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Dive into the research topics where Natacha Veerapen is active.

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Featured researches published by Natacha Veerapen.


Journal of Clinical Investigation | 2008

Invariant NKT cells reduce the immunosuppressive activity of influenza A virus–induced myeloid-derived suppressor cells in mice and humans

Carmela De Santo; Mariolina Salio; S. Hajar Masri; Laurel Yong-Hwa Lee; Tao Dong; Anneliese O. Speak; Stefan Porubsky; Sarah Booth; Natacha Veerapen; Gurdyal S. Besra; Hermann Josef Gröne; Frances M. Platt; Maria Zambon; Vincenzo Cerundolo

Infection with influenza A virus (IAV) presents a substantial threat to public health worldwide, with young, elderly, and immunodeficient individuals being particularly susceptible. Inflammatory responses play an important role in the fatal outcome of IAV infection, but the mechanism remains unclear. We demonstrate here that the absence of invariant NKT (iNKT) cells in mice during IAV infection resulted in the expansion of myeloid-derived suppressor cells (MDSCs), which suppressed IAV-specific immune responses through the expression of both arginase and NOS, resulting in high IAV titer and increased mortality. Adoptive transfer of iNKT cells abolished the suppressive activity of MDSCs, restored IAV-specific immune responses, reduced IAV titer, and increased survival rate. The crosstalk between iNKT and MDSCs was CD1d- and CD40-dependent. Furthermore, IAV infection and exposure to TLR agonists relieved the suppressive activity of MDSCs. Finally, we extended these results to humans by demonstrating the presence of myeloid cells with suppressive activity in the PBLs of individuals infected with IAV and showed that their suppressive activity is substantially reduced by iNKT cell activation. These findings identify what we believe to be a novel immunomodulatory role of iNKT cells, which we suggest could be harnessed to abolish the immunosuppressive activity of MDSCs during IAV infection.


PLOS Biology | 2009

Recognition of Lyso-Phospholipids by Human Natural Killer T Lymphocytes

Lisa Fox; Daryl Cox; Jennifer L. Lockridge; Xiaohua Wang; Xiuxu Chen; Louise Scharf; David L Trott; Rachel M. Ndonye; Natacha Veerapen; Gurdyal S. Besra; Amy R. Howell; Mark E. Cook; Erin J. Adams; William H. Hildebrand; Jenny E. Gumperz

By identifying the lipid LPC as an endogenous antigen, recognized by the invariant subset of human NKT cells, this study establishes a novel link between these immunoregulatory cells and an inflammatory lipid mediator.


Proceedings of the National Academy of Sciences of the United States of America | 2007

Modulation of human natural killer T cell ligands on TLR-mediated antigen-presenting cell activation.

Mariolina Salio; Anneliese O. Speak; Dawn Shepherd; Paolo Polzella; Petr A. Illarionov; Natacha Veerapen; Gurdyal S. Besra; Frances M. Platt; Vincenzo Cerundolo

Invariant natural killer T (iNKT) cells are a subset of nonconventional T cells recognizing endogenous and/or exogenous glycolipid antigens in the context of CD1d molecules. It remains unclear whether innate stimuli can modify the profile of endogenous lipids recognized by iNKT cells on the surface of antigen-presenting cells (APCs). We report that activation of human APCs by Toll-like receptor ligands (TLR-L) modulates the lipid biosynthetic pathway, resulting in enhanced recognition of CD1d-associated lipids by iNKT cells, as defined by IFN-γ secretion. APC-derived soluble factors further increase CD1d-restricted iNKT cell activation. Finally, using soluble tetrameric iNKT T cell receptors (TCR) as a staining reagent, we demonstrate specific up-regulation of CD1d-bound ligand(s) on TLR-mediated APC maturation. The ability of innate stimuli to modulate the lipid profile of APCs resulting in iNKT cell activation and APC maturation underscores the role of iNKT cells in assisting priming of antigen-specific immune responses.


Nature Immunology | 2012

Invariant natural killer T cells direct B cell responses to cognate lipid antigen in an IL-21-dependent manner

Irah L. King; Anne Fortier; Michael Tighe; John P. Dibble; Gerald F. Watts; Natacha Veerapen; Ann M. Haberman; Gurdyal S. Besra; Markus Mohrs; Michael B. Brenner; Elizabeth A. Leadbetter

Mouse invariant natural killer T cells (iNKT cells) provide cognate and noncognate help for lipid and protein-specific B cells, respectively. However, the long-term outcome for B cells after cognate help is provided by iNKT cells is unknown at present. Here we found that cognate iNKT cell help resulted in a B cell differentiation program characterized by extrafollicular plasmablasts, germinal-center formation, affinity maturation and a robust primary immunoglobulin G (IgG) antibody response that was uniquely dependent on iNKT cell–derived interleukin 21 (IL-21). However, cognate help from iNKT cells did not generate an enhanced humoral memory response. Thus, cognate iNKT cell help for lipid-specific B cells induces a unique signature that is a hybrid of classic T cell–dependent and T cell–independent type 2 B cell responses.


Proceedings of the National Academy of Sciences of the United States of America | 2014

Activation of iNKT cells by a distinct constituent of the endogenous glucosylceramide fraction

Patrick J. Brennan; Raju V. V. Tatituri; Christian Heiss; Gerald F. Watts; Fong-Fu Hsu; Natacha Veerapen; Liam R. Cox; Parastoo Azadi; Gurdyal S. Besra; Michael B. Brenner

Significance Invariant natural killer T (iNKT) cells are a specialized subset of T cells that recognizes lipids, rather than peptides, as antigens. Recognition of both endogenous and exogenous lipids by iNKT cells contributes to immune responses during infection, cancer, autoimmune disease, and allergic disease. The endogenous lipids recognized by iNKT cells in most contexts, however, remain unclear. In this report, we characterize the lipid antigen activity found in mammalian milk and tissues. Our data suggest that activity is related to a minor component of the glucosylceramide fraction. Whether contributed from endogenous sources or from the diet, this rare, yet potent lipid activity may play an important role in driving immune responses. Invariant natural killer T (iNKT) cells are a specialized T-cell subset that recognizes lipids as antigens, contributing to immune responses in diverse disease processes. Experimental data suggests that iNKT cells can recognize both microbial and endogenous lipid antigens. Several candidate endogenous lipid antigens have been proposed, although the contextual role of specific antigens during immune responses remains largely unknown. We have previously reported that mammalian glucosylceramides (GlcCers) activate iNKT cells. GlcCers are found in most mammalian tissues, and exist in variable molecular forms that differ mainly in N-acyl fatty acid chain use. In this report, we purified, characterized, and tested the GlcCer fractions from multiple animal species. Although activity was broadly identified in these GlcCer fractions from mammalian sources, we also found activity properties that could not be reconciled by differences in fatty acid chain use. Enzymatic digestion of β-GlcCer and a chromatographic separation method demonstrated that the activity in the GlcCer fraction was limited to a rare component of this fraction, and was not contained within the bulk of β-GlcCer molecular species. Our data suggest that a minor lipid species that copurifies with β-GlcCer in mammals functions as a lipid self antigen for iNKT cells.


Immunity | 2014

A Single Subset of Dendritic Cells Controls the Cytokine Bias of Natural Killer T Cell Responses to Diverse Glycolipid Antigens

Pooja Arora; Andres Baena; Karl O. A. Yu; Neeraj Kumar Saini; Shalu Sharma Kharkwal; Michael F. Goldberg; Shajo Kunnath-Velayudhan; Leandro J. Carreño; Manjunatha M. Venkataswamy; J J Kim; Eszter Lazar-Molnar; Grégoire Lauvau; Young-Tae Chang; Zheng Xia Liu; Robert Bittman; Aymen Al-Shamkhani; Liam R. Cox; Peter J. Jervis; Natacha Veerapen; Gurdyal S. Besra; Steven A. Porcelli

Summary Many hematopoietic cell types express CD1d and are capable of presenting glycolipid antigens to invariant natural killer T cells (iNKT cells). However, the question of which cells are the principal presenters of glycolipid antigens in vivo remains controversial, and it has been suggested that this might vary depending on the structure of a particular glycolipid antigen. Here we have shown that a single type of cell, the CD8α+ DEC-205+ dendritic cell, was mainly responsible for capturing and presenting a variety of different glycolipid antigens, including multiple forms of α-galactosylceramide that stimulate widely divergent cytokine responses. After glycolipid presentation, these dendritic cells rapidly altered their expression of various costimulatory and coinhibitory molecules in a manner that was dependent on the structure of the antigen. These findings show flexibility in the outcome of two-way communication between CD8α+ dendritic cells and iNKT cells, providing a mechanism for biasing toward either proinflammatory or anti-inflammatory responses.


Journal of Clinical Investigation | 2010

Primary deficiency of microsomal triglyceride transfer protein in human abetalipoproteinemia is associated with loss of CD1 function

Sebastian Zeissig; Stephanie K. Dougan; Duarte C. Barral; Yvonne Junker; Zhangguo Chen; Arthur Kaser; Madelyn M. Ho; Hannah Mandel; Adam D. McIntyre; Susan M. Kennedy; Gavin F. Painter; Natacha Veerapen; Gurdyal S. Besra; Vincenzo Cerundolo; Simon Yue; Sarah Beladi; Samuel M. Behar; Xiuxu Chen; Jenny E. Gumperz; Karine Breckpot; Anna Raper; Amanda Baer; Mark A. Exley; Robert A. Hegele; Marina Cuchel; Daniel J. Rader; Nicholas O. Davidson; Richard S. Blumberg

Abetalipoproteinemia (ABL) is a rare Mendelian disorder of lipid metabolism due to genetic deficiency in microsomal triglyceride transfer protein (MTP). It is associated with defects in MTP-mediated lipid transfer onto apolipoprotein B (APOB) and impaired secretion of APOB-containing lipoproteins. Recently, MTP was shown to regulate the CD1 family of lipid antigen-presenting molecules, but little is known about immune function in ABL patients. Here, we have shown that ABL is characterized by immune defects affecting presentation of self and microbial lipid antigens by group 1 (CD1a, CD1b, CD1c) and group 2 (CD1d) CD1 molecules. In dendritic cells isolated from ABL patients, MTP deficiency was associated with increased proteasomal degradation of group 1 CD1 molecules. Although CD1d escaped degradation, it was unable to load antigens and exhibited functional defects similar to those affecting the group 1 CD1 molecules. The reduction in CD1 function resulted in impaired activation of CD1-restricted T and invariant natural killer T (iNKT) cells and reduced numbers and phenotypic alterations of iNKT cells consistent with central and peripheral CD1 defects in vivo. These data highlight MTP as a unique regulator of human metabolic and immune pathways and reveal that ABL is not only a disorder of lipid metabolism but also an immune disease involving CD1.


Journal of Experimental Medicine | 2011

Cannabinoid receptor 2 positions and retains marginal zone B cells within the splenic marginal zone

Jagan R. Muppidi; Tal I. Arnon; Yelena Bronevetsky; Natacha Veerapen; Masato Tanaka; Gurdyal S. Besra; Jason G. Cyster

In addition to other receptors, including sphingosine-1-phosphate receptor 1, cannabinoid receptor 2 positions mouse marginal zone B cells within the marginal zone and also prevents their loss to the blood.


Proceedings of the National Academy of Sciences of the United States of America | 2014

Essential role for autophagy during invariant NKT cell development

Mariolina Salio; Daniel J. Puleston; Till S. M. Mathan; Dawn Shepherd; Amanda J. Stranks; Eleni Adamopoulou; Natacha Veerapen; Gurdyal S. Besra; Georg A. Holländer; Anna Katharina Simon; Vincenzo Cerundolo

Significance Autophagy is an evolutionarily conserved catabolic process essential to maintaining cellular homeostasis through the breakdown and recycling of damaged organelles and long-lived proteins. We report that autophagy plays an essential cell-intrinsic role in maintaining the survival of a subset of innate-like cells known as invariant natural killer T (iNKT) cells. Autophagy deficiency prevents transition to a quiescent state after population expansion of thymic iNKT cells. Hence, autophagy-deficient iNKT cells accumulate mitochondria and oxygen radicals and subsequently die of apoptosis. Autophagy is an evolutionarily conserved cellular homeostatic pathway essential for development, immunity, and cell death. Although autophagy modulates MHC antigen presentation, it remains unclear whether autophagy defects impact on CD1d lipid loading and presentation to invariant natural killer T (iNKT) cells and on iNKT cell differentiation in the thymus. Furthermore, it remains unclear whether iNKT and conventional T cells have similar autophagy requirements for differentiation, survival, and/or activation. We report that, in mice with a conditional deletion of the essential autophagy gene Atg7 in the T-cell compartment (CD4 Cre-Atg7−/−), thymic iNKT cell development—unlike conventional T-cell development—is blocked at an early stage and mature iNKT cells are absent in peripheral lymphoid organs. The defect is not due to altered loading of intracellular iNKT cell agonists; rather, it is T-cell–intrinsic, resulting in enhanced susceptibility of iNKT cells to apoptosis. We show that autophagy increases during iNKT cell thymic differentiation and that it developmentally regulates mitochondrial content through mitophagy in the thymus of mice and humans. Autophagy defects result in the intracellular accumulation of mitochondrial superoxide species and subsequent apoptotic cell death. Although autophagy-deficient conventional T cells develop normally, they show impaired peripheral survival, particularly memory CD8+ T cells. Because iNKT cells, unlike conventional T cells, differentiate into memory cells while in the thymus, our results highlight a unique autophagy-dependent metabolic regulation of adaptive and innate T cells, which is required for transition to a quiescent state after population expansion.


Blood | 2008

Natural killer T-cell autoreactivity leads to a specialized activation state

Xiaohua Wang; Xiuxu Chen; Lance A. Rodenkirch; William T. Simonson; Sarah A. Wernimont; Rachel M. Ndonye; Natacha Veerapen; Darren Gibson; Amy R. Howell; Gurdyal S. Besra; Gavin F. Painter; Anna Huttenlocher; Jenny E. Gumperz

Natural killer T (NKT) cells are innate-like T cells that recognize specific microbial antigens and also display autoreactivity to self-antigens. The nature of NKT-cell autoreactive activation remains poorly understood. We show here that the mitogen-activated protein kinase (MAPK) pathway is operative during human NKT-cell autoreactive activation, but calcium signaling is severely impaired. This results in a response that is biased toward granulocyte macrophage colony-stimulating factor (GM-CSF) secretion because this cytokine requires extracellular signal-regulated kinase (ERK) signaling but is not highly calcium dependent, whereas interferon-gamma (IFN-gamma), interleukin (IL)-4, and IL-2 production are minimal. Autoreactive activation was associated with reduced migration velocity but did not induce arrest; thus, NKT cells retained the ability to survey antigen presenting cells (APCs). IL-12 and IL-18 stimulated autoreactively activated NKT cells to secrete IFN-gamma, and this was mediated by Janus kinase-signal transducers and activators of transcription (JAK-STAT)-dependent signaling without induction of calcium flux. This pathway did not require concurrent contact with CD1d(+) APCs but was strictly dependent on preceding autoreactive stimulation that induced ERK activation. In contrast, NKT-cell responses to the glycolipid antigen alpha-galactosyl ceramide (alpha-GalCer) were dampened by prior autoreactive activation. These results show that NKT-cell autoreactivity induces restricted cytokine secretion and leads to altered basal activation that potentiates innate responsiveness to costimulatory cytokines while modulating sensitivity to foreign antigens.

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Liam R. Cox

University of Birmingham

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Michael B. Brenner

Brigham and Women's Hospital

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Steven A. Porcelli

Albert Einstein College of Medicine

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Amy R. Howell

University of Connecticut

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