SsUbc2, a determinant of pathogenicity, functions as a key coordinator controlling global transcriptomic

Shan Lu1,2, Haoyang Zhang2, Feng Guo3

  • 1State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, Ministry and Province Co-sponsored Collaborative Innovation Center for Sugarcane and Sugar Industry, Nanning, China.

Insights

The kinase regulator gene Ssubc2 is essential for sugarcane smut fungus mating and infection. Deleting Ssubc2 disrupts gene expression, impairing fungal growth and pathogenicity.

Area of Science:

  • * Plant Pathology
  • * Fungal Genetics
  • * Molecular Biology

Background:

  • * Sugarcane smut, caused by *Sporisorium scitamineum*, requires fungal mating for infection.
  • * Mechanisms of mating and pathogenicity in *S. scitamineum* remain poorly understood.
  • * Kinase regulators play crucial roles in fungal development and virulence.

Purpose of the Study:

  • * To investigate the function of the *Ssubc2* gene in *Sporisorium scitamineum* mating and pathogenicity.
  • * To elucidate the role of SsUbc2 in regulating gene expression during fungal development.

Main Methods:

  • * Gene disruption (deletion) of *Ssubc2* in *S. scitamineum*.
  • * Phenotypic analysis of wild-type and mutant strains *in vitro* and *in planta*.
  • * Transcriptome profiling (RNA sequencing) to analyze gene expression changes.

Main Results:

  • * Deletion of *Ssubc2* abolished mating ability and infectivity in *S. scitamineum*.
  • * Mutants lacking *Ssubc2* showed altered global gene expression profiles compared to wild-type strains during mating.
  • * Key mating and pathogenicity genes, including MAPK pathway components, were significantly affected in *Ssubc2* mutants.

Conclusions:

  • * SsUbc2 is a critical regulator coordinating global gene expression reprogramming during mating.
  • * SsUbc2 is essential for the transition from haploid to dikaryotic growth, enabling infection of sugarcane.
  • * Understanding SsUbc2 function provides insights into fungal pathogenicity mechanisms and potential control strategies.