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Sequestration of latent TGF-β binding protein 1 into CADASIL-related Notch3-ECD deposits
Insights
Latent TGF-β binding protein 1 (LTBP-1) aggregates with Notch3 extracellular domain (Notch3-ECD) in cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy (CADASIL) vessels. This suggests LTBP-1 is a novel component involved in CADASIL pathology.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathology
Background:
- Cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy (CADASIL) is a hereditary small vessel disease.
- CADASIL is caused by Notch3 mutations leading to Notch3 extracellular domain (Notch3-ECD) aggregation in brain vessels.
- Extracellular matrix (ECM) proteins may be dysregulated in CADASIL, impacting TGF-β signaling.
Purpose of the Study:
- To investigate the role of fibronectin, fibrillin-1, and latent TGF-β binding protein 1 (LTBP-1) in CADASIL pathology.
- To determine the relationship between these ECM proteins and Notch3-ECD deposits.
- To explore potential dysregulation of the TGF-β pathway in CADASIL.
Main Methods:
- Analysis of post-mortem brain tissue from CADASIL patients and control subjects.
- Immunohistochemistry to detect and localize ECM proteins and Notch3-ECD.
- In vitro experiments to assess interactions between LTBP-1 and Notch3-ECD.
Main Results:
- Fibronectin and fibrillin-1 were enriched in CADASIL vessels but did not co-localize with Notch3-ECD.
- LTBP-1 showed significant accumulation and co-localization with Notch3-ECD deposits.
- Increased TGF-β prodomain (LAP) levels were detected, and in vitro studies confirmed LTBP-1 interaction and co-aggregation with Notch3-ECD.
Conclusions:
- LTBP-1 is a novel component of Notch3-ECD deposits in CADASIL.
- LTBP-1 aggregation with Notch3-ECD likely contributes to the pathological processes in CADASIL.
- The study highlights potential dysregulation of the TGF-β pathway in CADASIL pathogenesis.
Introduction:
Cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy (CADASIL) represents the most common hereditary form of cerebral small vessel disease characterized by early-onset stroke and premature dementia. It is caused by mutations in the transmembrane receptor Notch3, which promote the aggregation and accumulation of the Notch3 extracellular domain (Notch3-ECD) within blood vessel walls. This process is believed to mediate the abnormal recruitment and dysregulation of additional factors including extracellular matrix (ECM) proteins resulting in brain vessel dysfunction. Based on recent evidence indicating a role for the transforming growth factor-β (TGF-β) pathway in sporadic and familial small vessel disease we studied fibronectin, fibrillin-1 and latent TGF-β binding protein 1 (LTBP-1), three ECM constituents involved in the regulation of TGF-β bioavailability, in post-mortem brain tissue from CADASIL patients and control subjects.
Results:
Fibronectin and fibrillin-1 were found to be enriched in CADASIL vessels without co-localizing with Notch3-ECD deposits, likely as a result of fibrotic processes secondary to aggregate formation. In contrast, LTBP-1 showed both an accumulation and a striking co-localization with Notch3-ECD deposits suggesting specific recruitment into aggregates. We also detected increased levels of the TGF-β prodomain (also known as latency-associated peptide, LAP) indicating dysregulation of the TGF-β pathway in CADASIL development. In vitro analyses revealed a direct interaction between LTBP-1 and Notch3-ECD and demonstrated a specific co-aggregation of LTBP-1 with mutant Notch3.
Conclusion:
We propose LTBP-1 as a novel component of Notch3-ECD deposits and suggest its involvement in pathological processes triggered by Notch3-ECD aggregation.
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