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bioRxiv · 10.1101/2021.01.29.428891

Non cell-autonomous effect of astrocytes on cerebral cavernous malformations

Abstract

Cerebral cavernous malformations (CCMs) are common neurovascular lesions caused by loss-of-function mutations in one of three genes, including KRIT1 (CCM1), CCM2, and PDCD10 (CCM3), and generally regarded as an endothelial cell-autonomous disease. Here we report that proliferative astrocytes play a critical role in CCM pathogenesis by serving as a major source of VEGF during CCM lesion formation. An increase in astrocyte VEGF synthesis is driven by endothelial nitric oxide (NO) generated as a consequence of KLF2 and KLF4-dependent elevation of eNOS in CCM endothelium. The increased brain endothelial production of NO stabilizes HIF-1 in astrocytes, resulting in increased VEGF production and expression of a "hypoxic" program under normoxic conditions. We show that the upregulation of cyclooxygenase-2 (COX-2), a direct HIF-1 target gene and a known component of the hypoxic program, contributes to the development of CCM lesions because the administration of a COX-2 inhibitor significantly prevents progression of CCM lesions. Thus, non-cell-autonomous crosstalk between CCM endothelium and astrocytes propels vascular lesion development, and components of the hypoxic program represent potential therapeutic targets for CCMs.

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BibTeXRIS

Lopez-Ramirez, M. A. A., Soliman, S. I., Hale, P., Lai, C. C., Pham, A., Estrada, E. J., McCurdy, S., Girard, R., Verma, R., Moore, T., Lightle, R., Hobson, N., Shenkar, R., Poulsen, O., Haddad, G. G., Daneman, R., Gongol, B., Sun, H., Lagarrigue, F., Awad, I. A., Ginsberg, M.. 2021-02-01. Non cell-autonomous effect of astrocytes on cerebral cavernous malformations. https://doi.org/10.1101/2021.01.29.428891

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