Synthetic microbial community improves chicken intestinal homeostasis and provokes anti-Salmonella immunity mediated by segmented filamentous bacteria

Meihong Zhang, Suxin Shi, Yimei Feng, Fengwenhui Zhang, Yuxuan Xiao, Xin Li, Xingliang Pan, Yuqing Feng, Dan Liu, Yuming Guo, Yongfei Hu
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Abstract

Applying synthetic microbial communities to manipulate the gut microbiota is a promising manner for reshaping the chicken gut microbial community. However, it remains elusive the role of a designed microbial community in chicken physiological metabolism and immune responses. In this study, we constructed a ten-member synthetic microbial community (SynComBac10) that recapitulated the phylogenetic diversity and functional capability of adult chicken intestinal microbiota. We found that early life SynComBac10 exposure significantly enhanced chicken growth performance and facilitated the maturation of both the intestinal epithelial barrier function and the gut microbiota. Additionally, SynComBac10 promoted the pre-colonization and growth of segmented filamentous bacteria, which in turn induced Th17 cell-mediated immune responses, thereby conferring resistance to Salmonella infection. Through metagenomic sequencing, we assembled the genomes of two distinct species of segmented filamentous bacteria from the chicken gut microbiota, which displayed common metabolic deficiency with segmented filamentous bacteria of other host origins. In silico analyses indicated that the SynComBac10-stimulated early establishment of segmented filamentous bacteria in the chicken intestine was likely through SynComBac10-derived metabolite cross-feeding. Our study demonstrated the pivotal role of a designed microbial consortium in promoting chicken gut homeostasis and anti-infection immunity, providing a new avenue for engineering chicken gut microbiota.
合成菌群改善鸡肠道内稳态,激发分节丝状菌介导的抗沙门氏菌免疫
应用合成微生物群落对肠道菌群进行调控是一种很有前途的改造鸡肠道菌群的方法。然而,设计的微生物群落在鸡生理代谢和免疫反应中的作用仍然是难以捉摸的。在这项研究中,我们构建了一个由10个成员组成的合成微生物群落(SynComBac10),该群落再现了成年鸡肠道微生物群的系统发育多样性和功能能力。我们发现,早期暴露于SynComBac10显著提高了鸡的生长性能,促进了肠上皮屏障功能和肠道微生物群的成熟。此外,SynComBac10促进了分节丝状细菌的预定植和生长,进而诱导Th17细胞介导的免疫反应,从而赋予了对沙门氏菌感染的抵抗力。通过宏基因组测序,我们从鸡肠道微生物群中组装了两种不同种类的分段丝状细菌的基因组,它们与其他宿主来源的分段丝状细菌表现出共同的代谢缺陷。计算机分析表明,syncombac10刺激了鸡肠道中分节丝状细菌的早期建立,可能是通过syncombac10衍生代谢物的交叉饲养。我们的研究证实了设计的微生物联合体在促进鸡肠道内稳态和抗感染免疫中的关键作用,为鸡肠道微生物群的工程化提供了新的途径。
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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