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Loss of APOBEC1 RNA-editing function in microglia exacerbates age-related CNS pathophysiology
Daniel C Cole1,2, Youngcheul Chung1,2, Khatuna Gagnidze1,2
1Neuroimmunology and Inflammation Program, The Rockefeller University, New York, NY 10065.
Abstract:
Microglia (MG), a heterogeneous population of phagocytic cells, play important roles in central nervous system (CNS) homeostasis and neural plasticity. Under steady-state conditions, MG maintain homeostasis by producing antiinflammatory cytokines and neurotrophic factors, support myelin production, and remove synapses and cellular debris, as well as participating in "cross-correction," a process that supplies neurons with key factors for executing autophagy-lysosomal function. As sentinels for the immune system, MG also detect "danger" signals (pathogenic or traumatic insult), become activated, produce proinflammatory cytokines, and recruit monocytes and dendritic cells to the site of damage through a breached blood-brain barrier or via brain lymphatics. Failure to effectively resolve MG activation can be problematic and can lead to chronic inflammation, a condition proposed to underlie CNS pathophysiology in heritable brain disorders and age-related neurodegenerative and cognitive decline. Here, we show that APOBEC1-mediated RNA editing occurs within MG and is key to maintaining their resting status. Like bone marrow-derived macrophages, RNA editing in MG leads to overall changes in the abundance of edited proteins that coordinate the function of multiple cellular pathways. Conversely, mice lacking the APOBEC1 editing function in MG display evidence of dysregulation, with progressive age-related signs of neurodegeneration, characterized by clustering of activated MG, aberrant myelination, increased inflammation, and lysosomal anomalies that culminate in behavioral and motor deficiencies. Collectively, our study identifies posttranscriptional modification by RNA editing as a critical regulatory mechanism of vital cellular functions that maintain overall brain health.
Insights
RNA editing by APOBEC1 in microglia is crucial for maintaining brain health. Loss of this editing function in microglia leads to neurodegeneration, inflammation, and motor deficits in mice.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Microglia (MG) are key immune cells in the central nervous system (CNS), essential for homeostasis and neural plasticity.
- Dysregulated microglial activation contributes to neurodegenerative diseases and cognitive decline.
- RNA editing is a posttranscriptional modification process that alters RNA sequences.
Purpose of the Study:
- To investigate the role of APOBEC1-mediated RNA editing in microglia.
- To determine the impact of impaired RNA editing on microglial function and CNS health.
Main Methods:
- Analysis of APOBEC1-mediated RNA editing in microglia.
- Utilizing mouse models lacking APOBEC1 editing function in microglia.
- Assessing neuroinflammation, myelination, lysosomal function, and behavioral deficits.
Main Results:
- APOBEC1-mediated RNA editing occurs in microglia and is vital for their resting state.
- Mice lacking microglial APOBEC1 editing show progressive neurodegeneration.
- Observed dysregulation includes activated microglia clustering, aberrant myelination, inflammation, and lysosomal anomalies.
Conclusions:
- RNA editing is a critical regulatory mechanism for microglial function and CNS homeostasis.
- APOBEC1-mediated RNA editing in microglia is essential for preventing age-related neurodegeneration.
- This study highlights RNA editing as a potential therapeutic target for brain disorders.
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