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Contribution of "Omic" Studies to the Understanding of Cadasil. A Systematic Review
Elena Muiño1, Israel Fernández-Cadenas1, Adrià Arboix2
1Stroke Pharmacogenomics and Genetics Group, Institut de Recerca de l'Hospital de la Santa Creu i Sant Pau, 08041 Barcelona, Spain.
Insights
Omics sciences advance understanding of Cerebral Autosomal Dominant Arteriopathy with Subcortical Infarcts and Leukoencephalopathy (CADASIL). These studies reveal key molecular pathways and potential therapeutic targets for this genetic small vessel disease.
Area of Science:
- Genetics
- Neurology
- Molecular Biology
Background:
- Cerebral Autosomal Dominant Arteriopathy with Subcortical Infarcts and Leukoencephalopathy (CADASIL) is a genetic small vessel disease.
- It is caused by NOTCH3 mutations leading to protein misfolding and aggregation.
- Symptoms include migraines, psychiatric disorders, strokes, and dementia.
Purpose of the Study:
- To review the progress in understanding CADASIL using omics sciences.
- To identify molecular mechanisms and potential therapeutic targets.
Main Methods:
- Systematic literature search of PubMed for CADASIL studies utilizing omics techniques.
- Inclusion of 18 reviewed articles focusing specifically on CADASIL.
- Exclusion of studies on related but distinct phenotypes like isolated migraines or leukodystrophies.
Main Results:
- Omics studies identified altered molecules in CADASIL related to cell adhesion, cytoskeleton, extracellular matrix, protein misfolding control, autophagy, angiogenesis, and TGFβ signaling.
- The role of various NOTCH3 mutations in disease severity or risk requires further investigation.
- Proteomics and transcriptomics data highlight key biological pathways affected in CADASIL.
Conclusions:
- Omics technologies have significantly improved the understanding of CADASIL's underlying biological mechanisms.
- These findings are crucial for identifying novel therapeutic targets for CADASIL treatment.
- Further research is needed to clarify the impact of different NOTCH3 mutations.
Abstract:
CADASIL (Cerebral Autosomal Dominant Arteriopathy with Subcortical Infarcts and Leukoencephalopathy) is a small vessel disease caused by mutations in NOTCH3 that lead to an odd number of cysteines in the epidermal growth factor (EGF)-like repeat domain, causing protein misfolding and aggregation. The main symptoms are migraines, psychiatric disorders, recurrent strokes, and dementia. Omic technologies allow the massive study of different molecules for understanding diseases in a non-biased manner or even for discovering targets and their possible treatments. We analyzed the progress in understanding CADASIL that has been made possible by omics sciences. For this purpose, we included studies that focused on CADASIL and used omics techniques, searching bibliographic resources, such as PubMed. We excluded studies with other phenotypes, such as migraine or leukodystrophies. A total of 18 articles were reviewed. Due to the high prevalence of NOTCH3 mutations considered pathogenic to date in genomic repositories, one can ask whether all of them produce CADASIL, different degrees of the disease, or whether they are just a risk factor for small vessel disease. Besides, proteomics and transcriptomics studies found that the molecules that are significantly altered in CADASIL are mainly related to cell adhesion, the cytoskeleton or extracellular matrix components, misfolding control, autophagia, angiogenesis, or the transforming growth factor β (TGFβ) signaling pathway. The omics studies performed on CADASIL have been useful for understanding the biological mechanisms and could be key factors for finding potential drug targets.
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