{"title":"Epigenetic regulation influenced by soil microbiota and nutrients: Paving road to epigenome editing in plants","authors":"Bhavya Doddavarapu , Charu Lata , Jasmine M. Shah","doi":"10.1016/j.bbagen.2024.130580","DOIUrl":null,"url":null,"abstract":"<div><p>Soil is a complex ecosystem that houses microbes and nutrients that are necessary for plant development. Edaphic properties of the soil and environmental conditions influence microbial growth and nutrient accessibility. Various environmental stimuli largely affect the soil microbes and ionic balance, in turn influencing plants. Soil microflora helps decompose organic matter and is involved in mineral uptake. The combination of soil microbes and mineral nutrients notably affects plant growth. Recent advancements have enabled a deeper understanding of plant genetic/molecular regulators. Deficiencies/sufficiencies of soil minerals and microbes also alter plant gene regulation. Gene regulation mediated by epigenetic mechanisms comprises conformational alterations in chromatin structure, DNA/histone modifications, or involvement of small RNAs. Epigenetic regulation is unique due to its potential to inherit without involving alteration of the DNA sequence. Thus, the compilation study of heritable epigenetic changes driven by nutrient imbalances and soil microbes would facilitate understanding this molecular phenomenon in plants. This information can aid in epigenome editing, which has recently emerged as a promising technology for plant non-transgenic/non-mutagenic modification. Potential epigenetic marks induced by biotic and abiotic stresses in plants could be explored as target sites for epigenome editing. This review discusses novel ways of epigenome editing to create epigenome edited plants with desirable and heritable phenotypes. As plants are sessile and in constant exposure to the soil microbiome and nutrients, epigenetic changes induced by these factors could provide more effective, stable and a sustainable molecular solution for crop improvement.</p></div>","PeriodicalId":8800,"journal":{"name":"Biochimica et biophysica acta. General subjects","volume":null,"pages":null},"PeriodicalIF":2.8000,"publicationDate":"2024-02-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Biochimica et biophysica acta. General subjects","FirstCategoryId":"99","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S0304416524000230","RegionNum":3,"RegionCategory":"生物学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"BIOCHEMISTRY & MOLECULAR BIOLOGY","Score":null,"Total":0}
引用次数: 0
Abstract
Soil is a complex ecosystem that houses microbes and nutrients that are necessary for plant development. Edaphic properties of the soil and environmental conditions influence microbial growth and nutrient accessibility. Various environmental stimuli largely affect the soil microbes and ionic balance, in turn influencing plants. Soil microflora helps decompose organic matter and is involved in mineral uptake. The combination of soil microbes and mineral nutrients notably affects plant growth. Recent advancements have enabled a deeper understanding of plant genetic/molecular regulators. Deficiencies/sufficiencies of soil minerals and microbes also alter plant gene regulation. Gene regulation mediated by epigenetic mechanisms comprises conformational alterations in chromatin structure, DNA/histone modifications, or involvement of small RNAs. Epigenetic regulation is unique due to its potential to inherit without involving alteration of the DNA sequence. Thus, the compilation study of heritable epigenetic changes driven by nutrient imbalances and soil microbes would facilitate understanding this molecular phenomenon in plants. This information can aid in epigenome editing, which has recently emerged as a promising technology for plant non-transgenic/non-mutagenic modification. Potential epigenetic marks induced by biotic and abiotic stresses in plants could be explored as target sites for epigenome editing. This review discusses novel ways of epigenome editing to create epigenome edited plants with desirable and heritable phenotypes. As plants are sessile and in constant exposure to the soil microbiome and nutrients, epigenetic changes induced by these factors could provide more effective, stable and a sustainable molecular solution for crop improvement.
土壤是一个复杂的生态系统,其中蕴藏着植物生长所需的微生物和养分。土壤的栽培特性和环境条件影响着微生物的生长和养分的获取。各种环境刺激会在很大程度上影响土壤微生物和离子平衡,进而影响植物。土壤微生物有助于分解有机物,并参与矿物质的吸收。土壤微生物和矿物质养分的结合会对植物生长产生显著影响。近年来的进步使人们对植物基因/分子调节因子有了更深入的了解。土壤矿物质和微生物的缺乏/不足也会改变植物基因调控。由表观遗传机制介导的基因调控包括染色质结构的构象改变、DNA/组蛋白修饰或小核糖核酸的参与。表观遗传调控具有独特性,因为它可以在不改变 DNA 序列的情况下进行遗传。因此,对养分失衡和土壤微生物驱动的可遗传表观遗传变化进行汇编研究,将有助于了解植物中的这一分子现象。这些信息有助于表观基因组编辑,而表观基因组编辑最近已成为植物非转基因/非突变修饰的一项前景广阔的技术。植物中生物和非生物胁迫诱导的潜在表观遗传标记可作为表观基因组编辑的目标位点进行探索。本综述讨论了表观基因组编辑的新方法,以创建具有理想遗传表型的表观基因组编辑植物。由于植物是无柄的,并不断接触土壤微生物群和养分,这些因素诱导的表观遗传变化可为作物改良提供更有效、稳定和可持续的分子解决方案。
期刊介绍:
BBA General Subjects accepts for submission either original, hypothesis-driven studies or reviews covering subjects in biochemistry and biophysics that are considered to have general interest for a wide audience. Manuscripts with interdisciplinary approaches are especially encouraged.