的新颖简单方法,获得了超过 55%的朱砂和白眼色素沉着基因座的高频诱变。通过配对交配,我们将 w 和 cn 等位基因 100%传递到 G3 代,并且还确定这两个基因都位于常染色体上。我们对翅膀表型的分析揭示了一个意想不到的发现,即蝶呤色素参与翅膀和翅脉的着色,表明这些色素的作用超出了眼睛颜色。我们使用扩增子测序来检查来自注射卵的成虫中靶外诱变的程度,发现可以忽略不计或不存在。我们的数据表明,GWSS 可以很容易地被开发为半翅目昆虫的遗传模型系统,从而能够研究有助于入侵害虫和植物病原体传播媒介成功的特征。这将促进新的遗传控制策略的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9419/9018754/4715cda21ffd/41598_2022_9990_Fig1_HTML.jpg

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