Division of Biological Sciences, Section of Cell and Developmental Biology, University of California, San Diego, La Jolla, CA 92093, California, USA.
Division of Biostatistics and Epidemiology, School of Public Health, University of California, Berkeley, CA 94720, California, USA.
Nat Commun. 2019 Jan 8;10(1):84. doi: 10.1038/s41467-018-07964-7.
The sterile insect technique (SIT) is an environmentally safe and proven technology to suppress wild populations. To further advance its utility, a novel CRISPR-based technology termed precision guided SIT (pgSIT) is described. PgSIT mechanistically relies on a dominant genetic technology that enables simultaneous sexing and sterilization, facilitating the release of eggs into the environment ensuring only sterile adult males emerge. Importantly, for field applications, the release of eggs will eliminate burdens of manually sexing and sterilizing males, thereby reducing overall effort and increasing scalability. Here, to demonstrate efficacy, we systematically engineer multiple pgSIT systems in Drosophila which consistently give rise to 100% sterile males. Importantly, we demonstrate that pgSIT-generated sterile males are fit and competitive. Using mathematical models, we predict pgSIT will induce substantially greater population suppression than can be achieved by currently-available self-limiting suppression technologies. Taken together, pgSIT offers to potentially transform our ability to control insect agricultural pests and disease vectors.
无菌昆虫技术(SIT)是一种安全环保且经过验证的技术,可用于抑制野生种群。为了进一步提高其效用,描述了一种新型基于 CRISPR 的技术,称为精确制导 SIT(pgSIT)。pgSIT 在机制上依赖于一种显性遗传技术,该技术能够同时进行性别鉴定和绝育,从而确保将卵子释放到环境中,只有不育的成年雄性出现。重要的是,对于田间应用,释放卵子将消除手动鉴定和绝育雄性的负担,从而减少整体工作量并提高可扩展性。在这里,为了证明其功效,我们在果蝇中系统地设计了多个 pgSIT 系统,这些系统始终产生 100%的不育雄性。重要的是,我们证明了 pgSIT 产生的不育雄性是健康且有竞争力的。使用数学模型,我们预测 pgSIT 将比目前可用的自我限制抑制技术更能引起种群的大量抑制。综上所述,pgSIT 有可能改变我们控制农业害虫和疾病媒介昆虫的能力。