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Updated: Jun 19, 2026

Induction and Micro-CT Imaging of Cerebral Cavernous Malformations in Mouse Model
Published on: September 4, 2017
Neuroinflammation Plays a Critical Role in Cerebral Cavernous Malformation Disease
Catherine Chinhchu Lai1, Bliss Nelsen1, Eduardo Frias-Anaya1
1Department of Medicine (C.C.L., B.N., E.F.A., H.G.G., V.H., E.O., H.S., O.A.M., M.A.L.-R.), University of California, San Diego, La Jolla.
Insights
Cerebral cavernous malformations (CCMs) involve interactions between brain cells and blood vessels, leading to inflammation and blood clots. Targeting brain endothelial NF-κB may worsen CCMs and immunothrombosis.
Area of Science:
- Neuroscience
- Vascular Biology
- Immunology
Background:
- Cerebral cavernous malformations (CCMs) are prevalent neurovascular lesions with no available pharmacologic therapy.
- The progression of CCMs from quiescent to aggressive lesions remains poorly understood.
- CCMs are caused by mutations in KRIT1, CCM2, or PDCD10.
Purpose of the Study:
- To investigate the cellular interactions during CCM pathogenesis.
- To identify molecular mechanisms driving CCM lesion maturation and aggressiveness.
- To explore potential therapeutic targets for CCMs.
Main Methods:
- Genetic manipulation in mouse models (Pdcd10BECKO, Ikkbfl/fl).
- RNA-sequencing of brain endothelial cells and astrocytes.
- Histology, flow cytometry, and imaging techniques.
- Assessment of inflammasome activity using FAM-FLICA caspase-1 assay.
Main Results:
- CCM-induced astrocytes exhibit a neuroinflammatory gene signature.
- CCM endothelium upregulates genes involved in inflammatory cell recruitment and thrombus formation (NLRP3, IL1B).
- NLRP3 inhibition reduces inflammasome activity in CCM endothelial cells.
- Loss of endothelial NF-κB activity increases CCM lesion number and immunothrombosis.
Conclusions:
- Neuroinflammatory astrocytes and CCM endothelium crosstalk triggers leukocyte recruitment and immunothrombosis.
- Therapeutic inhibition of endothelial NF-κB may have detrimental effects on CCMs.
- Understanding these interactions is crucial for developing effective CCM treatments.
Background:
Cerebral cavernous malformations (CCMs) are neurovascular lesions caused by loss of function mutations in 1 of 3 genes, including KRIT1 (CCM1), CCM2, and PDCD10 (CCM3). CCMs affect ≈1 out of 200 children and adults, and no pharmacologic therapy is available. CCM lesion count, size, and aggressiveness vary widely among patients of similar ages with the same mutation or even within members of the same family. However, what determines the transition from quiescent lesions into mature and active (aggressive) CCM lesions is unknown.
Methods:
We use genetic, RNA-sequencing, histology, flow cytometry, and imaging techniques to report the interaction between CCM endothelium, astrocytes, leukocytes, microglia/macrophages, neutrophils (CCM endothelium, astrocytes, leukocytes, microglia/macrophages, neutrophils interaction) during the pathogenesis of CCMs in the brain tissue.
Results:
Expression profile of astrocytes in adult mouse brains using translated mRNAs obtained from the purification of EGFP (enhanced green fluorescent protein)-tagged ribosomes (Aldh1l1-EGFP/Rpl10a) in the presence or absence of CCM lesions (Slco1c1-iCreERT2;Pdcd10fl/fl; Pdcd10BECKO) identifies a novel gene signature for neuroinflammatory astrocytes. CCM-induced reactive astrocytes have a neuroinflammatory capacity by expressing genes involved in angiogenesis, chemotaxis, hypoxia signaling, and inflammation. RNA-sequencing analysis on RNA isolated from brain endothelial cells in chronic Pdcd10BECKO mice (CCM endothelium), identified crucial genes involved in recruiting inflammatory cells and thrombus formation through chemotaxis and coagulation pathways. In addition, CCM endothelium was associated with increased expression of Nlrp3 and Il1b. Pharmacological inhibition of NLRP3 (NOD [nucleotide-binding oligomerization domain]-' LRR [leucine-rich repeat]- and pyrin domain-containing protein 3) significantly decreased inflammasome activity as assessed by quantification of a fluorescent indicator of caspase-1 activity (FAM-FLICA [carboxyfluorescein-fluorochrome-labeled inhibitors of caspases] caspase-1) in brain endothelial cells from Pdcd10BECKO in chronic stage. Importantly, our results support the hypothesis of the crosstalk between astrocytes and CCM endothelium that can trigger recruitment of inflammatory cells arising from brain parenchyma (microglia) and the peripheral immune system (leukocytes) into mature active CCM lesions that propagate lesion growth, immunothrombosis, and bleedings. Unexpectedly, partial or total loss of brain endothelial NF-κB (nuclear factor κB) activity (using Ikkbfl/fl mice) in chronic Pdcd10BECKO mice does not prevent lesion genesis or neuroinflammation. Instead, this resulted in a trend increase in the number of lesions and immunothrombosis, suggesting that therapeutic approaches designed to target inflammation through endothelial NF-κB inhibition may contribute to detrimental side effects.
Conclusions:
Our study reveals previously unknown links between neuroinflammatory astrocytes and inflamed CCM endothelium as contributors that trigger leukocyte recruitment and precipitate immunothrombosis in CCM lesions. However, therapeutic approaches targeting brain endothelial NF-κB activity may contribute to detrimental side effects.
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