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Updated: Jun 27, 2026

Mapping Alzheimer's Disease Variants to Their Target Genes Using Computational Analysis of Chromatin Configuration
Published on: January 9, 2020
Differential microRNA expression analyses across two brain regions in Alzheimer's disease
Valerija Dobricic1, Marcel Schilling1, Jessica Schulz1
1Lübeck Interdisciplinary Platform for Genome Analytics (LIGA), University of Lübeck, Lübeck, Germany.
Abstract:
Dysregulation of microRNAs (miRNAs) is involved in the pathogenesis of neurodegenerative diseases, including Alzheimer's disease (AD). Hitherto, sample sizes from differential miRNA expression studies in AD are exceedingly small aggravating any biological inference. To overcome this limitation, we investigated six candidate miRNAs in a large collection of brain samples. Brain tissue was derived from superior temporal gyrus (STG) and entorhinal cortex (EC) from 99 AD patients and 91 controls. MiRNA expression was examined by qPCR (STG) or small RNA sequencing (EC). Brain region-dependent differential miRNA expression was investigated in a transgenic AD mouse model using qPCR and FISH. Total RNA sequencing was used to assess differential expression of miRNA target genes. MiR-129-5p, miR-132-5p, and miR-138-5p were significantly downregulated in AD vs. controls both in STG and EC, while miR-125b-5p and miR-501-3p showed no evidence for differential expression in this dataset. In addition, miR-195-5p was significantly upregulated in EC but not STG in AD patients. The brain region-specific pattern of miR-195-5p expression was corroborated in vivo in transgenic AD mice. Total RNA sequencing identified several novel and functionally interesting target genes of these miRNAs involved in synaptic transmission (GABRB1), the immune-system response (HCFC2) or AD-associated differential methylation (SLC16A3). Using two different methods (qPCR and small RNA-seq) in two separate brain regions in 190 individuals we more than doubled the available sample size for most miRNAs tested. Differential gene expression analyses confirm the likely involvement of miR-129-5p, miR-132-5p, miR-138-5p, and miR-195-5p in AD pathogenesis and highlight several novel potentially relevant target mRNAs.
Insights
MicroRNA (miRNA) dysregulation contributes to Alzheimer's disease (AD) pathogenesis. This study identified specific downregulated and upregulated miRNAs in AD brain tissue, revealing novel therapeutic targets and confirming miRNA involvement in AD progression.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- MicroRNA (miRNA) dysregulation is implicated in neurodegenerative diseases like Alzheimer's disease (AD).
- Previous AD miRNA expression studies suffered from small sample sizes, limiting biological inference.
- Investigating miRNAs in larger cohorts is crucial for understanding AD pathogenesis.
Purpose of the Study:
- To investigate differential expression of six candidate miRNAs in Alzheimer's disease (AD) brain samples.
- To identify brain region-specific miRNA expression patterns in AD.
- To explore novel miRNA target genes involved in AD pathogenesis.
Main Methods:
- Examined miRNA expression in superior temporal gyrus (STG) and entorhinal cortex (EC) from 99 AD patients and 91 controls using qPCR and small RNA sequencing.
- Investigated brain region-dependent miRNA expression in a transgenic AD mouse model.
- Utilized total RNA sequencing to identify differential expression of miRNA target genes.
Main Results:
- MiR-129-5p, miR-132-5p, and miR-138-5p were significantly downregulated in AD brains (STG and EC).
- MiR-195-5p was significantly upregulated in the EC but not STG of AD patients, with findings corroborated in an AD mouse model.
- Identified novel target genes (e.g., GABRB1, HCFC2, SLC16A3) for dysregulated miRNAs, implicating them in synaptic transmission, immune response, and AD-associated methylation.
Conclusions:
- The study significantly increased sample size for miRNA expression analysis in AD, providing robust findings.
- Differential expression of miR-129-5p, miR-132-5p, miR-138-5p, and miR-195-5p supports their involvement in AD pathogenesis.
- Novel target mRNAs identified offer new avenues for understanding AD mechanisms and developing therapeutic strategies.
Related Concept Videos
Alzheimer Disease l: Introduction
Alzheimer Disease ll: Pathophysiology

