Literature DB >> 20061541

Triggering role of acid sphingomyelinase in endothelial lysosome-membrane fusion and dysfunction in coronary arteries.

Jun-Xiang Bao1, Min Xia, Justin L Poklis, Wei-Qing Han, Christopher Brimson, Pin-Lan Li.   

Abstract

The present study determined whether activation of acid sphingomyelinase (ASM) drives membrane proximal lysosomes to fuse to the cell surface, facilitating membrane lipid rafts (LRs) clustering in coronary arterial endothelial cells (CAECs) and leading to endothelial dysfunction. By confocal microscopy, the activators of ASM, phosphatidylinositol (PI), and bis (monoacylglyceryl) phosphate (Bis), and an inducer of ASM, butyrate, were found to increase LRs clustering in bovine CAECs, which was blocked by lysosome fusion inhibitor vacuolin-1. However, arsenic trioxide (Ars), an inducer of de novo synthesis of ceramide, had no such effect. Similarly, vacuolin-1-blockable effects were observed using fluorescence resonance energy transfer detection. Liquid chromatography-electrospray ionization-tandem mass spectrometry analysis demonstrated that all of these treatments, even Ars, increased ceramide production in CAECs. When ASM gene was silenced, all treatments except Ars no longer increased ceramide levels. Furthermore, dynamic fluorescence monitoring in live cells showed that PI and Bis stimulated lysosome-membrane fusion in CAECs. Functionally, PI and Bis impaired endothelium-dependent vasodilation in perfused coronary arteries, which was blocked by vacuolin-1 and a lysosome function inhibitor, bafilomycine. FasL (Fas ligand), a previously confirmed lysosome fusion stimulator as a comparison, also produced a similar effect. It is concluded that ASM activation serves as a triggering mechanism and driving force, leading to fusion of membrane proximal lysosomes into LR clusters on the cell membrane of CAECs, which represents a novel mechanism mediating endothelial dysfunction during death receptor activation or other pathological situation.

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Year:  2010        PMID: 20061541      PMCID: PMC2838547          DOI: 10.1152/ajpheart.00958.2009

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  42 in total

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Authors:  M B Ruiz-Argüello; G Basáñez; F M Goñi; A Alonso
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3.  Kinetics and regulation of fast endocytosis at hippocampal synapses.

Authors:  J Klingauf; E T Kavalali; R W Tsien
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Authors:  A K Kenworthy; N Petranova; M Edidin
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Authors:  Félix M Goñi; Alicia Alonso
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Authors:  V T Hinkovska-Galcheva; L A Boxer; P J Mansfield; D Harsh; A Blackwood; J A Shayman
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  21 in total

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Review 3.  Membrane raft redox signalosomes in endothelial cells.

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4.  SNARE-mediated rapid lysosome fusion in membrane raft clustering and dysfunction of bovine coronary arterial endothelium.

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Review 6.  Lipid raft redox signaling: molecular mechanisms in health and disease.

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7.  Acid sphingomyelinase/ceramide regulates carotid intima-media thickness in simulated weightless rats.

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8.  TRAIL death receptor 4 signaling via lysosome fusion and membrane raft clustering in coronary arterial endothelial cells: evidence from ASM knockout mice.

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