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VITALE, N.

Publications and source records attributed to VITALE, N..

2 recordsLinked to original sources

Chromogranin A regulates the dynamics of neurosecretion through its interaction with phosphatidic acid

Altered neurosecretion is a common feature of diverse pathophysiological conditions, including central nervous system disorders, hypertension, and tumorigenesis, where chromogranin A (CgA) is widely used as a biomarker, and both phosphatidic acid (PA) synthesis and catecholamine (CA) secretion are dysregulated. Here, we identify a direct interaction between CgA and PA at the plasma membrane of living cells using a newly developed synthetic PA fluorescent probe and Forsters resonance energy transfer (FRET) combined with fluorescence lifetime imaging microscopy (FLIM). Confocal microscopy and transmission electron microscopy (TEM) further reveal that this interaction is spatially confined to exocytic sites. Using Total Internal Reflection Fluorescence microscopy (TIRF-M), we show that expression of a CgA variant lacking the PA-binding domain (PABD) in COS-7 cells increases the frequency of exocytic events and accelerates CgA release kinetics. In chromaffin cells, amperometry and live tracking of exocytosis-endocytosis demonstrate that CgA overexpression enhances granular CA content, extends fusion pore opening, and accelerates exocytosis-endocytosis coupling, effects that are abolished upon expression of CgA variant. Together, these findings unveil a new role of CgA/PA interaction in fine-tuning neurohormone secretion, suggesting unexplored avenues for restoring neurosecretion in disease-relevant contexts.

cell biology↗

A role for the V0 sector of the V-ATPase in neuroexocytosis: exogenous V0d blocks complexin and SNARE interactions with V0c

V-ATPase is an important factor in synaptic vesicle acidification and is implicated in synaptic transmission. Rotation of the extra-membranous V1 sector drives proton transfer through the membrane-embedded multi-subunit V0 sector of the V-ATPase. Intra-vesicular protons are then used to drive neurotransmitter uptake by synaptic vesicles. V0a and V0c, two membrane subunits of the V0 sector have been shown to interact with SNARE proteins and their photo-inactivation rapidly impairs synaptic transmission. V0d, a soluble subunit of the V0 sector strongly interacts with its membrane embedded subunits and is crucial for the canonic proton transfer activity of the V-ATPase. Our investigations show that the loop 1.2 of V0c interacts with complexin, a major partner of the SNARE machinery and that V0d1 binding to V0c inhibits this interaction, as well as V0c association with SNARE complex. Injection of recombinant V0d1 in rat superior cervical ganglion neurons rapidly reduced neurotransmission. In chromaffin cells, V0d1 overexpression and V0c silencing modified in a comparable manner several parameters of unitary exocytotic events. Our data suggest that V0c subunit promotes exocytosis via interactions with complexin and SNAREs and that this activity can be antagonized by exogenous V0d.

cell biology↗