JAM-A Acts via C/EBP-α to Promote Claudin-5 Expression and Enhance Endothelial Barrier Function

Author:

Kakogiannos Nikolaos1,Ferrari Laura1,Giampietro Costanza2,Scalise Anna Agata1ORCID,Maderna Claudio1ORCID,Ravà Micol3,Taddei Andrea4,Lampugnani Maria Grazia15,Pisati Federica6,Malinverno Matteo1ORCID,Martini Emanuele1,Costa Ilaria1,Lupia Michela7,Cavallaro Ugo7,Beznoussenko Galina V.1ORCID,Mironov Alexander A.1ORCID,Fernandes Bethania8ORCID,Rudini Noemi8ORCID,Dejana Elisabetta1910ORCID,Giannotta Monica1

Affiliation:

1. From the FIRC Institute of Molecular Oncology, Milan, Italy (N.K., L.F., A.A.S., C.M., M.G.L., M.M., E.M., I.C., G.V.B., A.A.M., E.D., M.G.)

2. EMPA, Swiss Federal Laboratories for Material Science and Technologies, Experimental Continuum Mechanics, Dübendorf, Switzerland (C.G.)

3. Experimental Oncology (M.R.), European Institute of Oncology IRCSS, Milan

4. Benevolent AI, London, United Kingdom (A.T.)

5. Mario Negri Institute for Pharmacological Research, Milan (M.G.L.)

6. Cogentech SRL Benefit Corporation, Milan (F.P.)

7. Unit of Gynaecological Oncology Research (M.L., U.C.), European Institute of Oncology IRCSS, Milan

8. Pathology Unit, Humanitas Clinical and Research Centre, Rozzano, Milan (B.F., N.R.)

9. Oncology and Haemato-Oncology, School of Medicine, University of Milan (E.D.)

10. Immunology, Genetics and Pathology, Uppsala University, Sweden (E.D.).

Abstract

Rationale: Intercellular tight junctions are crucial for correct regulation of the endothelial barrier. Their composition and integrity are affected in pathological contexts, such as inflammation and tumor growth. JAM-A (junctional adhesion molecule A) is a transmembrane component of tight junctions with a role in maintenance of endothelial barrier function, although how this is accomplished remains elusive. Objective: We aimed to understand the molecular mechanisms through which JAM-A expression regulates tight junction organization to control endothelial permeability, with potential implications under pathological conditions. Methods and Results: Genetic deletion of JAM-A in mice significantly increased vascular permeability. This was associated with significantly decreased expression of claudin-5 in the vasculature of various tissues, including brain and lung. We observed that C/EBP-α (CCAAT/enhancer-binding protein-α) can act as a transcription factor to trigger the expression of claudin-5 downstream of JAM-A, to thus enhance vascular barrier function. Accordingly, gain-of-function for C/EBP-α increased claudin-5 expression and decreased endothelial permeability, as measured by the passage of fluorescein isothiocyanate (FITC)-dextran through endothelial monolayers. Conversely, C/EBP-α loss-of-function showed the opposite effects of decreased claudin-5 levels and increased endothelial permeability. Mechanistically, JAM-A promoted C/EBP-α expression through suppression of β-catenin transcriptional activity, and also through activation of EPAC (exchange protein directly activated by cAMP). C/EBP-α then directly binds the promoter of claudin-5 to thereby promote its transcription. Finally, JAM-A–C/EBP-α–mediated regulation of claudin-5 was lost in blood vessels from tissue biopsies from patients with glioblastoma and ovarian cancer. Conclusions: We describe here a novel role for the transcription factor C/EBP-α that is positively modulated by JAM-A, a component of tight junctions that acts through EPAC to up-regulate the expression of claudin-5, to thus decrease endothelial permeability. Overall, these data unravel a regulatory molecular pathway through which tight junctions limit vascular permeability. This will help in the identification of further therapeutic targets for diseases associated with endothelial barrier dysfunction. Graphic Abstract: An graphic abstract is available for this article.

Funder

Associazione Italiana per la Ricerca sul Cancro

EC | European Research Council

EC | Horizon 2020

Fondazione Cariplo

Ministero della Salute

Fondazione Telethon

Foundation Umberto Veronesi

Swedish Science Council

Knut och Alice Wallenbergs Stiftelse

IEO-CCM Foundation

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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