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June 16, 2026International Journal of Molecular Sciences0 citationsOpen Access

Absence of GDF15 Aggravates Pressure Overload-Induced Cardiac Remodelling in Mice Hallmarked by Perivascular Fibrosis and Signs of Endothelial-to-Mesenchymal Transition

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MWMarian WesselingGSGonzalo Sánchez‐DuffhuesJHJudith de Haan

Key Result

Genetic deficiency of GDF15 in mice aggravated pressure overload-induced adverse cardiac remodelling and heart failure, characterized by enhanced perivascular fibrosis and endothelial dysfunction.

Key Points

  • This study aims to investigate the role of GDF15 in pressure overload-induced heart failure using a mouse model.
  • Utilized transverse aortic constriction (TAC) in mouse models to induce heart failure.
  • Compared cardiac remodelling in genetically deficient Gdf15-/- mice versus wild type (WT) littermates after TAC.
  • Conducted in vitro experiments with GDF15 knockdown endothelial cells to analyze endothelial mechanisms.
  • Gdf15-/- mice exhibited significantly greater cardiac remodelling, including increased cardiac volumes and impaired myocardial global deformation, after TAC.
  • Enhanced perivascular fibrosis and signs of endothelial-to-mesenchymal transition were noted in Gdf15-/- mice compared to WT.
  • GDF15 deficiency led to impaired barrier function in endothelial cells and increased expression of mesenchymal markers under Activin A stimulation.

Structured PICO

Does GDF15 deficiency aggravate pressure overload-induced cardiac remodelling and heart failure in mice?

P
Population
Mice subjected to transverse aortic constriction (TAC) and GDF15 knockdown endothelial cells, followed for up to 42 days.
E
Exposure
Genetic deficiency of GDF15 (Gdf15-/- mice) and GDF15 knockdown in vitro
C
Comparator
Wild type (WT) littermates and control endothelial cells
O
Outcome
Cardiac remodelling (cardiac volumes, myocardial global deformation) and development of heart failuresurrogate

Loss of GDF15 aggravates pressure overload-induced heart failure and cardiac remodelling in mice, suggesting a protective role for GDF15 in maintaining endothelial integrity during cardiac stress.

Abstract

Growth differentiation factor 15 (GDF15) levels are associated with increased mortality and rehospitalisation in heart failure (HF) patients. Whether GDF15 is causally involved in the pathobiology of HF remains largely unknown. Using the transverse aortic constriction (TAC) mouse model, we investigated the role of GDF15 in pressure overload-induced HF. Following TAC, circulating GDF15 levels increased significantly. Compared to wild type (WT) littermates, genetically deficient Gdf15-/- mice developed more pronounced adverse cardiac remodelling one week after TAC, characterised by increased cardiac volumes and impaired myocardial global deformation. This further aggravated into severe HF in Gdf15-/- mice over 42 days follow-up. Cardiac remodelling in Gdf15-/- was accompanied by enhanced perivascular fibrosis and increased co-localization of fibroblast- and endothelial-specific markers in the cardiac endothelium of Gdf15-/- mice, suggestive of endothelial plasticity and Endothelial-to-Mesenchymal transition (EndMT)-like changes. To further explore potential endothelial mechanisms underlying these observations, we performed complementary in vitro experiments in GDF15 knockdown endothelial cells. GDF15 deficiency impaired barrier function and enhanced Activin A-induced mesenchymal marker expression, consistent with increased endothelial phenotypic modulation. Together, these findings demonstrate that the loss of GDF15 aggravates pressure overload-induced heart failure, hallmarked by perivascular fibrosis and signs of endothelial dysfunction. Our data further support a potential protective role for GDF15 in maintaining endothelial integrity during cardiac stress.

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Cite This Study

Wesseling et al. (2026) studied Pressure overload-induced heart failure. GDF15 deficiency (Gdf15-/-) vs. Wild type (WT) littermates was evaluated on Adverse cardiac remodelling and heart failure. Genetic deficiency of GDF15 in mice aggravated pressure overload-induced adverse cardiac remodelling and heart failure, characterized by enhanced perivascular fibrosis and endothelial dysfunction.

synapsesocial.com/papers/6a31572eaf7cf7f8256b3da9https://doi.org/10.3390/ijms27125387
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