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土壤本土微生物组和植物基因型协同改变大豆根际微生物组的组装。

Soil indigenous microbiome and plant genotypes cooperatively modify soybean rhizosphere microbiome assembly.

机构信息

Department of Entomology and Plant Pathology, University of Tennessee, 153 Plant Biotechnology Building, 2505 E.J. Chapman Drive, Knoxville, TN, 37996, USA.

Department of Plant Science, University of Tennessee, 252 Ellington Plant Sciences Building, 2431 Joe Johnson Drive, Knoxville, TN, 37996, USA.

出版信息

BMC Microbiol. 2019 Sep 2;19(1):201. doi: 10.1186/s12866-019-1572-x.

Abstract

BACKGROUND

Plants have evolved intimate interactions with soil microbes for a range of beneficial functions including nutrient acquisition, pathogen resistance and stress tolerance. Further understanding of this system is a promising way to advance sustainable agriculture by exploiting the versatile benefits offered by the plant microbiome. The rhizosphere is the interface between plant and soil, and functions as the first step of plant defense and root microbiome recruitment. It features a specialized microbial community, intensive microbe-plant and microbe-microbe interactions, and complex signal communication. To decipher the rhizosphere microbiome assembly of soybean (Glycine max), we comprehensively characterized the soybean rhizosphere microbial community using 16S rRNA gene sequencing and evaluated the structuring influence from both host genotype and soil source.

RESULTS

Comparison of the soybean rhizosphere to bulk soil revealed significantly different microbiome composition, microbe-microbe interactions and metabolic capacity. Soil type and soybean genotype cooperatively modulated microbiome assembly with soil type predominantly shaping rhizosphere microbiome assembly while host genotype slightly tuned this recruitment process. The undomesticated progenitor species, Glycine soja, had higher rhizosphere diversity in both soil types tested in comparison to the domesticated soybean genotypes. Rhizobium, Novosphingobium, Phenylobacterium, Streptomyces, Nocardioides, etc. were robustly enriched in soybean rhizosphere irrespective of the soil tested. Co-occurrence network analysis revealed dominant soil type effects and genotype specific preferences for key microbe-microbe interactions. Functional prediction results demonstrated converged metabolic capacity in the soybean rhizosphere between soil types and among genotypes, with pathways related to xenobiotic degradation, plant-microbe interactions and nutrient transport being greatly enriched in the rhizosphere.

CONCLUSION

This comprehensive comparison of the soybean microbiome between soil types and genotypes expands our understanding of rhizosphere microbe assembly in general and provides foundational information for soybean as a legume crop for this assembly process. The cooperative modulating role of the soil type and host genotype emphasizes the importance of integrated consideration of soil condition and plant genetic variability for future development and application of synthetic microbiomes. Additionally, the detection of the tuning role by soybean genotype in rhizosphere microbiome assembly provides a promising way for future breeding programs to integrate host traits participating in beneficial microbiota assembly.

摘要

背景

植物与土壤微生物之间存在着广泛的互利共生关系,包括养分获取、抵御病原体和耐受胁迫等多种有益功能。进一步深入研究这一系统,有望通过利用植物微生物组提供的多种益处,推进可持续农业的发展。根际是植物与土壤相互作用的界面,是植物防御和根系微生物组招募的第一步。它具有特殊的微生物群落、密集的微生物-植物和微生物-微生物相互作用以及复杂的信号通讯。为了解析大豆(Glycine max)的根际微生物组组装,我们使用 16S rRNA 基因测序全面描述了大豆根际微生物群落,并评估了宿主基因型和土壤来源对其结构的影响。

结果

与土壤相比,大豆根际的微生物群落组成、微生物-微生物相互作用和代谢能力存在显著差异。土壤类型和大豆基因型共同调节根际微生物组的组装,土壤类型主要塑造根际微生物组的组装,而宿主基因型则略微调节这一招募过程。与驯化的大豆基因型相比,在两种测试土壤中,野生祖先种大豆(Glycine soja)的根际多样性更高。根瘤菌、新鞘氨醇单胞菌、苯基杆菌、链霉菌、诺卡氏菌等在大豆根际中无论在何种土壤中都大量富集。共现网络分析显示,主要存在土壤类型效应,以及对关键微生物-微生物相互作用的基因型特异性偏好。功能预测结果表明,不同土壤类型和基因型之间的大豆根际具有趋同的代谢能力,与外来物质降解、植物-微生物相互作用和养分运输相关的途径在根际中大量富集。

结论

本研究全面比较了不同土壤类型和基因型的大豆微生物组,扩展了我们对根际微生物组装的理解,为大豆作为豆科作物的这一组装过程提供了基础信息。土壤类型和宿主基因型的协同调节作用强调了综合考虑土壤条件和植物遗传变异性的重要性,为未来合成微生物组的开发和应用提供了依据。此外,大豆基因型在根际微生物组组装中的调节作用的检测为未来的育种计划提供了一种有前途的方法,即整合参与有益微生物组组装的宿主特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c310/6720100/da43fce4f469/12866_2019_1572_Fig1_HTML.jpg

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