Person: Kinet, Jean-Pierre
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Publication Dendritic cell-bound IgE functions to restrain allergic inflammation at mucosal sites
(2014) Platzer, Barbara; Baker, Kristi; Vera, Miguel Pinilla; Singer, Kathleen; Panduro, Marisella; Lexmond, Willem S.; Turner, Devin; Vargas, Sara; Kinet, Jean-Pierre; Maurer, Dieter; Baron, Rebecca; Blumberg, Richard; Fiebiger, EddaAntigen-mediated crosslinking of Immunoglobulin E (IgE) bound to mast cells/basophils via FcεRI, the high affinity IgE Fc-receptor, is a well-known trigger of allergy. In humans, but not mice, dendritic cells (DCs) also express FcεRI that is constitutively occupied with IgE. In contrast to mast cells/basophils, the consequences of IgE/FcεRI signals for DC function remain poorly understood. We show that humanized mice that express FcεRI on DCs carry IgE like non-allergic humans and do not develop spontaneous allergies. Antigen-specific IgE/FcεRI crosslinking fails to induce maturation or production of inflammatory mediators in human DCs and FcεRI-humanized DCs. Furthermore, conferring expression of FcεRI to DCs decreases the severity of food allergy and asthma in disease-relevant models suggesting anti-inflammatory IgE/FcεRI signals. Consistent with the improved clinical parameters in vivo, antigen-specific IgE/FcεRI crosslinking on papain or LPS-stimulated DCs inhibits the production of pro-inflammatory cytokines and chemokines. Migration assays confirm that the IgE-dependent decrease in cytokine production results in diminished recruitment of mast cell progenitors; providing a mechanistic explanation for the reduced mast cell-dependent allergic phenotype observed in FcεRI-humanized mice. Our study demonstrates a novel immune regulatory function of IgE and proposes that DC-intrinsic IgE signals serve as a feedback mechanism to restrain allergic tissue inflammation.
Publication Evidence that Orai1 does not contribute to store-operated TRPC1 channels in vascular smooth muscle cells
(Taylor & Francis, 2017) Shi, Jian; Miralles, Francesc; Kinet, Jean-Pierre; Birnbaumer, Lutz; Large, William A.; Albert, Anthony P.ABSTRACT Ca2+-permeable store-operated channels (SOCs) mediate Ca2+ entry pathways which are involved in many cellular functions such as contraction, growth, and proliferation. Prototypical SOCs are formed of Orai1 proteins and are activated by the endo/sarcoplasmic reticulum Ca2+ sensor stromal interaction molecule 1 (STIM1). There is considerable debate about whether canonical transient receptor potential 1 (TRPC1) proteins also form store-operated channels (SOCs), and if they do, is Orai1 involved. We recently showed that stimulation of TRPC1-based SOCs involves store depletion inducing STIM1-evoked Gαq/PLCβ1 activity in contractile vascular smooth muscle cells (VSMCs). Therefore the present work investigates the role of Orai1 in activation of TRPC1-based SOCs in freshly isolated mesenteric artery VSMCs from wild-type (WT) and Orai1−/− mice. Store-operated whole-cell and single channel currents recorded from WT and Orai1−/− VSMCs had similar properties, with relatively linear current-voltage relationships, reversal potentials of about +20mV, unitary conductances of about 2pS, and inhibition by anti-TRPC1 and anti-STIM1 antibodies. In Orai1−/− VSMCs, store depletion induced PLCβ1 activity measured with the fluorescent phosphatidylinositol 4,5-bisphosphate/inositol 1,4,5-trisphosphate biosensor GFP-PLCδ1-PH, which was prevented by knockdown of STIM1. In addition, in Orai1−/− VSMCs, store depletion induced translocation of STIM1 from within the cell to the plasma membrane where it formed STIM1-TRPC1 interactions at discrete puncta-like sites. These findings indicate that activation of TRPC1-based SOCs through a STIM1-activated PLCβ1 pathway are likely to occur independently of Orai1 proteins, providing evidence that TRPC1 channels form genuine SOCs in VSMCs with a contractile phenotype.