Related Experiment Video
Updated: Dec 20, 2025

Genome-wide Analysis of Histone Modifications Distribution using the Chromatin Immunoprecipitation Sequencing Method in Magnaporthe oryzae
Published on: June 2, 2021
MADS-box transcription factor mig1 is required for infectious growth in Magnaporthe grisea
Rahim Mehrabi1, Shengli Ding, Jin-Rong Xu
1Department of Botany and Plant Pathology, Purdue University, West Lafayette, IN 47907, USA.
Abstract:
Magnaporthe grisea is a model fungus for studying fungus-plant interactions. Two mitogen-activated protein (MAP) kinase genes, PMK1 and MPS1, have been implicated in regulating plant infection processes in M. grisea. However, transcription factors activated by these MAP kinases are not well studied. In this study we functionally characterized the MIG1 gene that encodes a MADS-box transcription factor homologous to Saccharomyces cerevisiae Rlm1. In yeast two-hybrid assays, MIG1 interacts with MPS1, suggesting that MIG1 may function downstream from the MPS1 pathway. The mig1 deletion mutant had a normal growth rate and formed melanized appressoria, but it was nonpathogenic and failed to infect rice leaves through wounds. Appressoria formed by the mig1 mutant developed penetration pegs and primary infectious hyphae, but further differentiation of the secondary infectious hyphae inside live plant cells was blocked. However, the mig1 mutant formed infectious hypha-like structures in heat-killed plant cells or cellophane membranes. In transformants expressing the MIG1-GFP fusion, green fluorescent protein (GFP) signals were not detectable in vegetative hyphae and conidiophores. Mig1-GFP was localized to nuclei in conidia, appressoria, and infectious hyphae. Deletion of the MADS box had no effect on the expression and localization of the MIG1-GFP fusion but eliminated its ability to complement the mig1 mutant. These results suggest that MIG1 may be required for overcoming plant defense responses and the differentiation of secondary infectious hyphae in live plant cells. The MADS-box domain is essential for the function of MIG1 but dispensable for its nuclear localization, which may be associated with the activation of MIG1 by MPS1 during conidiation and plant infection.
Insights
The study identifies MIG1, a transcription factor crucial for Magnaporthe grisea to infect rice plants. MIG1 is essential for differentiating infectious hyphae within live plant cells, likely by helping the fungus overcome plant defenses.
Area of Science:
- Plant Pathology
- Molecular Mycology
- Fungal Genetics
Background:
- Magnaporthe grisea is a model organism for plant-pathogen interactions.
- Mitogen-activated protein (MAP) kinase pathways, including PMK1 and MPS1, regulate M. grisea infection.
- Transcription factors downstream of MAP kinases are not well understood.
Purpose of the Study:
- To functionally characterize the MIG1 gene, a MADS-box transcription factor.
- To investigate the role of MIG1 in the infection process of M. grisea.
- To determine the functional domains of MIG1 essential for its activity.
Main Methods:
- Yeast two-hybrid assays to study protein interactions.
- Gene deletion and complementation to assess mutant phenotypes.
- MIG1-GFP fusion protein expression and localization studies.
- Microscopic analysis of fungal structures and infection processes.
Main Results:
- MIG1 interacts with the MPS1 pathway component.
- Mig1 deletion mutants are nonpathogenic, failing to differentiate secondary infectious hyphae in live plant cells.
- MIG1-GFP localizes to nuclei in various fungal stages, including infectious hyphae.
- The MADS-box domain is essential for MIG1 function but not for nuclear localization.
Conclusions:
- MIG1 is a key transcription factor required for M. grisea pathogenicity.
- MIG1 likely facilitates overcoming plant defenses and differentiating infectious hyphae in live plant cells.
- The MADS-box domain is critical for MIG1's role in fungal infection.
Related Concept Videos
Gene Regulation During Sporulation
Eukaryotic Transcription Inhibitors
Eukaryotic transcription inhibitors usually contain two distinct domains, a...
Master Transcription Regulators

