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Dive into the research topics where Jean-Marc Reichhart is active.

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Featured researches published by Jean-Marc Reichhart.


Cell | 1996

The Dorsoventral Regulatory Gene Cassette spätzle/Toll/cactus Controls the Potent Antifungal Response in Drosophila Adults

Bruno Lemaitre; Emmanuelle Nicolas; Lydia Michaut; Jean-Marc Reichhart; Jules A. Hoffmann

The cytokine-induced activation cascade of NF-kappaB in mammals and the activation of the morphogen dorsal in Drosophila embryos show striking structural and functional similarities (Toll/IL-1, Cactus/I-kappaB, and dorsal/NF-kappaB). Here we demonstrate that these parallels extend to the immune response of Drosophila. In particular, the intracellular components of the dorsoventral signaling pathway (except for dorsal) and the extracellular Toll ligand, spätzle, control expression of the antifungal peptide gene drosomycin in adults. We also show that mutations in the Toll signaling pathway dramatically reduce survival after fungal infection. Antibacterial genes are induced either by a distinct pathway involving the immune deficiency gene (imd) or by combined activation of both imd and dorsoventral pathways.


Nature Immunology | 2002

Drosophila innate immunity: an evolutionary perspective.

Jules A. Hoffmann; Jean-Marc Reichhart

In response to microbial infections, Drosophila mounts a multifaceted immune response involving humoral reactions that culminate in the destruction of invading organisms by lytic peptides. These defense mechanisms are activated via two distinct signaling pathways. One of these, the Toll pathway, controls resistance to fungal and Gram-positive bacterial infections, whereas the Imd pathway is responsible for defense against Gram-negative bacterial infections. Current evidence indicates that recognition of infectious nonself agents results from interactions between microbial wall components and extracellular pattern recognition proteins. We discuss here evolutionary perspectives on our present understanding of the antimicrobial defenses of Drosophila.


Nature | 2001

Drosophila Toll is activated by Gram-positive bacteria through a circulating peptidoglycan recognition protein

Tatiana Michel; Jean-Marc Reichhart; Jules A. Hoffmann; Julien Royet

Microbial infection activates two distinct intracellular signalling cascades in the immune-responsive fat body of Drosophila. Gram-positive bacteria and fungi predominantly induce the Toll signalling pathway, whereas Gram-negative bacteria activate the Imd pathway. Loss-of-function mutants in either pathway reduce the resistance to corresponding infections. Genetic screens have identified a range of genes involved in these intracellular signalling cascades, but how they are activated by microbial infection is largely unknown. Activation of the transmembrane receptor Toll requires a proteolytically cleaved form of an extracellular cytokine-like polypeptide, Spätzle, suggesting that Toll does not itself function as a bona fide recognition receptor of microbial patterns. This is in apparent contrast with the mammalian Toll-like receptors and raises the question of which host molecules actually recognize microbial patterns to activate Toll through Spätzle. Here we present a mutation that blocks Toll activation by Gram-positive bacteria and significantly decreases resistance to this type of infection. The mutation semmelweis (seml) inactivates the gene encoding a peptidoglycan recognition protein (PGRP-SA). Interestingly, seml does not affect Toll activation by fungal infection, indicating the existence of a distinct recognition system for fungi to activate the Toll pathway.


Immunity | 2000

Tissue-Specific Inducible Expression of Antimicrobial Peptide Genes in Drosophila Surface Epithelia

Phoebe Tzou; Serge Ohresser; Dominique Ferrandon; Maria Capovilla; Jean-Marc Reichhart; Bruno Lemaitre; Jules A. Hoffmann; Jean-Luc Imler

The production of antimicrobial peptides is an important aspect of host defense in multicellular organisms. In Drosophila, seven antimicrobial peptides with different spectra of activities are synthesized by the fat body during the immune response and secreted into the hemolymph. Using GFP reporter transgenes, we show here that all seven Drosophila antimicrobial peptides can be induced in surface epithelia in a tissue-specific manner. The imd gene plays a critical role in the activation of this local response to infection. In particular, drosomycin expression, which is regulated by the Toll pathway during the systemic response, is regulated by imd in the respiratory tract, thus demonstrating the existence of distinct regulatory mechanisms for local and systemic induction of antimicrobial peptide genes in Drosophila.


Proceedings of the National Academy of Sciences of the United States of America | 2001

A genome-wide analysis of immune responses in Drosophila.

Phil Irving; Laurent Troxler; Timothy S. Heuer; Marcia Belvin; Casey Kopczynski; Jean-Marc Reichhart; Jules A. Hoffmann; Charles Hetru

Oligonucleotide DNA microarrays were used for a genome-wide analysis of immune-challenged Drosophila infected with Gram-positive or Gram-negative bacteria, or with fungi. Aside from the expression of an established set of immune defense genes, a significant number of previously unseen immune-induced genes were found. Genes of particular interest include corin- and Stubble-like genes, both of which have a type II transmembrane domain; easter- and snake-like genes, which may fulfil the roles of easter and snake in the Toll pathway; and a masquerade-like gene, potentially involved in enzyme regulation. The microarray data has also helped to greatly reduce the number of target genes in large gene groups, such as the proteases, helping to direct the choices for future mutant studies. Many of the up-regulated genes fit into the current conceptual framework of host defense, whereas others, including the substantial number of genes with unknown functions, offer new avenues for research.


Developmental Cell | 2001

Drosophila Immune Deficiency (IMD) Is a Death Domain Protein that Activates Antibacterial Defense and Can Promote Apoptosis

Philippe Georgel; Silvia Naitza; Christine Kappler; Dominique Ferrandon; Daniel Zachary; Candace Swimmer; Casey Kopczynski; Geoffrey Duyk; Jean-Marc Reichhart; Jules A. Hoffmann

We report the molecular characterization of the immune deficiency (imd) gene, which controls antibacterial defense in Drosophila. imd encodes a protein with a death domain similar to that of mammalian RIP (receptor interacting protein), a protein that plays a role in both NF-kappaB activation and apoptosis. We show that imd functions upstream of the DmIKK signalosome and the caspase DREDD in the control of antibacterial peptide genes. Strikingly, overexpression of imd leads to constitutive transcription of these genes and to apoptosis, and both effects are blocked by coexpression of the caspase inhibitor P35. We also show that imd is involved in the apoptotic response to UV irradiation. These data raise the possibility that antibacterial response and apoptosis share common control elements in Drosophila.


Current Opinion in Immunology | 1996

Innate immunity in higher insects.

Jules A. Hoffmann; Jean-Marc Reichhart; Charles Hetru

The hallmark of the innate immune response of higher insects is the rapid and transient synthesis of a battery of broad spectrum antimicrobial peptides by the fat body. The control of the genes encoding these peptides involves cis-regulatory promoter elements homologous to sequences functional in mammalian acute-phase genes. Study of immune-deficient mutants of Drosophila has indicated that distinct pathways control the antibacterial and antifungal responses in this species. Novel receptors potentially involved in the initiation of the immune response have been recently characterized.


Cell | 2005

Eater, a Transmembrane Protein Mediating Phagocytosis of Bacterial Pathogens in Drosophila

Christine Kocks; Ju Hyun Cho; Nadine T. Nehme; Johanna Ulvila; Alan Pearson; Marie Meister; Charles Strom; Stephanie L. Conto; Charles Hetru; Lynda M. Stuart; Thilo Stehle; Jules A. Hoffmann; Jean-Marc Reichhart; Dominique Ferrandon; Mika Rämet; R. Alan B. Ezekowitz

Phagocytosis is a complex, evolutionarily conserved process that plays a central role in host defense against infection. We have identified a predicted transmembrane protein, Eater, which is involved in phagocytosis in Drosophila. Transcriptional silencing of the eater gene in a macrophage cell line led to a significant reduction in the binding and internalization of bacteria. Moreover, the N terminus of the Eater protein mediated direct microbial binding which could be inhibited with scavenger receptor ligands, acetylated, and oxidized low-density lipoprotein. In vivo, eater expression was restricted to blood cells. Flies lacking the eater gene displayed normal responses in NF-kappaB-like Toll and IMD signaling pathways but showed impaired phagocytosis and decreased survival after bacterial infection. Our results suggest that Eater is a major phagocytic receptor for a broad range of bacterial pathogens in Drosophila and provide a powerful model to address the role of phagocytosis in vivo.


Cell | 2006

Dual Detection of Fungal Infections in Drosophila via Recognition of Glucans and Sensing of Virulence Factors

Marie Gottar; Vanessa Gobert; Alexey A. Matskevich; Jean-Marc Reichhart; Chengshu Wang; Tariq M. Butt; Marcia Belvin; Jules A. Hoffmann; Dominique Ferrandon

The Drosophila immune system discriminates between various types of infections and activates appropriate signal transduction pathways to combat the invading microorganisms. The Toll pathway is required for the host response against fungal and most Gram-positive bacterial infections. The sensing of Gram-positive bacteria is mediated by the pattern recognition receptors PGRP-SA and GNBP1 that cooperate to detect the presence of infections in the host. Here, we report that GNBP3 is a pattern recognition receptor that is required for the detection of fungal cell wall components. Strikingly, we find that there is a second, parallel pathway acting jointly with GNBP3. The Drosophila Persephone protease activates the Toll pathway when proteolytically matured by the secreted fungal virulence factor PR1. Thus, the detection of fungal infections in Drosophila relies both on the recognition of invariant microbial patterns and on monitoring the effects of virulence factors on the host.


Immunity | 2000

The Rel Protein DIF Mediates the Antifungal but Not the Antibacterial Host Defense in Drosophila

Sophie Rutschmann; Alain C. Jung; Charles Hetru; Jean-Marc Reichhart; Jules A. Hoffmann; Dominique Ferrandon

We have isolated two Drosophila lines that carry point mutations in the gene coding for the NF-KB-like factor DIF. Like mutants of the Toll pathway, Dif mutant flies are susceptible to fungal but not to bacterial infections. Genetic epistasis experiments demonstrate that Dif mediates the Toll-dependent control of the inducibility of the antifungal peptide gene Drosomycin. Strikingly, DIF alone is required for the antifungal response in adults, but is redundant in larvae with Dorsal, another Rel family member. In Drosophila, Dif appears to be dedicated to the antifungal defense elicited by fungi and gram-positive bacteria. We discuss in this light the possibility that NF-KB1/p50 might be required more specifically in the innate immune response against gram-positive bacteria in mammals.

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Jules A. Hoffmann

Centre national de la recherche scientifique

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David Gubb

University of Cambridge

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Charles Hetru

Centre national de la recherche scientifique

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Bruno Lemaitre

École Polytechnique Fédérale de Lausanne

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Jean-Luc Dimarcq

Centre national de la recherche scientifique

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Vincent Leclerc

Centre national de la recherche scientifique

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Nicolas Matt

University of Strasbourg

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