Vladana Fotopulosova, Giordano Tanieli, Karel Fusek, Petr Jansa, Jiri Forejt
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引用次数: 0
摘要
杂交不育是物种分化早期不同类群之间的生殖隔离屏障。杂交不育在动物界和植物界普遍存在,但对其遗传控制却知之甚少。在之前的研究中,我们发现了家鼠麝亚种和驯化亚种之间杂交的不育性,这种不育性受 Prdm9 基因、X 连锁 Hstx2 基因座和亚种杂合性遗传背景的控制。为了进一步研究这种基因驱动的染色体不育形式,我们在家鼠亚种的基因组内构建了一个简化的杂交不育模型,将家鼠的常染色体与麝亚种的同源染色体交换。我们的研究表明,Prdm9和Hstx2的 "不育 "等位基因组合可以通过麝/驯鹿两个常染色体--第17号染色体(Chr 17)和第18号染色体--的杂合激活,当另一对异源次特异性常染色体存在时会进一步增强,而在纯驯鹿基因组中对减数分裂过程没有影响。此外,我们还在 Chr X 的中心粒末端发现了一个新的 X 连锁杂交不育基因座 Hstx3,它能调节 Prdm9 和 Hstx2 之间的不相容性。这些结果进一步支持了我们基于同源序列间进化积累的分歧而得出的染色体杂交不育的概念。基于这些和以前的研究结果,我们认为未来的研究应该包括更多关于种间杂种在减数第一次分裂前期或之前同源染色体相互识别的信息,因为这可能是小鼠和其他物种的一般生殖隔离检查点。
A Minimal Hybrid Sterility Genome Assembled by Chromosome Swapping Between Mouse Subspecies (Mus musculus).
Hybrid sterility is a reproductive isolation barrier between diverging taxa securing the early steps of speciation. Hybrid sterility is ubiquitous in the animal and plant kingdoms, but its genetic control is poorly understood. In our previous studies, we have uncovered the sterility of hybrids between musculus and domesticus subspecies of the house mouse, which is controlled by the Prdm9 gene, the X-linked Hstx2 locus, and subspecific heterozygosity for genetic background. To further investigate this form of genic-driven chromosomal sterility, we constructed a simplified hybrid sterility model within the genome of the domesticus subspecies by swapping domesticus autosomes with their homologous partners from the musculus subspecies. We show that the "sterility" allelic combination of Prdm9 and Hstx2 can be activated by a musculus/domesticus heterozygosity of as few as two autosomes, Chromosome 17 (Chr 17) and Chr 18 and is further enhanced when another heterosubspecific autosomal pair is present, whereas it has no effect on meiotic progression in the pure domesticus genome. In addition, we identify a new X-linked hybrid sterility locus, Hstx3, at the centromeric end of Chr X, which modulates the incompatibility between Prdm9 and Hstx2. These results further support our concept of chromosomal hybrid sterility based on evolutionarily accumulated divergence between homologous sequences. Based on these and previous results, we believe that future studies should include more information on the mutual recognition of homologous chromosomes at or before the first meiotic prophase in interspecific hybrids, as this may serve as a general reproductive isolation checkpoint in mice and other species.
期刊介绍:
Molecular Biology and Evolution
Journal Overview:
Publishes research at the interface of molecular (including genomics) and evolutionary biology
Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic
Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research
Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.