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Pericardial delta like non‐canonical NOTCH ligand 1 (Dlk1) augments fibrosis in the heart through epithelial to mesenchymal transition

Authors :
Charlotte Harken Jensen
Rikke Helin Johnsen
Tilde Eskildsen
Christina Baun
Ditte Gry Ellman
Shu Fang
Sara Thornby Bak
Svend Hvidsten
Lars Allan Larsen
Ann Mari Rosager
Lars Peter Riber
Mikael Schneider
Jo De Mey
Mads Thomassen
Mark Burton
Shizuka Uchida
Jorge Laborda
Ditte Caroline Andersen
Source :
Clinical and Translational Medicine, Vol 14, Iss 2, Pp n/a-n/a (2024)
Publication Year :
2024
Publisher :
Wiley, 2024.

Abstract

Abstract Background Heart failure due to myocardial infarction (MI) involves fibrosis driven by epicardium‐derived cells (EPDCs) and cardiac fibroblasts, but strategies to inhibit and provide cardio‐protection remains poor. The imprinted gene, non‐canonical NOTCH ligand 1 (Dlk1), has previously been shown to mediate fibrosis in the skin, lung and liver, but very little is known on its effect in the heart. Methods Herein, human pericardial fluid/plasma and tissue biopsies were assessed for DLK1, whereas the spatiotemporal expression of Dlk1 was determined in mouse hearts. The Dlk1 heart phenotype in normal and MI hearts was assessed in transgenic mice either lacking or overexpressing Dlk1. Finally, in/ex vivo cell studies provided knowledge on the molecular mechanism. Results Dlk1 was demonstrated in non‐myocytes of the developing human myocardium but exhibited a restricted pericardial expression in adulthood. Soluble DLK1 was twofold higher in pericardial fluid (median 45.7 [34.7 (IQR)) μg/L] from cardiovascular patients (n = 127) than in plasma (median 26.1 μg/L [11.1 (IQR)]. The spatial and temporal expression pattern of Dlk1 was recapitulated in mouse and rat hearts. Similar to humans lacking Dlk1, adult Dlk1−/− mice exhibited a relatively mild developmental, although consistent cardiac phenotype with some abnormalities in heart size, shape, thorax orientation and non‐myocyte number, but were functionally normal. However, after MI, scar size was substantially reduced in Dlk1−/− hearts as compared with Dlk1+/+ littermates. In line, high levels of Dlk1 in transgenic mice Dlk1fl/flxWT1GFPCre and Dlk1fl/flxαMHCCre/+Tam increased scar size following MI. Further mechanistic and cellular insight demonstrated that pericardial Dlk1 mediates cardiac fibrosis through epithelial to mesenchymal transition (EMT) of the EPDC lineage by maintaining Integrin β8 (Itgb8), a major activator of transforming growth factor β and EMT. Conclusions Our results suggest that pericardial Dlk1 embraces a, so far, unnoticed role in the heart augmenting cardiac fibrosis through EMT. Monitoring DLK1 levels as well as targeting pericardial DLK1 may thus offer new venues for cardio‐protection.

Details

Language :
English
ISSN :
20011326
Volume :
14
Issue :
2
Database :
Directory of Open Access Journals
Journal :
Clinical and Translational Medicine
Publication Type :
Academic Journal
Accession number :
edsdoj.8159e282c4c94511948c59dd2e803759
Document Type :
article
Full Text :
https://doi.org/10.1002/ctm2.1565