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Neuron-Macrophage Co-cultures to Activate Macrophages Secreting Molecular Factors with Neurite Outgrowth Activity
Published on: March 30, 2018
Involvement of the 4-aminopyridine-sensitive transient A-type K+ current in macrophage-induced neuronal injury
Dehui Hu1, Jianuo Liu, James Keblesh
1Center for Neurovirology and Neurodegenerative Disorders, Department of Pharmacology and Experimental Neuroscience, University of Nebraska Medical Center, Omaha, NE 68198-5880, USA.
Abstract:
Through their capacity to secrete, upon activation, a variety of bioactive molecules, brain macrophages (and resident microglia) play an important role in brain immune and inflammatory responses. To test our hypothesis that activated macrophages induce neuronal injury by enhancing neuronal outward K(+) current, we studied the effects of lipopolysaccharide (LPS)-stimulated human monocyte-derived macrophage (MDM) on neuronal transient A-type K(+) current (I(A)) and resultant neuronal injury in primary rat hippocampal neuronal cultures. Bath application of LPS-stimulated MDM-conditioned media (MCM+) enhanced neuronal I(A) in a concentration-dependent manner. Non-stimulated MCM (MCM-) failed to alter I(A). The enhancement of neuronal I(A) was recapitulated in neurons co-cultured with macrophages. The link of MCM(+)-induced enhancement of I(A) to MCM(+)-associated neuronal injury, as detected by propidium iodide and 4'',6-diamidino-2-phenylindol staining (DAPI) and 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide (MTT) assay, was demonstrated by experimental results showing that addition of I(A) blocker 4-aminopyridine to the cultures protected hippocampal neurons from MCM(+)-induced neuronal injury. Further investigation revealed that glutamate was involved in MCM(+)-induced enhancement of neuronal I(A). These results suggest that during brain inflammation macrophages (and microglia) might mediate neuronal injury via enhancement of neuronal I(A), and that neuronal K(v) channel might be a potential target for the development of therapeutic strategies for some neurodegenerative disorders by which immune and inflammatory responses are believed to be involved in the pathogenesis.
Insights
Activated macrophages enhance neuronal outward potassium current (I(A)), leading to neuronal injury. Blocking this current protects neurons, suggesting K(v) channels as therapeutic targets for neurodegenerative disorders.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Brain macrophages, including microglia, are crucial in immune responses via secreted bioactive molecules.
- Their role in neuronal injury during inflammation is under investigation.
Purpose of the Study:
- To test if activated macrophages induce neuronal injury by enhancing outward potassium current (I(A)).
- To investigate the role of lipopolysaccharide (LPS)-stimulated human monocyte-derived macrophages (MDMs) in neuronal I(A) and injury.
Main Methods:
- Primary rat hippocampal neuronal cultures were exposed to conditioned media from LPS-stimulated MDMs (MCM+).
- Neuronal I(A) was measured, and neuronal injury was assessed using propidium iodide, DAPI, and MTT assays.
- Co-culture experiments and the use of an I(A) blocker (4-aminopyridine) were employed.
Main Results:
- MCM+ significantly enhanced neuronal I(A) in a dose-dependent manner; non-stimulated media (MCM-) had no effect.
- Neuronal injury correlated with MCM+-induced I(A) enhancement.
- 4-aminopyridine protected neurons from MCM+-induced injury, implicating I(A) in the damage.
- Glutamate was identified as a factor in MCM+-induced I(A) enhancement.
Conclusions:
- Activated macrophages may mediate neuronal injury during brain inflammation by enhancing neuronal I(A).
- Neuronal K(v) channels represent a potential therapeutic target for neurodegenerative diseases involving inflammatory processes.
