AI Article Synopsis

  • Monoacylglycerol lipase (MAGL) breaks down 2-arachidonoylglycerol (2-AG) in the brain, leading to increased neuroinflammation and reduced prostaglandins when inhibited.
  • MAGL inhibition, either through pharmacological means or genetic deletion, results in heightened microglial reactivity in the cerebellum and impaired motor coordination, but not in the hippocampus.
  • Using a COX-2 inhibitor can mitigate cerebellar function deficits and microglial reactivity without affecting the hippocampus, suggesting region-specific effects of MAGL inhibition in the brain.

Article Abstract

Monoacylglycerol lipase (MAGL) is the main enzyme implicated in the degradation of the most abundant endocannabinoid in the brain, 2-arachidonoylglycerol (2-AG), producing arachidonic acid (AA) and glycerol. MAGL pharmacological inhibition with JZL184 or genetic deletion results in an exacerbated 2-AG signaling and reduced synthesis of prostaglandins (PGs), due to the reduced AA precursor levels. We found that acute JZL184 administration, previously described to exert anti-inflammatory effects, and MAGL knockout (KO) mice display cerebellar, but not hippocampal, microglial reactivity, accompanied with increased expression of the mRNA levels of neuroinflammatory markers, such as cyclooxygenase-2 (COX-2). Notably, this neuroinflammatory phenotype correlated with relevant motor coordination impairment in the beam-walking and the footprint tests. Treatment with the COX-2 inhibitor NS398 during 5 days prevented the deficits in cerebellar function and the cerebellar microglia reactivity in MAGL KO, without affecting hippocampal reactivity. Altogether, this study reveals the brain region-specific response to MAGL inhibition, with an important role of COX-2 in the cerebellar deficits associated, which should be taken into account for the use of MAGL inhibitors as anti-inflammatory drugs.

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Source
http://dx.doi.org/10.1016/j.bbi.2019.06.036DOI Listing

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