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MicroRNA alterations in neuropathologic cognitive disorders with an emphasis on dementia: Lessons from animal models
Gozal Bahlakeh1, Ali Gorji2,3,4, Hamid Soltani5
1Department of Anatomy, Faculty of Medicine, Tabriz University of Medical Sciences, Tabriz, Iran.
Abstract:
Cognitive dysfunction is a state of losing or having difficulties in remembering, learning, focusing, or making decisions that impact individual healthy life. Small single-stranded and nonprotein coding RNAs, microRNAs (miRNAs) participate actively in regulatory processes, incorporate cognitive signaling pathways, and intensely affect cognitive evolution. miRNAs exert their modification activities through translational or transcriptional processes. Reportedly, cognitive impairment and dementia are rising, especially in developing countries. Herein we provided a brief review of original studies addressing miRNA changes in the most common neurological diseases with a focus on dementia and Alzheimer's disease. It must be noted that an increase in the level of certain miRNAs but a decrease in other ones deteriorate cognitive performance. The current review revealed that induction of miR-214-3p, miR-302, miR-21, miR- 200b/c, miR-207, miR-132, miR-188-3p and 5p, and miR-873 improved cognitive impairment in various cognitive tasks. On the other hand, intentionally lowering the level of miR-34a, miR-124, miR-574, and miR-191a enhanced cognitive function and memory. Synaptic dysfunction is a core cause of cognitive dysfunction; miRNA-34, miRNA-34-c, miRNA-124, miRNA-188-5p, miRNA-210-5p, miRNA-335-3p, and miRNA-134 strongly influence synaptic-related mechanisms. The downregulation of miRNA-132 aggregates both amyloid and tau in tauopathy. Concerning the massive burden of neurological diseases worldwide, the future challenge is the translation of animal model knowledge into the detection of pathophysiological stages of neurocognitive disorders and designing efficient therapeutic strategies. While the delivery procedure of agomir or antagomir miRNAs into the brain is invasive and only applied in animal studies, finding a safe and specific delivery route is a priority.
Insights
MicroRNAs (miRNAs) play a crucial role in cognitive function and neurological diseases like dementia. Specific miRNA levels can improve or impair cognition, highlighting their therapeutic potential.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Cognitive dysfunction, characterized by memory and focus difficulties, significantly impacts quality of life.
- MicroRNAs (miRNAs), small noncoding RNAs, are key regulators in cognitive processes and neurological diseases.
- The rising prevalence of cognitive impairment and dementia worldwide necessitates understanding underlying molecular mechanisms.
Purpose of the Study:
- To review original studies on miRNA alterations in common neurological diseases, focusing on dementia and Alzheimer's disease.
- To elucidate the dual role of miRNAs in cognitive performance, where some enhance and others impair function.
- To explore the influence of specific miRNAs on synaptic dysfunction, a core cause of cognitive decline.
Main Methods:
- Literature review of original studies investigating miRNA changes in neurological disorders.
- Analysis of miRNA expression patterns associated with cognitive impairment and dementia.
- Examination of miRNA involvement in synaptic plasticity and neurodegenerative pathways.
Main Results:
- Specific miRNAs (e.g., miR-214-3p, miR-132) were found to improve cognitive function when induced.
- Lowering levels of certain miRNAs (e.g., miR-34a, miR-124) enhanced cognitive function and memory.
- Several miRNAs (e.g., miRNA-34, miRNA-134) were identified as critical regulators of synaptic mechanisms.
- Downregulation of miRNA-132 was linked to amyloid and tau aggregation in tauopathy.
Conclusions:
- MiRNAs are significant modulators of cognitive function and are implicated in the pathophysiology of dementia.
- Targeting specific miRNAs presents a promising therapeutic avenue for neurocognitive disorders.
- Further research is needed to translate findings from animal models to human diagnostics and therapeutics, particularly regarding safe brain delivery methods for miRNA-based interventions.
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