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由线粒体-核不相容性驱动的核补偿性进化。

Nuclear compensatory evolution driven by mito-nuclear incompatibilities.

机构信息

Departamento de Física da Matéria Condensada, Instituto de Física Gleb Wataghin, Universidade Estadual de Campinas (UNICAMP), Campinas 13083859, Brasil.

出版信息

Proc Natl Acad Sci U S A. 2024 Oct 15;121(42):e2411672121. doi: 10.1073/pnas.2411672121. Epub 2024 Oct 11.

Abstract

Mitochondrial function relies on the coordinated expression of mitochondrial and nuclear genes, exhibiting remarkable resilience despite high mitochondrial mutation rates. The nuclear compensation mechanism suggests deleterious mitochondrial alleles drive compensatory nuclear mutations to preserve mito-nuclear compatibility. However, prevalence and factors conditioning this phenomenon remain debated due to its conflicting evidence. Here, we investigate how mito-nuclear incompatibilities impact substitutions in a model for species radiation. Mating success depends on genetic compatibility (nuclear DNA) and spatial proximity. Populations evolve from partially compatible mito-nuclear states, simulating mitochondrial DNA (mtDNA) introgression. Mutations do not confer advantages nor disadvantages, but individual fecundity declines with increasing incompatibilities, selecting for mito-nuclear coordination. We find that selection for mito-nuclear compatibility affects each genome differently based on their initial state. In compatible gene pairs, selection reduces substitutions in both genomes, while in incompatible nuclear genes, it consistently promotes compensation, facilitated by more mismatches. Interestingly, high mitochondrial mutation rates can reduce nuclear compensation by increasing mtDNA rectification, while substitutions in initially compatible nuclear gene are boosted. Finally, the presence of incompatibilities accelerates species radiation, but equilibrium richness is not directly correlated to substitution rates, revealing the complex dynamics triggered by mitochondrial introgression and mito-nuclear coevolution. Our study provides a perspective on nuclear compensation and the role of mito-nuclear incompatibilities in speciation by exploring extreme scenarios and identifying trends that empirical data alone cannot reveal. We emphasize the challenges in detecting these dynamics and propose analyzing specific genomic signatures could shed light on this evolutionary process.

摘要

线粒体功能依赖于线粒体和核基因的协调表达,尽管线粒体突变率很高,但仍表现出显著的弹性。核补偿机制表明,有害的线粒体等位基因驱动补偿性核突变,以保持线粒体-核的兼容性。然而,由于其相互矛盾的证据,这种现象的普遍性和条件因素仍然存在争议。在这里,我们研究了线粒体-核不兼容如何影响物种辐射模型中的替代。交配成功取决于遗传兼容性(核 DNA)和空间接近性。种群从部分兼容的线粒体-核状态进化而来,模拟线粒体 DNA(mtDNA)的渗入。突变既没有优势也没有劣势,但个体生育力随着不兼容性的增加而下降,选择了线粒体-核协调。我们发现,线粒体-核兼容性的选择对每个基因组的影响因初始状态而异。在兼容的基因对中,选择减少了两个基因组中的替代,而在不兼容的核基因中,它始终通过更多的不匹配促进补偿。有趣的是,高线粒体突变率可以通过增加 mtDNA 校正来减少核补偿,而最初兼容的核基因的替代则得到了增强。最后,不兼容性的存在加速了物种辐射,但平衡丰富度与替代率没有直接相关性,揭示了由线粒体渗入和线粒体-核共同进化引发的复杂动态。我们的研究通过探索极端情景并确定仅凭经验数据无法揭示的趋势,为核补偿和线粒体-核不兼容性在物种形成中的作用提供了一个视角。我们强调了检测这些动态的挑战,并提出分析特定基因组特征可以揭示这一进化过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a790/11494290/142e40044a13/pnas.2411672121fig01.jpg

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