Uncovering de novo polyamine biosynthesis in the gut microbiome and its alteration in inflammatory bowel disease.

IF 12.2 1区 医学 Q1 GASTROENTEROLOGY & HEPATOLOGY
Gut Microbes Pub Date : 2025-12-01 Epub Date: 2025-02-09 DOI:10.1080/19490976.2025.2464225
Xinwei Li, Xia Xiao, Shengnan Wang, Biyu Wu, Yixuan Zhou, Pan Deng
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Abstract

Polyamines are important gut microbial metabolites known to affect host physiology, yet the mechanisms behind their microbial production remain incompletely understood. In this study, we developed a stable isotope-resolved metabolomic (SIRM) approach to track polyamine biosynthesis in the gut microbiome. Viable microbial cells were extracted from fresh human and mouse feces and incubated anaerobically with [U-13C]-labeled inulin (tracer). Liquid chromatography-high resolution mass spectrometry analysis revealed distinct 13C enrichment profiles for spermidine (SPD) and putrescine (PUT), indicating that the arginine-agmatine-SPD pathway contributes to SPD biosynthesis in addition to the well-known spermidine synthase pathway (PUT aminopropylation). Species differences were observed in the 13C enrichments of polyamines and related metabolites between the human and mouse microbiome. By analyzing the fecal metabolomics and metatranscriptomic data from an inflammatory bowel disease (IBD) cohort, we found significantly higher polyamine levels in IBD patients compared to healthy controls. Further investigations using single-strain SIRM and in silico analyses identified Bacteroides spp. as key contributors to polyamine biosynthesis, harboring essential genes for this process and potentially driving the upregulation of polyamines in IBD. Taken together, this study expands our understanding of polyamine biosynthesis in the gut microbiome and will facilitate the development of precision therapies to target polyamine-associated diseases.

揭示肠道微生物组中从头多胺生物合成及其在炎症性肠病中的改变。
多胺是影响宿主生理的重要肠道微生物代谢物,但其微生物产生背后的机制尚不完全清楚。在这项研究中,我们开发了一种稳定的同位素分解代谢组学(SIRM)方法来跟踪肠道微生物组中多胺的生物合成。从新鲜的人和小鼠粪便中提取活菌细胞,用[U-13C]标记的菊粉(示踪剂)厌氧培养。液相色谱-高分辨率质谱分析显示,亚精胺(SPD)和腐胺(PUT)的13C富集谱明显不同,这表明除了众所周知的亚精胺合成酶途径(PUT氨丙化)外,精氨酸-agmatine-SPD途径也参与了SPD的生物合成。在人类和小鼠微生物组中,多胺和相关代谢物的13C富集程度存在物种差异。通过分析来自炎症性肠病(IBD)队列的粪便代谢组学和亚转录组学数据,我们发现IBD患者的多胺水平明显高于健康对照组。使用单菌株SIRM和计算机分析的进一步研究发现,拟杆菌属是多胺生物合成的关键贡献者,含有该过程的必要基因,并可能推动IBD中多胺的上调。总之,这项研究扩大了我们对肠道微生物群中多胺生物合成的理解,并将促进针对多胺相关疾病的精确治疗的发展。
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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来源期刊
Gut Microbes
Gut Microbes Medicine-Microbiology (medical)
CiteScore
18.20
自引率
3.30%
发文量
196
审稿时长
10 weeks
期刊介绍: The intestinal microbiota plays a crucial role in human physiology, influencing various aspects of health and disease such as nutrition, obesity, brain function, allergic responses, immunity, inflammatory bowel disease, irritable bowel syndrome, cancer development, cardiac disease, liver disease, and more. Gut Microbes serves as a platform for showcasing and discussing state-of-the-art research related to the microorganisms present in the intestine. The journal emphasizes mechanistic and cause-and-effect studies. Additionally, it has a counterpart, Gut Microbes Reports, which places a greater focus on emerging topics and comparative and incremental studies.
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