甲基化和转录组分析揭示极化巨噬细胞的短期和长期调控反应

IF 4.4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
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引用次数: 0

摘要

巨噬细胞的可塑性使其能够根据环境线索采用不同的功能状态。虽然独特的转录组特征确定了这些状态,但只关注转录会忽视潜在的长期影响。对表观遗传变化的研究可用于了解暂时性刺激是如何产生持久影响的。表观遗传学的改变在巨噬细胞的病理生理学中扮演着重要角色,包括其训练有素的先天免疫力,使其在以后遇到相同病原体或侮辱时能做出更快、更有效的炎症反应。在这项研究中,我们采用了一种多组学方法来阐明基因表达和DNA甲基化之间的相互作用,以探索不同极化环境对巨噬细胞活性的潜在长期影响。我们发现了一组共同的核心基因,这些基因无论暴露于何种类型的环境都会发生不同程度的甲基化,这表明对各种刺激的适应可能存在一种共同的基本机制。功能分析显示,需要快速反应的过程表现出转录组调控,而对长期适应至关重要的功能则表现出转录组和表观遗传水平的共同调控。我们的研究发现了一组与巨噬细胞极化的长期效应有关的新基因。这一发现强调了表观遗传学在阐明巨噬细胞如何建立长期记忆和影响健康结果方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Methylation and transcriptomic profiling reveals short term and long term regulatory responses in polarized macrophages

Macrophage plasticity allows the adoption of distinct functional states in response to environmental cues. While unique transcriptomic profiles define these states, focusing solely on transcription neglects potential long-term effects. The investigation of epigenetic changes can be used to understand how temporary stimuli can result in lasting effects. Epigenetic alterations play an important role in the pathophysiology of macrophages, including their trained innate immunity, enabling faster and more efficient inflammatory responses upon subsequent encounters to the same pathogen or insult. In this study, we used a multi-omics approach to elucidate the interplay between gene expression and DNA-methylation, to explore the potential long-term effects of diverse polarizing environments on macrophage activity. We identified a common core set of genes that are differentially methylated regardless of exposure type, indicating a potential common fundamental mechanism for adaptation to various stimuli. Functional analysis revealed that processes requiring rapid responses displayed transcriptomic regulation, whereas functions critical for long-term adaptations exhibited co-regulation at both transcriptomic and epigenetic levels. Our study uncovers a novel set of genes linked to the long-term effects of macrophage polarization. This discovery underscores the potential of epigenetics in elucidating how macrophages establish long-term memory and influence health outcomes.

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来源期刊
Computational and structural biotechnology journal
Computational and structural biotechnology journal Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
9.30
自引率
3.30%
发文量
540
审稿时长
6 weeks
期刊介绍: Computational and Structural Biotechnology Journal (CSBJ) is an online gold open access journal publishing research articles and reviews after full peer review. All articles are published, without barriers to access, immediately upon acceptance. The journal places a strong emphasis on functional and mechanistic understanding of how molecular components in a biological process work together through the application of computational methods. Structural data may provide such insights, but they are not a pre-requisite for publication in the journal. Specific areas of interest include, but are not limited to: Structure and function of proteins, nucleic acids and other macromolecules Structure and function of multi-component complexes Protein folding, processing and degradation Enzymology Computational and structural studies of plant systems Microbial Informatics Genomics Proteomics Metabolomics Algorithms and Hypothesis in Bioinformatics Mathematical and Theoretical Biology Computational Chemistry and Drug Discovery Microscopy and Molecular Imaging Nanotechnology Systems and Synthetic Biology
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