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Updated: Aug 26, 2026

Induction and Micro-CT Imaging of Cerebral Cavernous Malformations in Mouse Model
Published on: September 4, 2017
Ccm1 is required for arterial morphogenesis: implications for the etiology of human cavernous malformations
Kevin J Whitehead1, Nicholas W Plummer, Jennifer A Adams
1Program in Human Molecular Biology and Genetics, University of Utah, Building 533 Room 4220, 15 N 2030 East, Salt Lake City, Utah 84112, USA.
Insights
Cerebral cavernous malformations, linked to CCM1 mutations, stem from primary vascular defects, not neural issues. This study in mice reveals CCM1
Area of Science:
- Developmental biology
- Vascular biology
- Genetics
Background:
- Hemorrhagic stroke in children is often linked to intracranial vascular malformations.
- Cerebral cavernous malformations (CCMs) are characterized by fragile, thin-walled vessels prone to bleeding.
- Loss-of-function mutations in CCM1 are associated with CCM development, with adult expression suggesting potential neural origins.
Purpose of the Study:
- To investigate the role of CCM1 in embryonic vascular development.
- To determine whether CCMs arise from primary vascular or neural defects.
Main Methods:
- Generation and analysis of Ccm1-deficient mouse embryos.
- Assessment of vascular and neural morphology and gene expression.
- Comparison of murine findings with human CCM patient data.
Main Results:
- Ccm1 is essential for early embryonic vascular development, with homozygous mutants exhibiting embryonic lethality.
- Defects are exclusively vascular, including dilated brain precursor vessels and aortic abnormalities.
- Neural development remains normal, indicating vascular defects are primary.
- Downregulation of artery-specific markers, including Notch pathway genes, observed in mutant embryos and human CCM patients.
Conclusions:
- CCM1 deficiency causes primary vascular defects during embryogenesis.
- CCMs likely result from intrinsic vascular pathologies rather than neural abnormalities.
- The Notch signaling pathway is implicated in CCM pathogenesis.
Abstract:
Hemorrhagic stroke is a significant cause of morbidity and mortality in children, and is frequently associated with intracranial vascular malformations. One prevalent form of these vascular malformations, cerebral cavernous malformation, is characterized by thin-walled vascular cavities that hemorrhage and has been linked to loss-of-function mutations in CCM1. The neural and epithelial expression of CCM1 in adulthood suggests that cavernous malformations may be the result of primary neural defects. In this study, we generated mice lacking Ccm1 and demonstrate that Ccm1 is ubiquitously expressed early in embryogenesis and is essential for vascular development. Homozygous mutant embryos die in mid-gestation and the first detectable defects are exclusively vascular in nature. The precursor vessels of the brain become dilated starting at E8.5, reminiscent of the intracranial vascular defects observed in the human disease. In addition, there is marked enlargement and increased endothelial proliferation of the caudal dorsal aorta, as well as variable narrowing of the branchial arch arteries and proximal dorsal aorta. These vascular defects are not secondary to primary neural defects, as neural morphology and marker expression are normal even subsequent to the onset of vascular pathology. The defects in the vascular structure of embryos lacking Ccm1 are associated with early downregulation of artery-specific markers, including the Efnb2- and Notch-related genes. Finally, consistent with the murine data, we found that there is an analogous reduction in Notch gene expression in arterioles from humans with mutations in CCM1. Our studies suggest that cavernous malformations result from primary vascular rather than neural defects.
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