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基因流动对“物种形成的两个法则”的贡献。

The contribution of gene movement to the "two rules of speciation".

机构信息

Department of Biology, Indiana University, 1001 East Third Street, Bloomington, Indiana 47405, USA.

出版信息

Evolution. 2010 Jun;64(6):1541-57. doi: 10.1111/j.1558-5646.2010.00990.x. Epub 2010 Mar 8.

Abstract

The two "rules of speciation"--the Large X-effect and Haldane's rule--hold throughout the animal kingdom, but the underlying genetic mechanisms that cause them are still unclear. Two predominant explanations--the "dominance theory" and faster male evolution--both have some empirical support, suggesting that the genetic basis of these rules is likely multifarious. We revisit one historical explanation for these rules, based on dysfunctional genetic interactions involving genes recently moved between chromosomes. We suggest that gene movement specifically off or onto the X chromosome is another mechanism that could contribute to the two rules, especially as X chromosome movements can be subject to unique sex-specific and sex chromosome specific consequences in hybrids. Our hypothesis is supported by patterns emerging from comparative genomic data, including a strong bias in interchromosomal gene movements involving the X and an overrepresentation of male reproductive functions among chromosomally relocated genes. In addition, our model indicates that the contribution of gene movement to the two rules in any specific group will depend upon key developmental and reproductive parameters that are taxon specific. We provide several testable predictions that can be used to assess the importance of gene movement as a contributor to these rules in the future.

摘要

两个“物种形成规则”——大 X 效应和哈代规则——在整个动物界都适用,但导致这些规则的潜在遗传机制仍不清楚。两种主要的解释——“显性理论”和更快的雄性进化——都有一些经验支持,这表明这些规则的遗传基础可能是多种多样的。我们重新审视了这些规则的一个历史解释,该解释基于涉及基因在染色体之间最近移动的功能失调的遗传相互作用。我们提出,基因的具体移动(脱离或进入 X 染色体)可能是导致这两个规则的另一个机制,特别是因为 X 染色体的移动可能会导致杂种中独特的性别特异性和性染色体特异性后果。我们的假设得到了比较基因组数据中出现的模式的支持,包括涉及 X 染色体的强烈的染色体间基因移动偏向和染色体重新定位基因中雄性生殖功能的过度表现。此外,我们的模型表明,在任何特定群体中,基因移动对这两个规则的贡献将取决于特定于分类群的关键发育和生殖参数。我们提供了一些可用于评估未来基因移动作为这些规则的一个贡献者的重要性的可测试预测。

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