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线粒体甲基化与尼罗罗非鱼的两性异形生长有关。

Mitochondrial methylation is linked to sexually dimorphic growth in Nile tilapia ().

作者信息

Tripathy Partha Sarathi, Siriyappagouder Prabhugouda, Nedoluzhko Artem Valeryevich, Konstantinidis Ioannis, Dash Soumya Shephalika, Behera Bijay Kumar, Parhi Janmejay, Skjærven Kaja, Piferrer Francesc, Fernandes Jorge Manuel de Oliveira

机构信息

Faculty of Biosciences and Aquaculture, Nord University, Bodø, Norway.

College of Fisheries, Rani Lakshmi Bai Central Agricultural University, Jhansi, Uttar Pradesh, India.

出版信息

Front Cell Dev Biol. 2025 Aug 5;13:1643817. doi: 10.3389/fcell.2025.1643817. eCollection 2025.

Abstract

For aquaculture to be sustainable, it is very important to improve the growth rates of farmed fish by choosing the right species and their management. However, the integration of epigenetic markers in selective breeding programs remains underdeveloped, mainly due to limited understanding, particularly regarding DNA methylation's heritability and its functional impact on growth traits. This gap is even more pronounced in mitochondrial epigenetics, despite mitochondria's critical role in energy production and growth regulation, making it an important but underexplored area in aquaculture breeding strategies. The present study aimed to explore the relationship between differential mitogenome methylation and its role in growth rates and sexual dimorphism in Nile tilapia (). Nanopore sequencing was employed to compare mtDNA methylation patterns between fast- and slow-growing individuals, as well as between sexes. We found significant differences in mtDNA methylation, with males exhibiting higher growth rates and distinct methylation patterns in genes related to the electron transport chain, such as , and . This suggests a link between mitochondrial function and growth. Moreover, several differentially methylated sites were identified, including hypomethylation in genes associated with oxidative phosphorylation, which correlated with increased growth. Notably, larger individuals showed significant hypomethylation in , and , potentially enhancing ATP production. The differentially methylated positions across mitogenome may drive enhanced growth by optimizing mitochondrial function for higher energy output. Our study provides valuable insights for selective breeding programs to enhance growth traits, emphasizing the need for future research on the functional role of these epigenetic changes in sustainable aquaculture.

摘要

为了使水产养殖具有可持续性,通过选择合适的物种及其管理方式来提高养殖鱼类的生长速度非常重要。然而,表观遗传标记在选择性育种计划中的整合仍不发达,主要是由于了解有限,特别是关于DNA甲基化的遗传性及其对生长性状的功能影响。尽管线粒体在能量产生和生长调节中起着关键作用,但在水产养殖育种策略中,线粒体表观遗传学方面的这一差距更为明显,这使其成为一个重要但未被充分探索的领域。本研究旨在探讨尼罗罗非鱼有丝分裂基因组甲基化差异与其在生长速度和性别二态性中的作用之间的关系。采用纳米孔测序技术比较快速生长和缓慢生长个体之间以及不同性别之间的线粒体DNA甲基化模式。我们发现线粒体DNA甲基化存在显著差异,雄性个体表现出较高的生长速度,并且在与电子传递链相关的基因(如 、 和 )中具有独特的甲基化模式。这表明线粒体功能与生长之间存在联系。此外,还鉴定出了几个差异甲基化位点,包括与氧化磷酸化相关基因的低甲基化,这与生长增加相关。值得注意的是,较大的个体在 、 和 中表现出显著的低甲基化,这可能会增强ATP的产生。有丝分裂基因组中差异甲基化的位置可能通过优化线粒体功能以实现更高的能量输出从而促进生长。我们的研究为选择性育种计划以增强生长性状提供了有价值的见解,强调了未来对这些表观遗传变化在可持续水产养殖中的功能作用进行研究的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b10f/12361127/108648594966/fcell-13-1643817-g001.jpg

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