Division of Biological Sciences, Section of Cell and Developmental Biology, University of California, San Diego, La Jolla, CA, 92093, USA.
Agragene Inc., San Diego, CA, 92121, USA.
Nat Commun. 2021 Dec 10;12(1):7202. doi: 10.1038/s41467-021-27333-1.
CRISPR-based genetic engineering tools aimed to bias sex ratios, or drive effector genes into animal populations, often integrate the transgenes into autosomal chromosomes. However, in species with heterogametic sex chromsomes (e.g. XY, ZW), sex linkage of endonucleases could be beneficial to drive the expression in a sex-specific manner to produce genetic sexing systems, sex ratio distorters, or even sex-specific gene drives, for example. To explore this possibility, here we develop a transgenic line of Drosophila melanogaster expressing Cas9 from the Y chromosome. We functionally characterize the utility of this strain for both sex selection and gene drive finding it to be quite effective. To explore its utility for population control, we built mathematical models illustrating its dynamics as compared to other state-of-the-art systems designed for both population modification and suppression. Taken together, our results contribute to the development of current CRISPR genetic control tools and demonstrate the utility of using sex-linked Cas9 strains for genetic control of animals.
基于 CRISPR 的基因编辑工具旨在偏向性别比例,或将效应基因导入动物种群,通常将转基因整合到常染色体上。然而,在具有异型性染色体(例如 XY、ZW)的物种中,内切酶的性连锁可能有助于以性别特异性的方式驱动表达,从而产生遗传性别鉴定系统、性别比例扰乱因子,甚至是性别特异性基因驱动,例如。为了探索这种可能性,我们在这里开发了一个表达来自 Y 染色体的 Cas9 的黑腹果蝇转基因系。我们从功能上对该菌株在性别选择和基因驱动方面的应用进行了特征描述,发现其效果非常显著。为了探索其在种群控制方面的应用,我们构建了数学模型,与其他用于种群修饰和抑制的最先进系统进行了比较,展示了其动态特性。总之,我们的研究结果为当前 CRISPR 遗传控制工具的开发做出了贡献,并展示了使用性连锁 Cas9 菌株进行动物遗传控制的实用性。