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揭开隐藏的世界:丛枝菌根真菌及其调控的核心真菌如何改变大豆根际微生物组的组成和代谢。

Unveiling the hidden world: How arbuscular mycorrhizal fungi and its regulated core fungi modify the composition and metabolism of soybean rhizosphere microbiome.

作者信息

Yang Minkai, Song Yuhang, Ma Hanke, Li Zhenghua, Ding Jiawei, Yin Tongming, Niu Kechang, Sun Shucun, Qi Jinliang, Lu Guihua, Fazal Aliya, Yang Yonghua, Wen Zhongling

机构信息

State Key Laboratory of Pharmaceutical Biotechnology, Institute for Plant Molecular Biology, School of Life Sciences, Nanjing University, Nanjing, 210023, China.

Co-Innovation Center for Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing, 210037, China.

出版信息

Environ Microbiome. 2024 Oct 22;19(1):78. doi: 10.1186/s40793-024-00624-y.

Abstract

BACKGROUND

The symbiosis between arbuscular mycorrhizal fungi (AMF) and plants often stimulates plant growth, increases agricultural yield, reduces costs, thereby providing significant economic benefits. AMF can also benefit plants through affecting the rhizosphere microbial community, but the underlying mechanisms remain unclear. Using Rhizophagus intraradices as a model AMF species, we assessed how AMF influences the bacterial composition and functional diversity through 16 S rRNA gene sequencing and non-targeted metabolomics analysis in the rhizosphere of aluminum-sensitive soybean that were inoculated with pathogenic fungus Nigrospora oryzae and phosphorus-solubilizing fungus Talaromyces verruculosus in an acidic soil.

RESULTS

The inoculation of R. intraradices, N. oryzae and T. verruculosus didn't have a significant influence on the levels of soil C, N, and P, or various plant characteristics such as seed weight, crude fat and protein content. However, their inoculation affected the structure, function and nutrient dynamics of the resident bacterial community. The co-inoculation of T. verruculosus and R. intraradices increased the relative abundance of Pseudomonas psychrotolerans, which was capable of N-fixing and was related to cry-for-help theory (plants signal for beneficial microbes when under stress), within the rhizosphere. R. intraradices increased the expression of metabolic pathways associated with the synthesis of unsaturated fatty acids, which was known to enhance plant resistance under adverse environmental conditions. The inoculation of N. oryzae stimulated the stress response inside the soil environment by enriching the polyene macrolide antifungal antibiotic-producing bacterial genus Streptomyces in the root endosphere and upregulating two antibacterial activity metabolic pathways associated with steroid biosynthesis pathways in the rhizosphere. Although inoculation of pathogenic fungus N. oryzae enriched Bradyrhizobium and increased soil urease activity, it had no significant effects on biomass and N content of soybean. Lastly, the host niches exhibited differences in the composition of the bacterial community, with most N-fixing bacteria accumulating in the endosphere and Rhizobium vallis only detected in the endosphere.

CONCLUSIONS

Our findings demonstrate that intricate interactions between AMF, associated core fungi, and the soybean root-associated ecological niches co-mediate the regulation of soybean growth, the dynamics of rhizosphere soil nutrients, and the composition, function, and metabolisms of the root-associated microbiome in an acidic soil.

摘要

背景

丛枝菌根真菌(AMF)与植物之间的共生关系通常会促进植物生长、提高农业产量、降低成本,从而带来显著的经济效益。AMF还可通过影响根际微生物群落使植物受益,但其潜在机制尚不清楚。我们以根内根孢囊霉作为模式AMF物种,通过16S rRNA基因测序和非靶向代谢组学分析,评估了在酸性土壤中接种致病真菌稻黑孢和溶磷真菌疣孢青霉的铝敏感型大豆根际中,AMF如何影响细菌组成和功能多样性。

结果

接种根内根孢囊霉、稻黑孢和疣孢青霉对土壤碳、氮、磷含量以及种子重量、粗脂肪和蛋白质含量等各种植物特征没有显著影响。然而,它们的接种影响了常驻细菌群落的结构、功能和养分动态。疣孢青霉和根内根孢囊霉共同接种增加了根际中耐冷假单胞菌的相对丰度,该菌能够固氮,且与求救理论(植物在受到胁迫时向有益微生物发出信号)有关。根内根孢囊霉增加了与不饱和脂肪酸合成相关的代谢途径的表达,已知不饱和脂肪酸在不利环境条件下可增强植物抗性。接种稻黑孢通过在根内圈富集产生多烯大环内酯类抗真菌抗生素的链霉菌属,并上调根际中与类固醇生物合成途径相关的两种抗菌活性代谢途径,刺激了土壤环境中的应激反应。虽然接种致病真菌稻黑孢使慢生根瘤菌富集并提高了土壤脲酶活性,但对大豆生物量和氮含量没有显著影响。最后,宿主生态位在细菌群落组成上表现出差异,大多数固氮细菌在内圈积累,仅在内圈检测到瓦利斯根瘤菌。

结论

我们的研究结果表明,在酸性土壤中,AMF、相关核心真菌与大豆根相关生态位之间复杂的相互作用共同介导了大豆生长的调节、根际土壤养分动态以及根相关微生物群落的组成、功能和代谢。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d32/11494790/5e4c7e2c8d6a/40793_2024_624_Fig1_HTML.jpg

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