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Updated: Mar 12, 2026

Detection of MicroRNAs in Microglia by Real-time PCR in Normal CNS and During Neuroinflammation
Published on: July 23, 2012
Identification of the miRNA-mRNA regulatory network in multiple sclerosis
Qinghe Yang1, Wei Pan1, Liwei Qian2
1a Department of Neurology , The Second People's Hospital of Liaocheng , Shandong , China.
Objectives:
Multiple sclerosis (MS) is the common neurological disorders in young adults, which affects the central nervous system myelin or oligodendrocytes and results in disability. This study aimed to identify the key miRNAs in blood of patients in MS for better understanding the underlying mechanisms of MS.
Methods:
The publicly available Gene Expression Omnibus data-sets of MS were performed to integrated analysis. miRNA expression and mRNA expression were analyzed in whole blood samples from patients with MS and healthy controls by microarray analysis, Gene Ontology enrichment analyses, Kyoto Encyclopedia of Genes and Genomes pathway analyses, construction of miRNA-mRNA interaction network, and quantitative real-time polymerase reaction.
Results:
In patients with MS, microarray analysis identified 45 significantly dysregulated miRNAs and 621 significantly dysregulated mRNAs. 1165 negative correlation pairs of miRNA-mRNA were predicted and used to construct the interaction network. hsa-miR-30a, hsa-miR-93, hsa-miR-20b, and hsa-miR-20a occurred as central hubs regulating 87, 38, 34, and 34 genes. Dysregulated mRNAs were significantly enriched in ribosome, tuberculosis, and pathways in cancer. The verification of qRT-PCR displayed that hsa-miR-328-3p was significantly up-regulated in MS and its target genes RAC2 had the down-regulated tendency in MS. hsa-miR-20a-5p had the up-regulated tendency and the corresponding target gene EIF4EBP2 had the down-regulated tendency in MS compared to healthy controls.
Discussion:
hsa-miR-30a, hsa-miR-93, hsa-miR-20b, and hsa-miR-20a might be the key participant in the pathophysiology of MS involved in signaling pathways including ribosome, tuberculosis, and pathways in cancer.
Insights
Key microRNAs (miRNAs) like hsa-miR-30a and hsa-miR-20a are implicated in the complex mechanisms of multiple sclerosis (MS). This research identifies potential biomarkers for understanding MS pathophysiology.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Multiple sclerosis (MS) is a prevalent neurological disorder affecting young adults, characterized by damage to the central nervous system's myelin or oligodendrocytes, leading to disability.
- Understanding the molecular mechanisms underlying MS is crucial for developing effective diagnostic and therapeutic strategies.
Purpose of the Study:
- To identify key microRNAs (miRNAs) in the blood of multiple sclerosis patients.
- To elucidate the underlying molecular mechanisms and potential biomarkers involved in MS pathophysiology.
Main Methods:
- Integrated analysis of publicly available Gene Expression Omnibus datasets for MS.
- Microarray analysis of miRNA and mRNA expression in blood samples from MS patients and healthy controls.
- Gene Ontology and Kyoto Encyclopedia of Genes and Genomes pathway analyses, miRNA-mRNA interaction network construction, and quantitative real-time polymerase chain reaction (qRT-PCR) for validation.
Main Results:
- Identification of 45 significantly dysregulated miRNAs and 621 dysregulated mRNAs in MS patients.
- Prediction of 1165 miRNA-mRNA negative correlation pairs, with hsa-miR-30a, hsa-miR-93, hsa-miR-20b, and hsa-miR-20a identified as central regulatory hubs.
- Dysregulated mRNAs were significantly enriched in pathways related to ribosome, tuberculosis, and cancer. qRT-PCR confirmed the upregulation of hsa-miR-328-3p and downregulation of its target RAC2, and upregulation of hsa-miR-20a-5p with downregulation of EIF4EBP2 in MS patients.
Conclusions:
- hsa-miR-30a, hsa-miR-93, hsa-miR-20b, and hsa-miR-20a are likely key players in the pathophysiology of MS.
- These miRNAs may be involved in critical signaling pathways, including those related to ribosome, tuberculosis, and cancer, offering potential therapeutic targets.
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