Cholesterol reduction impairs exocytosis of synaptic vesicles

Author:

Linetti Anna1,Fratangeli Alessandra1,Taverna Elena1,Valnegri Pamela1,Francolini Maura1,Cappello Valentina1,Matteoli Michela12,Passafaro Maria13,Rosa Patrizia1

Affiliation:

1. CNR-Institute of Neuroscience, Department of Medical Pharmacology, University of Milan, 20129 Milan, Italy

2. IRCCS Fondazione Don Gnocchi, 20149, Milan, Italy

3. DTI, Dulbecco Telethon Institute, 20129, Milan, Italy

Abstract

Cholesterol and sphingolipids are abundant in neuronal membranes, where they help the organisation of the membrane microdomains involved in major roles such as axonal and dendritic growth, and synapse and spine stability. The aim of this study was to analyse their roles in presynaptic physiology. We first confirmed the presence of proteins of the exocytic machinery (SNARES and Cav2.1 channels) in the lipid microdomains of cultured neurons, and then incubated the neurons with fumonisin B (an inhibitor of sphingolipid synthesis), or with mevastatin or zaragozic acid (two compounds that affect the synthesis of cholesterol by inhibiting HMG-CoA reductase or squalene synthase). The results demonstrate that fumonisin B and zaragozic acid efficiently decrease sphingolipid and cholesterol levels without greatly affecting the viability of neurons or the expression of synaptic proteins. Electron microscopy showed that the morphology and number of synaptic vesicles in the presynaptic boutons of cholesterol-depleted neurons were similar to those observed in control neurons. Zaragozic acid (but not fumonisin B) treatment impaired synaptic vesicle uptake of the lipophilic dye FM1-43 and an antibody directed against the luminal epitope of synaptotagmin-1, effects that depended on the reduction in cholesterol because they were reversed by cholesterol reloading. The time-lapse confocal imaging of neurons transfected with ecliptic SynaptopHluorin showed that cholesterol depletion affects the post-depolarisation increase in fluorescence intensity. Taken together, these findings show that reduced cholesterol levels impair synaptic vesicle exocytosis in cultured neurons.

Publisher

The Company of Biologists

Subject

Cell Biology

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