Sun Xiaoxu, Song Benru, Xu Rui, Zhang Miaomiao, Gao Pin, Lin Hanzhi, Sun Weimin
National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China, Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management, Institute of Eco-environmental and Soil Sciences, Guangdong Academy of Sciences, Guangzhou 510650, China.
National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China, Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management, Institute of Eco-environmental and Soil Sciences, Guangdong Academy of Sciences, Guangzhou 510650, China.
J Environ Sci (China). 2021 Jun;104:387-398. doi: 10.1016/j.jes.2020.12.019. Epub 2020 Dec 30.
The plant root-associated microbiomes, including both the rhizosphere and the root endosphere microbial community, are considered as a critical extension of the plant genome. Comparing to the well-studied rhizosphere microbiome, the understanding of the root endophytic microbiome is still in its infancy. Miscanthus sinensis is a pioneering plant that could thrive on metal contaminated lands and holds the potential for phytoremediation applications. Characterizing its root-associated microbiome, especially the root endophytic microbiome, could provide pivotal knowledge for phytoremediation of mine tailings. In the current study, M. sinensis residing in two Pb/Zn tailings and one uncontaminated site were collected. The results demonstrated that the metal contaminant fractions exposed strong impacts on the microbial community structures. Their influences on the microbial community, however, gradually decreases from the bulk soil through the rhizosphere soil and finally to the endosphere, which resulting in distinct root endophytic microbial community structures compared to both the bulk and rhizosphere soil. Diverse members affiliated with the order Rhizobiales was identified as the core microbiome residing in the root of M. sinensis. In addition, enrichment of plant-growth promoting functions within the root endosphere were predicted, suggesting the root endophytes may provide critical services to the host plant. The current study provides new insights into taxonomy and potential functions of the root-associated microbiomes of the pioneer plant, M. sinensis, which may facilitate future phytoremediation practices.
植物根系相关微生物群落,包括根际和根内微生物群落,被认为是植物基因组的重要延伸。与研究充分的根际微生物群落相比,对根内生微生物群落的了解仍处于起步阶段。芒草是一种先锋植物,能够在金属污染土地上茁壮成长,具有植物修复应用潜力。对其根系相关微生物群落,特别是根内生微生物群落进行表征,可为尾矿的植物修复提供关键知识。在本研究中,采集了生长在两个铅锌尾矿和一个未受污染地点的芒草。结果表明,金属污染物组分对微生物群落结构有强烈影响。然而,它们对微生物群落的影响从土体土壤经根际土壤到根内逐渐减弱,这导致与土体和根际土壤相比,根内生微生物群落结构明显不同。与根瘤菌目相关联的多种成员被鉴定为芒草根系中的核心微生物群落。此外,预测根内存在促进植物生长功能富集现象,表明根内生菌可能为宿主植物提供关键服务。本研究为先锋植物芒草根系相关微生物群落的分类和潜在功能提供了新见解,可能有助于未来的植物修复实践。