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Brain Ventricular Microinjections of Lipopolysaccharide into Larval Zebrafish to Assess Neuroinflammation and Neurotoxicity
Published on: August 23, 2022
Neuroinflammatory response to lipopolysaccharide is exacerbated in mice genetically deficient in cyclooxygenase-2
Saba Aid1, Robert Langenbach, Francesca Bosetti
1Brain Physiology and Metabolism Section, National Institute on Aging, NIH, 9000 Memorial Drive, Bldg 9 Room 1S126, Bethesda, MD 20892, USA. aidsab@mail.nih.gov
Background:
Cyclooxygenases (COX) -1 and -2 are key mediators of the inflammatory response in the central nervous system. Since COX-2 is inducible by inflammatory stimuli, it has been traditionally considered as the most appropriate target for anti-inflammatory drugs. However, the specific roles of COX-1 and COX-2 in modulating a neuroinflammatory response are unclear. Recently, we demonstrated that COX-1 deficient mice show decreased neuroinflammatory response and neuronal damage in response to lipopolysaccharide (LPS).
Methods:
In this study, we investigated the role of COX-2 in the neuroinflammatory response to intracerebroventricular-injected LPS (5 mug), a model of direct activation of innate immunity, using COX-2 deficient (COX-2-/-) and wild type (COX-2+/+) mice, as well as COX-2+/+ mice pretreated for 6 weeks with celecoxib, a COX-2 selective inhibitor.
Results:
Twenty-four hours after LPS injection, COX-2-/- mice showed increased neuronal damage, glial cell activation, mRNA and protein expression of markers of inflammation and oxidative stress, such as cytokines, chemokines, iNOS and NADPH oxidase. Brain protein levels of IL-1beta, NADPH oxidase subunit p67phox, and phosphorylated-signal transducer and activator of transcription 3 (STAT3) were higher in COX-2-/- and in celecoxib-treated mice, compared to COX-2+/+ mice. The increased neuroinflammatory response in COX-2-/- mice was likely mediated by the upregulation of STAT3 and suppressor of cytokine signaling 3 (SOCS3).
Conclusion:
These results show that inhibiting COX-2 activity can exacerbate the inflammatory response to LPS, possibly by increasing glial cells activation and upregulating the STAT3 and SOCS3 pathways in the brain.
Insights
Inhibiting cyclooxygenase-2 (COX-2) worsened neuroinflammation and neuronal damage in response to lipopolysaccharide (LPS). This suggests COX-2 inhibition may increase glial cell activation and STAT3/SOCS3 pathways in the brain.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Cyclooxygenases (COX)-1 and -2 mediate central nervous system inflammation.
- COX-2 is traditionally targeted for anti-inflammatory drugs, but its specific role in neuroinflammation is unclear.
- Previous studies showed COX-1 deficiency reduced neuroinflammation.
Purpose of the Study:
- To investigate the role of COX-2 in neuroinflammation.
- To examine the effects of COX-2 deficiency and inhibition on the response to lipopolysaccharide (LPS).
Main Methods:
- Used COX-2 deficient (COX-2-/-) and wild type (COX-2+/+) mice.
- Administered intracerebroventricular lipopolysaccharide (LPS) to induce neuroinflammation.
- Treated wild type mice with celecoxib, a COX-2 selective inhibitor.
Main Results:
- COX-2-/- mice exhibited increased neuronal damage, glial activation, and inflammatory markers post-LPS.
- Elevated IL-1beta, NADPH oxidase, and phosphorylated STAT3 were observed in COX-2-/- and celecoxib-treated mice.
- Upregulation of STAT3 and SOCS3 pathways likely mediated the heightened neuroinflammation in COX-2-/- mice.
Conclusions:
- COX-2 inhibition can exacerbate LPS-induced neuroinflammation.
- This exacerbation may involve increased glial cell activation.
- STAT3 and SOCS3 pathways in the brain appear to be upregulated by COX-2 inhibition.
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