通过myc驱动的精氨酸生物合成的表观遗传调控,肠道内的琥珀酸相乳杆菌减少脂肪积累。

IF 9.2 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Qun Lan, Sui Liufu, Bohe Chen, Kaiming Wang, Wenwu Chen, Lanlin Xiao, Xiaolin Liu, Lei Yi, Jingwen Liu, Xin Xu, Caihong Liu, Mei Liu, Yulong Yin, Haiming Ma
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引用次数: 0

摘要

揭示家畜过度脂肪积累的机制不仅可以保护动物健康,而且可以维持集约化饲养行业的收入。在这项研究中,对129头商品约克郡猪进行了一项全细菌关联研究。研究发现,琥珀酸钠相结杆菌(Phascolarctobacterium succinatutens, P. succinatutens)是低背膘厚(LBF)猪中丰度较高的关键细菌,且与血清精氨酸浓度呈正相关。粪便微生物群移植(FMT)实验证实了琥珀酸假单胞菌在肠道和脂质稳态中的有益作用。给小鼠服用琥珀酸甘肽抑制了体重增加,减少了脂肪细胞大小,减轻了肠道炎症的加重,并提高了循环精氨酸水平。丙酸是琥珀酸拟南芥产生的主要代谢物,在上述作用中起重要作用。在机制上,我们发现P.琥珀酸酯产生的丙酸通过抑制TLR4信号级联来减轻结肠炎症。重要的是,丙酸被发现通过抑制内含子区域附近MYC的染色质可及性来刺激精氨酸的重新合成。最后,我们发现P. succinatutens诱导的精氨酸增加通过抑制PI3K/Akt/FOXO3a信号通路减少脂肪沉积。我们的工作为益生菌介导的抗肥胖作用的表观遗传调控提供了新的见解,并强调了琥珀酸假单胞菌在对抗商品猪过度肥胖方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gut-resident Phascolarctobacterium succinatutens decreases fat accumulation via MYC-driven epigenetic regulation of arginine biosynthesis.

Uncovering the mechanisms of excessive fat accumulation in livestock can not only protect animal health but also maintain the revenue of the intensive feeding industry. In this study, a bacteria-wide association study was conducted in a cohort of 129 commercial Yorkshire pigs. We found that Phascolarctobacterium succinatutens (P. succinatutens) was a key bacterium with greater abundance in low backfat thickness (LBF) pigs and was positively correlated with serum arginine concentrations. Fecal microbiota transplantation (FMT) experiment verified the beneficial roles of P. succinatutens in intestinal and lipid homeostasis. Administration of P. succinatutens in mice curbed weight gain, reduced adipocyte size, attenuated gut inflammation aggravation, and elevated circulating arginine levels. Propionate, a main metabolite produced by P. succinatutens, played a significant role in the above effects. Mechanistically, we indicated that P. succinatutens-generated propionate alleviated colonic inflammation by inhibiting the TLR4 signaling cascade. Importantly, propionate was found to stimulate the de novo synthesis of arginine by inhibiting the chromatin accessibility of MYC near the intron region. Finally, we found that the increase of arginine induced by P. succinatutens reduced fat deposition by suppressing the PI3K/Akt/FOXO3a signaling pathway. Our work provides novel insights into the epigenetic regulation of probiotic-mediated anti-obesity effects and highlights the potential of P. succinatutens in combating excessive obesity in commercial pigs.

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来源期刊
npj Biofilms and Microbiomes
npj Biofilms and Microbiomes Immunology and Microbiology-Microbiology
CiteScore
12.10
自引率
3.30%
发文量
91
审稿时长
9 weeks
期刊介绍: npj Biofilms and Microbiomes is a comprehensive platform that promotes research on biofilms and microbiomes across various scientific disciplines. The journal facilitates cross-disciplinary discussions to enhance our understanding of the biology, ecology, and communal functions of biofilms, populations, and communities. It also focuses on applications in the medical, environmental, and engineering domains. The scope of the journal encompasses all aspects of the field, ranging from cell-cell communication and single cell interactions to the microbiomes of humans, animals, plants, and natural and built environments. The journal also welcomes research on the virome, phageome, mycome, and fungome. It publishes both applied science and theoretical work. As an open access and interdisciplinary journal, its primary goal is to publish significant scientific advancements in microbial biofilms and microbiomes. The journal enables discussions that span multiple disciplines and contributes to our understanding of the social behavior of microbial biofilm populations and communities, and their impact on life, human health, and the environment.
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