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Dementia-like pathology in type-2 diabetes: A novel microRNA mechanism
Anuradha Kalani1, Pankaj Chaturvedi1, Claudio Maldonado2
1Department of Physiology, School of Medicine, University of Louisville, Louisville, KY 40202, USA.
Abstract:
Although type-2 diabetes (T2D) has been reported to increase the risk of cognitive dysfunction and dementia, the underlying mechanisms remain unclear. Dementia-like pathology is attributed to the accumulation of cellular prion protein (PrPc) which plays a role in cognitive dysfunction. However, its involvement and regulation in diabetic dementia-like pathology is not well understood. Using T2D db/db (leptin receptor knockout) mice subjected to object recognition and Y-maze behavioral tests, we determined that short-term memory was compromised and that the mice displayed abrupt spontaneous behaviour compared to db/m control mice. MicroRNA analysis using qRT2-PCR array demonstrated a significant reduction in the transcript expression of microRNA-146a (miR-146a) in the brain of T2D db/db mice as compared to db/m controls. The sequence matching tools validated the binding of miR-146a to a conserved domain of the PrPc gene. Administration of mouse brain endothelial cell-derived exosomes (BECDEs) loaded with miR-146a into the brain's ventricle of T2D db/db mice attenuated brain PrPc levels and restored short-term memory function though not significant. Also, we observed hyperphosphorylation of tau through decreased expression of glycogen synthase kinase-3 in T2D db/db brains that regulates microtubule organization and memory function. We conclude that underexpression of miR-146a upregulates PrPc production in T2D db/db mice and the delivery of BECDEs loaded with a miR-146a can down regulate PrPc levels and restore short term memory function up to a certain extent.
Insights
Type-2 diabetes (T2D) impairs short-term memory by reducing microRNA-146a (miR-146a), leading to increased cellular prion protein (PrPc). Exosomes delivering miR-146a show potential in restoring memory function in T2D models.
Area of Science:
- Neuroscience
- Endocrinology
- Molecular Biology
Background:
- Type-2 diabetes (T2D) is linked to cognitive decline and dementia.
- Cellular prion protein (PrPc) accumulation is implicated in cognitive dysfunction.
- The role of PrPc regulation in diabetic cognitive impairment is not fully understood.
Purpose of the Study:
- To investigate the mechanisms underlying cognitive dysfunction in T2D.
- To examine the expression of microRNA-146a (miR-146a) and its target PrPc in a T2D mouse model.
- To evaluate the therapeutic potential of miR-146a-loaded exosomes in T2D-associated cognitive deficits.
Main Methods:
- Utilized T2D db/db mice and control db/m mice.
- Assessed cognitive function using object recognition and Y-maze tests.
- Analyzed brain microRNA expression via qRT2-PCR array and PrPc levels.
- Administered brain endothelial cell-derived exosomes (BECDEs) loaded with miR-146a.
Main Results:
- T2D db/db mice exhibited impaired short-term memory and altered behavior.
- Significant downregulation of miR-146a was observed in the brains of T2D mice.
- miR-146a was predicted to bind to the PrPc gene.
- Exosome-mediated delivery of miR-146a partially attenuated PrPc levels and improved memory function.
- Hyperphosphorylation of tau was noted, linked to reduced glycogen synthase kinase-3 expression.
Conclusions:
- Underexpression of miR-146a contributes to elevated PrPc in T2D.
- BECDEs loaded with miR-146a offer a potential strategy to downregulate PrPc and ameliorate T2D-related memory deficits.
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