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Published on: January 31, 2019
Activation of mitochondrial transient receptor potential vanilloid 1 channel contributes to microglial migration
Takahito Miyake1, Hisashi Shirakawa1, Takayuki Nakagawa1,2
1Department of Molecular Pharmacology, Graduate School of Pharmaceutical Sciences, Kyoto University, Kyoto, Japan.
Abstract:
Microglia, the resident immune cells in the brain, survey the environment of the healthy brain. Microglial migration is essential for many physiological and pathophysiological processes. Although microglia express some members of the transient receptor potential (TRP) channel family, there is little knowledge regarding the physiological roles of TRP channels in microglia. Here, we explored the role of TRP vanilloid 1 (TRPV1), a channel opened by capsaicin, heat, protons, and endovanilloids, in microglia. We found that application of capsaicin induced concentration-dependent migration in microglia derived from wild-type mice but not in those derived from TRPV1 knockout (TRPV1-KO) mice. Capsaicin-induced microglial migration was significantly inhibited by co-application of the TRPV1 blocker SB366791 and the Ca(2+) chelator BAPTA-AM. Using RT-PCR and immunocytochemistry, we validated that TRPV1 was expressed in microglia. Electrophysiological recording, intracellular Ca(2+) imaging, and immunocytochemistry indicated that TRPV1 was localized primarily in intracellular organelles. Treatment with capsaicin induced an increase in intramitochondrial Ca(2+) concentrations and mitochondrial depolarization. Furthermore, microglia derived from TRPV1-KO mice showed delayed Ca(2+) efflux compared with microglia derived from wild-type mice. Capsaicin-induced microglial migration was inhibited by membrane-permeable antioxidants and MAPK inhibitors, suggesting that mitochondrial TRPV1 activation induced Ca(2+) -dependent production of ROS followed by MAPK activation, which correlated with an augmented migration of microglia. Moreover, a mixture of three endovanilloids augmented microglial migration via TRPV1 activation. Together, these results indicate that mitochondrial TRPV1 plays an important role in inducing microglial migration. Activation of TRPV1 triggers an increase in intramitochondrial Ca(2+) concentration and following depolarization of mitochondria, which results in mtROS production, MAPK activation, and enhancement of chemotactic activity in microglia.
Insights
Mitochondrial TRPV1 channels regulate microglial migration. Activating these channels increases mitochondrial calcium, leading to ROS production and MAPK activation, which enhances microglial movement.
Area of Science:
- Neuroimmunology
- Cellular Neuroscience
- Ion Channel Physiology
Background:
- Microglia are brain immune cells crucial for neural health and disease.
- Transient Receptor Potential (TRP) channels influence microglial functions, but their specific roles are largely unknown.
- TRP vanilloid 1 (TRPV1) is a key ion channel implicated in various cellular processes.
Purpose of the Study:
- To investigate the role of TRPV1 in microglial migration.
- To elucidate the signaling pathways downstream of TRPV1 activation in microglia.
Main Methods:
- Primary microglia cultures from wild-type and TRPV1 knockout mice.
- Capsaicin stimulation and TRPV1 antagonist application.
- RT-PCR, immunocytochemistry, and Western blotting for TRPV1 expression.
- Electrophysiology, intracellular calcium imaging (including mitochondrial calcium).
- Measurement of mitochondrial membrane potential, ROS production, and MAPK activation.
Main Results:
- Capsaicin induced concentration-dependent microglial migration, dependent on TRPV1 expression and activity.
- TRPV1 activation led to increased mitochondrial calcium, mitochondrial depolarization, and ROS production.
- ROS production subsequently activated MAPK signaling pathways.
- TRPV1 antagonists and calcium chelators inhibited capsaicin-induced migration.
- Endovanilloids also promoted microglial migration via TRPV1.
Conclusions:
- Mitochondrial TRPV1 channels are critical regulators of microglial migration.
- TRPV1 activation initiates a signaling cascade involving mitochondrial calcium influx, ROS generation, and MAPK activation, ultimately enhancing microglial chemotaxis.
- Targeting mitochondrial TRPV1 may offer therapeutic strategies for neurological conditions involving microglial dysregulation.
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