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Mitochondria-Targeted Human Catalase in the Mouse Longevity MCAT Model Mitigates Head-Tilt Bedrest-Induced
Linda Rubinstein1,2,3, Frederico Kiffer4,5, Stephanie Puukila1,2
1Universities Space Research Association USRA, Columbia, MD 21046, USA.
Abstract:
Microgravity (modeled by head-tilt bedrest and hind-limb unloading), experienced during prolonged spaceflight, results in neurological consequences, central nervous system (CNS) dysfunction, and potentially impairment during the performance of critical tasks. Similar pathologies are observed in bedrest, sedentary lifestyle, and muscle disuse on Earth. In our previous study, we saw that head-tilt bedrest together with social isolation upregulated the milieu of pro-inflammatory cytokines in the hippocampus and plasma. These changes were mitigated in a MCAT mouse model overexpressing human catalase in the mitochondria, pointing out the importance of ROS signaling in this stress response. Here, we used a head-tilt model in socially housed mice to tease out the effects of head-tilt bedrest without isolation. In order to find the underlying molecular mechanisms that provoked the cytokine response, we measured CD68, an indicator of microglial activation in the hippocampus, as well as changes in normal in-cage behavior. We hypothesized that hindlimb unloading (HU) will elicit microglial hippocampal activations, which will be mitigated in the MCAT ROS-quenching mice model. Indeed, we saw an elevation of the activated microglia CD68 marker following HU in the hippocampus, and this pathology was mitigated in MCAT mice. Additionally, we identified cytokines in the hippocampus, which had significant positive correlations with CD68 and negative correlations with exploratory behaviors, indicating a link between neuroinflammation and behavioral consequences. Unveiling a correlation between molecular and behavioral changes could reveal a biomarker indicative of these responses and could also result in a potential target for the treatment and prevention of cognitive changes following long space missions and/or muscle disuse on Earth.
Insights
Head-tilt bedrest causes neuroinflammation and behavioral changes in mice, linked to microglial activation. A catalase-overexpressing mouse model (MCAT) mitigated these effects, suggesting a target for spaceflight and sedentary lifestyle-induced cognitive decline.
Area of Science:
- Neuroscience
- Space Biology
- Physiology
Background:
- Microgravity from spaceflight causes neurological issues, similar to Earth-based sedentary lifestyles.
- Previous studies linked head-tilt bedrest and social isolation to increased inflammation.
- Mitochondrial catalase (MCAT) models showed promise in mitigating these inflammatory responses.
Purpose of the Study:
- To investigate the neurological effects of head-tilt bedrest without social isolation in mice.
- To identify molecular mechanisms underlying neuroinflammation and behavioral changes.
- To test the efficacy of the MCAT mouse model in mitigating these effects.
Main Methods:
- Utilized a head-tilt bedrest model in socially housed mice.
- Measured microglial activation using CD68 marker in the hippocampus.
- Assessed in-cage exploratory behaviors.
- Compared wild-type mice with MCAT mice overexpressing mitochondrial catalase.
Main Results:
- Hindlimb unloading (HU) significantly increased CD68 expression, indicating microglial activation in the hippocampus.
- MCAT mice showed mitigated microglial activation compared to wild-type mice.
- Specific hippocampal cytokines correlated with microglial activation and negatively with exploratory behaviors.
Conclusions:
- Head-tilt bedrest without social isolation induces hippocampal neuroinflammation and impacts behavior.
- MCAT mice demonstrate a protective effect against HU-induced neuroinflammation.
- The study highlights a link between molecular inflammatory markers and behavioral deficits, suggesting potential biomarkers and therapeutic targets for spaceflight and terrestrial muscle disuse.
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