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mPR-Specific Actions Influence Maintenance of the Blood-Brain Barrier (BBB)
Johnathan Abou-Fadel1, Xiaoting Jiang1, Akhil Padarti1
1Department of Molecular and Translational Medicine (MTM), Texas Tech University Health Science Center El Paso, El Paso, TX 79905, USA.
Abstract:
Cerebral cavernous malformations (CCMs) are characterized by abnormally dilated intracranial microvascular sinusoids that result in increased susceptibility to hemorrhagic stroke. It has been demonstrated that three CCM proteins (CCM1, CCM2, and CCM3) form the CCM signaling complex (CSC) to mediate angiogenic signaling. Disruption of the CSC will result in hemorrhagic CCMs, a consequence of compromised blood-brain barrier (BBB) integrity. Due to their characteristically incomplete penetrance, the majority of CCM mutation carriers (presumed CCM patients) are largely asymptomatic, but when symptoms occur, the disease has typically reached a clinical stage of focal hemorrhage with irreversible brain damage. We recently reported that the CSC couples both classic (nuclear; nPRs) and nonclassic (membrane; mPRs) progesterone (PRG)-receptors-mediated signaling within the CSC-mPRs-PRG (CmP) signaling network in nPR(-) breast cancer cells. In this report, we demonstrate that depletion of any of the three CCM genes or treatment with mPR-specific PRG actions (PRG/mifepristone) results in the disruption of the CmP signaling network, leading to increased permeability in the nPR(-) endothelial cells (ECs) monolayer in vitro. Finally, utilizing our in vivo hemizygous Ccm mutant mice models, we demonstrate that depletion of any of the three CCM genes, in combination with mPR-specific PRG actions, is also capable of leading to defective homeostasis of PRG in vivo and subsequent BBB disruption, allowing us to identify a specific panel of etiological blood biomarkers associated with BBB disruption. To our knowledge, this is the first report detailing the etiology to predict the occurrence of a disrupted BBB, an indication of early hemorrhagic events.
Insights
Cerebral cavernous malformations (CCMs) involve disrupted signaling complexes, leading to blood-brain barrier (BBB) breakdown. New research identifies progesterone receptor actions as a key factor in CCM-related BBB disruption, offering early detection biomarkers.
Area of Science:
- Neuroscience
- Vascular Biology
- Genetics
Background:
- Cerebral cavernous malformations (CCMs) are vascular defects increasing hemorrhagic stroke risk.
- CCMs arise from disrupted CCM signaling complexes (CSCs), compromising blood-brain barrier (BBB) integrity.
- Current understanding lacks early indicators for CCM-related BBB dysfunction.
Purpose of the Study:
- To investigate the role of progesterone receptor (PRG) signaling in CCM pathogenesis.
- To elucidate the interplay between CCM proteins, PRG signaling, and BBB integrity.
- To identify biomarkers for early detection of BBB disruption in CCMs.
Main Methods:
- Investigated CCM gene depletion and mPR-specific PRG actions in vitro (endothelial cells).
- Utilized hemizygous Ccm mutant mice models for in vivo studies.
- Analyzed blood biomarkers associated with BBB disruption.
Main Results:
- Depletion of CCM genes or mPR-specific PRG actions disrupted the CSC-mPRs-PRG (CmP) network.
- This disruption increased endothelial cell permeability in vitro.
- In vivo, CCM gene depletion combined with mPR-specific PRG actions caused BBB disruption and identified predictive blood biomarkers.
Conclusions:
- The study reveals a novel CmP signaling network linking CCMs, PRG signaling, and BBB integrity.
- This provides a mechanistic understanding of CCM-related BBB breakdown.
- Identified potential etiological biomarkers for predicting early hemorrhagic events in CCM patients.
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