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Plissonneau, C.

Publications and source records attributed to Plissonneau, C..

3 recordsLinked to original sources

Transposable element insertions shape gene regulation and melanin production in a fungal pathogen

Background\n\nVariation in gene expression contributes to phenotypic diversity within species and adaptation. However, very few cases of adaptive regulatory changes have been reported and the mechanisms underlying variation in gene expression remain largely unexplored. Fungal pathogen genomes are highly plastic and harbour numerous insertions of transposable elements, which can potentially contribute to gene expression regulation. In this work we elucidated how transposable elements contribute to variation of melanin accumulation, a quantitative adaptive trait of fungal pathogens that is involved in survival under stress conditions.\n\nResults\n\nWe demonstrated that differential transcriptional regulation of the gene encoding the transcription factor Zmr1, which controls expression of the genes in the melanin biosynthetic gene cluster, is responsible for variation in melanin accumulation in the fungal plant pathogen Zymoseptoria tritici. We show that differences in melanin levels between two strains of Z. tritici are due to two levels of transcriptional regulation: 1) variation in the promoter sequence of Zmr1, and 2) an insertion of transposable elements upstream of the Zmr1 promoter. Remarkably, independent insertions of transposable elements upstream of Zmr1 occurred in 9% of Z. tritici strains from around the world and negatively regulated Zmr1 expression, contributing to melanin accumulation variation.\n\nConclusions\n\nOur studies demonstrate that different layers of transcriptional control fine-tune the synthesis of melanin. These regulatory mechanisms potentially evolved to balance the fitness costs associated with melanin production against its positive contribution to survival in stressful environments.

molecular biology

A fungal avirulence factor encoded in a highly plastic genomic region triggers partial resistance to septoria tritici blotch

O_LICultivar-strain specificity in the wheat-Zymoseptoria tritici pathosystem determines the infection outcome and is controlled by resistance genes on the host side, of which many have been identified. However, on the pathogen side, the molecular determinants of specificity are largely unknown.\nC_LIO_LIWe used genetic mapping, targeted gene disruption and allele swapping to characterize the recognition of the new avirulence factor Avr3D1. We then combined population genetic and comparative genomic analyses to estimate the evolutionary trajectory of Avr3D1.\nC_LIO_LIAvr3D1 is specifically recognized by cultivars harboring the resistance gene Stb7 and triggers a strong defence response without preventing pathogen infection and reproduction. Avr3D1 resides in a cluster of putative effector genes located in a region populated by independent transposable element insertions. The gene is present in all 132 investigated strains and is highly polymorphic, with a total of 30 different protein variants. We demonstrated that certain amino acid mutations in Avr3D1 led to evasion of recognition.\nC_LIO_LIThese results demonstrate that quantitative resistance and gene-for-gene interactions are not mutually exclusive per se. Location of avirulence genes in highly plastic genomic regions likely facilitates accelerated evolution that enables escape from recognition by resistance proteins.\nC_LI

plant biology

Meiosis leads to pervasive segregation distortion and copy-number variation in accessory chromosomes of the wheat pathogen Zymoseptoria tritici

Meiosis is one of the most conserved molecular processes in eukaryotes. The fidelity of pairing and segregation of homologous chromosomes has a major impact on the proper transmission of genetic information. Aberrant chromosomal transmission can have major phenotypic consequences, yet the mechanisms are poorly understood. Fungi are excellent models to investigate processes of chromosomal transmission, because many species have highly polymorphic genomes that include accessory chromosomes. Inheritance of accessory chromosomes is often unstable and chromosomal losses have little impact on fitness. We analyzed chromosomal inheritance in 477 progeny coming from two crosses of the fungal wheat pathogen Zymoseptoria tritici. For this, we developed a high-throughput screening method based on restriction site associated DNA sequencing (RAD-seq) that generated dense coverage of genetic markers along each chromosome. We identified rare instances of chromosomal duplications (disomy) in core chromosomes. Accessory chromosomes showed high overall frequencies of disomy. Chromosomal rearrangements were found exclusively on accessory chromosomes and were more frequent than disomy. Accessory chromosomes present in only one of the parents in an analyzed cross were inherited at significantly higher rates than the expected 1:1 segregation ratio. Both the chromosome and the parental background had significant impacts on the rates of disomy, losses, rearrangements and segregation distortion. We found that chromosomes with higher sequence similarity and lower repeat content were inherited more faithfully. The large number of rearranged progeny chromosomes identified in this species will enable detailed analyses of the mechanisms underlying chromosomal rearrangement.

evolutionary biology