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潘氏细胞响应微生物信号促进血管生成并调节门脉高压。

Paneth cells promote angiogenesis and regulate portal hypertension in response to microbial signals.

机构信息

Department for Biomedical Research, Hepatology, University of Bern, Switzerland.

Department for Biomedical Research, Hepatology, University of Bern, Switzerland; Inselspital, Hepatology, University of Bern, Switzerland (Clinic of Visceral Surgery and Medicine, Inselspital, Berne, Switzerland).

出版信息

J Hepatol. 2020 Sep;73(3):628-639. doi: 10.1016/j.jhep.2020.03.019. Epub 2020 Mar 20.

Abstract

BACKGROUND & AIMS: Paneth cells (PCs) synthesize and secrete antimicrobial peptides that are key mediators of host-microbe interactions, establishing a balance between intestinal microflora and enteric pathogens. We observed that their number increases in experimental portal hypertension and aimed to investigate the mechanisms by which these cells can contribute to the regulation of portal pressure.

METHODS

We first treated Math1VilcreERT2 mice with tamoxifen to induce the complete depletion of intestinal PCs. Subsequently, we performed partial portal vein or bile duct ligation. We then studied the effects of these interventions on hemodynamic parameters, proliferation of blood vessels and the expression of genes regulating angiogenesis. Intestinal organoids were cultured and exposed to different microbial products to study the composition of their secreted products (by proteomics) and their effects on the proliferation and tube formation of endothelial cells (ECs). In vivo confocal laser endomicroscopy was used to confirm the findings on blood vessel proliferation.

RESULTS

Portal hypertension was significantly attenuated in PC-depleted mice compared to control mice and was associated with a decrease in portosystemic shunts. Depletion of PCs also resulted in a significantly decreased density of blood vessels in the intestinal wall and mesentery. Furthermore, we observed reduced expression of intestinal genes regulating angiogenesis in Paneth cell depleted mice using arrays and next generation sequencing. Tube formation and wound healing responses were significantly decreased in ECs treated with conditioned media from PC-depleted intestinal organoids exposed to intestinal microbiota-derived products. Proteomic analysis of conditioned media in the presence of PCs revealed an increase in factors regulating angiogenesis and additional metabolic processes. In vivo endomicroscopy showed decreased vascular proliferation in the absence of PCs.

CONCLUSIONS

These results suggest that in response to intestinal flora and microbiota-derived factors, PCs secrete not only antimicrobial peptides, but also pro-angiogenic signaling molecules, thereby promoting intestinal and mesenteric angiogenesis and regulating portal hypertension.

LAY SUMMARY

Paneth cells are present in the lining of the small intestine. They prevent the passage of bacteria from the intestine into the blood circulation by secreting substances to fight bacteria. In this paper, we discovered that these substances not only act against bacteria, but also increase the quantity of blood vessels in the intestine and blood pressure in the portal vein. This is important, because high blood pressure in the portal vein may result in several complications which could be targeted with novel approaches.

摘要

背景与目的

潘氏细胞(PCs)合成并分泌抗菌肽,是宿主-微生物相互作用的关键介质,在肠道菌群和肠道病原体之间建立平衡。我们观察到它们在实验性门脉高压症中数量增加,旨在研究这些细胞如何有助于调节门脉压。

方法

我们首先用他莫昔芬处理 Math1VilcreERT2 小鼠以诱导肠道 PCs 的完全耗竭。随后,我们进行部分门静脉或胆管结扎。然后,我们研究了这些干预措施对血流动力学参数、血管增殖和调节血管生成的基因表达的影响。培养肠道类器官并暴露于不同的微生物产物,以研究其分泌产物的组成(通过蛋白质组学)及其对内皮细胞(ECs)增殖和管形成的影响。体内共聚焦激光内镜检查用于确认血管增殖的发现。

结果

与对照组相比,PC 耗竭小鼠的门脉高压显著减轻,并且与门体分流减少相关。PC 耗竭还导致肠壁和肠系膜中的血管密度显著降低。此外,我们使用阵列和下一代测序观察到 Paneth 细胞耗竭小鼠中调节血管生成的肠道基因表达减少。用来自暴露于肠道微生物衍生产物的 PC 耗竭肠道类器官的条件培养基处理的 ECs,其管形成和伤口愈合反应显著降低。存在 PCs 时的条件培养基的蛋白质组分析显示,调节血管生成和其他代谢过程的因子增加。体内内镜检查显示在没有 PCs 的情况下血管增殖减少。

结论

这些结果表明,肠道菌群和微生物衍生因子刺激下,PCs 不仅分泌抗菌肽,还分泌促血管生成信号分子,从而促进肠道和肠系膜血管生成并调节门脉高压。

概述

潘氏细胞存在于小肠的衬里中。它们通过分泌物质来对抗细菌,从而防止细菌从肠道进入血液循环。在本文中,我们发现这些物质不仅可以对抗细菌,还可以增加肠道和门静脉中的血管数量并调节门静脉压。这很重要,因为门静脉高压可能导致多种并发症,可以通过新的方法来靶向治疗。

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