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基于工程化的 I-OnuI 酶的设计及其体内评估用于 HEG 基因驱动。

The design and in vivo evaluation of engineered I-OnuI-based enzymes for HEG gene drive.

机构信息

Department of Genetics, University of Cambridge, Cambridge, Cambridgeshire, United Kingdom.

出版信息

PLoS One. 2013 Sep 10;8(9):e74254. doi: 10.1371/journal.pone.0074254. eCollection 2013.

DOI:10.1371/journal.pone.0074254
PMID:24040217
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3769382/
Abstract

The homing endonuclease gene (HEG) drive system, a promising genetic approach for controlling arthropod populations, utilises engineered nucleases to spread deleterious mutations that inactivate individual genes throughout a target population. Previous work with a naturally occurring LAGLIDADG homing endonuclease (I-SceI) demonstrated its feasibility in both Drosophila and Anopheles. Here we report on the next stage of this strategy: the redesign of HEGs with customized specificity in order to drive HEG-induced 'homing' in vivo via break-induced homologous recombination. Variants targeting a sequence within the Anopheles AGAP004734 gene were created from the recently characterized I-OnuI endonuclease, and tested for cleavage activity and frequency of homing using a model Drosophila HEG drive system. We observed cleavage and homing at an integrated reporter for all endonuclease variants tested, demonstrating for the first time that engineered HEGs can cleave their target site in insect germline cells, promoting targeted mutagenesis and homing. However, in comparison to our previously reported work with I-SceI, the engineered I-OnuI variants mediated homing with a reduced frequency, suggesting that site-specific cleavage activity is insufficient by itself to ensure efficient homing. Taken together, our experiments take a further step towards the development of a viable HEG-based population control strategy for insects.

摘要

归巢内切酶基因(HEG)驱动系统是一种有前途的控制节肢动物种群的遗传方法,它利用工程化的核酸酶在目标种群中传播失活个体基因的有害突变。之前使用天然存在的 LAGLIDADG 归巢内切酶(I-SceI)在果蝇和按蚊中的研究证明了其可行性。在这里,我们报告了该策略的下一阶段:通过断裂诱导的同源重组,在体内驱动 HEG 诱导的“归巢”,对具有定制特异性的 HEG 进行重新设计。从最近表征的 I-OnuI 内切酶中创建了针对按蚊 AGAP004734 基因内序列的 HEG 变体,并使用模型果蝇 HEG 驱动系统测试了其切割活性和归巢频率。我们观察到所有内切酶变体的整合报告均发生切割和归巢,这首次证明了工程化的 HEG 可以在昆虫生殖细胞中切割其靶位点,从而促进靶向突变和归巢。然而,与我们之前使用 I-SceI 的研究相比,工程化的 I-OnuI 变体介导的归巢频率降低,这表明特异性切割活性本身不足以确保有效的归巢。总之,我们的实验朝着开发基于 HEG 的可行昆虫种群控制策略又迈出了一步。

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