胆汁酸7α-去羟基化细菌加速结肠损伤诱导的粘膜愈合。

IF 9 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
EMBO Molecular Medicine Pub Date : 2025-05-01 Epub Date: 2025-03-10 DOI:10.1038/s44321-025-00202-w
Antoine Jalil, Alessia Perino, Yuan Dong, Jéromine Imbach, Colin Volet, Eduard Vico-Oton, Hadrien Demagny, Lucie Plantade, Hector Gallart-Ayala, Julijana Ivanisevic, Rizlan Bernier-Latmani, Siegfried Hapfelmeier, Kristina Schoonjans
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引用次数: 0

摘要

在肠道疾病中,由于微生物群失调,宿主-微生物群的交流经常受到干扰,导致细菌代谢物的产生改变。其中,7α-去羟基胆汁酸在炎症性肠病患者中明显减少。在此,我们研究了7α-去羟基化梭状芽胞杆菌(Clostridium scindens)对7α-去羟基化胆汁酸水平的恢复是否可以重建结肠损伤后肠上皮的稳态。在给予科学梭状芽胞杆菌后,小鼠接受化学诱导的实验性结肠炎。定殖促进了7α-去羟化胆汁酸的产生,并通过上皮再生和规范对结肠损伤提供了预防和治疗保护。对人类数据集的计算分析证实,溃疡性结肠炎患者肠道细胞更新和分化存在缺陷,而参与这些途径的基因表达与7α-去羟化胆胆酸水平呈正相关。因此,通过恢复胆汁酸稳态来促进结肠损伤后粘膜愈合,scindens梭菌管理可能是一种有前途的生物治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bile acid 7α-dehydroxylating bacteria accelerate injury-induced mucosal healing in the colon.

Host-microbiome communication is frequently perturbed in gut pathologies due to microbiome dysbiosis, leading to altered production of bacterial metabolites. Among these, 7α-dehydroxylated bile acids are notably diminished in inflammatory bowel disease patients. Herein, we investigated whether restoration of 7α-dehydroxylated bile acids levels by Clostridium scindens, a human-derived 7α-dehydroxylating bacterium, can reestablish intestinal epithelium homeostasis following colon injury. Gnotobiotic and conventional mice were subjected to chemically-induced experimental colitis following administration of Clostridium scindens. Colonization enhanced the production of 7α-dehydroxylated bile acids and conferred prophylactic and therapeutic protection against colon injury through epithelial regeneration and specification. Computational analysis of human datasets confirmed defects in intestinal cell renewal and differentiation in ulcerative colitis patients while expression of genes involved in those pathways showed a robust positive correlation with 7α-dehydroxylated bile acid levels. Clostridium scindens administration could therefore be a promising biotherapeutic strategy to foster mucosal healing following colon injury by restoring bile acid homeostasis.

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来源期刊
EMBO Molecular Medicine
EMBO Molecular Medicine 医学-医学:研究与实验
CiteScore
17.70
自引率
0.90%
发文量
105
审稿时长
4-8 weeks
期刊介绍: EMBO Molecular Medicine is an open access journal in the field of experimental medicine, dedicated to science at the interface between clinical research and basic life sciences. In addition to human data, we welcome original studies performed in cells and/or animals provided they demonstrate human disease relevance. To enhance and better specify our commitment to precision medicine, we have expanded the scope of EMM and call for contributions in the following fields: Environmental health and medicine, in particular studies in the field of environmental medicine in its functional and mechanistic aspects (exposome studies, toxicology, biomarkers, modeling, and intervention). Clinical studies and case reports - Human clinical studies providing decisive clues how to control a given disease (epidemiological, pathophysiological, therapeutic, and vaccine studies). Case reports supporting hypothesis-driven research on the disease. Biomedical technologies - Studies that present innovative materials, tools, devices, and technologies with direct translational potential and applicability (imaging technologies, drug delivery systems, tissue engineering, and AI)
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