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Published on: October 25, 2016
Microglial FABP4-UCP2 Axis Modulates Neuroinflammation and Cognitive Decline in Obese Mice
Simon W So1,2, Kendra M Fleming1,2, Cayla M Duffy1,3
1Minneapolis Veterans Affairs Health Care System, Minneapolis, MN 55417, USA.
Abstract:
The microglial fatty-acid-binding protein 4-uncoupling protein 2 (FABP4-UCP2) axis is a key regulator of neuroinflammation in high-fat-diet (HFD)-fed animals, indicating a role for FABP4 in brain immune response. We hypothesized that the FABP4-UCP2 axis is involved in regulating diet-induced cognitive decline. We tested cognitive function in mice lacking microglial FABP4 (AKO mice). Fifteen-week-old male AKO and wild-type (WT) mice were maintained on 60% HFD or normal chow (NC) for 12 weeks. Body composition was measured using EchoMRI. Locomotor activity, working memory, and spatial memory were assessed using behavioral tests (open field, T-maze, and Barnes maze, respectively). Hippocampal microgliosis was assessed via immunohistochemical staining. An inflammatory cytokine panel was assayed using hippocampal tissue. Real-time RT-PCR was performed to measure microglial UCP2 mRNA expression. Our data support that loss of FABP4 prevents cognitive decline in vivo. HFD-fed WT mice exhibited impaired long- and short-term memory, in contrast with HFD-fed AKO mice. HFD-fed WT mice had an increase in hippocampal inflammatory cytokine expression (IFNγ, IL-1β, IL-5, IL-6, KC/GRO(CXCL1), IL-10, and TNFα) and microgliosis, and decreased microglial UCP2 expression. HFD-fed AKO mice had decreased hippocampal inflammatory cytokine expression and microgliosis and increased microglial UCP2 expression compared to HFD-fed WT mice. Collectively, our work supports the idea that the FABP4-UCP2 axis represents a potential therapeutic target in preventing diet-induced cognitive decline.
Insights
Loss of microglial fatty-acid-binding protein 4 (FABP4) prevents high-fat diet-induced cognitive decline by modulating the FABP4-uncoupling protein 2 (UCP2) axis, reducing neuroinflammation and improving memory. This highlights FABP4 as a therapeutic target.
Area of Science:
- Neuroscience
- Immunology
- Metabolism
Background:
- The microglial fatty-acid-binding protein 4-uncoupling protein 2 (FABP4-UCP2) axis regulates neuroinflammation in high-fat diet (HFD) models.
- FABP4 is implicated in brain immune responses and its role in diet-induced cognitive decline is unclear.
Purpose of the Study:
- To investigate the involvement of the FABP4-UCP2 axis in diet-induced cognitive decline.
- To assess the impact of microglial FABP4 deficiency on cognitive function and neuroinflammation in mice fed a high-fat diet.
Main Methods:
- Cognitive function was evaluated in microglial FABP4 knockout (AKO) and wild-type (WT) mice on normal chow (NC) or 60% HFD for 12 weeks using behavioral tests.
- Hippocampal microgliosis, inflammatory cytokine expression, and microglial UCP2 mRNA levels were analyzed.
Main Results:
- HFD-induced cognitive impairment (long- and short-term memory deficits) was observed in WT mice but prevented in AKO mice.
- HFD-fed WT mice showed increased hippocampal inflammation and microgliosis, with decreased microglial UCP2 expression.
- HFD-fed AKO mice exhibited reduced hippocampal inflammation and microgliosis, and increased microglial UCP2 expression compared to HFD-fed WT mice.
Conclusions:
- Loss of microglial FABP4 ameliorates high-fat diet-induced cognitive decline.
- The FABP4-UCP2 axis is a critical mediator of diet-induced neuroinflammation and cognitive impairment.
- Targeting the FABP4-UCP2 axis offers a potential therapeutic strategy for preventing diet-induced cognitive decline.

