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作为一种新型基因驱动系统的反墨狄:理论分析。

Inverse Medea as a novel gene drive system for local population replacement: a theoretical analysis.

机构信息

Division of Biology, California Institute of Technology, Pasadena, CA 91125, USA.

出版信息

J Hered. 2011 May-Jun;102(3):336-41. doi: 10.1093/jhered/esr019.

Abstract

One strategy to control mosquito-borne diseases, such as malaria and dengue fever, on a regional scale is to use gene drive systems to spread disease-refractory genes into wild mosquito populations. The development of a synthetic Medea element that has been shown to drive population replacement in laboratory Drosophila populations has provided encouragement for this strategy but has also been greeted with caution over the concern that transgenes may spread into countries without their consent. Here, we propose a novel gene drive system, inverse Medea, which is strong enough to bring about local population replacement but is unable to establish itself beyond an isolated release site. The system consists of 2 genetic components--a zygotic toxin and maternal antidote--which render heterozygous offspring of wild-type mothers unviable. Through population genetic analysis, we show that inverse Medea will only spread when it represents a majority of the alleles in a population. The element is best located on an autosome and will spread to fixation provided any associated fitness costs are dominant and to very high frequency otherwise. We suggest molecular tools that could be used to build the inverse Medea system and discuss its utility for a confined release of transgenic mosquitoes.

摘要

一种控制蚊媒疾病(如疟疾和登革热)的区域性策略是利用基因驱动系统将抗疾病基因传播到野生蚊群中。已经证明,一种合成的 Medea 元件可以在实验室果蝇种群中驱动种群替代,这为该策略提供了鼓舞,但也因人们担心转基因可能会在未经同意的情况下传播到其他国家而引起谨慎。在这里,我们提出了一种新的基因驱动系统,即反 Medea,它足够强大,可以实现局部种群替代,但无法在隔离释放点之外建立自己。该系统由 2 个遗传成分组成——一种合子毒素和母体解毒剂——使野生型母亲的杂合后代无法存活。通过群体遗传学分析,我们表明,只有当反 Medea 代表群体中大多数等位基因时,它才会传播。该元件最好位于常染色体上,并将传播到固定点,只要相关的适应度成本是显性的,否则将传播到非常高的频率。我们建议可以用来构建反 Medea 系统的分子工具,并讨论其在限制释放转基因蚊子方面的效用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8a2/3076586/65fd95026350/jheredesr019f01_3c.jpg

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