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Dive into the research topics where Joelle Amselem is active.

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Featured researches published by Joelle Amselem.


PLOS Genetics | 2011

Genomic analysis of the necrotrophic fungal pathogens Sclerotinia sclerotiorum and Botrytis cinerea.

Joelle Amselem; Christina A. Cuomo; Jan A. L. van Kan; Muriel Viaud; Ernesto P. Benito; Arnaud Couloux; Pedro M. Coutinho; Ronald P. de Vries; Paul S. Dyer; Sabine Fillinger; Elisabeth Fournier; Lilian Gout; Matthias Hahn; Linda T. Kohn; Nicolas Lapalu; Kim M. Plummer; Jean-Marc Pradier; Emmanuel Quévillon; Amir Sharon; Adeline Simon; Arjen ten Have; Bettina Tudzynski; Paul Tudzynski; Patrick Wincker; Marion Andrew; Véronique Anthouard; Ross E. Beever; Rolland Beffa; Isabelle Benoit; Ourdia Bouzid

Sclerotinia sclerotiorum and Botrytis cinerea are closely related necrotrophic plant pathogenic fungi notable for their wide host ranges and environmental persistence. These attributes have made these species models for understanding the complexity of necrotrophic, broad host-range pathogenicity. Despite their similarities, the two species differ in mating behaviour and the ability to produce asexual spores. We have sequenced the genomes of one strain of S. sclerotiorum and two strains of B. cinerea. The comparative analysis of these genomes relative to one another and to other sequenced fungal genomes is provided here. Their 38–39 Mb genomes include 11,860–14,270 predicted genes, which share 83% amino acid identity on average between the two species. We have mapped the S. sclerotiorum assembly to 16 chromosomes and found large-scale co-linearity with the B. cinerea genomes. Seven percent of the S. sclerotiorum genome comprises transposable elements compared to <1% of B. cinerea. The arsenal of genes associated with necrotrophic processes is similar between the species, including genes involved in plant cell wall degradation and oxalic acid production. Analysis of secondary metabolism gene clusters revealed an expansion in number and diversity of B. cinerea–specific secondary metabolites relative to S. sclerotiorum. The potential diversity in secondary metabolism might be involved in adaptation to specific ecological niches. Comparative genome analysis revealed the basis of differing sexual mating compatibility systems between S. sclerotiorum and B. cinerea. The organization of the mating-type loci differs, and their structures provide evidence for the evolution of heterothallism from homothallism. These data shed light on the evolutionary and mechanistic bases of the genetically complex traits of necrotrophic pathogenicity and sexual mating. This resource should facilitate the functional studies designed to better understand what makes these fungi such successful and persistent pathogens of agronomic crops.


Science | 2010

Genome Expansion and Gene Loss in Powdery Mildew Fungi Reveal Tradeoffs in Extreme Parasitism

Pietro D. Spanu; James Abbott; Joelle Amselem; Timothy A. Burgis; Darren M. Soanes; Kurt Stüber; Emiel Ver Loren van Themaat; J. K. M. Brown; Sarah Butcher; Sarah J. Gurr; Marc-Henri Lebrun; Christopher J. Ridout; Paul Schulze-Lefert; Nicholas J. Talbot; Nahal Ahmadinejad; Christian Ametz; Geraint Barton; Mariam Benjdia; Przemyslaw Bidzinski; Laurence V. Bindschedler; Maike Both; Marin Talbot Brewer; Lance Cadle-Davidson; Molly M. Cadle-Davidson; Jérôme Collemare; Rainer Cramer; Omer Frenkel; Dale I. Godfrey; James Harriman; Claire Hoede

From Blight to Powdery Mildew Pathogenic effects of microbes on plants have widespread consequences. Witness, for example, the cultural upheavals driven by potato blight in the 1800s. A variety of microbial pathogens continue to afflict crop plants today, driving both loss of yield and incurring the increased costs of control mechanisms. Now, four reports analyze microbial genomes in order to understand better how plant pathogens function (see the Perspective by Dodds). Raffaele et al. (p. 1540) describe how the genome of the potato blight pathogen accommodates transfer to different hosts. Spanu et al. (p. 1543) analyze what it takes to be an obligate biotroph in barley powdery mildew, and Baxter et al. (p. 1549) ask a similar question for a natural pathogen of Arabidopsis. Schirawski et al. (p. 1546) compared genomes of maize pathogens to identify virulence determinants. Better knowledge of what in a genome makes a pathogen efficient and deadly is likely to be useful for improving agricultural crop management and breeding. A group of papers analyzes pathogen genomes to find the roots of virulence, opportunism, and life-style determinants. Powdery mildews are phytopathogens whose growth and reproduction are entirely dependent on living plant cells. The molecular basis of this life-style, obligate biotrophy, remains unknown. We present the genome analysis of barley powdery mildew, Blumeria graminis f.sp. hordei (Blumeria), as well as a comparison with the analysis of two powdery mildews pathogenic on dicotyledonous plants. These genomes display massive retrotransposon proliferation, genome-size expansion, and gene losses. The missing genes encode enzymes of primary and secondary metabolism, carbohydrate-active enzymes, and transporters, probably reflecting their redundancy in an exclusively biotrophic life-style. Among the 248 candidate effectors of pathogenesis identified in the Blumeria genome, very few (less than 10) define a core set conserved in all three mildews, suggesting that most effectors represent species-specific adaptations.


Nature | 2010

Périgord black truffle genome uncovers evolutionary origins and mechanisms of symbiosis

Francis L. Martin; Annegret Kohler; Claude Murat; Raffaella Balestrini; Pedro M. Coutinho; Olivier Jaillon; Barbara Montanini; Emmanuelle Morin; Benjamin Noel; Riccardo Percudani; Bettina Porcel; Andrea Rubini; Antonella Amicucci; Joelle Amselem; Véronique Anthouard; Sergio Arcioni; François Artiguenave; Jean-Marc Aury; Paola Ballario; Angelo Bolchi; Andrea Brenna; Annick Brun; Marc Buee; Brandi Cantarel; Gérard Chevalier; Arnaud Couloux; Corinne Da Silva; Sébastien Duplessis; Stefano Ghignone; Benoı̂t Hilselberger

The Périgord black truffle (Tuber melanosporum Vittad.) and the Piedmont white truffle dominate today’s truffle market. The hypogeous fruiting body of T. melanosporum is a gastronomic delicacy produced by an ectomycorrhizal symbiont endemic to calcareous soils in southern Europe. The worldwide demand for this truffle has fuelled intense efforts at cultivation. Identification of processes that condition and trigger fruit body and symbiosis formation, ultimately leading to efficient crop production, will be facilitated by a thorough analysis of truffle genomic traits. In the ectomycorrhizal Laccaria bicolor, the expansion of gene families may have acted as a ‘symbiosis toolbox’. This feature may however reflect evolution of this particular taxon and not a general trait shared by all ectomycorrhizal species. To get a better understanding of the biology and evolution of the ectomycorrhizal symbiosis, we report here the sequence of the haploid genome of T. melanosporum, which at ∼125 megabases is the largest and most complex fungal genome sequenced so far. This expansion results from a proliferation of transposable elements accounting for ∼58% of the genome. In contrast, this genome only contains ∼7,500 protein-coding genes with very rare multigene families. It lacks large sets of carbohydrate cleaving enzymes, but a few of them involved in degradation of plant cell walls are induced in symbiotic tissues. The latter feature and the upregulation of genes encoding for lipases and multicopper oxidases suggest that T. melanosporum degrades its host cell walls during colonization. Symbiosis induces an increased expression of carbohydrate and amino acid transporters in both L. bicolor and T. melanosporum, but the comparison of genomic traits in the two ectomycorrhizal fungi showed that genetic predispositions for symbiosis—‘the symbiosis toolbox’—evolved along different ways in ascomycetes and basidiomycetes.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Obligate biotrophy features unraveled by the genomic analysis of rust fungi

Sébastien Duplessis; Christina A. Cuomo; Yao-Cheng Lin; Andrea Aerts; Emilie Tisserant; Claire Veneault-Fourrey; David L. Joly; Stéphane Hacquard; Joelle Amselem; Brandi L. Cantarel; Readman Chiu; Pedro M. Coutinho; Nicolas Feau; Matthew A. Field; Pascal Frey; Eric Gelhaye; Jonathan M. Goldberg; Manfred Grabherr; Chinnappa D. Kodira; Annegret Kohler; Ursula Kües; Erika Lindquist; Susan Lucas; Rohit Mago; Evan Mauceli; Emmanuelle Morin; Claude Murat; Jasmyn Pangilinan; Robert F. Park; Matthew Pearson

Rust fungi are some of the most devastating pathogens of crop plants. They are obligate biotrophs, which extract nutrients only from living plant tissues and cannot grow apart from their hosts. Their lifestyle has slowed the dissection of molecular mechanisms underlying host invasion and avoidance or suppression of plant innate immunity. We sequenced the 101-Mb genome of Melampsora larici-populina, the causal agent of poplar leaf rust, and the 89-Mb genome of Puccinia graminis f. sp. tritici, the causal agent of wheat and barley stem rust. We then compared the 16,399 predicted proteins of M. larici-populina with the 17,773 predicted proteins of P. graminis f. sp tritici. Genomic features related to their obligate biotrophic lifestyle include expanded lineage-specific gene families, a large repertoire of effector-like small secreted proteins, impaired nitrogen and sulfur assimilation pathways, and expanded families of amino acid and oligopeptide membrane transporters. The dramatic up-regulation of transcripts coding for small secreted proteins, secreted hydrolytic enzymes, and transporters in planta suggests that they play a role in host infection and nutrient acquisition. Some of these genomic hallmarks are mirrored in the genomes of other microbial eukaryotes that have independently evolved to infect plants, indicating convergent adaptation to a biotrophic existence inside plant cells.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Obligate Biotrophy Features Unraveled by the Genomic Analysis of the Rust Fungi, Melampsora larici-populina and Puccinia graminis f. sp. tritici

Sébastien Duplessis; Christina A. Cuomo; Yao-Cheng Lin; Andrea Aerts; Emilie Tisserant; Claire Veneault-Fourrey; David L. Joly; Stéphane Hacquard; Joelle Amselem; Brandi L. Cantarel; Readman Chiu; Pedro Couthinho; Nicolas Feau; Matthew A. Field; Pascal Frey; Eric Gelhaye; Jonathan M. Goldberg; Manfred Grabherr; Chinnappa D. Kodira; Annegret Kohler; Ursula Kües; Erika Lindquist; Susan Lucas; Rohit Mago; Evan Mauceli; Emmanuelle Morin; Claude Murat; Jasmyn Pangilinan; Robert F. Park; Matthew Pearson

Rust fungi are some of the most devastating pathogens of crop plants. They are obligate biotrophs, which extract nutrients only from living plant tissues and cannot grow apart from their hosts. Their lifestyle has slowed the dissection of molecular mechanisms underlying host invasion and avoidance or suppression of plant innate immunity. We sequenced the 101-Mb genome of Melampsora larici-populina, the causal agent of poplar leaf rust, and the 89-Mb genome of Puccinia graminis f. sp. tritici, the causal agent of wheat and barley stem rust. We then compared the 16,399 predicted proteins of M. larici-populina with the 17,773 predicted proteins of P. graminis f. sp tritici. Genomic features related to their obligate biotrophic lifestyle include expanded lineage-specific gene families, a large repertoire of effector-like small secreted proteins, impaired nitrogen and sulfur assimilation pathways, and expanded families of amino acid and oligopeptide membrane transporters. The dramatic up-regulation of transcripts coding for small secreted proteins, secreted hydrolytic enzymes, and transporters in planta suggests that they play a role in host infection and nutrient acquisition. Some of these genomic hallmarks are mirrored in the genomes of other microbial eukaryotes that have independently evolved to infect plants, indicating convergent adaptation to a biotrophic existence inside plant cells.


Nature Communications | 2011

Effector diversification within compartments of the Leptosphaeria maculans genome affected by repeat induced point mutations

Thierry Rouxel; Grandaubert J; James K. Hane; Hoede C; van de Wouw Ap; Arnaud Couloux; Dominguez; Anthouard; Bally P; Bourras S; Anton J. Cozijnsen; Ciuffetti Lm; Degrave A; Dilmaghani A; Duret L; Fudal I; Goodwin Sb; Lilian Gout; Nicolas Glaser; Linglin J; Kema Gh; Lapalu N; Lawrence Cb; May K; Michel Meyer; Benedicte Ollivier; Julie Poulain; Schoch Cl; Simon A; Spatafora Jw

Fungi are of primary ecological, biotechnological and economic importance. Many fundamental biological processes that are shared by animals and fungi are studied in fungi due to their experimental tractability. Many fungi are pathogens or mutualists and are model systems to analyse effector genes and their mechanisms of diversification. In this study, we report the genome sequence of the phytopathogenic ascomycete Leptosphaeria maculans and characterize its repertoire of protein effectors. The L. maculans genome has an unusual bipartite structure with alternating distinct guanine and cytosine-equilibrated and adenine and thymine (AT)-rich blocks of homogenous nucleotide composition. The AT-rich blocks comprise one-third of the genome and contain effector genes and families of transposable elements, both of which are affected by repeat-induced point mutation, a fungal-specific genome defence mechanism. This genomic environment for effectors promotes rapid sequence diversification and underpins the evolutionary potential of the fungus to adapt rapidly to novel host-derived constraints.


Scientific Reports | 2017

Two genomes of highly polyphagous lepidopteran pests (Spodoptera frugiperda, Noctuidae) with different host-plant ranges

Anaïs Gouin; Anthony Bretaudeau; Kiwoong Nam; Sylvie Gimenez; Jean-Marc Aury; Bernard Duvic; Frédérique Hilliou; Nicolas Durand; Nicolas Montagné; Isabelle Darboux; Suyog S. Kuwar; Thomas Chertemps; David Siaussat; Anne Bretschneider; Yves Moné; Seung-Joon Ahn; Sabine Hänniger; Anne-Sophie Gosselin Grenet; David Neunemann; Florian Maumus; Isabelle Luyten; Karine Labadie; Wei Xu; Fotini Koutroumpa; Jean-Michel Escoubas; Angel Llopis; Martine Maïbèche-Coisne; Fanny Salasc; Archana Tomar; Alisha Anderson

Emergence of polyphagous herbivorous insects entails significant adaptation to recognize, detoxify and digest a variety of host-plants. Despite of its biological and practical importance - since insects eat 20% of crops - no exhaustive analysis of gene repertoires required for adaptations in generalist insect herbivores has previously been performed. The noctuid moth Spodoptera frugiperda ranks as one of the world’s worst agricultural pests. This insect is polyphagous while the majority of other lepidopteran herbivores are specialist. It consists of two morphologically indistinguishable strains (“C” and “R”) that have different host plant ranges. To describe the evolutionary mechanisms that both enable the emergence of polyphagous herbivory and lead to the shift in the host preference, we analyzed whole genome sequences from laboratory and natural populations of both strains. We observed huge expansions of genes associated with chemosensation and detoxification compared with specialist Lepidoptera. These expansions are largely due to tandem duplication, a possible adaptation mechanism enabling polyphagy. Individuals from natural C and R populations show significant genomic differentiation. We found signatures of positive selection in genes involved in chemoreception, detoxification and digestion, and copy number variation in the two latter gene families, suggesting an adaptive role for structural variation.


Plant Molecular Biology | 2005

Systemic response to aphid infestation by Myzus persicae in the phloem of Apium graveolens.

Fanchon Divol; Françoise Vilaine; Sandra Thibivilliers; Joelle Amselem; Jean-Christophe Palauqui; Chantal Kusiak; Sylvie Dinant

Little is known about the molecular processes involved in the phloem response to aphid feeding. We investigated molecular responses to aphid feeding on celery (Apium graveolenscv. Dulce) plants infested with the aphid Myzus persicae, as a means of identifying changes in phloem function. We used celery as our model species as it is easy to separate the phloem from the surrounding tissues in the petioles of mature leaves of this species. We generated a total of 1187 expressed sequence tags (ESTs), corresponding to 891 non-redundant genes. We analysed these ESTs in silico after cDNA macroarray hybridisation. Aphid feeding led to significant increase in RNA accumulation for 126 different genes. Different patterns of deregulation were observed, including transitory or stable induction 3 or 7 days after infestation. The genes affected belonged to various functional categories and were induced systemically in the phloem after infestation. In particular, genes involved in cell wall modification, water transport, vitamin biosynthesis, photosynthesis, carbon assimilation and nitrogen and carbon mobilisation were up-regulated in the phloem. Further analysis of the response in the phloem or xylem suggested that a component of the response was developed more specifically in the phloem. However, this component was different from the stress responses in the phloem driven by pathogen infection. Our results indicate that the phloem is actively involved in multiple adjustments, recruiting metabolic pathways and in structural changes far from aphid feeding sites. However, they also suggest that the phloem displays specific mechanisms that may not be induced in other tissues.


Nature Genetics | 2013

The wheat powdery mildew genome shows the unique evolution of an obligate biotroph

Thomas Wicker; Simone Oberhaensli; Francis Parlange; Jan P. Buchmann; Margarita Shatalina; Stefan Roffler; Roi Ben-David; Jaroslav Doležel; Hana Šimková; Paul Schulze-Lefert; Pietro D. Spanu; Rémy Bruggmann; Joelle Amselem; Hadi Quesneville; Emiel Ver Loren van Themaat; Timothy Paape; Kentaro K. Shimizu; Beat Keller

Wheat powdery mildew, Blumeria graminis forma specialis tritici, is a devastating fungal pathogen with a poorly understood evolutionary history. Here we report the draft genome sequence of wheat powdery mildew, the resequencing of three additional isolates from different geographic regions and comparative analyses with the barley powdery mildew genome. Our comparative genomic analyses identified 602 candidate effector genes, with many showing evidence of positive selection. We characterize patterns of genetic diversity and suggest that mildew genomes are mosaics of ancient haplogroups that existed before wheat domestication. The patterns of diversity in modern isolates suggest that there was no pronounced loss of genetic diversity upon formation of the new host bread wheat 10,000 years ago. We conclude that the ready adaptation of B. graminis f.sp. tritici to the new host species was based on a diverse haplotype pool that provided great genetic potential for pathogen variation.


Current Bioinformatics | 2008

Genome Annotation in Plants and Fungi: EuGene as a Model Platform

Sylvain Foissac; Jérôme Gouzy; Stephane Rombauts; Catherine Mathé; Joelle Amselem; Lieven Sterck; Yves Van de Peer; Pierre Rouzé; Thomas Schiex

In this era of whole genome sequencing, reliable genome annotations (identification of functional regions) are the cornerstones for many subsequent analyses. Not only is careful annotation important for studying the gene and gene family content of a genome and its host, but also for wide-scale transcriptome and proteome analyses attempting to de- scribe a certain biological process or to get a global picture of a cells behavior. Although the number of sequenced ge- nomes is increasing thanks to the application of new technologies, genome-wide analyses will critically depend on the quality of the genome annotations. However, the annotation process is more complicated in the plant field than in the animal field because of the limited funding that leads to much fewer experimental data and less annotation expertise. This situation calls for highly automated annotation platforms that can make the best use of all available data, experimental or not. We discuss how the gene prediction (the process of predicting protein gene structures in genomic sequences) research field increasingly shifts from methods that typically exploited one or two types of data to more integrative approaches that simultaneously deal with various experimental, statistical, or other in silico evidence. We illustrate the importance of inte- grative approaches for producing high-quality automatic annotations of genomes of plants and algae as well as of fungi that live in close association with plants using the platform EuGene as an example.

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Dive into the Joelle Amselem's collaboration.

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Isabelle Luyten

Institut national de la recherche agronomique

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Jonathan Kreplak

Institut national de la recherche agronomique

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Nicolas Lapalu

Institut national de la recherche agronomique

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Elisabeth Fournier

Institut national de la recherche agronomique

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Hélène Chiapello

Institut national de la recherche agronomique

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Cyprien Guerin

Institut national de la recherche agronomique

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Ludovic Mallet

Institut national de la recherche agronomique

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Erik Kimmel

Institut national de la recherche agronomique

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Sébastien Duplessis

Institut national de la recherche agronomique

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