Ruminococcus gnavus and Limosilactobacillus reuteri Regulate Reg3γ Expression through Multiple Pathways.

Zeni E Ramirez, Neeraj K Surana
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Abstract

Epithelium-derived antimicrobial peptides represent an evolutionarily ancient defense mechanism against pathogens. Regenerating islet-derived protein 3 γ (Reg3γ), the archetypal intestinal antimicrobial peptide, is critical for maintaining host-microbe interactions. Expression of Reg3γ is known to be regulated by the microbiota through two different pathways, although it remains unknown whether specific Reg3γ-inducing bacteria act via one or both of these pathways. In recent work, we identified Ruminococcus gnavus and Limosilactobacillus reuteri as commensal bacteria able to induce Reg3g expression. In this study, we show these bacteria require myeloid differentiation primary response protein 88 and group 3 innate lymphoid cells for induction of Reg3γ in mice. Interestingly, we find that R. gnavus and L. reuteri suppress Reg3γ in the absence of either myeloid differentiation primary response protein 88 or group 3 innate lymphoid cells. In addition, we demonstrate that colonization by these bacteria is not required for induction of Reg3γ, which occurs several days after transient exposure to the organisms. Taken together, our findings highlight the complex mechanisms underlying microbial regulation of Reg3γ.

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瘤胃球菌和路氏乳杆菌通过多种途径调节Reg3γ的表达。
上皮来源的抗菌肽代表了一种进化上古老的防御病原体的机制。再生胰岛衍生蛋白3γ(Reg3γ)是典型的肠道抗菌肽,对维持宿主-微生物的相互作用至关重要。已知Reg3γ的表达由微生物群通过两种不同的途径调节,尽管尚不清楚特定的Reg3γ诱导细菌是否通过其中一种或两种途径发挥作用。在最近的工作中,我们鉴定了gnavus瘤胃球菌和路氏乳杆菌为能够诱导Reg3g表达的共生菌。在这项研究中,我们发现这些细菌需要骨髓分化初级反应蛋白88和第3组先天淋巴细胞来诱导小鼠的Reg3γ。有趣的是,我们发现R.gnavus和L.reuteri在缺乏髓系分化初级反应蛋白88或第3组先天淋巴细胞的情况下抑制Reg3γ。此外,我们证明这些细菌的定殖不需要诱导Reg3γ,Reg3γ发生在短暂暴露于生物体几天后。总之,我们的发现突出了Reg3γ的微生物调节的复杂机制。
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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