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解析珍珠粟的根系分泌物、微生物群落和根鞘形成之间的相互作用。

Unraveling the interplay between root exudates, microbiota, and rhizosheath formation in pearl millet.

机构信息

CEA, CNRS, BIAM, Lab Microbial Ecology of the Rhizosphere (LEMiRE), Aix Marseille Univ, 13108, Saint-Paul-Lez-Durance, France.

UniLaSalle, SFR NORVEGE FED 4277, AGHYLE Rouen UP 2018.C101, 3 Rue du Tronquet, 76130, Mont-Saint- Aignan, France.

出版信息

Microbiome. 2024 Jan 3;12(1):1. doi: 10.1186/s40168-023-01727-3.

Abstract

BACKGROUND

The rhizosheath, a cohesive soil layer firmly adhering to plant roots, plays a vital role in facilitating water and mineral uptake. In pearl millet, rhizosheath formation is genetically controlled and influenced by root exudates. Here, we investigated the impact of root exudates on the microbiota composition, interactions, and assembly processes, and rhizosheath structure in pearl millet using four distinct lines with contrasting soil aggregation abilities.

RESULTS

Utilizing 16S rRNA gene and ITS metabarcoding for microbiota profiling, coupled with FTICR-MS metabonomic analysis of metabolite composition in distinct plant compartments and root exudates, we revealed substantial disparities in microbial diversity and interaction networks. The ß-NTI analysis highlighted bacterial rhizosphere turnover driven primarily by deterministic processes, showcasing prevalent homogeneous selection in root tissue (RT) and root-adhering soil (RAS). Conversely, fungal communities were more influenced by stochastic processes. In bulk soil assembly, a combination of deterministic and stochastic mechanisms shapes composition, with deterministic factors exerting a more pronounced role. Metabolic profiles across shoots, RT, and RAS in different pearl millet lines mirrored their soil aggregation levels, emphasizing the impact of inherent plant traits on microbiota composition and unique metabolic profiles in RT and exudates. Notably, exclusive presence of antimicrobial compounds, including DIMBOA and H-DIMBOA, emerged in root exudates and RT of low aggregation lines.

CONCLUSIONS

This research underscores the pivotal influence of root exudates in shaping the root-associated microbiota composition across pearl millet lines, entwined with their soil aggregation capacities. These findings underscore the interconnectedness of root exudates and microbiota, which jointly shape rhizosheath structure, deepening insights into soil-plant-microbe interactions and ecological processes shaping rhizosphere microbial communities. Deciphering plant-microbe interactions and their contribution to soil aggregation and microbiota dynamics holds promise for the advancement of sustainable agricultural strategies. Video Abstract.

摘要

背景

根鞘是一层紧密附着在植物根系上的粘性土壤层,在促进水分和矿物质吸收方面起着至关重要的作用。在珍珠粟中,根鞘的形成受遗传控制,并受根系分泌物的影响。在这里,我们使用四个具有不同土壤团聚能力的独特系,研究了根系分泌物对微生物群落组成、相互作用和组装过程以及珍珠粟根鞘结构的影响。

结果

利用 16S rRNA 基因和 ITS 宏条形码进行微生物群分析,结合不同植物区室和根系分泌物中代谢物组成的 FTICR-MS 代谢组学分析,我们发现微生物多样性和相互作用网络存在显著差异。β-NTI 分析突出了细菌根际周转主要由确定性过程驱动,展示了根组织 (RT) 和根附着土壤 (RAS) 中普遍存在的同质选择。相反,真菌群落受随机过程的影响更大。在大块土壤组装中,确定性和随机机制共同塑造了组成,其中确定性因素发挥了更显著的作用。不同珍珠粟系的茎、RT 和 RAS 的代谢谱反映了它们的土壤团聚水平,强调了固有植物特性对微生物群落组成和 RT 和分泌物中独特代谢谱的影响。值得注意的是,包括 DIMBOA 和 H-DIMBOA 在内的抗菌化合物仅在低团聚系的根系分泌物和 RT 中存在。

结论

这项研究强调了根系分泌物在塑造珍珠粟系根相关微生物群落组成方面的关键作用,这与它们的土壤团聚能力交织在一起。这些发现强调了根分泌物和微生物群之间的相互联系,它们共同塑造了根鞘结构,深入了解了土壤-植物-微生物相互作用以及塑造根际微生物群落的生态过程。解析植物-微生物相互作用及其对土壤团聚和微生物动态的贡献,为可持续农业策略的发展提供了希望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1815/10763007/753e1b3638dc/40168_2023_1727_Fig1_HTML.jpg

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