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Updated: Feb 11, 2026

Purification of Mouse Brain Vessels
Published on: November 10, 2015
CADASIL brain vessels show a HTRA1 loss-of-function profile
Andreas Zellner1, Eva Scharrer1, Thomas Arzberger2,3
1Institute for Stroke and Dementia Research, Klinikum der Universität München, Ludwig-Maximilians-Universität München, Feodor-Lynen-Straße 17, 81377, Munich, Germany.
Insights
Cerebral small vessel disease (SVD) research reveals high-temperature requirement protein A1 (HTRA1) loss contributes to CADASIL. This finding links molecular mechanisms of CADASIL and CARASIL, two SVD forms.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy (CADASIL) and CARASIL are key genetic models for cerebral small vessel disease (SVD).
- CADASIL involves Notch3 extracellular domain aggregation and protein deposits in cerebral vessels.
Purpose of the Study:
- To identify key molecules and pathways in CADASIL pathology.
- To investigate the role of high-temperature requirement protein A1 (HTRA1) in CADASIL.
Main Methods:
- Quantitative proteomic analysis of brain vessels from CADASIL patients and controls.
- Proteomic comparison with HTRA1 knockout mouse models.
- In vitro proteolysis assays to identify HTRA1 substrates.
Main Results:
- Identified 95 significantly increased proteins in CADASIL brain vessels.
- Found HTRA1 enriched and colocalized with Notch3 deposits in CADASIL vessels.
- Demonstrated overlap between CADASIL and HTRA1 knockout mouse proteomes, identifying novel HTRA1 substrates.
Conclusions:
- Loss of HTRA1 function is a critical factor in CADASIL pathology.
- This study links the molecular mechanisms of CADASIL and CARASIL, two forms of SVD.
Abstract:
Cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy (CADASIL) and a phenotypically similar recessive condition (CARASIL) have emerged as important genetic model diseases for studying the molecular pathomechanisms of cerebral small vessel disease (SVD). CADASIL, the most frequent and intensely explored monogenic SVD, is characterized by a severe pathology in the cerebral vasculature including the mutation-induced aggregation of the Notch3 extracellular domain (Notch3ECD) and the formation of protein deposits of insufficiently determined composition in vessel walls. To identify key molecules and pathways involved in this process, we quantitatively determined the brain vessel proteome from CADASIL patient and control autopsy samples (n = 6 for each group), obtaining 95 proteins with significantly increased abundance. Intriguingly, high-temperature requirement protein A1 (HTRA1), the extracellular protease mutated in CARASIL, was found to be strongly enriched (4.9-fold, p = 1.6 × 10-3) and to colocalize with Notch3ECD deposits in patient vessels suggesting a sequestration process. Furthermore, the presence of increased levels of several HTRA1 substrates in the CADASIL proteome was compatible with their reduced degradation as consequence of a loss of HTRA1 activity. Indeed, a comparison with the brain vessel proteome of HTRA1 knockout mice (n = 5) revealed a highly significant overlap of 18 enriched proteins (p = 2.2 × 10-16), primarily representing secreted and extracellular matrix factors. Several of them were shown to be processed by HTRA1 in an in vitro proteolysis assay identifying them as novel substrates. Our study provides evidence for a loss of HTRA1 function as a critical step in the development of CADASIL pathology linking the molecular mechanisms of two distinct SVD forms.
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