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Published on: August 15, 2012
Neurotensin and the neurotensin receptor-3 in microglial cells
Stéphane Martin1, Eleni Dicou, Jean-Pierre Vincent
1Institut de Pharmacologie Moléculaire et Cellulaire, Unité Mixte de Recherche 6097 du Centre National de la Recherche Scientifique, Sophia Antipolis, Valbonne, France.
Abstract:
Microglia motility plays a crucial role in response to lesion or exocytotoxic damage of the cerebral tissue. The neuropeptide neurotensin elicited the migration of the human microglial cell line C13NJ by a mechanism dependent on both phosphatidylinositol-3 kinase (PI3 kinase) and mitogen-activated protein (MAP) kinases pathways. The effect of neurotensin on cell migration was blocked by the neurotensin receptor-3 propeptide, a selective ligand of this receptor. The type I neurotensin receptor-3 was the only known neurotensin receptor expressed in these microglial cells, and its activation led to the phosphorylation of both extracellular signaling-regulated kinases Erk1/2 and Akt. Furthermore, the effect of neurotensin on cell migration was preceded by a profound modification of the F-actin cytoskeleton, particularly by the rapid formation of numerous cell filopodia. Both the motility and the filopodia appearance induced by neurotensin were totally blocked by selective inhibitors of MAP kinases or PI3 kinase pathways. In the murine microglial cell line N11, the neurotensin receptor-3 is also the only neurotensin receptor expressed, and its activation by neurotensin leads to the phosphorylation of both Erk1/2 and Akt. In these cells, neurotensin induces the gene expression of several cytokines/chemokines, including MIP-2, MCP-1, interleukin-1beta and tumor necrosis factor-alpha. This induction is dependent on both protein kinases pathways. We observed that the effect of neurotensin on the cytokine/chemokine expression is also inhibited by the neurotensin receptor-3 propeptide. This is the demonstration that the neurotensin receptor-3 is functional and mediates both the migratory action of neurotensin and its induction of chemokines/cytokines expression.
Insights
Neurotensin triggers microglial cell migration and cytokine release via neurotensin receptor-3, activating PI3 kinase and MAP kinase pathways. This pathway is crucial for brain tissue repair and immune response.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are key immune cells in the central nervous system.
- Microglial motility is vital for responding to brain injury.
- Neurotensin is a neuropeptide implicated in various physiological processes.
Purpose of the Study:
- To investigate the role of neurotensin in microglial cell migration and function.
- To identify the specific neurotensin receptor involved in microglial responses.
- To elucidate the signaling pathways mediating neurotensin's effects on microglia.
Main Methods:
- Utilized human (C13NJ) and murine (N11) microglial cell lines.
- Assessed cell migration and F-actin cytoskeleton changes.
- Analyzed protein phosphorylation (Erk1/2, Akt) via Western blotting.
- Measured cytokine/chemokine gene expression using RT-PCR.
- Employed selective receptor antagonists and kinase inhibitors.
Main Results:
- Neurotensin induced significant migration and filopodia formation in C13NJ cells.
- These effects were dependent on phosphatidylinositol-3 kinase (PI3 kinase) and mitogen-activated protein (MAP) kinases.
- Neurotensin receptor-3 was identified as the sole receptor mediating these actions.
- Neurotensin also stimulated cytokine/chemokine expression (MIP-2, MCP-1, IL-1β, TNF-α) in N11 cells via the same pathways.
- The neurotensin receptor-3 propeptide blocked both migration and cytokine induction.
Conclusions:
- Neurotensin receptor-3 is functional in microglia and mediates neurotensin-induced cell migration.
- Neurotensin signaling through neurotensin receptor-3 activates PI3K and MAPK pathways.
- This receptor is also responsible for neurotensin-stimulated cytokine and chemokine production in microglia.
- Neurotensin signaling via NTR3 plays a significant role in neuroinflammation and tissue repair mechanisms.

