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Biology subjects

Zong, P.

Publications and source records attributed to Zong, P..

2 recordsLinked to original sources

TRPM2 deficiency protects against atherosclerosis by inhibiting TRPM2-CD36 inflammatory axis in macrophages

Atherosclerosis is the major cause of ischemic heart diseases and ischemic brain stroke, which are the leading causes of mortality worldwide. The central pathological features of atherosclerosis include macrophage infiltration and foam cell formation. However, the detailed mechanisms regulating these two processes remain unclear. Here we show that oxidative stress-activated Ca2+-permeable TRPM2 plays a key role in the pathogenesis of atherosclerosis. Trpm2 deletion produces a potent protective effect against atherosclerosis in ApoE-/- mice fed with a high-fat diet (HFD), as evidenced by reduced atherosclerotic plaque burden, decreased macrophage load and suppressed inflammasome activation in the vessel wall. Moreover, we show that Trpm2 deletion or inhibition reduces oxidized low-density lipoprotein (oxLDL) uptake by macrophages, suppresses macrophage infiltration induced by monocyte chemoattractant protein-1 (MCP1), and prevents the impairment of macrophage emigration caused by oxLDL. Intriguingly, we uncover that activation of CD36, an oxLDL receptor, can promote the activation of TRPM2, and vice versa, the CD36-mediated inflammatory cascade in atherosclerosis is dependent on TRPM2. In transfected HEK293T cells, CD36 ligands oxLDL and TSP1 induce TRPM2 activation in a CD36-dependent manner. Deleting Trpm2 or inhibiting TRPM2 activity in cultured macrophages suppresses the CD36 signaling cascade induced by oxLDL and TSP1. Our studies establish TRPM2-CD36 axis as a new mechanism underlying atherogenesis, and suggest TRPM2 as an effective therapeutic target for atherosclerosis. HIGHLIGHTSO_LITrpm2 deletion protects against atherosclerosis in ApoE-/- mice fed with a high-fat diet (HFD) C_LIO_LITrpm2 deficiency reduces atherosclerotic lesions by minimizing foam cell formation, inhibiting macrophage infiltration and preserving macrophage emigration C_LIO_LITRPM2 activation is required for CD36-induced oxLDL uptake and subsequent inflammatory responses C_LIO_LIThe ligands of CD36, oxLDL and TSP1, activate TRPM2, thereby perpetuating TRPM2-CD36 inflammatory cycle in atherogenesis cascade C_LIO_LIOur data establish TRPM2-CD36 axis as a new atherogenesis mechanism and TRPM2 as a novel therapeutic target for atherosclerosis C_LI O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY TRPM2-mediated Ca2+ signal is essential for CD36 induced oxLDL uptake and atherosclerosis in ApoE-/- mice fed with a high-fat diet (HFD). The activation of CD36 and TRPM2 form a positive feedback loop in atherogenesis. C_FIG_DISPLAY

physiology↗

Functional coupling of TRPM2 and NMDARs exacerbates excitotoxicity in ischemic brain injury

Excitotoxicity caused by NMDA receptors (NMDARs) is a major cause of neuronal death in ischemic stroke. However, past efforts of directly targeting NMDARs have unfortunately failed in clinical ischemic stroke trials. Here we reveal an unexpected mechanism underlying NMDARs-mediated neurotoxicity, which leads to identification of a novel target and development of an effective therapeutic peptide for ischemic stroke. We show that NMDARs excitotoxicity upon ischemic insults is mediated by physical and functional coupling to TRPM2. The physical interaction of TRPM2 with NMDARs results in markedly increase in the surface expression of NMDARs, leading to enhanced NMDAR function and increased neuronal death. We identified a specific NMDAR-interacting domain on TRPM2, and developed a cell-permeable peptide to uncouple TRPM2-NMDARs. The disrupting-peptide protects neurons against ischemic injury in vitro and protects mice against ischemic stroke in vivo. These findings provide an unconventional strategy to eliminate excitotoxic neuronal death without directly targeting NMDARs. HIGHLIGHTSO_LITRPM2 physically and functionally interacts with NMDARs C_LIO_LIInteraction of TRPM2 with NMDARs exacerbates NMDARs extrasynaptic excitotoxicity by increasing NMDARs surface expression during ischemic injury C_LIO_LITRPM2 recruits PKC{gamma} to the interacting complexes to increase NMDARs surface expression C_LIO_LIUncoupling the interaction between TRPM2 and NMDARs with a disrupting peptide (TAT-EE3) protects neurons against ischemic stroke in vitro and in vivo C_LI GRAPHIC ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=175 HEIGHT=200 SRC="FIGDIR/small/454247v1_ufig1.gif" ALT="Figure 1"> View larger version (53K): org.highwire.dtl.DTLVardef@e618c5org.highwire.dtl.DTLVardef@646350org.highwire.dtl.DTLVardef@b4478corg.highwire.dtl.DTLVardef@1c5742f_HPS_FORMAT_FIGEXP M_FIG C_FIG TRPM2 excerbates NMDARs excitotoxicity by physically and functionally interacting with NMDARs. The disrupting pipette TAT-EE3 protects neurons against ischemic injury in vitro and in vivo.

neuroscience↗