分裂型抑制基因驱动揭示埃及伊蚊中遗传效率与生殖负荷的设计权衡
Split suppression gene drives reveal a design tradeoff between inheritance and reproductive load in Aedes aegypti
bioRxiv · 2026 年 9 月 18 日 · William A C Gendron, Andrea L Smidler, Ming Li 等 9 人
蚊媒病原体每年造成约70万人死亡,需要可持续的媒介控制手段。基于CRISPR的基因驱动有望抑制病媒种群,但自主驱动可能扩散到目标种群之外;分裂型基因驱动将Cas9和向导RNA在遗传上分开,只有两者同时存在才有偏倚遗传,因而具有内在可控性。研究者构建了首个靶向雌性生殖基因doublesex(dsx)和yellow-g(yg)的埃及伊蚊分裂型抑制驱动。yg驱动表现出中等超孟德尔遗传,最高传递率达73.4%;dsx驱动几乎检测不到遗传偏倚,但dsx破坏带来更强的生殖适应度代价,纯合雌性完全不育,而yg破坏的生育表型较轻。用实验参数化的数学建模预测,四个分裂驱动配置中有三个在部分参数空间可比pgSIT以更低释放强度或更短释放时间实现种群抑制。结果说明遗传效率和生殖负荷对分裂抑制驱动性能构成相互制约,有效设计需要在两者间平衡。尚未经同行评审。
为什么推荐给您:首个埃及伊蚊分裂型抑制基因驱动,揭示可遗传效率与生殖代价的关键设计权衡,指向新的蚊媒控制策略。
不需要生物学背景,多打比方
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摘要Abstract
Mosquito-borne pathogens cause approximately 700,000 deaths annually, highlighting the need for effective and sustainable vector control strategies. CRISPR-based gene drives offer a potential approach for suppressing disease-vector populations, but autonomous drives may spread beyond intended populations. Split gene drives, in which the Cas9 and guide RNA components are genetically separated, provide an inherently confinable alternative because biased inheritance depends on the co-occurrence of both components. Here, we develop the first split suppression gene drives in Ae. aegypti, targeting the female reproductive genes doublesex (dsx) and yellow-g (yg). The yg-targeting drive exhibited moderate super-Mendelian inheritance, reaching 73.4% transmission in the highest-performing cross, whereas the dsx-targeting drive exhibited little detectable inheritance bias. Conversely, disruption of dsx imposed substantially stronger reproductive fitness costs, including complete sterility in homozygous females, whereas yg disruption produced a less severe fertility phenotype. Mathematical modeling parameterized with these experimental data predicted that three of four split-drive configurations could achieve population suppression at lower release intensities or shorter release durations than pgSIT across portions of the modeled parameter space. Together, these results reveal that inheritance efficiency and reproductive load can impose competing constraints on split suppression drive performance: stronger suppression-associated fitness effects do not necessarily translate into improved drive performance when accompanied by limited drive propagation. Our findings establish the feasibility of split suppression gene drives in Ae. aegypti and demonstrate that effective suppression drive design requires balancing inheritance efficiency with reproductive fitness costs rather than maximizing either independently.