Expression of amyloid-associated miRNAs in both the forebrain cortex and hippocampus of middle-aged rat
1Department of Pharmacology, Harbin Medical University (the State-Province Key Laboratories of Biomedicine-Pharmaceutics of China), Harbin, Heilongjiang Province, China.
Background:
Aging is associated with the gradual cognitive decline and shows the typical senile plaque formation in the brain, which results from the aggregation of beta amyloid (Aβ) peptide following the abnormal proteolytic processing of amyloid precursor protein (APP) by β-secretase (BACE1) and γ-secretase. Accumulating evidence indicates that several microRNAs (miRNAs) are involved in the Alzheimer's disease (AD) by regulating the expression of APP and BACE1 proteins. However, the cognitive ability and the expression profile of the APP- and BACE1-associated miRNAs in the middle-aged population are largely unknown.
Methods:
The learning and memory ability in rats were determined by Morris Water Maze test. The protein levels of APP and BACE1 were detected by western blotting. The quantitative polymerase chain reaction was used to identify the miRNAs levels in forebrain cortex and the hippocampus.
Results:
Middle-aged rats have declined learning ability without changes in the memory ability, and increased APP and BACE1 protein expression in the forebrain cortex. Computational analysis using Targetscan and Pictar databases reveals that totally 4 predicted miRNAs have conserved binding site with APP, namely miR-106b, -17-5p, -153, -101. All of them showed decreased expression in both the forebrain cortex and hippocampus. Among the 10 predicted miRNAs targeting BACE1, different expression profiles were identified in the forebrain cortex (decreased: miR-9, -19a, -135a, -15b, -16, -195, -29c, -214; increased: miR-124; no change: miR-141) and the hippocampus (decreased: miR-9, -15b, -16, -195, -29c, -124; increased: miR-19a, -135a, -214, -141) in the middle-aged rats compared with the young rats.
Conclusion:
Our results provided the first evidence that middle-aged rats have begun displaying cognitive disability with abnormal expression of APP- and BACE1-related miRNAs in the hippocampus and forebrain cortex.
Insights
Middle-aged rats show early cognitive decline and altered microRNA (miRNA) expression linked to Alzheimer's disease proteins amyloid precursor protein (APP) and beta-secretase 1 (BACE1). These findings highlight potential early molecular changes in aging brains.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Aging is linked to cognitive decline and Alzheimer's disease (AD) pathology, characterized by amyloid plaques.
- Amyloid precursor protein (APP) and beta-secretase 1 (BACE1) are key in amyloid-beta (Aβ) formation, a hallmark of AD.
- MicroRNAs (miRNAs) are implicated in AD pathogenesis by regulating APP and BACE1, but their role in middle-aged cognitive function is unclear.
Purpose of the Study:
- To investigate cognitive abilities in middle-aged rats.
- To examine the expression levels of APP and BACE1 proteins in the brains of middle-aged rats.
- To identify the expression profiles of miRNAs targeting APP and BACE1 in middle-aged rats.
Main Methods:
- Morris Water Maze test for assessing learning and memory.
- Western blotting to quantify APP and BACE1 protein levels.
- Quantitative polymerase chain reaction (qPCR) to determine miRNA expression in the forebrain cortex and hippocampus.
Main Results:
- Middle-aged rats exhibited impaired learning but retained memory abilities.
- Increased protein levels of APP and BACE1 were observed in the forebrain cortex.
- Several miRNAs targeting APP and BACE1 showed altered expression in the hippocampus and forebrain cortex of middle-aged rats compared to young rats.
Conclusions:
- Middle-aged rats display initial signs of cognitive impairment.
- Abnormal expression of APP- and BACE1-related miRNAs occurs in the hippocampus and forebrain cortex during middle age.
- These findings suggest early molecular alterations associated with aging and cognitive decline.
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