Related Experiment Video
Updated: Jan 18, 2026

Purification of High Molecular Weight Genomic DNA from Powdery Mildew for Long-Read Sequencing
Published on: March 31, 2017
A Chromosome-Scale Genome Assembly of the Flax Rust Fungus Reveals the Two Unusually Large Effector Proteins, AvrM3
Jana Sperschneider1, Jian Chen1, Claire Anderson1
1Commonwealth Scientific and Industrial Research Organisation, Canberra, ACT 2601, Australia.
Abstract:
Rust fungi comprise thousands of species, many of which cause disease on important crop plants. The flax rust fungus Melampsora lini has been a model species for the genetic dissection of plant immunity since the 1940s; however, the highly fragmented and incomplete reference genome has so far hindered progress in effector gene discovery. Here, we generated a fully phased, chromosome-scale assembly of the two nuclear genomes of M. lini strain CH5, resolving an additional 320 Mbp of the sequence. The 482-Mbp dikaryotic genome is at least 79% repetitive, with a large proportion (approximately 40%) of the genome comprising young, highly similar transposable elements. The assembly resolves the known effector gene loci, some of which carry complex duplications that were collapsed in the previous assembly. Using a genetic map followed by manual correction of gene models, we identified the AvrM3 and AvrN genes, which encode unusually large fungal effector proteins and trigger defense responses when co-expressed with the corresponding resistance genes. We located the genes linked to the tetrapolar mating system on chromosomes 4 and 9, but in contrast to the cereal rusts that have one pheromone receptor gene per haplotype, in flax rust, three pheromone receptor genes were found, with two of them closely linked on one haplotype. Taken together, we show that a high-quality assembly is crucial for resolving complex gene loci, and given the increasing number of fungal effectors of large size, the commonly applied criterion for effector candidates of being small proteins needs to be reconsidered. [Formula: see text] Copyright © 2025 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.
Insights
A new, high-quality genome assembly for the flax rust fungus (Melampsora lini) improves understanding of plant immunity. This research identifies novel effector genes and reveals complex genomic structures crucial for disease resistance in crops.
Area of Science:
- Plant Pathology
- Genomics
- Mycology
Background:
- Rust fungi, including Melampsora lini, cause significant crop diseases.
- Previous M. lini genome assemblies were fragmented, hindering effector gene discovery and understanding of plant immunity.
Purpose of the Study:
- To generate a high-quality, chromosome-scale genome assembly for M. lini.
- To identify novel effector genes and understand the genetic basis of plant-fungus interactions.
- To investigate the genetic architecture of the mating system in M. lini.
Main Methods:
- Generation of a fully phased, chromosome-scale genome assembly for M. lini strain CH5.
- Analysis of genome repetitiveness and transposable elements.
- Utilizing a genetic map and manual gene model correction to identify effector genes.
- Comparative analysis of mating system genes with other rust fungi.
Main Results:
- A 482-Mbp dikaryotic genome assembly was produced, revealing extensive repetitive regions and transposable elements.
- Complex duplications at effector gene loci were resolved, enabling identification of the AvrM3 and AvrN effector genes.
- Three pheromone receptor genes were identified, with two linked on one haplotype, differing from cereal rusts.
- The study identified unusually large fungal effector proteins.
Conclusions:
- High-quality genome assemblies are essential for resolving complex genetic loci and discovering effector genes.
- The discovery of large effector proteins challenges previous assumptions about effector candidate characteristics.
- This work provides a foundation for further research into M. lini pathogenesis and flax immunity.

