Section for Evolutionary Ecology, Department of Biology, Lund University, Lund, Sweden.
Biology Department, Queen's University, Kingston, ON, Canada.
J Evol Biol. 2020 Jun;33(6):738-750. doi: 10.1111/jeb.13618. Epub 2020 Apr 5.
Due to its hemizygous inheritance and role in sex determination, the X-chromosome is expected to play an important role in the evolution of sexual dimorphism and to be enriched for sexually antagonistic genetic variation. By forcing the X-chromosome to only be expressed in males over >40 generations, we changed the selection pressures on the X to become similar to those experienced by the Y. This releases the X from any constraints arising from selection in females and should lead to specialization for male fitness, which could occur either via direct effects of X-linked loci or trans-regulation of autosomal loci by the X. We found evidence of masculinization via up-regulation of male-benefit sexually antagonistic genes and down-regulation of X-linked female-benefit genes. Potential artefacts of the experimental evolution protocol are discussed and cannot be wholly discounted, leading to several caveats. Interestingly, we could detect evidence of microevolutionary changes consistent with previously documented macroevolutionary patterns, such as changes in expression consistent with previously established patterns of sexual dimorphism, an increase in the expression of metabolic genes related to mito-nuclear conflict and evidence that dosage compensation effects can be rapidly altered. These results confirm the importance of the X in the evolution of sexual dimorphism and as a source for sexually antagonistic genetic variation and demonstrate that experimental evolution can be a fruitful method for testing theories of sex chromosome evolution.
由于其半合子遗传和性别决定作用,X 染色体有望在性二态性的进化中发挥重要作用,并富含性拮抗遗传变异。通过迫使 X 染色体在超过 40 代的雄性中只表达,我们改变了 X 染色体的选择压力,使其与 Y 染色体所经历的选择压力相似。这使得 X 染色体摆脱了来自雌性选择的任何限制,应该导致雄性适合度的专业化,这可以通过 X 连锁基因的直接作用或 X 对常染色体基因的转录调控来实现。我们发现了通过上调雄性有利的性拮抗基因和下调 X 连锁的雌性有利基因来实现雄性化的证据。实验进化方案的潜在人为因素被讨论并且不能完全排除,因此存在一些注意事项。有趣的是,我们可以检测到与先前记录的宏观进化模式一致的微进化变化的证据,例如与先前建立的性二态性模式一致的表达变化、与线粒体-核冲突相关的代谢基因表达增加以及证据表明剂量补偿效应可以迅速改变。这些结果证实了 X 染色体在性二态性进化和性拮抗遗传变异中的重要性,并表明实验进化可以是检验性染色体进化理论的一种富有成效的方法。