Related Experiment Video
Updated: Apr 3, 2026

Assessing Spatial Memory Impairment in a Mouse Model of Traumatic Brain Injury Using a Radial Water Tread Maze
Published on: July 17, 2017
Selective Brain-Targeted Antagonism of p38 MAPKα Reduces Hippocampal IL-1β Levels and Improves Morris Water Maze
Background:
P38 mitogen activated protein kinase (MAPK) α modulates microglia-mediated inflammatory responses and a number of neuronal physiological processes.
Objective:
To evaluate pre-clinically the pharmacological effects in the brain of p38 MAPKα inhibition with a brain-penetrant specific chemical antagonist.
Methods:
VX-745, a blood-brain barrier penetrant, highly selective p38 MAPKα inhibitor, and clinical stage investigational drug, was utilized. Initially, a pilot study in 26-month-old Tg2576 mice was conducted. Subsequently, a definitive dose-response study was conducted in aged (20-22 months) rats with identified cognitive deficits; n = 15 per group: vehicle, 0.5, 1.5, and 4.5 mg/kg VX-745 by oral gavage twice daily for 3 weeks. Assessments in aged rats included IL-1β, PSD-95, TNFα protein levels in hippocampus; and Morris water maze (MWM) test for cognitive performance.
Results:
Drug effect could not be assessed in Tg2576 mice, as little inflammation was evident. In cognitively-impaired aged rats, VX-745 led to significantly improved performance in the MWM and significant reduction in hippocampal IL-1β protein levels, though the effects were dissociated as the MWM effect was evident at a lower dose level than that required to lower IL-1β. Drug concentration-effect relationships and predicted human doses were determined.
Conclusions:
Selective inhibition of p38 MAPKα with VX-745 in aged rats reduces hippocampal IL-1β levels and improves performance in the MWM. As the two effects occur at different dose levels, the behavioral effect appears to be via a mechanism that is independent of reducing cytokine production. The predicted human doses should minimize risks of systemic toxicity.
Insights
P38 mitogen activated protein kinase alpha (MAPKα) inhibition with VX-745 improved cognitive function in aged rats. This p38 MAPKα inhibitor reduced brain inflammation and enhanced performance in memory tests, suggesting a potential therapeutic strategy.
Area of Science:
- Neuroscience
- Pharmacology
- Inflammation Research
Background:
- P38 mitogen activated protein kinase alpha (MAPKα) plays a key role in regulating microglia-mediated inflammatory responses and neuronal functions.
- Dysregulation of p38 MAPKα signaling is implicated in various neurological conditions.
Purpose of the Study:
- To pre-clinically evaluate the brain effects of inhibiting p38 MAPKα using a specific, brain-penetrant chemical antagonist, VX-745.
- To assess the efficacy of VX-745 in aged rats with cognitive deficits.
Main Methods:
- VX-745, a selective p38 MAPKα inhibitor, was administered to aged rats with cognitive deficits.
- A dose-response study involved oral gavage of VX-745 (0.5, 1.5, 4.5 mg/kg) twice daily for 3 weeks.
- Cognitive performance was assessed using the Morris water maze (MWM), and hippocampal IL-1β, PSD-95, and TNFα protein levels were measured.
Main Results:
- VX-745 significantly improved performance in the Morris water maze (MWM) in aged rats.
- A significant reduction in hippocampal IL-1β protein levels was observed, though at a higher dose than that required for cognitive improvement.
- Drug concentration-effect relationships were established, and predicted human doses were determined.
Conclusions:
- Selective p38 MAPKα inhibition with VX-745 in aged rats improves cognitive performance and reduces hippocampal IL-1β.
- The cognitive benefits may be independent of direct cytokine reduction, suggesting alternative mechanisms of action.
- Predicted human doses aim to minimize systemic toxicity risks.
More Related Videos
14:57Preparation of Acute Hippocampal Slices from Rats and Transgenic Mice for the Study of Synaptic Alterations during Aging and Amyloid Pathology
Published on: March 23, 2011
07:07Analysis of Learning and Memory Ability in an Alzheimer's Disease Mouse Model using the Morris Water Maze
Published on: October 29, 2019