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The final frontier: Transient microglia reduction after cosmic radiation exposure mitigates cognitive impairments and
Susanna Rosi1,2,3,4,5
1Department of Physical Therapy and Rehabilitation Science, University of California, San Francisco, CA, USA.
Abstract:
Microglia are the primary immune element within the brain, which are responsible for monitoring synapse function and neuron health. Exposure to cosmic radiation has the potential to cause long-term cognitive deficits in rodent models and therefore indicates a difficult challenge for future astronauts piloting interplanetary travel. Here, we discuss the potential of transient microglia depletion after the injury to ameliorate the harsh microenvironment of the brain and eliminate any potential long-term cognitive effects. Repopulation of microglia enables phagocytic phenotypes to be circumvented, via the reduction of Phagocytic and lysosomal markers, potentially being responsible for increased neuroprotection. Brief depletion of microglia after irradiation mitigated the development of any long-term memory deficits, comparable to healthy animals. Chronically, microglial levels were not affected by cosmic radiation followed by temporary microglia depletion. Following repopulation, improved recognition memory was paralleled by downregulated complement receptor C5aR. Preserved synapse function also demonstrated the therapeutic ability of microglia depletion as it corresponded with fewer phagocytic microglia phenotypes. The understanding of long-term radiation-induced cognitive impairments is vital for the protection of future astronauts and equally as important for current cancer patients. Temporary microglia depletion showed promise in preventing any deleterious cognitive impairments following exposure to elements of cosmic radiation, such as helium and high-charge nuclei.
Insights
Transient microglia depletion after cosmic radiation exposure prevented long-term cognitive deficits in rodents. This approach may protect astronauts and cancer patients from radiation-induced brain injury.
Area of Science:
- Neuroscience
- Radiation Biology
- Immunology
Background:
- Microglia are brain immune cells crucial for synapse and neuron health.
- Cosmic radiation exposure can cause long-term cognitive deficits, posing risks for astronauts.
- Understanding radiation's impact on the brain is vital for astronaut and cancer patient protection.
Purpose of the Study:
- To investigate if transient microglia depletion after irradiation can prevent long-term cognitive deficits.
- To assess the impact of repopulated microglia on neuroprotection and cognitive function post-irradiation.
Main Methods:
- Rodent models were exposed to elements of cosmic radiation (e.g., helium, high-charge nuclei).
- Transient microglia depletion was induced post-irradiation.
- Cognitive functions, microglial markers, and synapse health were evaluated.
Main Results:
- Temporary microglia depletion mitigated long-term memory deficits induced by cosmic radiation.
- Repopulated microglia showed reduced phagocytic and lysosomal markers, correlating with neuroprotection.
- Preserved synapse function and improved recognition memory were observed, linked to downregulated C5aR.
Conclusions:
- Transient microglia depletion is a promising therapeutic strategy against cosmic radiation-induced cognitive impairments.
- This method offers potential neuroprotection by modulating microglial phenotypes.
- Findings are relevant for protecting astronauts on interplanetary missions and cancer patients undergoing radiotherapy.
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