4.6 Article

Powdery Mildews Are Characterized by Contracted Carbohydrate Metabolism and Diverse Effectors to Adapt to Obligate Biotrophic Lifestyle

Journal

FRONTIERS IN MICROBIOLOGY
Volume 9, Issue -, Pages -

Publisher

FRONTIERS MEDIA SA
DOI: 10.3389/fmicb.2018.03160

Keywords

Erysiphales; Oidium heveae; genome; gene family contraction; fatty acids; CSEPs; positive selection; adaptive evolution

Categories

Funding

  1. National Natural Science Foundation of China [31660033, 31560495, 31760499]
  2. Innovation Team of Hainan Natural Science Foundation of China [2016CXTD002]
  3. National Key Basic Research Plan of China [2011CB111612]
  4. National Key R&D Program of China [2018YFD0201105, 2018YFD0201100]
  5. China Agriculture Research System [CARS-34-BC1]
  6. key development plan of Hainan [ZDYF2016208]
  7. Key Research and Development Program of Hainan Province [ZDYF2018240]
  8. scientific research beginning project of Hainan University [kyqd1535]

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Powdery mildew is a widespread plant disease caused by obligate biotrophic fungal pathogens involving species-specific interactions between host and parasite. To gain genomic insights into the underlying obligate biotrophic mechanisms, we analyzed 15 microbial genomes covering powdery and downy mildews and rusts. We observed a genome-wide, massive contraction of multiple gene families in powdery mildews, such as enzymes in the carbohydrate metabolism pathway, when compared with ascomycete phytopathogens, while the fatty acid metabolism pathway maintained its integrity. We also observed significant differences in candidate secreted effector protein (CSEP) families between monocot and dicot powdery mildews, perhaps due to different selection forces. While CSEPs in monocot mildews are likely subject to positive selection causing rapid expansion, CSEP families in dicot mildews are shrinking under strong purifying selection. Our results not only illustrate obligate biotrophic mechanisms of powdery mildews driven by gene family evolution in nutrient metabolism, but also demonstrate how the divergence of CSEPs between monocot and dicot lineages might contribute to species-specific adaption.

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