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Modulation of Tau Subcellular Localization as a Tool to Investigate the Expression of Disease-related Genes
Published on: December 20, 2019
Advances and Challenges in Understanding MicroRNA Function in Tauopathies: A Case Study of miR-132/212
Emmanuelle Boscher1,2, Julia Hernandez-Rapp1,2, Serena Petry1,2
1Axe Neurosciences, Centre de Recherche du CHU de Québec-Université Laval, Québec, QC, Canada.
Abstract:
In the past decade, several groups have reported that microRNAs (miRNAs) can participate in the regulation of tau protein at different levels, including its expression, alternative splicing, phosphorylation, and aggregation. These observations are significant, since the abnormal regulation and deposition of tau is associated with nearly 30 neurodegenerative disorders. Interestingly, miRNA profiles go awry in tauopathies such as Alzheimer's disease, progressive supranuclear palsy, and frontotemporal dementia. Understanding the role and impact of miRNAs on tau biology could therefore provide important insights into disease risk, diagnostics, and perhaps therapeutics. In this Perspective article, we discuss recent advances in miRNA research related to tau. While proof-of-principle studies hold promise, physiological validation remains limited. To help fill this gap, we describe herein a pure tauopathy mouse model deficient for the miR-132/212 cluster. This miRNA family is strongly downregulated in human tauopathies and shown to regulate tau in vitro and in vivo. No significant differences in survival, motor deficits or body weight were observed in PS19 mice lacking miR-132/212. Age-specific effects were seen on tau expression and phosphorylation but not aggregation. Moreover, various miR-132/212 targets previously implicated in tau modulation were unaffected (GSK-3β, Foxo3a, Mapk1, p300) or, unexpectedly, reduced (Mapk3, Foxo1, p300, Calpain 2) in miR-132/212-deficient PS19 mice. These observations highlight the challenges of miRNA research in living models, and current limitations of transgenic tau mouse models lacking functional miRNA binding sites. Based on these findings, we finally recommend different strategies to better understand the role of miRNAs in tau physiology and pathology.
Insights
MicroRNAs (miRNAs) impact tau protein regulation in neurodegenerative diseases. Studies in miR-132/212 deficient mice reveal complex effects on tau, highlighting challenges in modeling miRNA roles in tauopathies.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- MicroRNAs (miRNAs) are implicated in regulating tau protein expression, splicing, phosphorylation, and aggregation.
- Aberrant tau regulation and deposition are hallmarks of numerous neurodegenerative disorders, including Alzheimer's disease.
- miRNA dysregulation is observed in human tauopathies, suggesting a critical role in disease pathogenesis.
Purpose of the Study:
- To investigate the physiological role of the miR-132/212 cluster in tau biology and tauopathies.
- To assess the impact of miR-132/212 deficiency on tauopathy progression in a mouse model.
- To identify miR-132/212 targets involved in tau modulation in vivo.
Main Methods:
- Generation and characterization of PS19 mice lacking the miR-132/212 cluster.
- Assessment of survival, motor function, and body weight in miR-132/212-deficient PS19 mice.
- Analysis of tau expression, phosphorylation, and aggregation, as well as key target gene expression, in the absence of miR-132/212.
Main Results:
- No significant differences in survival, motor deficits, or body weight were observed in miR-132/212-deficient PS19 mice.
- Age-specific effects were noted on tau expression and phosphorylation, but not aggregation.
- Several previously identified miR-132/212 targets involved in tau regulation showed unexpected expression changes in the deficient mice.
Conclusions:
- The miR-132/212 cluster plays a complex role in tau physiology and pathology, with limited impact on overall disease progression in this model.
- Current transgenic tau mouse models may have limitations in fully recapitulating miRNA functions due to genetic background or binding site availability.
- Further strategies are needed to accurately elucidate the role of miRNAs in tauopathies and explore their therapeutic potential.
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