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Multi-omics research on moyamoya disease: current perspectives and future directions
Qingbao Guo1, Na Li2
1Department of Neurosurgery, XI'AN NO.9 HOSPITAL, 151 East Section of South Second Ring Road, Xian, 710054, Shaanxi, China. guo18291908296@163.com.
Abstract:
Moyamoya disease (MMD) is a rare, progressive cerebrovascular disorder characterized by internal carotid artery stenosis and compensatory vascular network formation. While its pathogenesis remains unclear, multi-omics approaches provide crucial molecular insights. Genomic studies identify significant associations with the RNF213 p.R4810K variant and other susceptibility loci like HLA-DQA2 and GUCY1A3. Transcriptomics reveals dysregulation in extracellular matrix organization and mitochondrial oxidative phosphorylation, with specific markers such as AQP4 and non-coding RNAs (e.g., miR-107). Proteomic analyses highlight alterations in proteins including VEGF, apolipoproteins (APOC1, APOD), and ferroptosis-related pathways. Metabolomics identifies diagnostic amino acid markers (L-lysine, L-glutamate) and altered lysophosphatidylcholine (LPC 16:1) levels. Epigenomics implicates DNA methylation changes in genes like SOX6 and KCNMA1. Integrated multi-omics facilitates the development of multifaceted treatments, including revascularization surgery, targeted molecular therapies, and personalized interventions based on individual omics profiles, advancing precision medicine for MMD. This article outlines the omics techniques' application progress in MMD, discussing their pros and cons in disease analysis, prevention, and treatment, aiming to guide future research and inform clinical decisions.
Insights
Multi-omics reveals key genetic and molecular markers for Moyamoya disease (MMD). This approach aids in understanding MMD pathogenesis and developing personalized treatments for better patient outcomes.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Moyamoya disease (MMD) is a rare, progressive cerebrovascular disorder.
- Its exact pathogenesis is not fully understood, necessitating advanced molecular investigation.
Purpose of the Study:
- To explore the application and progress of multi-omics techniques in Moyamoya disease research.
- To discuss the advantages and disadvantages of omics approaches in MMD analysis, prevention, and treatment.
Main Methods:
- Genomic studies identifying susceptibility loci (e.g., RNF213 p.R4810K).
- Transcriptomic, proteomic, metabolomic, and epigenomic analyses to identify molecular markers.
- Integration of multi-omics data for a comprehensive understanding.
Main Results:
- Significant genetic associations (RNF213, HLA-DQA2, GUCY1A3) and molecular markers (AQP4, miR-107, VEGF, amino acids, LPC 16:1).
- Dysregulation in extracellular matrix, oxidative phosphorylation, and ferroptosis pathways identified.
- Epigenomic changes in SOX6 and KCNMA1 linked to MMD.
Conclusions:
- Multi-omics approaches provide crucial molecular insights into MMD pathogenesis.
- These findings support the development of precision medicine strategies, including targeted therapies and personalized interventions.
- Omics data can guide future research and clinical decision-making for MMD.
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