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Yildirir, G.

Publications and source records attributed to Yildirir, G..

3 recordsLinked to original sources

Resolving the haplotypes of arbuscular mycorrhizal fungi highlights the role of two nuclear populations in host interactions

Arbuscular mycorrhizal fungi (AMF) are prominent root symbionts with a multinucleate cytoplasm that can carry thousands of nuclei deriving from two parental strains and varying in relative abundance in a large syncytium. Here, we set out to improve our understanding of such remarkable genetics by resolving the nuclear genomes of all publicly available AMF heterokaryons using PacBio HiFi and Hi-C sequencing. We find that all AMF heterokaryons carry two sets of homologous chromosomes, where genes associated with plant colonization reside in gene-sparse, repeat-rich compartments. The co-existing nuclear genomes are phylogenetically related but differ significantly in content and epigenetics, resulting in nucleus-specific regulatory programs during mycorrhizal interactions. AMF heterokaryons carry signatures of past genetic exchange indicative of sexual reproduction, followed by clonal haplotype evolution. This work uncovers the contribution and origin of nuclear genomes present in AMF heterokaryons and opens avenues for improvement and environmental application of these strains.

genomics↗

A highly contiguous genome assembly reveals sources of genomic novelty in the symbiotic fungus Rhizophagus irregularis

The root systems of most plant species are aided by the soil foraging capacities of symbiotic Arbuscular Mycorrhizal (AM) fungi of the Glomeromycotina subphylum. Despite recent advances in our knowledge of the ecology and molecular biology of this mutualistic symbiosis, our understanding of the AM fungi genome biology is just emerging. Presented here are the most contiguous and highest-quality nuclear and mitochondrial genome assemblies of an arbuscular mycorrhizal fungus to date, achieved through Nanopore long-read DNA sequencing and Hi-C data. This haploid genome assembly of Rhizophagus irregularis, alongside short- and long-read RNA-Sequencing data, was used to produce a comprehensive annotation catalogue of gene models, repetitive elements, small RNA loci, and DNA cytosine methylome. A phylostratigraphic gene age inference framework revealed that the birth of genes associated with nutrient transporter activity and transmembrane ion transport systems predates the emergence of Glomeromycotina. While symbiotic nutrient cycling in AM fungi relies on genes that existed in ancestor lineages, a burst of Glomeromycotina-restricted genetic innovation is also detected. Analysis of the chromosomal distribution of genetic and epigenetic features highlights evolutionarily young genomic regions that produce abundant small RNAs, suggesting active RNA-based monitoring of genetic sequences surrounding recently evolved genes. This chromosome-scale view of the genome of an AM fungus genome reveals previously unexplored sources of genomic novelty in an organism evolving under an obligate symbiotic life cycle. HighlightsO_LIAssembly of 32 highly contiguous chromosomal scaffolds for R. irregularis, with 23 complete and gapless C_LIO_LIGene annotation based on short- and long-read RNA-Seq data from different developmental stages C_LIO_LIComplete annotation set including mitochondrial genes, DNA methylome, small RNAome, repetitive/transposable elements, functional annotation C_LIO_LIIdentification of a burst of lineage-restricted genetic innovation in the Glomeromycotina subphylum C_LI

genomics↗

Long reads and Hi-C sequencing illuminate the two-compartment genome of the model arbuscular mycorrhizal symbiont Rhizophagus irregularis

Chromosome folding links genome structure with gene function by generating distinct nuclear compartments and topologically associating domains (TADs). In mammals, these undergo preferential interactions and regulate gene expression. However, their role in fungal genome biology is unclear. Here, we combine Nanopore (ONT) sequencing with chromatin conformation capture sequencing (Hi-C) to reveal chromosome and epigenetic diversity in a group of obligate plant symbionts; the arbuscular mycorrhizal fungi (AMF). We find that five phylogenetically distinct strains of the model AMF Rhizophagus irregularis carry 33 chromosomes with substantial within species variability in size, as well as in gene and repeat content. Strain-specific Hi-C contact maps all reveal a checkerboard pattern that underline two dominant euchromatin (A) and heterochromatin (B) compartments. Each compartment differs in the level of gene transcription, regulation of candidate effectors and methylation frequencies. The A-compartment is more gene-dense and contains most core genes, while the B-compartment is more repeat-rich and has higher rates of chromosomal rearrangement. While the B-compartment is transcriptionally repressed, it has significantly more secreted proteins and in planta up-regulated candidate effectors, suggesting a possible host-induced change in chromosome conformation. Overall, this study provides a fine-scale view into the genome biology and evolution of prominent plant symbionts, and opens avenues to study the epigenetic mechanisms that modify chromosome folding during host-microbe interactions.

genomics↗