Unveiling the Links Between Microbial Alteration and Host Gene Disarray in Crohn's Disease via TAHMC

IF 3.2 3区 生物学 Q3 MATERIALS SCIENCE, BIOMATERIALS
Huijun Chang, Yongshuai Liu, Yue Wang, Lixiang Li, Yijun Mu, Mengqi Zheng, Junfei Liu, Jinghui Zhang, Runze Bai, Yanqing Li, Xiuli Zuo
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Abstract

A compelling correlation method linking microbial communities and host gene expression in tissues is currently absent. A novel pipeline is proposed, dubbed Transcriptome Analysis of Host-Microbiome Crosstalk (TAHMC), designed to concurrently restore both host gene expression and microbial quantification from bulk RNA-seq data. Employing this approach, it discerned associations between the tissue microbiome and host immunity in the context of Crohn's disease (CD). Further, machine learning is utilized to separately construct networks of associations among host mRNA, long non-coding RNA, and tissue microbes. Unique host genes and tissue microbes are extracted from these networks for potential utility in CD diagnosis. Experimental validation of the predicted host gene regulation by microbes from the association network is achieved through the co-culturing of Faecalibacterium prausnitzii with Caco-2 cells. Collectively, the TAHMC pipeline accurately recovers both host gene expression and microbial quantification from CD RNA-seq data, thereby illuminating potential causal links between shifts in microbial composition as well as diversity within CD mucosal tissues and aberrant host gene expression.

Abstract Image

通过 TAHMC 揭示克罗恩病中微生物改变与宿主基因混乱之间的联系。
目前还没有一种将微生物群落与组织中宿主基因表达联系起来的令人信服的相关方法。本研究提出了一种名为 "宿主-微生物群串联转录组分析(TAHMC)"的新方法,旨在从大量 RNA-seq 数据中同时还原宿主基因表达和微生物定量。利用这种方法,该研究发现了克罗恩病(CD)中组织微生物组与宿主免疫之间的关联。此外,还利用机器学习分别构建了宿主 mRNA、长非编码 RNA 和组织微生物之间的关联网络。从这些网络中提取出独特的宿主基因和组织微生物,以用于 CD 诊断。通过将普氏粪杆菌与 Caco-2 细胞共培养,实验验证了关联网络中微生物对宿主基因调控的预测。总之,TAHMC管道从CD RNA-seq数据中准确地恢复了宿主基因表达和微生物定量,从而揭示了CD粘膜组织内微生物组成和多样性的变化与宿主基因表达异常之间的潜在因果联系。
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来源期刊
Advanced biology
Advanced biology Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
6.60
自引率
0.00%
发文量
130
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