Clec12a Is an Inhibitory Receptor for Uric Acid Crystals that Regulates Inflammation in Response to Cell Death
IMMUNITY
Authors: Neumann, Konstantin; Castineiras-Vilarino, Mercedes; Hoeckendorf, Ulrike; Hannesschlaeger, Nicole; Lemeer, Simone; Kupka, Danny; Meyermann, Svenia; Lech, Maciej; Anders, Hans-Joachim; Kuster, Bernhard; Busch, Dirk H.; Gewies, Andreas; Naumann, Ronald; Gross, Olaf; Ruland, Juergen
Abstract
Recognition of cell death by the innate immune system triggers inflammatory responses. However, how these reactions are regulated is not well understood. Here, we identify the inhibitory C-type lectin receptor Clec12a as a specific receptor for dead cells. Both human and mouse Clec12a could physically sense uric acid crystals (monosodium urate, MSU), which are key danger signals for cell-death-induced immunity. Clec12a inhibited inflammatory responses to MSU in vitro, and Clec12a-deficient mice exhibited hyperinflammatory responses after being challenged with MSU or necrotic cells and after radiation-induced thymocyte killing in vivo. Thus, we identified a negative regulatory MSU receptor that controls noninfectious inflammation in response to cell death that has implications for autoimmunity and inflammatory disease.
Characterisation of murine MICL (CLEC12A) and evidence for an endogenous ligand
EUROPEAN JOURNAL OF IMMUNOLOGY
Authors: Pyz, Elwira; Huysamen, Cristal; Marshall, Andrew S. J.; Gordon, Siamon; Taylor, Philip R.; Brown, Gordon D.
Abstract
inhibitory receptors are required for the control of cellular activation and they play essential roles in regulating homeostasis and immunity. We previously identified a human inhibitory C-type lectin-like receptor, MICL (CLEC12A), a heavily glycosylated monomer predominantly expressed on myeloid cells. Here we characterise the murine homolog of MICL (mMICL), and demonstrate that the receptor is structurally and functionally similar to the human orthologue (hMICL), although there are some notable differences. mMICL is expressed as a dimer and is not heavily glycosylated; however, like hMICL, the receptor can recruit inhibitory phosphatases upon activation, and is down-regulated on leukocytes following stimulation with selected TLR agonists. Using novel monoclonal antibodies, we demonstrate that, like the human receptor, mMICL is predominantly expressed by myeloid cells. However, mMICL is also expressed by B cells and CD8(+) T cells in peripheral blood, and NK cells in the bone marrow. Finally, we show that mMICL recognises an endogenous ligand in a variety of murine tissues, suggesting that the receptor plays a role in homeostasis.