Fungi-Bacteria Associations in Wilt Diseased Rhizosphere and Endosphere by Interdomain Ecological Network Analysis

Lin Tan1, Wei-Ai Zeng2, Yansong Xiao3

  • 1Hunan Agricultural University, Changsha, China.

Frontiers in Microbiology
|September 23, 2021
PubMed

Insights

Bacterial wilt pathogen invasion alters plant fungal communities, increasing complexity in root and stem networks. Certain fungi may resist pathogen Ralstonia solanacearum invasion.

Area of Science:

  • Plant pathology
  • Microbial ecology
  • Plant-microbe interactions

Background:

  • Fungal and bacterial species coexist in plant rhizosphere and endosphere.
  • Knowledge of these co-existence patterns is limited, especially during pathogen invasion.

Purpose of the Study:

  • To survey fungal communities in soil and endophytic compartments during a bacterial wilt disease outbreak.
  • To investigate fungal-bacterial associations and the role of fungi in disease resistance.

Main Methods:

  • Fungal communities were surveyed in soil and endophytic compartments of tobacco plants during a Ralstonia solanacearum outbreak.
  • Inter-Domain Ecological Network (IDEN) approach was used to infer fungal-bacterial associations.
  • Community diversity, structure, and composition were analyzed.

Main Results:

  • Pathogen invasion significantly altered stem endophytic fungal community diversity, structure, and composition.
  • Infected plants exhibited more complex fungal-fungal and fungal-bacterial association networks in both rhizosphere and endosphere.
  • Ralstonia was identified as a keystone genus, negatively correlated with specific fungi like Phoma and Gibberella.

Conclusions:

  • Plant endophytic fungal communities are significantly impacted by bacterial wilt pathogen invasion.
  • Complex interdomain networks suggest intricate microbial interactions during disease.
  • Certain endophytic fungi may play a role in resisting Ralstonia solanacearum invasion.

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