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NOTCH3 is non-enzymatically fragmented in inherited cerebral small-vessel disease
Kelly Z Young1, Soo Jung Lee2, Xiaojie Zhang2
1Department of Neurology, University of Michigan, Ann Arbor, Michigan 48109-5622; Department of Molecular and Integrative Physiology, University of Michigan, Ann Arbor, Michigan 48109-5622.
Insights
Researchers found specific NOTCH3 protein fragmentation in CADASIL brains, linking genetic mutations to this post-translational alteration in arteries and potentially explaining stroke and dementia in this small-vessel disorder.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Cerebral Autosomal Dominant Arteriopathy with Subcortical Infarcts and Leukoencephalopathy (CADASIL) is a small-vessel brain disorder caused by NOTCH3 gene mutations.
- It leads to vascular smooth muscle cell degeneration, stroke, and dementia, but the exact structural changes in NOTCH3 are unknown.
Purpose of the Study:
- To investigate the structural changes in the NOTCH3 protein associated with CADASIL.
- To identify the specific site and mechanism of NOTCH3 protein fragmentation in CADASIL.
Main Methods:
- Electron microscopy (EM) to localize NOTCH3 fragments in CADASIL brain vasculature.
- Antibody-based mapping to pinpoint the cleavage site on the NOTCH3 protein.
- In vitro studies using recombinant NOTCH3 fragments to assess fragmentation under various conditions (pH, reducing agents, mutagenesis).
Main Results:
- Site-specific fragmentation of NOTCH3 protein was discovered in affected vessels of CADASIL brains.
- Fragmentation occurs at the N terminus (Asp80-Pro81 bond), separating the first EGF-like domain.
- Fragmentation products accumulate in the basement membrane and collagen fibers.
- Mutagenesis of Pro81 and altered cysteine residues affect fragmentation, with low pH and reducing conditions enhancing proteolysis.
Conclusions:
- CADASIL is linked to a specific post-translational alteration of the NOTCH3 protein, involving N-terminal fragmentation.
- This fragmentation may contribute to vascular degeneration in CADASIL.
- Further research is needed to understand the cellular impact of these pathological NOTCH3 fragments.
Abstract:
The small-vessel disorder cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy (CADASIL) arises from mutations in the human gene encoding NOTCH3 and results in vascular smooth muscle cell degeneration, stroke, and dementia. However, the structural changes in NOTCH3 involved in CADASIL etiology are unclear. Here, we discovered site-specific fragmentation of NOTCH3 protein in pathologically affected vessels of human CADASIL-affected brains. EM-based experiments to pinpoint NOTCH3 localization in these brains indicated accumulation of NOTCH3 fragmentation products in the basement membrane, collagen fibers, and granular osmiophilic material within the cerebrovasculature. Using antibodies generated against a disease-linked neo-epitope found in degenerating vascular medium of CADASIL brains, we mapped the site of fragmentation to the NOTCH3 N terminus at the peptide bond joining Asp80 and Pro81 Cleavage at this site was predicted to separate the first epidermal growth factor (EGF)-like domain from the remainder of the protein. We found that the cleavage product from this fragmentation event is released into the conditioned medium of cells expressing recombinant NOTCH3 fragments. Mutagenesis of Pro81 abolished the fragmentation, and low pH and reducing conditions enhanced NOTCH3 proteolysis. Furthermore, substitution of multiple cysteine residues of the NOTCH3 N terminus activated proteolytic release of the first EGF-like repeat, suggesting that the elimination of multiple disulfide bonds in NOTCH3 accelerates its fragmentation. These characteristics link the signature molecular genetic alterations present in individuals with CADASIL to a post-translational protein alteration in degenerating brain arteries. The cellular consequences of these pathological NOTCH3 fragments are an important area for future investigation.
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