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April 3, 2026Arteriosclerosis Thrombosis and Vascular Biology0 citations

ILK (Integrin-Linked Kinase)–Dependent Modulation of DPP4 (Dipeptidyl Peptidase 4) Prevents Progression of Calcific Aortic Valve Disease

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MDMaría Delgado-MarínSSS. González SánchezACAlberto Cook-Calvete

Key Result

DPP4 inhibition with sitagliptin mitigated inflammation, valve thickening, and calcification in a mouse model of calcific aortic valve disease driven by endothelial ILK deficiency.

Key Points

  • This research aims to clarify the role of ILK in calcific aortic valve disease and its interaction with DPP4.
  • Used a mouse model with endothelial-specific ILK deletion.
  • Examined DPP4 activity in human aortic valve tissue and plasma from CAVD patients.
  • Performed mechanistic studies in human valvular endothelial cells with ILK silencing.
  • Treated mice with the DPP4 inhibitor sitagliptin and assessed cardiac function.
  • Increased DPP4 levels in CAVD patients correlated inversely with ILK.
  • ILK silencing in cells led to increased DPP4 expression and endothelial-to-mesenchymal transition.
  • Endothelial ILK deletion in mice resulted in features of CAVD, including valve thickening and calcification.
  • Sitagliptin treatment reduced disease severity by inhibiting DPP4 upregulation related to ILK loss.

Structured PICO

Does DPP4 inhibition prevent progression of calcific aortic valve disease in models of endothelial ILK deficiency?

P
Population
Human aortic valve tissue and plasma from patients with and without calcific aortic valve disease (CAVD), human valvular endothelial cells, and a mouse model with endothelial cell-specific ILK conditional knockout.
I
Intervention
DPP4 inhibition (sitagliptin in vivo; pharmacological or genetic DPP4 inhibition in vitro)
C
Comparator
Control/untreated models (mice without sitagliptin, cells without DPP4 inhibition)
O
Outcome
Valvular and cardiac function, and remodeling (including inflammation, valve thickening, calcification, and endothelial-to-mesenchymal transition)surrogate

DPP4 inhibition mitigates calcific aortic valve disease progression in preclinical models of endothelial ILK deficiency, identifying a potential disease-modifying therapeutic strategy.

Abstract

BACKGROUND: Calcific aortic valve disease (CAVD) is characterized by endothelial dysfunction, fibrosis, and osteogenic calcification, yet the molecular mechanisms driving disease progression remain incompletely understood, and no pharmacological therapies are currently available. Reduced endothelial ILK (integrin-linked kinase) expression has been implicated in CAVD, but its downstream effectors remain undefined. METHODS: To explore the direct role of ILK in CAVD development, we used a mouse model in which ILK is conditionally deleted from endothelial cells (endothelial cell–specific ILK conditional knockout). DPP4 (dipeptidyl peptidase 4) expression and activity were examined in human aortic valve tissue and plasma from patients with and without CAVD as a potential therapeutic target. Mechanistic studies were performed in human valvular endothelial cells subjected to ILK silencing, with or without pharmacological or genetic DPP4 inhibition. In vivo, endothelial cell–specific ILK conditional knockout mice were treated with the DPP4 inhibitor sitagliptin, and valvular, cardiac function, and remodeling were assessed. RESULTS: DPP4 expression was increased in circulation and in the aortic valves of patients with CAVD and was inversely correlated with ILK levels, with predominant localization to valvular endothelial cells. ILK silencing in human valvular endothelial cells increased DPP4 expression and enzymatic activity, promoted endothelial-to-mesenchymal transition, and induced osteogenic reprogramming; these effects were attenuated by DPP4 inhibition. Endothelial ILK deletion in mice recapitulated CAVD features, including inflammation, valve thickening, calcification, and cardiac remodeling, all of which were associated with increased DPP4. Sitagliptin treatment mitigated disease severity. Mechanistically, sitagliptin inhibited NF-κB (nuclear factor kappa B)–driven DPP4 upregulation caused by ILK loss. CONCLUSIONS: These findings identify DPP4 as a key downstream effector linking endothelial ILK deficiency to inflammation, endothelial-to-mesenchymal transition, and calcific remodeling in CAVD and support DPP4 inhibition as a potential disease-modifying strategy to slow disease progression.

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Cite This Study

Delgado-Marín et al. (2026) studied this question. DPP4 inhibition with sitagliptin mitigated inflammation, valve thickening, and calcification in a mouse model of calcific aortic valve disease driven by endothelial ILK deficiency.

synapsesocial.com/papers/69cf5ebc5a333a821460d43chttps://doi.org/10.1161/atvbaha.125.323824
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Integrin-Linked Kinase Expression in Human Valve Endothelial Cells Plays a Protective Role in Calcific Aortic Valve Disease2022 · 16 citations
  2. 2Abstract Wed119: Identification of Circulating miRNAs Linked to Endothelial ILK Deficiency: Novel Biomarkers for aortic valve calcific disease (CAVD) Monitoring2025
  3. 3Indoxyl Sulfate-Induced Valve Endothelial Cell Endothelial-to-Mesenchymal Transition and Calcification in an Integrin-Linked Kinase-Dependent Manner2024 · 6 citations
  4. 4Endothelial Integrin‐Linked Kinase (ILK) Deficiency Promotes Endothelial Activation and Cardiovascular Dysfunction via Receptor Interacting Protein Kinase‐1 (RIPK1) Enriched‐Extracellular Vesicle Signalling2026
  5. 5Dipeptidyl Peptidase-4 Induces Aortic Valve Calcification by Inhibiting Insulin-Like Growth Factor-1 Signaling in Valvular Interstitial Cells2017 · 120 citations