Research Department of Genetics, Evolution and Environment, University College, Gower Street, London WC1E 6BT, UK.
Biol Lett. 2020 Feb;16(2):20190891. doi: 10.1098/rsbl.2019.0891. Epub 2020 Feb 26.
Organismal fitness is partly determined by how well the nutritional intake matches sex-specific metabolic requirements. Metabolism itself is underpinned by complex genomic interactions involving products from both nuclear and mitochondrial genomes. Products from these two genomes must coordinate how nutrients are extracted, used and recycled, processes vital for fuelling reproduction. Given the complicated nature of metabolism, it is not well understood how the functioning of these two genomes is modulated by nutrients. Here we use nutritional geometry techniques on lines that only differ in their mtDNA, with the aim to understand if there is nutrient-dependent mitochondrial genetic variance for male reproduction. We first find genetic variance for diet consumption, indicating that flies are consuming different amounts of food to meet new physiological requirements. We then find an interaction between mtDNA and diet for fitness, suggesting that the mtDNA plays a role in modulating diet-dependent fitness. Our results enhance our basic understanding of nutritional health and our chimeric genomes.
生物体的适应性部分取决于营养摄入与特定性别代谢需求的匹配程度。代谢本身是由核基因组和线粒体基因组产物之间复杂的基因组相互作用所支撑的。这两个基因组的产物必须协调营养物质的提取、使用和回收,这些过程对繁殖至关重要。鉴于代谢的复杂性,人们并不清楚这两个基因组的功能是如何被营养物质调节的。在这里,我们使用营养几何技术研究了仅在 mtDNA 上存在差异的品系,目的是了解雄性生殖是否存在依赖于营养的线粒体遗传变异。我们首先发现了饮食消耗的遗传变异,这表明果蝇正在消耗不同数量的食物来满足新的生理需求。然后,我们发现了 mtDNA 和饮食之间的相互作用,表明 mtDNA 在调节饮食依赖的适应性方面发挥了作用。我们的研究结果提高了我们对营养健康和嵌合基因组的基本认识。