胡萝卜基因型的根渗出和根圈微生物组合受植物新性状多样性的影响

IF 9.8 1区 农林科学 Q1 SOIL SCIENCE Soil Biology & Biochemistry Pub Date : 2024-07-08 DOI:10.1016/j.soilbio.2024.109516
Hannah M. Anderson , Grace A. Cagle , Erica L.-W. Majumder , Erin Silva , Julie Dawson , Philipp Simon , Zachary B. Freedman
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引用次数: 0

摘要

根渗出物的组成可影响根圈微生物的招募,并受到植物遗传学的严格控制。然而,很少有研究对蔬菜作物的根系渗出物进行分析,或确定它们在根瘤菌群落和代谢物组成中的作用。此外,人们也不太了解根系渗出物和由此产生的根圈动态是如何随着植物性状多样性和新型作物基因型的发展而变化的。为了填补这些知识空白,本研究将代谢组学和微生物组分析结合起来,以评估不同育种历史的四种有机胡萝卜基因型(包括两种实验基因型)的渗出物组成、土壤细菌和真菌群落以及土壤代谢物之间的关联。植物基因型改变了土壤微生物多样性和组成,并对细菌类群进行了不同程度的招募。细菌从大块土壤根瘤菌层的招募是由基因型和根渗出物介导的,而真菌的招募则不是。此外,与所测试的其他基因型相比,一种传代基因型和一种新型抗线虫基因型的根渗出物组成也有所不同。根部渗出物和根圈代谢物的组成是分离的,土壤代谢物与真菌群落的关系比与细菌群落的关系更密切。综上所述,本研究的结果表明,新型作物性状多样性和育种历史通过根外渗介导的植物-微生物相互作用的多样化,对土壤的功能潜力产生了影响。
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Root exudation and rhizosphere microbial assembly are influenced by novel plant trait diversity in carrot genotypes

Root exudate composition can influence rhizosphere microbial recruitment and is tightly controlled by plant genetics. However, little research has profiled root exudate in vegetable crops or determined their role in rhizosphere microbial community and metabolite composition. It is also not well understood how root exudates and resulting rhizosphere dynamics shift across plant trait diversity and with the development of novel crop genotypes. To address these knowledge gaps, this study paired metabolomics and microbiome analyses to evaluate associations between the composition of exudates, soil bacterial and fungal communities, and soil metabolites across four genotypes of organically produced carrot of differential breeding histories, including two experimental genotypes. Plant genotypes modified soil microbial diversity and composition, and differentially recruited bacterial taxa. Bacterial rhizosphere recruitment from bulk soil was genotype and root exudate-mediated, while fungal recruitment was not. Moreover, root exudate composition was distinct in an heirloom genotype and a novel nematode resistant genotype, compared to other genotypes tested. Root exudate and rhizosphere metabolite composition was decoupled, and soil metabolites more strongly associated with fungal than bacterial communities. Taken together, the results of this study suggest that novel crop trait diversity and breeding histories hold consequences for the functional potential of soils through the diversification of root exudate mediated plant-microbe interactions.

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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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