Cheng Jiaheng, Lei Huangtao, Xie Chunlin, Chen Jianwei, Yi Xinyu, Zhao Fang, Yuan Yushan, Chen Peng, He Jingyi, Luo Chenglong, Shu Dingming, Qu Hao, Ji Jian
State Key Laboratory of Livestock and Poultry Breeding, Guangdong Key Laboratory of Animal Breeding and Nutrition, Institute of Animal Science, Guangdong Academy of Agricultural Sciences, Guangzhou, China.
BGI-Shenzhen, Shenzhen, China.
Microbiol Spectr. 2023 Mar 14;11(2):e0479922. doi: 10.1128/spectrum.04799-22.
Chickens have been used as a valuable and traditional model for studies on basic immunology. B lymphocytes were first identified in the bursa of Fabricius (BF) of broilers. The microbiota is important for immune system development and function. However, the effect of the microbiota on mediating B cell development and its regulatory mechanism is poorly elucidated. Here, we show that the gut microbiota is associated with the development of bursal B cells in young chickens. Changing patterns of both the alpha diversity and the expression of the B cell marker Bu-1α in the gut microbiota were related to the ages of chickens at different growth phases. Further correlation analysis revealed the marked correlation between the relative abundances of , , , , , Campylobacter, and and the expression of Bu-1α. In antibiotic-treated chickens, BF and B cell development had aberrations as the relative abundance of the microbiota in early life decreased. These findings were consistent with Spearman's correlation results. Single-cell transcriptome analysis indicated that the heterogeneity in the cellular composition and developmental trajectory of bursal B cells from antibiotic-treated chickens was large. We found a novel subpopulation of unnamed B cells and identified Taf1 as a new pivotal regulator of B cell lineage differentiation. Therefore, we provide novel insights into the regulatory role of the gut microbiota in B cell development in early life and the maturation of host humoral immunity. In this study, we used young broilers to investigate the relationship between their gut microbiota and bursal B cell development. We characterized the important variables, microbes, B cells, and immunoglobulins during the posthatch development of birds. We also identified several candidate taxa in the cecal contents associated with B cells. Our study provides a rich resource and cell-cell cross talk model supporting B cell differentiation from the bursa at single-cell resolution. Furthermore, we determined a new pivotal regulator (Taf1) of B cell differentiation. We believe that our study makes a significant contribution to the literature because our findings may elucidate the role of the gut microbiota in B cell differentiation. This study also serves as a basis for developing new strategies that modulate B cell differentiation to prevent diseases.
鸡已被用作基础免疫学研究的一种有价值的传统模型。B淋巴细胞最初是在肉鸡的法氏囊中被发现的。微生物群对免疫系统的发育和功能很重要。然而,微生物群对介导B细胞发育的影响及其调控机制尚不清楚。在这里,我们表明肠道微生物群与幼鸡法氏囊B细胞的发育有关。肠道微生物群中α多样性和B细胞标志物Bu-1α表达的变化模式与不同生长阶段鸡的年龄有关。进一步的相关性分析揭示了[具体微生物名称1]、[具体微生物名称2]、[具体微生物名称3]、[具体微生物名称4]、[具体微生物名称5]、弯曲杆菌和[具体微生物名称6]的相对丰度与Bu-1α表达之间的显著相关性。在抗生素处理的鸡中,随着早期生命中微生物群相对丰度的降低,法氏囊和B细胞发育出现异常。这些发现与斯皮尔曼相关性结果一致。单细胞转录组分析表明,抗生素处理鸡的法氏囊B细胞在细胞组成和发育轨迹上的异质性很大。我们发现了一个新的未命名B细胞亚群,并确定Taf1是B细胞谱系分化的一个新的关键调节因子。因此,我们为肠道微生物群在早期生命中B细胞发育和宿主体液免疫成熟中的调节作用提供了新的见解。在本研究中,我们使用幼肉鸡来研究它们的肠道微生物群与法氏囊B细胞发育之间的关系。我们对鸟类孵化后发育过程中的重要变量、微生物、B细胞和免疫球蛋白进行了表征。我们还在盲肠内容物中鉴定了几个与B细胞相关的候选分类群。我们的研究提供了丰富的资源和细胞间相互作用模型,以单细胞分辨率支持法氏囊中B细胞的分化。此外,我们确定了B细胞分化的一个新的关键调节因子(Taf1)。我们相信我们的研究对文献做出了重大贡献,因为我们的发现可能阐明肠道微生物群在B细胞分化中的作用。本研究也为开发调节B细胞分化以预防疾病的新策略奠定了基础。