DNA methylation dynamics in the small intestine of egg-selected laying hens along egg production stages.

IF 2.5 4区 生物学 Q3 CELL BIOLOGY
Physiological genomics Pub Date : 2025-03-01 Epub Date: 2025-01-27 DOI:10.1152/physiolgenomics.00063.2024
Siriluck Ponsuksili, Frieder Hadlich, Shuaichen Li, Nares Trakooljul, Henry Reyer, Michael Oster, Yosef Amsalu Abitew, Vera Sommerfeld, Markus Rodehutscord, Klaus Wimmers
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引用次数: 0

Abstract

Decades of artificial selection have markedly enhanced egg production efficiency, yet the epigenetic underpinnings, notably DNA methylation dynamics in the gut, remain largely unexplored. Here, we investigate how breeds and developmental stages influence DNA methylation profiles in laying hens, and their potential relationship to laying performance and gut health. We compared two highly selected laying hen strains, Lohmann Brown-Classic (LB) and Lohmann Selected Leghorn-Classic (LSL), which exhibited similar egg production but divergent physiological, metabolic, and immunological characteristics. Our sampling encompassed key developmental stages: the pullet stage (10 and 16 wk old), peak production (24 and 30 wk old), and later stage (60 wk old) (n = 99; 10 per group), allowing us to elucidate the temporal dynamics of epigenetic regulation. Our findings highlight a crucial window of epigenetic modulation during the prelaying period, characterized by stage-specific methylation alterations and the involvement of predicted transcription factor motifs within methylated regions. This observation was consistent with the expression patterns of DNA methyltransferases (DNMTs), including DNMT1, DNMT3A, and DNMT3B. In addition, a higher methylation level was observed in specific loci or regions in the LSL compared with the LB strain. Notably, we uncover strain-specific differences in methylation levels, particularly pronounced in genomic regions associated with intestinal integrity, inflammation, and energy homeostasis. Our research contributes to the multidisciplinary framework of epigenetics and egg-laying performance, offering valuable implications for poultry production and welfare.NEW & NOTEWORTHY Our study reveals key methylation changes in the jejunum mucosa of laying hens across developmental stages and between strains, with implications for gut health, immune function, and egg production. These findings highlight a crucial role of epigenetic regulation in optimizing performance.

产蛋阶段蛋选蛋鸡小肠DNA甲基化动态。
几十年的人工选择显著提高了产蛋效率,但表观遗传基础,特别是肠道中的DNA甲基化动力学,在很大程度上仍未被探索。在这里,我们研究了蛋鸡的品种和发育阶段如何影响DNA甲基化谱,以及它们与产蛋性能和肠道健康的潜在关系。我们比较了两个精心挑选的产蛋母鸡品系,Lohmann Brown-Classic (LB)和Lohmann LSL- classic (LSL),它们具有相似的产蛋量,但生理、代谢和免疫特性不同。我们的样本涵盖了关键的发育阶段:小鸡阶段(10和16周龄)、高峰生产阶段(24和30周龄)和后期阶段(60周龄)(n=99;每组10个),使我们能够阐明表观遗传调控的时间动态。我们的研究结果强调了产蛋前期表观遗传调控的一个关键窗口,其特征是特定阶段的甲基化改变和甲基化区域内预测的转录因子基序的参与。这一观察结果与DNA甲基转移酶(dnmt)的表达模式一致,包括DNMT1、DNMT3a和DNMT3b。此外,与LB菌株相比,在LSL的特定位点或区域观察到更高的甲基化水平。值得注意的是,我们发现了菌株特异性甲基化水平的差异,特别是在与肠道完整性、炎症和能量稳态相关的基因组区域。我们的研究为表观遗传学和产蛋性能的多学科框架做出了贡献,为家禽生产和福利提供了有价值的启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physiological genomics
Physiological genomics 生物-生理学
CiteScore
6.10
自引率
0.00%
发文量
46
审稿时长
4-8 weeks
期刊介绍: The Physiological Genomics publishes original papers, reviews and rapid reports in a wide area of research focused on uncovering the links between genes and physiology at all levels of biological organization. Articles on topics ranging from single genes to the whole genome and their links to the physiology of humans, any model organism, organ, tissue or cell are welcome. Areas of interest include complex polygenic traits preferably of importance to human health and gene-function relationships of disease processes. Specifically, the Journal has dedicated Sections focused on genome-wide association studies (GWAS) to function, cardiovascular, renal, metabolic and neurological systems, exercise physiology, pharmacogenomics, clinical, translational and genomics for precision medicine, comparative and statistical genomics and databases. For further details on research themes covered within these Sections, please refer to the descriptions given under each Section.
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