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microRNA-146a modulates behavioural activity, neuroinflammation, and oxidative stress in adult mice
Wenting Zhao1, Jereme G Spiers1, Natasha Vassileff1
1Department of Biochemistry and Genetics, La Trobe Institute for Molecular Science, La Trobe University, Bundoora, Victoria 3083, Australia.
Abstract:
Small non-coding miRNA act as key regulators of several physiological processes due to their ability to interact with numerous target mRNA within a network. Whilst several miRNA can act in concert to regulate target mRNA expression, miR-146a has emerged as a critical modulator of inflammation by targeting key upstream signalling proteins of the nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB) pathway and reductions in this miRNA have been observed in several neurological and neurodegenerative disorders. However, a targeted assessment of behaviour and neural tissues following the loss of miR-146a has not been documented. In this study, we examined the behavioural and neuroinflammatory phenotype of mice lacking miR-146a to determine the role of this miRNA in neurological function. Adult miR-146a-/- mice displayed no overt developmental phenotype with the exception of enlarged spleens. Behavioural testing revealed a mild but significant reduction in exploratory locomotor activity and increase in anxiety-like behaviour, with no changes in short-term spatial memory, fear conditioning, or sensorimotor gating. In the brain, the lack of miR-146a resulted in a significant compensatory miR-155 expression with no significant changes in expression of the target Interleukin 1 Receptor Associated Kinase (Irak) gene family. Despite these effects on upstream NF-κB mediators, downstream expression of cytokine and chemokine messengers was significantly elevated in miR-146a-/- mice compared to wild-type controls. Moreover, this increase in inflammatory cytokines was observed alongside an induction of oxidative stress, driven in part by nicotinamide adenine dinucleotide phosphate (NADPH)-oxidase, and included reduced thiol antioxidant concentrations and increased oxidised protein carbonyl concentrations. In female miR-146a mice, this increase in oxidative stress resulted in an increased expression of superoxide dismutase 1 (SOD1). Together, this suggests miR-146a plays a key role in regulating inflammation even in the absence of inflammatory stimuli and reduced levels of this miRNA have the capacity to induce limited behavioural effects whilst exacerbating both inflammation and oxidative stress in the brain.
Insights
Loss of miR-146a in mice causes mild behavioral changes, increased anxiety, and heightened neuroinflammation and oxidative stress, impacting neurological function.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- MicroRNAs (miRNAs) are small non-coding RNAs regulating gene expression.
- miR-146a is a key modulator of the nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB) pathway and inflammation.
- Reduced miR-146a levels are linked to neurological disorders, but its specific role in behavior and neural tissues is unclear.
Purpose of the Study:
- To investigate the behavioral and neuroinflammatory consequences of miR-146a deficiency in mice.
- To determine the role of miR-146a in maintaining neurological function and regulating inflammatory responses.
Main Methods:
- Generation and analysis of miR-146a knockout (miR-146a-/-) mice.
- Comprehensive behavioral testing including locomotor activity, anxiety, memory, and sensorimotor gating.
- Neuroinflammation assessment via gene expression analysis of inflammatory mediators and oxidative stress markers.
Main Results:
- miR-146a-/- mice exhibited reduced locomotor activity and increased anxiety, but intact spatial memory and fear conditioning.
- Absence of miR-146a led to compensatory miR-155 expression and elevated downstream inflammatory cytokines and chemokines.
- Increased oxidative stress markers, including reduced thiol antioxidants and elevated protein carbonyls, were observed, particularly in female mice.
Conclusions:
- miR-146a plays a crucial role in regulating basal inflammation and oxidative stress in the brain.
- Loss of miR-146a can induce limited behavioral deficits and exacerbate neuroinflammation and oxidative stress.
- These findings highlight miR-146a as a potential therapeutic target for neurological conditions associated with inflammation.
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