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长林奈氏菌(Mortierellaceae)刺激拟南芥地上生长和对生长素、乙烯和活性氧的反应。

Linnemannia elongata (Mortierellaceae) stimulates Arabidopsis thaliana aerial growth and responses to auxin, ethylene, and reactive oxygen species.

机构信息

Department of Microbiology & Molecular Genetics, Michigan State University, East Lansing, Michigan, United States of America.

Department of Plant Biology, Michigan State University, East Lansing, Michigan, United States of America.

出版信息

PLoS One. 2022 Apr 12;17(4):e0261908. doi: 10.1371/journal.pone.0261908. eCollection 2022.

Abstract

Harnessing the plant microbiome has the potential to improve agricultural yields and protect plants against pathogens and/or abiotic stresses, while also relieving economic and environmental costs of crop production. While previous studies have gained valuable insights into the underlying genetics facilitating plant-fungal interactions, these have largely been skewed towards certain fungal clades (e.g. arbuscular mycorrhizal fungi). Several different phyla of fungi have been shown to positively impact plant growth rates, including Mortierellaceae fungi. However, the extent of the plant growth promotion (PGP) phenotype(s), their underlying mechanism(s), and the impact of bacterial endosymbionts on fungal-plant interactions remain poorly understood for Mortierellaceae. In this study, we focused on the symbiosis between soil fungus Linnemannia elongata (Mortierellaceae) and Arabidopsis thaliana (Brassicaceae), as both organisms have high-quality reference genomes and transcriptomes available, and their lifestyles and growth requirements are conducive to research conditions. Further, L. elongata can host bacterial endosymbionts related to Mollicutes and Burkholderia. The role of these endobacteria on facilitating fungal-plant associations, including potentially further promoting plant growth, remains completely unexplored. We measured Arabidopsis aerial growth at early and late life stages, seed production, and used mRNA sequencing to characterize differentially expressed plant genes in response to fungal inoculation with and without bacterial endosymbionts. We found that L. elongata improved aerial plant growth, seed mass and altered the plant transcriptome, including the upregulation of genes involved in plant hormones and "response to oxidative stress", "defense response to bacterium", and "defense response to fungus". Furthermore, the expression of genes in certain phytohormone biosynthetic pathways were found to be modified in plants treated with L. elongata. Notably, the presence of Mollicutes- or Burkholderia-related endosymbionts in Linnemannia did not impact the expression of genes in Arabidopsis or overall growth rates. Together, these results indicate that beneficial plant growth promotion and seed mass impacts of L. elongata on Arabidopsis are likely driven by plant hormone and defense transcription responses after plant-fungal contact, and that plant phenotypic and transcriptional responses are independent of whether the fungal symbiont is colonized by Mollicutes or Burkholderia-related endohyphal bacteria.

摘要

利用植物微生物组有潜力提高农业产量,保护植物免受病原体和/或非生物胁迫的侵害,同时减轻作物生产的经济和环境成本。虽然以前的研究已经深入了解了促进植物-真菌相互作用的潜在遗传因素,但这些研究主要偏向于某些真菌类群(例如丛枝菌根真菌)。已经证明,包括 Mortierellaceae 真菌在内的几个不同真菌门都能显著影响植物的生长速度。然而,Mortierellaceae 真菌的植物生长促进(PGP)表型及其潜在机制,以及细菌内共生体对真菌-植物相互作用的影响,仍知之甚少。在这项研究中,我们专注于土壤真菌 Linnemannia elongata(Mortierellaceae)与拟南芥(十字花科)之间的共生关系,因为这两种生物都有高质量的参考基因组和转录组,并且它们的生活方式和生长要求有利于研究条件。此外,L. elongata 可以容纳与 Mollicutes 和 Burkholderia 相关的细菌内共生体。这些内共生体在促进真菌-植物共生关系中的作用,包括可能进一步促进植物生长,仍完全未知。我们测量了早期和晚期生命阶段拟南芥的空中生长、种子产量,并使用 mRNA 测序来描述真菌接种时和没有细菌内共生体时植物基因的差异表达。我们发现,L. elongata 改善了空中植物生长、种子质量,并改变了植物转录组,包括上调参与植物激素和“对氧化应激的反应”、“对细菌的防御反应”和“对真菌的防御反应”的基因。此外,还发现用 L. elongata 处理的植物中某些植物激素生物合成途径的基因表达发生了改变。值得注意的是,Linnemannia 中 Mollicutes 或 Burkholderia 相关内共生体的存在并不影响 Arabidopsis 中基因的表达或整体生长速度。总之,这些结果表明,L. elongata 对拟南芥的有益植物生长促进和种子质量影响可能是由植物与真菌接触后植物激素和防御转录反应驱动的,并且植物表型和转录反应独立于真菌共生体是否被 Mollicutes 或 Burkholderia 相关内生细菌定植。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8db3/9004744/bca903a8b6af/pone.0261908.g001.jpg

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