土壤微生物甲基组:探索表观遗传记忆在驱动土壤非生物遗留效应中的作用的工具

IF 9.8 1区 农林科学 Q1 SOIL SCIENCE Soil Biology & Biochemistry Pub Date : 2025-01-08 DOI:10.1016/j.soilbio.2025.109712
Tom Sizmur , Alexey Larionov
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引用次数: 0

摘要

表观遗传学是一种现象,即在不改变DNA序列的情况下,基因表达可以发生稳定的可遗传变化。DNA甲基化(在特定DNA基序的特定核苷酸上添加甲基)是研究最多的表观遗传机制,在真核和原核细胞中都广泛观察到。我们假设土壤甲基组可能在土壤非生物遗留效应的表现中发挥重要作用,即土壤微生物群落暂时暴露于特定环境条件下会影响未来的土壤微生物功能。这些非生物遗留效应非常重要,因为它们是提供关键生态系统服务以应对全球环境变化的基础。第三代长读测序技术,如太平洋生物科学单分子实时测序(SMRT-seq)和牛津纳米孔测序为研究复杂微生物群落的甲基组异质性提供了机会。同时测量表观遗传、转录和微生物群落组成的变化可能会导致历史环境胁迫的生物标志物的发展,并更好地理解土壤甲基组在土壤微生物群落对未来环境扰动的恢复能力中的作用。因此,在土壤微生物组的多组学分析中加入元表观遗传层以促进我们对土壤非生物遗留效应的认识是及时的。
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The soil microbial methylome: A tool to explore the role of epigenetic memory in driving soil abiotic legacy effects
Epigenetics is a phenomenon whereby a stable hereditable change in gene expression can occur without changing the DNA sequence. DNA methylation (the addition of a methyl group to specific nucleotides in specific DNA motifs) is the most studied epigenetic mechanism and is widely observed in both eukaryotic and prokaryotic cells. We hypothesise that the soil methylome may play an important role in the manifestation of soil abiotic legacy effects, whereby temporary exposure of soil microbial communities to particular environmental conditions influences future soil microbial function. These abiotic legacy effects are important because they underpin the delivery of key ecosystem services in response to global environmental change. Third generation long-read sequencing technologies, such as Pacific Bioscience Single-Molecule Real-Time sequencing (SMRT-seq) and Oxford Nanopore sequencing provide an opportunity to study methylome heterogeneity in complex microbial communities. The simultaneous measurement of epigenetic, transcriptional, and microbial community composition changes may lead to the development of biomarkers of historic environmental stress and a greater understanding of the role of the soil methylome in the resilience of soil microbial communities to future environmental perturbations. It is therefore timely to add the meta-epigenetic layer to the multi-omics analysis of the soil microbiome to advance our understanding of soil abiotic legacy effects.
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来源期刊
Soil Biology & Biochemistry
Soil Biology & Biochemistry 农林科学-土壤科学
CiteScore
16.90
自引率
9.30%
发文量
312
审稿时长
49 days
期刊介绍: Soil Biology & Biochemistry publishes original research articles of international significance focusing on biological processes in soil and their applications to soil and environmental quality. Major topics include the ecology and biochemical processes of soil organisms, their effects on the environment, and interactions with plants. The journal also welcomes state-of-the-art reviews and discussions on contemporary research in soil biology and biochemistry.
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