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Updated: Jun 14, 2025

Functional Characterization of RING-Type E3 Ubiquitin Ligases In Vitro and In Planta
Published on: December 5, 2019
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.
Abstract:
The MD-2-related lipid-recognition (ML/Md-2) domain is a lipid/sterol-binding domain that are involved in sterol transfer and innate immunity in eukaryotes. Here we report a genome-wide survey of this family, identifying 84 genes in 30 fungi including plant pathogens. All the studied species were found to have varied ML numbers, and expansion of the family was observed in Rhizophagus irregularis (RI) with 33 genes. The molecular docking studies of these proteins with cholesterol derivatives indicate lipid-binding functional conservation across the animal and fungi kingdom. The phylogenetic studies among eukaryotic ML proteins showed that Puccinia ML members are more closely associated with animal (insect) npc2 proteins than other fungal ML members. One of the candidates from leaf rust fungus Puccinia triticina, Pt5643 was PCR amplified and further characterized using various studies such as qRT-PCR, subcellular localization studies, yeast functional complementation, signal peptide validation, and expression studies. The Pt5643 exhibits the highest expression on the 5th day post-infection (dpi). The confocal microscopy of Pt5643 in onion epidermal cells and N. benthamiana shows its location in the cytoplasm and nucleus. The functional complementation studies of Pt5643 in npc2 mutant yeast showed its functional similarity to the eukaryotic/yeast npc2 gene. Furthermore, the overexpression of Pt5643 also suppressed the BAX, NEP1, and H₂O₂-induced program cell death in Nicotiana species and yeast. Altogether the present study reports the novel function of ML domain proteins in plant fungal pathogens and their possible role as effector molecules in host defense manipulation.
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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