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A plant genetic network for preventing dysbiosis in the phyllosphere

机译:植物遗传网络,用于预防叶际失调

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Mutations in genes involved in immune signalling and vesicle trafficking cause defects in the leaf microbiome of Arabidopsis thaliana that result in damage to leaf tissues, suggesting mechanisms by which terrestrial plants control the level and diversity of endophytic phyllosphere microbiota.The aboveground parts of terrestrial plants, collectively called the phyllosphere, have a key role in the global balance of atmospheric carbon dioxide and oxygen. The phyllosphere represents one of the most abundant habitats for microbiota colonization. Whether and how plants control phyllosphere microbiota to ensure plant health is not well understood. Here we show that the Arabidopsis quadruple mutant (min7 fls2 efr cerk1; hereafter, mfec)(1), simultaneously defective in pattern-triggered immunity and the MIN7 vesicle-trafficking pathway, or a constitutively activated cell death1 (cad1) mutant, carrying a S205F mutation in a membrane-attack-complex/perforin (MACPF)-domain protein, harbour altered endophytic phyllosphere microbiota and display leaf-tissue damage associated with dysbiosis. The Shannon diversity index and the relative abundance of Firmicutes were markedly reduced, whereas Proteobacteria were enriched in the mfec and cad1(S205F) mutants, bearing cross-kingdom resemblance to some aspects of the dysbiosis that occurs in human inflammatory bowel disease. Bacterial community transplantation experiments demonstrated a causal role of a properly assembled leaf bacterial community in phyllosphere health. Pattern-triggered immune signalling, MIN7 and CAD1 are found in major land plant lineages and are probably key components of a genetic network through which terrestrial plants control the level and nurture the diversity of endophytic phyllosphere microbiota for survival and health in a microorganism-rich environment.
机译:涉及免疫信号传导和囊泡运输的基因突变会导致拟南芥叶片微生物组中的缺陷,从而导致叶片组织受损,这表明陆生植物控制内生叶球微生物群的水平和多样性的机制。统称为叶圈,在大气中二氧化碳和氧气的全球平衡中起着关键作用。叶圈是微生物群落定殖的最丰富的栖息地之一。植物是否以及如何控制叶缘微生物以确保植物健康尚不清楚。在这里,我们显示拟南芥四倍体突变体(min7 fls2 efr cerk1;此后称为mfec)(1),同时在模式触发的免疫力和MIN7囊泡贩运途径或组成性激活的细胞死亡1(cad1)突变体中带有缺陷,膜攻击复合物/穿孔素(MACPF)域蛋白中的S205F突变,改变了内生的叶球微生物群,并显示了与营养不良有关的叶组织损伤。 Shannon多样性指数和Firmicutes的相对丰度显着降低,而变形杆菌在mfec和cad1(S205F)突变体中富集,与人类发炎性肠病中发生的部分病有关。细菌群落移植实验证明,正确组装的叶细菌群落在叶环健康中具有因果关系。模式触发的免疫信号,MIN7和CAD1在主要的陆地植物谱系中发现,可能是遗传网络的关键组成部分,陆生植物通过该遗传网络控制内生的叶球微生物群的水平并培育其多样性,以在富含微生物的环境中生存和健康。

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  • 来源
    《Nature》 |2020年第7805期|653-657|共5页
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    Michigan State Univ Dept Energy Plant Res Lab E Lansing MI 48824 USA|Huazhong Agr Univ State Key Lab Agr Microbiol Wuhan Peoples R China|Michigan State Univ Howard Hughes Med Inst E Lansing MI 48824 USA;

    Michigan State Univ Dept Energy Plant Res Lab E Lansing MI 48824 USA;

    Chinese Acad Sci Inst Plant Physiol & Ecol CAS Ctr Excellence Mol Plant Sci Natl Key Lab Plant Mol Genet Shanghai Peoples R China;

    Michigan State Univ Dept Energy Plant Res Lab E Lansing MI 48824 USA|Michigan State Univ Plant Resilience Inst E Lansing MI 48824 USA;

    Univ Florida Inst Food & Agr Sci Dept Microbiol & Cell Sci Citrus Res & Educ Ctr Lake Alfred FL USA;

    Michigan State Univ Dept Energy Plant Res Lab E Lansing MI 48824 USA|Michigan State Univ Howard Hughes Med Inst E Lansing MI 48824 USA;

    Chinese Acad Sci Inst Plant Physiol & Ecol CAS Ctr Excellence Mol Plant Sci Natl Key Lab Plant Mol Genet Shanghai Peoples R China|Chinese Acad Sci Inst Plant Physiol & Ecol CAS JIC Ctr Excellence Plant & Microbial Sci CEPA Shanghai Peoples R China;

    Michigan State Univ Dept Energy Plant Res Lab E Lansing MI 48824 USA|Michigan State Univ Howard Hughes Med Inst E Lansing MI 48824 USA|Michigan State Univ Plant Resilience Inst E Lansing MI 48824 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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