Related Experiment Video
Updated: May 8, 2026

Genome-wide Analysis of Histone Modifications Distribution using the Chromatin Immunoprecipitation Sequencing Method in Magnaporthe oryzae
Published on: June 2, 2021
Is the fungus Magnaporthe losing DNA methylation?
Ken-ichi Ikeda1, Ba Van Vu, Naoki Kadotani
1Laboratory of Cell Function and Structure, Graduate School of Agricultural Science, Faculty of Agriculture, Kobe University, Kobe 657-8501, Japan.
Abstract:
The long terminal repeat retrotransposon, Magnaporthe gypsy-like element (MAGGY), has been shown to be targeted for cytosine methylation in a subset of Magnaporthe oryzae field isolates. Analysis of the F1 progeny from a genetic cross between methylation-proficient (Br48) and methylation-deficient (GFSI1-7-2) isolates revealed that methylation of the MAGGY element was governed by a single dominant gene. Positional cloning followed by gene disruption and complementation experiments revealed that the responsible gene was the DNA methyltransferase, MoDMT1, an ortholog of Neurospora crassa Dim-2. A survey of MAGGY methylation in 60 Magnaporthe field isolates revealed that 42 isolates from rice, common millet, wheat, finger millet, and buffelgrass were methylation proficient while 18 isolates from foxtail millet, green bristlegrass, Japanese panicgrass, torpedo grass, Guinea grass, and crabgrass were methylation deficient. Phenotypic analyses showed that MoDMT1 plays no major role in development and pathogenicity of the fungus. Quantitative polymerase chain reaction analysis showed that the average copy number of genomic MAGGY elements was not significantly different between methylation-deficient and -proficient field isolates even though the levels of MAGGY transcript were generally higher in the former group. MoDMT1 gene sequences in the methylation-deficient isolates suggested that at least three independent mutations were responsible for the loss of MoDMT1 function. Overall, our data suggest that MoDMT1 is not essential for the natural life cycle of the fungus and raise the possibility that the genus Magnaporthe may be losing the mechanism of DNA methylation on the evolutionary time scale.
Insights
DNA methylation of the MAGGY retrotransposon in Magnaporthe oryzae is controlled by the MoDMT1 gene. Loss of MoDMT1 function in some isolates suggests DNA methylation may be declining in the Magnaporthe genus.
Area of Science:
- * Genetics and Epigenetics
- * Molecular Biology
- * Mycology
Background:
- * Cytosine methylation targets the Magnaporthe gypsy-like element (MAGGY) in some Magnaporthe oryzae field isolates.
- * This methylation pattern is inherited, suggesting a genetic basis.
Purpose of the Study:
- * To identify the gene responsible for MAGGY cytosine methylation.
- * To investigate the role of this gene in Magnaporthe development, pathogenicity, and retrotransposon regulation.
- * To explore the evolutionary implications of DNA methylation in the Magnaporthe genus.
Main Methods:
- * Genetic crosses and segregation analysis to map the responsible gene.
- * Positional cloning, gene disruption, and complementation to confirm gene function.
- * Quantitative PCR to assess MAGGY copy number and transcript levels.
- * DNA sequencing to identify mutations in methylation-deficient isolates.
Main Results:
- * A single dominant gene, MoDMT1 (an ortholog of Neurospora crassa Dim-2), controls MAGGY methylation.
- * MoDMT1 is not essential for fungal development or pathogenicity.
- * Methylation-deficient isolates exhibit higher MAGGY transcript levels but similar copy numbers.
- * At least three independent mutations in MoDMT1 cause loss of function.
Conclusions:
- * MoDMT1 is the key gene for MAGGY DNA methylation in M. oryzae.
- * The loss of MoDMT1 function in several isolates suggests DNA methylation may be dispensable and potentially declining in Magnaporthe.
- * This study provides insights into the evolutionary dynamics of epigenetic mechanisms in fungi.
Related Concept Videos
Epigenetic Regulation
X-chromosome...
Epigenetic Regulation
Fungal Phylum Microsporidia
Genomic Imprinting and Inheritance
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
Spreading of Chromatin Modifications
Writers
The writer is an enzyme that can...

