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通过合成基因驱动控制入侵性啮齿动物和多配偶制的作用。

Controlling invasive rodents via synthetic gene drive and the role of polyandry.

机构信息

Institute of Integrative Biology, University of Liverpool, Biosciences Building, Liverpool, UK.

Centre for Ecology, Evolution and Conservation, University of East Anglia, Norwich, UK.

出版信息

Proc Biol Sci. 2019 Aug 28;286(1909):20190852. doi: 10.1098/rspb.2019.0852. Epub 2019 Aug 21.

Abstract

House mice are a major ecosystem pest, particularly threatening island ecosystems as a non-native invasive species. Rapid advances in synthetic biology offer new avenues to control pest species for biodiversity conservation. Recently, a synthetic sperm-killing gene drive construct called t-Sry has been proposed as a means to eradicate target mouse populations owing to a lack of females. A factor that has received little attention in the discussion surrounding such drive applications is polyandry. Previous research has demonstrated that sperm-killing drivers are extremely damaging to a male's sperm competitive ability. Here, we examine the importance of this effect on the t-Sry system using a theoretical model. We find that polyandry substantially hampers the spread of t-Sry such that release efforts have to be increased three- to sixfold for successful eradication. We discuss the implications of our finding for potential pest control programmes, the risk of drive spread beyond the target population, and the emergence of drive resistance. Our work highlights that a solid understanding of the forces that determine drive dynamics in a natural setting is key for successful drive application, and that exploring the natural diversity of gene drives may inform effective gene drive design.

摘要

家鼠是主要的生态系统害虫,尤其是作为非本地入侵物种,对岛屿生态系统构成威胁。合成生物学的快速发展为保护生物多样性提供了控制害虫的新途径。最近,一种名为 t-Sry 的合成精子杀伤基因驱动构建体被提议用于消灭目标鼠群,因为缺乏雌性。在围绕这种驱动应用的讨论中,一个很少受到关注的因素是一妻多夫制。先前的研究表明,精子杀伤驱动对雄性的精子竞争能力具有极大的破坏性。在这里,我们使用理论模型研究了这种效应在 t-Sry 系统中的重要性。我们发现,一妻多夫制极大地阻碍了 t-Sry 的传播,以至于为了成功根除,释放工作必须增加三到六倍。我们讨论了我们的发现对潜在害虫控制计划的影响、驱动超越目标种群传播的风险以及驱动抗性的出现。我们的工作强调,对决定自然环境中驱动动态的力量有一个坚实的理解是成功应用驱动的关键,并且探索基因驱动的自然多样性可能为有效的基因驱动设计提供信息。

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