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Published on: April 20, 2018
ER and SOCE Ca2+ signals are not required for directed cell migration in human microglia
Alberto Granzotto1,2,3, Amanda McQuade1,4,5,6, Jean Paul Chadarevian1,4,5
1UCI Institute for Memory Impairments and Neurological Disorders, University of California, Irvine, United States.
Abstract:
The central nervous system (CNS) is constantly surveilled by microglia, highly motile and dynamic cells deputed to act as the first line of immune defense in the brain and spinal cord. Alterations in the homeostasis of the CNS are detected by microglia that respond by migrating toward the affected area. Understanding the mechanisms controlling directed cell migration of microglia is crucial to dissect their responses to neuroinflammation and injury. We used a combination of pharmacological and genetic approaches to explore the involvement of calcium (Ca2+) signaling in the directed migration of induced pluripotent stem cell (iPSC)-derived microglia challenged with a purinergic stimulus. This approach mimics cues originating from injury of the CNS. Unexpectedly, simultaneous imaging of microglia migration and intracellular Ca2+ changes revealed that this phenomenon does not require Ca2+ signals generated from the endoplasmic reticulum (ER) and store-operated Ca2+ entry (SOCE) pathways. Instead, we find evidence that human microglial chemotaxis to purinergic signals is mediated by cyclic AMP in a Ca2+-independent manner. These results challenge prevailing notions, with important implications in neurological conditions characterized by perturbation in Ca2+ homeostasis.
Insights
Microglia, the brain's immune cells, migrate to injury sites. This study reveals that their directed migration to purinergic signals is independent of calcium signaling, challenging prior assumptions.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are the primary immune cells of the central nervous system (CNS), constantly monitoring for disruptions.
- Understanding microglial directed migration is key to comprehending neuroinflammation and injury responses.
Approach:
- Utilized pharmacological and genetic methods to investigate calcium signaling in induced pluripotent stem cell (iPSC)-derived microglia migration.
- Stimulated microglia with purinergic signals, mimicking CNS injury cues.
- Simultaneously imaged microglial migration and intracellular calcium changes.
Key Points:
- Microglial migration to purinergic stimuli does not require calcium signals from the endoplasmic reticulum (ER).
- Store-operated calcium entry (SOCE) pathways are not essential for this microglial chemotaxis.
- Human microglial chemotaxis is mediated by cyclic AMP (cAMP) independently of calcium.
Conclusions:
- This research challenges the established role of calcium signaling in microglial directed migration.
- Findings suggest cyclic AMP is the primary mediator of purinergic-induced microglial chemotaxis.
- These results have significant implications for neurological disorders involving calcium homeostasis disruptions.
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