Identification and functional characterization of the npc-2-like domain containing rust effector protein that

Rajdeep Jaswal1,2, Himanshu Dubey3, Kanti Kiran3

  • 1National Agri-Food Biotechnology Institute (NABI), Mohali, 140306, Punjab, India.

Molecular Biology Reports
|September 5, 2024
PubMed

Insights

This study identifies MD-2-related lipid-recognition (ML) domain proteins in fungi, revealing conserved lipid-binding functions and a novel role for these proteins as effector molecules in plant fungal pathogens, impacting host defense manipulation.

Area of Science:

  • Molecular Biology
  • Mycology
  • Plant Pathology

Background:

  • MD-2-related lipid-recognition (ML/Md-2) domains are crucial for sterol transfer and innate immunity in eukaryotes.
  • A genome-wide survey identified 84 ML genes across 30 fungal species, including plant pathogens.
  • Expansion of the ML gene family was noted in Rhizophagus irregularis, with 33 identified genes.

Purpose of the Study:

  • To conduct a genome-wide survey of ML domain proteins in fungi.
  • To investigate the functional conservation and phylogenetic relationships of fungal ML proteins.
  • To characterize the role of a specific ML protein (Pt5643) from Puccinia triticina in plant-fungal interactions.

Main Methods:

  • Genome-wide gene identification and phylogenetic analysis.
  • Molecular docking studies with cholesterol derivatives.
  • Gene expression analysis (qRT-PCR), subcellular localization (confocal microscopy), and functional complementation in yeast.
  • Programmed cell death assays in Nicotiana species and yeast.

Main Results:

  • Lipid-binding functional conservation was observed between animal and fungal ML proteins.
  • Phylogenetic analysis indicated closer association of Puccinia ML members with insect npc2 proteins.
  • Pt5643, from Puccinia triticina, localized to the cytoplasm and nucleus and functionally complemented yeast npc2 mutants.
  • Overexpression of Pt5643 suppressed programmed cell death induced by BAX, NEP1, and H₂O₂.

Conclusions:

  • ML domain proteins in plant fungal pathogens possess novel functions.
  • These proteins may act as effector molecules involved in manipulating host defense mechanisms.
  • The study highlights the potential of ML proteins as targets for understanding and controlling plant diseases.

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