The role of astrocytes as structural and metabolic support for neurons is known since the beginning of the last century. Because of their strategic localization between neurons and capillaries they can monitor and control the level of synaptic activity by providing energetic metabolites to neurons and remove excess of neurotransmitters. During the last two decades number of papers further established that the astrocytic plasma-membrane G-protein coupled receptors (GPCR) can sense external inputs (such as the spillover of neurotransmitters) and transduce them as intracellular calcium elevations and release of chemical transmitters such as glutamate. The chemokine CXCR4 receptor is a GPCR widely expressed on glial cells (especially astrocytes and microglia). Activation of the astrocytic CXCR4 by its natural ligand CXCL12 (or SDF1α) results in a long chain of intracellular and extracellular events (including the release of the pro-inflammatory cytokine TNFα and prostanglandins) leading to glutamate release. The emerging role of CXCR4-CXCL12 signalling axis in brain physiology came from the recent observation that glutamate in astrocytes is released via a regulated exocytosis process and occurs with a relatively fast time-scale, in the order of few hundred milliseconds. Taking into account that astrocytes are electrically non-excitable and thus exocytosis rely only on a signalling pathway that involves the release Ca2+ from the internal stores, these results suggested a close relationship between sites of Ca2+ release and those of fusion events. Indeed, a recent observation describes structural sub-membrane microdomains where fast ER-dependent calcium elevations occur in spatial and temporal correlation with fusion events. © 2010 Elsevier B.V.

CXCR4-mediated glutamate exocytosis from astrocytes

Cali C.
First
;
2010-01-01

Abstract

The role of astrocytes as structural and metabolic support for neurons is known since the beginning of the last century. Because of their strategic localization between neurons and capillaries they can monitor and control the level of synaptic activity by providing energetic metabolites to neurons and remove excess of neurotransmitters. During the last two decades number of papers further established that the astrocytic plasma-membrane G-protein coupled receptors (GPCR) can sense external inputs (such as the spillover of neurotransmitters) and transduce them as intracellular calcium elevations and release of chemical transmitters such as glutamate. The chemokine CXCR4 receptor is a GPCR widely expressed on glial cells (especially astrocytes and microglia). Activation of the astrocytic CXCR4 by its natural ligand CXCL12 (or SDF1α) results in a long chain of intracellular and extracellular events (including the release of the pro-inflammatory cytokine TNFα and prostanglandins) leading to glutamate release. The emerging role of CXCR4-CXCL12 signalling axis in brain physiology came from the recent observation that glutamate in astrocytes is released via a regulated exocytosis process and occurs with a relatively fast time-scale, in the order of few hundred milliseconds. Taking into account that astrocytes are electrically non-excitable and thus exocytosis rely only on a signalling pathway that involves the release Ca2+ from the internal stores, these results suggested a close relationship between sites of Ca2+ release and those of fusion events. Indeed, a recent observation describes structural sub-membrane microdomains where fast ER-dependent calcium elevations occur in spatial and temporal correlation with fusion events. © 2010 Elsevier B.V.
2010
224
1-2
13
21
Astrocytes; Chemokines; Exocytosis; G-protein coupled receptors; Glutamate; Imaging; TIRF microscopy; Animals; Astrocytes; Brain; Calcium Signaling; Chemokine CXCL12; Exocytosis; Glutamic Acid; Humans; Intracellular Membranes; Receptors, CXCR4; Signal Transduction
Cali C.; Bezzi P.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2318/1739414
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