circRNAs as Epigenetic Regulators of Integrity in Blood–Brain Barrier Architecture: Mechanisms and Therapeutic Strategies in Multiple Sclerosis

Author:

D’Aversa Elisabetta1ORCID,Salvatori Francesca1ORCID,Vaccarezza Mauro2ORCID,Antonica Bianca1ORCID,Grisafi Miriana1ORCID,Singh Ajay Vikram3ORCID,Secchiero Paola1,Zauli Giorgio4ORCID,Tisato Veronica156ORCID,Gemmati Donato157ORCID

Affiliation:

1. Department of Translational Medicine, University of Ferrara, 44121 Ferrara, Italy

2. Curtin Medical School & Curtin Health Innovation Research Institute (CHIRI), Faculty of Health Sciences, Curtin University, Bentley, WA 6102, Australia

3. Department of Chemical and Product Safety, German Federal Institute for Risk Assessment (BfR), 10589 Berlin, Germany

4. Research Department, King Khaled Eye Specialistic Hospital, Riyadh 11462, Saudi Arabia

5. University Strategic Centre for Studies on Gender Medicine, University of Ferrara, 44121 Ferrara, Italy

6. LTTA Centre, University of Ferrara, 44121 Ferrara, Italy

7. Centre Haemostasis & Thrombosis, University of Ferrara, 44121 Ferrara, Italy

Abstract

Multiple sclerosis (MS) is a chronic inflammatory neurodegenerative disease leading to progressive demyelination and neuronal loss, with extensive neurological symptoms. As one of the most widespread neurodegenerative disorders, with an age onset of about 30 years, it turns out to be a socio-health and economic issue, thus necessitating therapeutic interventions currently unavailable. Loss of integrity in the blood–brain barrier (BBB) is one of the distinct MS hallmarks. Brain homeostasis is ensured by an endothelial cell-based monolayer at the interface between the central nervous system (CNS) and systemic bloodstream, acting as a selective barrier. MS results in enhanced barrier permeability, mainly due to the breakdown of tight (TJs) and adherens junctions (AJs) between endothelial cells. Specifically, proinflammatory mediator release causes failure in cytoplasmic exposure of junctions, resulting in compromised BBB integrity that enables blood cells to cross the barrier, establishing iron deposition and neuronal impairment. Cells with a compromised cytoskeletal protein network, fiber reorganization, and discontinuous junction structure can occur, resulting in BBB dysfunction. Recent investigations on spatial transcriptomics have proven circularRNAs (circRNAs) to be powerful multi-functional molecules able to epigenetically regulate transcription and structurally support proteins. In the present review, we provide an overview of the recent role ascribed to circRNAs in maintaining BBB integrity/permeability via cytoskeletal stability. Increased knowledge of the mechanisms responsible for impairment and circRNA’s role in driving BBB damage and dysfunction might be helpful for the recognition of novel therapeutic targets to overcome BBB damage and unrestrained neurodegeneration.

Funder

University of Ferrara

National Recovery and Resilience Plan

Publisher

MDPI AG

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