Lateral root enriched Massilia associated with plant flowering in maize.

IF 13.8 1区 生物学 Q1 MICROBIOLOGY
Danning Wang, Xiaoming He, Marcel Baer, Klea Lami, Baogang Yu, Alberto Tassinari, Silvio Salvi, Gabriel Schaaf, Frank Hochholdinger, Peng Yu
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Abstract

Background: Beneficial associations between plants and soil microorganisms are critical for crop fitness and resilience. However, it remains obscure how microorganisms are assembled across different root compartments and to what extent such recruited microbiomes determine crop performance. Here, we surveyed the root transcriptome and the root and rhizosphere microbiome via RNA sequencing and full-length (V1-V9) 16S rRNA gene sequencing from genetically distinct monogenic root mutants of maize (Zea mays L.) under different nutrient-limiting conditions.

Results: Overall transcriptome and microbiome display a clear assembly pattern across the compartments, i.e., from the soil through the rhizosphere to the root tissues. Co-variation analysis identified that genotype dominated the effect on the microbial community and gene expression over the nutrient stress conditions. Integrated transcriptomic and microbial analyses demonstrated that mutations affecting lateral root development had the largest effect on host gene expression and microbiome assembly, as compared to mutations affecting other root types. Cooccurrence and trans-kingdom network association analysis demonstrated that the keystone bacterial taxon Massilia (Oxalobacteraceae) is associated with root functional genes involved in flowering time and overall plant biomass. We further observed that the developmental stage drives the differentiation of the rhizosphere microbial assembly, especially the associations of the keystone bacteria Massilia with functional genes in reproduction. Taking advantage of microbial inoculation experiments using a maize early flowering mutant, we confirmed that Massilia-driven maize growth promotion indeed depends on flowering time.

Conclusion: We conclude that specific microbiota supporting lateral root formation could enhance crop performance by mediating functional gene expression underlying plant flowering time in maize. Video Abstract.

与玉米植株开花有关的侧根丰富的 Massilia。
背景:植物与土壤微生物之间的有益联系对于作物的适应性和抗逆性至关重要。然而,微生物是如何在不同的根系区系中组合的,以及这种被招募的微生物组在多大程度上决定了作物的表现,这些问题仍然不清楚。在此,我们通过 RNA 测序和全长(V1-V9)16S rRNA 基因测序,调查了不同营养限制条件下玉米(Zea mays L.)基因独特的单基因根突变体的根转录组和根及根圈微生物组:结果:总体转录组和微生物组显示出清晰的跨区组模式,即从土壤到根圈再到根组织。共变异分析表明,在营养胁迫条件下,基因型对微生物群落和基因表达的影响占主导地位。转录组和微生物组的综合分析表明,与影响其他根系类型的突变相比,影响侧根发育的突变对宿主基因表达和微生物组组合的影响最大。共生和跨域网络关联分析表明,关键细菌类群 Massilia(牛杆菌科)与涉及开花时间和植物整体生物量的根部功能基因相关。我们进一步观察到,发育阶段推动了根圈微生物组合的分化,特别是基干细菌 Massilia 与繁殖功能基因的关联。通过利用玉米早花突变体进行微生物接种实验,我们证实 Massilia 驱动的玉米生长促进作用确实取决于开花时间:结论:我们得出结论,支持侧根形成的特定微生物群可以通过介导玉米开花时间的功能基因表达来提高作物产量。视频摘要。
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来源期刊
Microbiome
Microbiome MICROBIOLOGY-
CiteScore
21.90
自引率
2.60%
发文量
198
审稿时长
4 weeks
期刊介绍: Microbiome is a journal that focuses on studies of microbiomes in humans, animals, plants, and the environment. It covers both natural and manipulated microbiomes, such as those in agriculture. The journal is interested in research that uses meta-omics approaches or novel bioinformatics tools and emphasizes the community/host interaction and structure-function relationship within the microbiome. Studies that go beyond descriptive omics surveys and include experimental or theoretical approaches will be considered for publication. The journal also encourages research that establishes cause and effect relationships and supports proposed microbiome functions. However, studies of individual microbial isolates/species without exploring their impact on the host or the complex microbiome structures and functions will not be considered for publication. Microbiome is indexed in BIOSIS, Current Contents, DOAJ, Embase, MEDLINE, PubMed, PubMed Central, and Science Citations Index Expanded.
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