在连续空间部署用于封闭抑制的系留基因驱动装置需要避免驱动波干扰

IF 4.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ruobing Feng, Jackson Champer
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引用次数: 0

摘要

基因驱动在抑制害虫种群和清除外来入侵物种方面具有巨大潜力。CRISPR 归巢抑制驱动是一种功能强大但不受限制的驱动,存在失控传播的风险。因此,开发限制基因驱动的方法意义重大。系留驱动将毒素-抗毒素隐性胚胎驱动等封闭系统与归巢抑制驱动等强力驱动结合起来。它可以防止同源驱动力扩散到封闭驱动力之外,而且易于构建,因此具有良好的未来发展前景。然而,我们发现在某些情况下部署系留驱动系统时必须小心谨慎。在一个泛种群模型中对系留驱动系统的模拟显示,成功部署系留驱动系统需要两个部分之间有一个适当的释放比例,以防止抑制驱动系统在有机会扩散之前就被消灭。在种群在一维地形上移动的空间模型中,两个系留驱动成分之间的驱动波干扰现象更为严重。如果速度较快的抑制驱动波赶上了限制驱动波,成功还是有可能的,但这取决于驱动性能和生态参数。二维模拟进一步限制了驱动成功的参数范围。因此,必须仔细考虑驱动性能和生态条件,以及系留驱动系统潜在应用的具体释放建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deployment of tethered gene drive for confined suppression in continuous space requires avoiding drive wave interference

Gene drives have great potential for suppression of pest populations and removal of exotic invasive species. CRISPR homing suppression drive is a powerful but unconfined drive, posing risks of uncontrolled spread. Thus, developing methods for confining a gene drive is of great significance. Tethered drive combines a confined system such as Toxin-Antidote Recessive Embryo drive with a strong drive such as a homing suppression drive. It can prevent the homing drive from spreading beyond the confined drive and can be constructed readily, giving it good prospects for future development. However, we have found that care must be taken when deploying tethered drive systems in some scenarios. Simulations of tethered drive in a panmictic population model reveal that successful deployment requires a proper release ratio between the two components, tailored to prevent the suppression drive from eliminating the confined system before it has the chance to spread. Spatial models where the population moves over a one-dimensional landscape display a more serious phenomenon of drive wave interference between the two tethered drive components. If the faster suppression drive wave catches up to the confined drive wave, success is still possible, but it is dependent on drive performance and ecological parameters. Two-dimensional simulations further restrict the parameter range for drive success. Thus, careful consideration must be given to drive performance and ecological conditions, as well as specific release proposals for potential application of tethered drive systems.

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来源期刊
Molecular Ecology
Molecular Ecology 生物-进化生物学
CiteScore
8.40
自引率
10.20%
发文量
472
审稿时长
1 months
期刊介绍: Molecular Ecology publishes papers that utilize molecular genetic techniques to address consequential questions in ecology, evolution, behaviour and conservation. Studies may employ neutral markers for inference about ecological and evolutionary processes or examine ecologically important genes and their products directly. We discourage papers that are primarily descriptive and are relevant only to the taxon being studied. Papers reporting on molecular marker development, molecular diagnostics, barcoding, or DNA taxonomy, or technical methods should be re-directed to our sister journal, Molecular Ecology Resources. Likewise, papers with a strongly applied focus should be submitted to Evolutionary Applications. Research areas of interest to Molecular Ecology include: * population structure and phylogeography * reproductive strategies * relatedness and kin selection * sex allocation * population genetic theory * analytical methods development * conservation genetics * speciation genetics * microbial biodiversity * evolutionary dynamics of QTLs * ecological interactions * molecular adaptation and environmental genomics * impact of genetically modified organisms
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