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The 3-hydroxy-3-methylglutaryl-CoA reductase (HMGCR) pathway regulates developmental cerebral-vascular stability via
Shahram Eisa-Beygi1, Gary Hatch, Sandra Noble
1Department of Biology, Centre for Advanced Research in Environmental Genomics (CAREG), University of Ottawa, Ottawa, ON, Canada.
Insights
Inhibiting the HMGCR pathway in zebrafish causes brain hemorrhages by disrupting vascular stability. Supplementing with GGPP or targeting GGTase I rescues these defects, revealing a metabolic role in vessel development.
Area of Science:
- Neuroscience
- Metabolic pathways
- Vascular biology
Background:
- Spontaneous intracranial hemorrhage is a severe stroke type with unknown causes.
- Cerebral cavernous malformations (CCMs) are linked to vascular instability.
- The 3-hydroxy-3-methylglutaryl-CoA reductase (HMGCR) pathway is implicated in cranial vessel stability.
Purpose of the Study:
- To investigate the role of the HMGCR pathway in developmental cerebral-vascular stability using zebrafish.
- To elucidate the downstream mechanisms linking HMGCR to vascular integrity.
Main Methods:
- Pharmacological and genetic inhibition of the HMGCR pathway in zebrafish embryos.
- Exogenous supplementation with geranylgeranyl pyrophosphate (GGPP).
- Morpholino-induced depletion of geranylgeranyltransferase I (GGTase I) and analysis of cdc42 expression.
Main Results:
- HMGCR inhibition led to progressive cerebral blood vessel dilation and rupture, mimicking CCM-like lesions.
- GGPP supplementation rescued the hemorrhages, indicating its crucial role.
- GGTase I depletion mimicked the hemorrhages, and reduced cdc42 expression was observed in affected embryos.
Conclusions:
- The HMGCR metabolic pathway is essential for maintaining developmental cerebral-vascular stability.
- Protein geranylgeranylation, downstream of HMGCR, is critical for stabilizing nascent cranial vessels.
- This study highlights a metabolic contribution to vascular development and hemorrhage prevention.
Abstract:
Spontaneous intracranial hemorrhage is a debilitating form of stroke, often leading to death or permanent cognitive impairment. Many of the causative genes and the underlying mechanisms implicated in developmental cerebral-vascular malformations are unknown. Recent in vitro and in vivo studies in mice have shown inhibition of the 3-hydroxy-3-methylglutaryl-CoA reductase (HMGCR) pathway to be effective in stabilizing cranial vessels. Using a combination of pharmacological and genetic approaches to specifically inhibit the HMGCR pathway in zebrafish (Danio rerio), we demonstrate a requirement for this metabolic pathway in developmental vascular stability. Here we report that inhibition of HMGCR function perturbs cerebral-vascular stability, resulting in progressive dilation of blood vessels, followed by vessel rupture, mimicking cerebral cavernous malformation (CCM)-like lesions in humans and murine models. The hemorrhages in the brain are rescued by prior exogenous supplementation with geranylgeranyl pyrophosphate (GGPP), a 20-carbon metabolite of the HMGCR pathway, required for the membrane localization and activation of Rho GTPases. Consistent with this observation, morpholino-induced depletion of the β-subunit of geranylgeranyltransferase I (GGTase I), an enzyme that facilitates the post-translational transfer of the GGPP moiety to the C-terminus of Rho family of GTPases, mimics the cerebral hemorrhaging induced by the pharmacological and genetic ablation of HMGCR. In embryos with cerebral hemorrhage, the endothelial-specific expression of cdc42, a Rho GTPase involved in the regulation of vascular permeability, was significantly reduced. Taken together, our data reveal a metabolic contribution to the stabilization of nascent cranial vessels, requiring protein geranylgeranylation acting downstream of the HMGCR pathway.
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