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Updated: Jun 29, 2025

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Hyperglycemia activates FGFR1 via TLR4/c-Src pathway to induce inflammatory cardiomyopathy in diabetes
Xiong Chen1,2,3, Jinfu Qian4, Shiqi Liang2,4
1Department of Endocrinology, the First Affiliated Hospital, Wenzhou Medical University, Wenzhou 325035, China.
Abstract:
Protein tyrosine kinases (RTKs) modulate a wide range of pathophysiological events in several non-malignant disorders, including diabetic complications. To find new targets driving the development of diabetic cardiomyopathy (DCM), we profiled an RTKs phosphorylation array in diabetic mouse hearts and identified increased phosphorylated fibroblast growth factor receptor 1 (p-FGFR1) levels in cardiomyocytes, indicating that FGFR1 may contribute to the pathogenesis of DCM. Using primary cardiomyocytes and H9C2 cell lines, we discovered that high-concentration glucose (HG) transactivates FGFR1 kinase domain through toll-like receptor 4 (TLR4) and c-Src, independent of FGF ligands. Knocking down the levels of either TLR4 or c-Src prevents HG-activated FGFR1 in cardiomyocytes. RNA-sequencing analysis indicates that the elevated FGFR1 activity induces pro-inflammatory responses via MAPKs-NFκB signaling pathway in HG-challenged cardiomyocytes, which further results in fibrosis and hypertrophy. We then generated cardiomyocyte-specific FGFR1 knockout mice and showed that a lack of FGFR1 in cardiomyocytes prevents diabetes-induced cardiac inflammation and preserves cardiac function in mice. Pharmacological inhibition of FGFR1 by a selective inhibitor, AZD4547, also prevents cardiac inflammation, fibrosis, and dysfunction in both type 1 and type 2 diabetic mice. These studies have identified FGFR1 as a new player in driving DCM and support further testing of FGFR1 inhibitors for possible cardioprotective benefits.
Insights
Fibroblast growth factor receptor 1 (FGFR1) activation by high glucose drives diabetic cardiomyopathy (DCM) through inflammation and fibrosis. Inhibiting FGFR1 may offer cardioprotective benefits in diabetes.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- Protein tyrosine kinases (RTKs) play roles in diabetic complications.
- Diabetic cardiomyopathy (DCM) pathogenesis requires identification of novel therapeutic targets.
Purpose of the Study:
- To investigate the role of RTKs in DCM development.
- To identify specific RTKs involved in high glucose-induced cardiac dysfunction.
Main Methods:
- Profiling RTK phosphorylation in diabetic mouse hearts.
- Utilizing primary cardiomyocytes and H9C2 cell lines to study FGFR1 activation.
- Employing RNA sequencing to analyze signaling pathways.
- Generating cardiomyocyte-specific FGFR1 knockout mice.
- Administering FGFR1 inhibitor AZD4547 to diabetic mice.
Main Results:
- Elevated phosphorylated FGFR1 (p-FGFR1) levels were observed in diabetic mouse hearts.
- High glucose transactivates FGFR1 via toll-like receptor 4 (TLR4) and c-Src, independent of FGF ligands.
- FGFR1 activation induces pro-inflammatory responses through MAPKs-NFκB signaling, leading to fibrosis and hypertrophy.
- Cardiomyocyte-specific FGFR1 knockout prevented diabetes-induced cardiac inflammation and preserved cardiac function.
- AZD4547 treatment ameliorated cardiac inflammation, fibrosis, and dysfunction in diabetic mice.
Conclusions:
- FGFR1 is a key mediator in the pathogenesis of DCM.
- Targeting FGFR1 with inhibitors like AZD4547 shows promise for treating diabetic cardiac complications.
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