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A plant genetic network for preventing dysbiosis in the phyllosphere.

Publication ,  Journal Article
Chen, T; Nomura, K; Wang, X; Sohrabi, R; Xu, J; Yao, L; Paasch, BC; Ma, L; Kremer, J; Cheng, Y; Zhang, L; Wang, N; Wang, E; Xin, X-F; He, SY
Published in: Nature
April 2020

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 cad1S205F 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.

Duke Scholars

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Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

April 2020

Volume

580

Issue

7805

Start / End Page

653 / 657

Related Subject Headings

  • Proteobacteria
  • Plant Leaves
  • Plant Immunity
  • Plant Diseases
  • Plant Components, Aerial
  • Phenotype
  • Mutation
  • Microbiota
  • Homeostasis
  • Guanine Nucleotide Exchange Factors
 

Citation

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Chen, T., Nomura, K., Wang, X., Sohrabi, R., Xu, J., Yao, L., … He, S. Y. (2020). A plant genetic network for preventing dysbiosis in the phyllosphere. Nature, 580(7805), 653–657. https://doi.org/10.1038/s41586-020-2185-0
Chen, Tao, Kinya Nomura, Xiaolin Wang, Reza Sohrabi, Jin Xu, Lingya Yao, Bradley C. Paasch, et al. “A plant genetic network for preventing dysbiosis in the phyllosphere.Nature 580, no. 7805 (April 2020): 653–57. https://doi.org/10.1038/s41586-020-2185-0.
Chen T, Nomura K, Wang X, Sohrabi R, Xu J, Yao L, et al. A plant genetic network for preventing dysbiosis in the phyllosphere. Nature. 2020 Apr;580(7805):653–7.
Chen, Tao, et al. “A plant genetic network for preventing dysbiosis in the phyllosphere.Nature, vol. 580, no. 7805, Apr. 2020, pp. 653–57. Epmc, doi:10.1038/s41586-020-2185-0.
Chen T, Nomura K, Wang X, Sohrabi R, Xu J, Yao L, Paasch BC, Ma L, Kremer J, Cheng Y, Zhang L, Wang N, Wang E, Xin X-F, He SY. A plant genetic network for preventing dysbiosis in the phyllosphere. Nature. 2020 Apr;580(7805):653–657.
Journal cover image

Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

April 2020

Volume

580

Issue

7805

Start / End Page

653 / 657

Related Subject Headings

  • Proteobacteria
  • Plant Leaves
  • Plant Immunity
  • Plant Diseases
  • Plant Components, Aerial
  • Phenotype
  • Mutation
  • Microbiota
  • Homeostasis
  • Guanine Nucleotide Exchange Factors