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Published on: July 17, 2016
Cyclooxygenase and 5-lipoxygenase inhibitors protect against mononuclear phagocyte neurotoxicity
Andis Klegeris1, Patrick L McGeer
1Kinsmen Laboratory of Neurological Research, University of British Columbia, Vancouver, BC, Canada V6T 1Z3.
Abstract:
Neuroinflammation and oxidative stress are believed to be contributing factors to neurodegeneration in normal aging, as well as in age-related neurological disorders. Reactive microglia are found in increased numbers in aging brain and are prominently associated with lesions in such age-related degenerative conditions as Alzheimer's disease (AD), Parkinson's disease (PD) and amyotrophic lateral sclerosis (ALS). In vitro, stimulated microglia or microglial-like cells secrete neurotoxic materials and are generators of free radicals through their respiratory burst system. Agents that suppress microglial activation are therefore candidates for neuroprotection. We have developed quantitative in vitro assays for measuring neurotoxicity of microglia or other mononuclear phagocytes. Neuronal like SH-SY5Y cells are cultured in supernatants from activated cells of the human monocytic THP-1 line and their survival is followed. Respiratory burst is directly measured on the activated cells. We tested inhibitors of the cyclooxygenase (COX) or the 5-lipoxygenase (5-LOX) pathways as possible neuroprotective agents. The COX pathway generates inflammatory prostaglandins, while the 5-LOX pathway generates inflammatory leukotrienes. We found that inhibitors of both these pathways suppressed neurotoxicity in a dose-dependent fashion. They included the COX-1 inhibitor indomethacin; the COX-2 inhibitor NS-398; the mixed COX-1/COX-2 inhibitor ibuprofen; the nitric oxide (NO) derivatives of indomethacin, ibuprofen and flurbiprofen; the 5-LOX inhibitor REV 5901; and the 5-LOX activating protein (FLAP) inhibitor MK-886. The FLAP inhibitor also reduced respiratory burst activity in a more potent manner than indomethacin. Combinations of COX and 5-LOX inhibitors were more effective than single inhibitors. The data suggest that both COX inhibitors and 5-LOX inhibitors may be neuroprotective in vivo by suppressing toxic actions of microglia/macrophages, and that combinations of the two might have greater therapeutic potential than single inhibitors of either class.
Insights
Inhibiting inflammatory pathways like COX and 5-LOX shows promise for neuroprotection by reducing toxic microglial activity. Combinations of these inhibitors may offer enhanced therapeutic potential against neurodegeneration.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Neuroinflammation and oxidative stress contribute to neurodegeneration in aging and diseases like Alzheimer's and Parkinson's.
- Reactive microglia are implicated in age-related neurological disorders, releasing neurotoxic substances and free radicals.
- Suppressing microglial activation is a potential strategy for neuroprotection.
Purpose of the Study:
- To develop and utilize in vitro assays to measure microglial neurotoxicity.
- To evaluate cyclooxygenase (COX) and 5-lipoxygenase (5-LOX) pathway inhibitors as neuroprotective agents.
- To assess the efficacy of combined COX and 5-LOX inhibition.
Main Methods:
- Developed quantitative in vitro assays using SH-SY5Y neuronal cells exposed to supernatants from activated THP-1 cells.
- Measured neuronal survival and direct respiratory burst activity of activated cells.
- Tested various COX inhibitors (indomethacin, NS-398, ibuprofen) and 5-LOX inhibitors (REV 5901, MK-886), including NO-derivatives.
Main Results:
- Inhibitors of both COX and 5-LOX pathways dose-dependently suppressed microglial neurotoxicity.
- The 5-LOX activating protein (FLAP) inhibitor MK-886 potently reduced respiratory burst activity.
- Combinations of COX and 5-LOX inhibitors demonstrated greater efficacy than single agents.
Conclusions:
- Both COX and 5-LOX inhibitors show potential for in vivo neuroprotection by mitigating toxic microglial actions.
- Combined inhibition of COX and 5-LOX pathways may offer superior therapeutic benefits for neurodegenerative conditions.
- Targeting microglial inflammatory pathways presents a promising avenue for neuroprotective strategies.
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