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Dive into the research topics where Jacqueline G. Perrigoue is active.

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Featured researches published by Jacqueline G. Perrigoue.


Nature Immunology | 2009

MHC class II-dependent basophil-CD4(+) T cell interactions promote T(H)2 cytokine-dependent immunity

Jacqueline G. Perrigoue; Steven A. Saenz; Mark C Siracusa; Eric J. Allenspach; Betsy C. Taylor; Paul Giacomin; Meera G. Nair; Yurong Du; Colby Zaph; Nico van Rooijen; Michael R. Comeau; Edward J. Pearce; Terri M. Laufer; David Artis

Dendritic cells can prime naive CD4+ T cells; however, here we demonstrate that dendritic cell–mediated priming was insufficient for the development of T helper type 2 cell–dependent immunity. We identify basophils as a dominant cell population that coexpressed major histocompatibility complex class II and interleukin 4 message after helminth infection. Basophilia was promoted by thymic stromal lymphopoietin, and depletion of basophils impaired immunity to helminth infection. Basophils promoted antigen-specific CD4+ T cell proliferation and interleukin 4 production in vitro, and transfer of basophils augmented the population expansion of helminth-responsive CD4+ T cells in vivo. Collectively, our studies suggest that major histocompatibility complex class II–dependent interactions between basophils and CD4+ T cells promote T helper type 2 cytokine responses and immunity to helminth infection.


Nature | 2010

IL25 elicits a multipotent progenitor cell population that promotes TH2 cytokine responses

Steven A. Saenz; Mark C. Siracusa; Jacqueline G. Perrigoue; Sean P. Spencer; Joseph F. Urban; Joel Tocker; Alison L. Budelsky; Melanie A. Kleinschek; Robert A. Kastelein; Taku Kambayashi; Avinash Bhandoola; David Artis

CD4+ T helper 2 (TH2) cells secrete interleukin (IL)4, IL5 and IL13, and are required for immunity to gastrointestinal helminth infections. However, TH2 cells also promote chronic inflammation associated with asthma and allergic disorders. The non-haematopoietic-cell-derived cytokines thymic stromal lymphopoietin, IL33 and IL25 (also known as IL17E) have been implicated in inducing TH2 cell-dependent inflammation at mucosal sites, but how these cytokines influence innate immune responses remains poorly defined. Here we show that IL25, a member of the IL17 cytokine family, promotes the accumulation of a lineage-negative (Lin-) multipotent progenitor (MPP) cell population in the gut-associated lymphoid tissue that promotes TH2 cytokine responses. The IL25-elicited cell population, termed MPPtype2 cells, was defined by the expression of Sca-1 (also known as Ly6a) and intermediate expression of c-Kit (c-Kitint), and exhibited multipotent capacity, giving rise to cells of monocyte/macrophage and granulocyte lineages both in vitro and in vivo. Progeny of MPPtype2 cells were competent antigen presenting cells, and adoptive transfer of MPPtype2 cells could promote TH2 cytokine responses and confer protective immunity to helminth infection in normally susceptible Il25-/- mice. The ability of IL25 to induce the emergence of an MPPtype2 cell population identifies a link between the IL17 cytokine family and extramedullary haematopoiesis, and suggests a previously unrecognized innate immune pathway that promotes TH2 cytokine responses at mucosal sites.


Journal of Experimental Medicine | 2008

Commensal-dependent expression of IL-25 regulates the IL-23–IL-17 axis in the intestine

Colby Zaph; Yurong Du; Steven A. Saenz; Meera G. Nair; Jacqueline G. Perrigoue; Betsy C. Taylor; Amy E. Troy; Dmytro Kobuley; Robert A. Kastelein; Daniel J. Cua; Yimin Yu; David Artis

Alterations in the composition of intestinal commensal bacteria are associated with enhanced susceptibility to multiple inflammatory diseases, including those conditions associated with interleukin (IL)-17–producing CD4+ T helper (Th17) cells. However, the relationship between commensal bacteria and the expression of proinflammatory cytokines remains unclear. Using germ-free mice, we show that the frequency of Th17 cells in the large intestine is significantly elevated in the absence of commensal bacteria. Commensal-dependent expression of the IL-17 family member IL-25 (IL-17E) by intestinal epithelial cells limits the expansion of Th17 cells in the intestine by inhibiting expression of macrophage-derived IL-23. We propose that acquisition of, or alterations in, commensal bacteria influences intestinal immune homeostasis via direct regulation of the IL-25–IL-23–IL-17 axis.


Journal of Experimental Medicine | 2009

Alternatively activated macrophage-derived RELM-α is a negative regulator of type 2 inflammation in the lung

Meera G. Nair; Yurong Du; Jacqueline G. Perrigoue; Colby Zaph; Justin J. Taylor; Michael Goldschmidt; Gary P. Swain; George D. Yancopoulos; David M. Valenzuela; Andrew J. Murphy; Margaret Karow; Sean Stevens; Edward J. Pearce; David Artis

Differentiation and recruitment of alternatively activated macrophages (AAMacs) are hallmarks of several inflammatory conditions associated with infection, allergy, diabetes, and cancer. AAMacs are defined by the expression of Arginase 1, chitinase-like molecules, and resistin-like molecule (RELM) α/FIZZ1; however, the influence of these molecules on the development, progression, or resolution of inflammatory diseases is unknown. We describe the generation of RELM-α–deficient (Retnla−/−) mice and use a model of T helper type 2 (Th2) cytokine-dependent lung inflammation to identify an immunoregulatory role for RELM-α. After challenge with Schistosoma mansoni (Sm) eggs, Retnla−/− mice developed exacerbated lung inflammation compared with their wild-type counterparts, characterized by excessive pulmonary vascularization, increased size of egg-induced granulomas, and elevated fibrosis. Associated with increased disease severity, Sm egg–challenged Retnla−/− mice exhibited elevated expression of pathogen-specific CD4+ T cell–derived Th2 cytokines. Consistent with immunoregulatory properties, recombinant RELM-α could bind to macrophages and effector CD4+ Th2 cells and inhibited Th2 cytokine production in a Brutons tyrosine kinase–dependent manner. Additionally, Retnla−/− AAMacs promoted exaggerated antigen-specific Th2 cell differentiation. Collectively, these data identify a previously unrecognized role for AAMac-derived RELM-α in limiting the pathogenesis of Th2 cytokine-mediated pulmonary inflammation, in part through the regulation of CD4+ T cell responses.


Journal of Experimental Medicine | 2007

IL-31-IL-31R interactions negatively regulate type 2 inflammation in the lung.

Jacqueline G. Perrigoue; Ji Li; Colby Zaph; Michael Goldschmidt; Phillip Scott; Frederic J. de Sauvage; Edward J. Pearce; Nico Ghilardi; David Artis

Interleukin (IL) 31Rα (glycoprotein 130–like monocyte receptor and glycoprotein 130–like receptor) heterodimerizes with oncostatin M receptor β to bind IL-31, a cytokine expressed preferentially by CD4+ T helper type 2 (Th2) cells. However, the functions of IL-31–IL-31R signaling in immune regulation remain unknown. Here, we identify a novel role for IL-31R in limiting type 2 inflammation in the lung. After intravenous injection of Schistosoma mansoni eggs, IL-31Rα−/− mice developed severe pulmonary inflammation, characterized by an increase in the area of granulomatous inflammation, increased numbers of resistin-like molecule α+ cells, and enhanced collagen deposition compared to WT counterparts. In vitro, macrophages generated from IL-31Rα−/− mice promoted enhanced ovalbumin-specific CD4+ T cell proliferation and purified naive CD4+ T cells from IL-31Rα−/− mice exhibited enhanced proliferation and expression of Th2 cytokines, identifying a T cell– and macrophage-intrinsic regulatory function for IL-31R signaling. In contrast, the generation of CD4+ T cell–mediated Th1 responses were normal in IL-31Rα−/− mice, suggesting that the regulatory role of IL-31R signaling is limited to type 2 responses. Together, these data implicate IL-31R signaling as a novel negative regulatory pathway that specifically limits type 2 inflammation.


Cellular Microbiology | 2008

On the hunt for helminths: innate immune cells in the recognition and response to helminth parasites

Jacqueline G. Perrigoue; Fraser A. Marshall; David Artis

The generation of protective immunity to helminth parasites is critically dependent upon the development of a CD4+ T helper type 2 cytokine response. However, the host–parasite interactions responsible for initiating this response are poorly understood. This review will discuss recent advances in our understanding of how helminth‐derived products are recognized by innate immune cells. Specifically, interactions between helminth excretory/secretory products and host Toll‐like receptors and lectins will be discussed as well as the putative functions of helminth proteases and chitin in activating and recruiting innate immune cells. In addition, the functional significance of pattern recognition by epithelial cells, granulocytes, dendritic cells and macrophages including expression of alarmins, thymic stromal lymphopoetin, interleukin (IL)‐25, IL‐33 and Notch ligands in the development of adaptive anti‐parasite Th2 cytokine responses will be examined.


Immunology and Cell Biology | 2010

New paradigms in basophil development, regulation and function

Mark C. Siracusa; Jacqueline G. Perrigoue; Michael R. Comeau; David Artis

Emerging evidence has shown that basophils perform essential, non‐redundant functions in multiple models of acute and chronic Th2 cytokine‐dependent immunity and inflammation. In particular, recent studies have shown that basophils are rapidly recruited to the lymph nodes, can function as antigen‐presenting cells and are critical for the induction of Th2 cell differentiation and the associated inflammatory responses after exposure to helminth parasites or allergens. In this review, we discuss recent studies that provide new insights into the pathways that control basophil development, regulation and effector function.


Journal of Immunology | 2009

IL-31-IL-31R Interactions Limit the Magnitude of Th2 Cytokine-Dependent Immunity and Inflammation following Intestinal Helminth Infection

Jacqueline G. Perrigoue; Colby Zaph; Katherine J. Guild; Yurong Du; David Artis

IL-31 is a recently identified cytokine made predominantly by CD4+ Th2 cells and its receptor, IL-31R, is expressed by a number of cell types including monocytes, epithelial cells, and T cells. Originally identified as a potential mediator of inflammation in the skin, we recently reported a novel function for endogenous IL-31R interactions in limiting type 2 inflammation in the lung. However, whether IL-31-IL-31R interactions regulate immunity or inflammation at other mucosal sites, such as the gut, is unknown. In this study, we report a regulatory role for IL-31-IL-31R interactions in the intestine following infection with the gastrointestinal helminth Trichuris muris, immunity to which is critically dependent on CD4+ Th2 cells that produce IL-4 and IL-13. IL-31Rα was constitutively expressed in the colon and exposure to Trichuris induced the expression of IL-31 in CD4+ T cells. In response to Trichuris infection, IL-31Rα−/− mice exhibited increased Th2 cytokine responses in the mesenteric lymph nodes and elevated serum IgE and IgG1 levels compared with wild type mice. IL-31Rα−/− mice also displayed enhanced goblet cell hyperplasia and a marked increase in secretion of goblet cell-derived resistin-like molecule β into the intestinal lumen. Consistent with their exacerbated type 2 inflammatory responses, IL-31Rα−/− mice exhibited accelerated expulsion of Trichuris with significantly decreased worm burdens compared with their wild type counterparts early following infection. Collectively, these data provide the first evidence of a function for IL-31-IL-31R interactions in limiting the magnitude of type 2 inflammatory responses within the intestine.


Journal of Immunology | 2015

Diverse Roles for T-bet in the Effector Responses Required for Resistance to Infection

Harms Pritchard G; Aisling O'Hara Hall; David A. Christian; Sagie Wagage; Qun Fang; Gaia Muallem; Beena John; Glatman Zaretsky A; Dunn Wg; Jacqueline G. Perrigoue; Steven L. Reiner; Christopher A. Hunter

The transcription factor T-bet has been most prominently linked to NK and T cell production of IFN-γ, a cytokine required for the control of a diverse array of intracellular pathogens. Indeed, in mice challenged with the parasite Toxoplasma gondii, NK and T cell responses are characterized by marked increases of T-bet expression. Unexpectedly, T-bet−/− mice infected with T. gondii develop a strong NK cell IFN-γ response that controls parasite replication at the challenge site, but display high parasite burdens at secondary sites colonized by T. gondii and succumb to infection. The loss of T-bet had a modest effect on T cell production of IFN-γ but did not impact on the generation of parasite-specific T cells. However, the absence of T-bet resulted in lower T cell expression of CD11a, Ly6C, KLRG-1, and CXCR3 and fewer parasite-specific T cells at secondary sites of infection, associated with a defect in parasite control at these sites. Together, these data highlight T-bet–independent pathways to IFN-γ production and reveal a novel role for this transcription factor in coordinating the T cell responses necessary to control this infection in peripheral tissues.


Nature Immunology | 2009

Major histocompatibility complex class II-dependent basophil-CD4+ T cell interactions promote TH2 cytokine-dependent immunity

Jacqueline G. Perrigoue; Steven A. Saenz; Mark C. Siracusa; Eric J. Allenspach; Betsy C. Taylor; Paul Giacomin; Meera G. Nair; Yurong Du; Colby Zaph; Nico van Rooijen; Michael R. Comeau; Edward J. Pearce; Terri M. Laufer; David Artis

Dendritic cells can prime naive CD4+ T cells; however, here we demonstrate that dendritic cell–mediated priming was insufficient for the development of T helper type 2 cell–dependent immunity. We identify basophils as a dominant cell population that coexpressed major histocompatibility complex class II and interleukin 4 message after helminth infection. Basophilia was promoted by thymic stromal lymphopoietin, and depletion of basophils impaired immunity to helminth infection. Basophils promoted antigen-specific CD4+ T cell proliferation and interleukin 4 production in vitro, and transfer of basophils augmented the population expansion of helminth-responsive CD4+ T cells in vivo. Collectively, our studies suggest that major histocompatibility complex class II–dependent interactions between basophils and CD4+ T cells promote T helper type 2 cytokine responses and immunity to helminth infection.

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Yurong Du

Pennsylvania State University

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Meera G. Nair

University of California

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Steven A. Saenz

University of Pennsylvania

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Betsy C. Taylor

Pennsylvania State University

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Terri M. Laufer

University of Pennsylvania

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Mark C. Siracusa

University of Pennsylvania

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