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Small-molecule LF3 alleviates angiotensin II-induced cardiac dysfunction via attenuating cardiac fibrosis
Xiang Liu1, Chunyu Zhang1, Weiyi Jiang1
1Department of Pathology and Pathophysiology, School of Basic Medical Sciences, Suzhou Medical College of Soochow University, 199 Ren-Ai Road, Suzhou, Jiangsu, 215123, China.
Abstract:
Cardiac fibrosis significantly contributes to heart failure progression, yet no currently available agents directly target this pathological process. The Wnt/β-catenin signaling pathway has emerged as a key mediator of fibrosis, but its upstream inhibition may have unintended broader effects. In this study, we evaluated the therapeutic potential of LF3, a 4-thioureido-benzenesulfonamide derivative that disrupts the downstream β-catenin/TCF4 interaction, in mitigating cardiac fibrosis and investigated the underlying mechanism. Male mice were subjected to cardiac fibrosis by continuous angiotensin II (Ang II) infusion (1.44 mg/kg/day) for 3 weeks using osmotic minipumps and were treated with LF3 (40 mg/kg/day, intraperitoneal). Mouse cardiac fibroblasts were stimulated with 10-8 M Ang II in vitro with or without 10-⁶ M LF3. Wnt/β-catenin signaling was evaluated by β-catenin expression, nuclear translocation, β-catenin/TCF4 interaction, and target gene (Axin2, Myc) expression. Cardiac structure and function were assessed by echocardiography. Myocardial fibrosis was evaluated by histological staining, and inflammation by CD45 immunostaining. Fibroblast activation was assessed in heart tissue by vimentin/α-SMA immunostaining, and in cultured cardiac fibroblasts by proliferation, migration, differentiation (α-SMA immunostaining), and collagen production assays. LF3 significantly improved cardiac function, attenuated ventricular dilation, reduced cardiac fibrosis, and decreased CD45 + inflammatory cells infiltration in Ang II-infused mice. LF3 also inhibited Ang II-induced proliferation, differentiation, migration, and collagen synthesis in vitro. These results identify pharmacological disruption of β-catenin/TCF4 signaling by LF3 as a promising strategy to mitigate Ang II-induced cardiac fibrosis and dysfunction.
Insights
LF3, a novel compound, effectively reduces cardiac fibrosis and improves heart function by targeting the Wnt/β-catenin pathway. This targeted approach offers a promising therapeutic strategy for heart failure progression.
Area of Science:
- Cardiovascular Biology
- Pharmacology
- Molecular Medicine
Background:
- Cardiac fibrosis is a major driver of heart failure progression.
- Current treatments lack agents that directly target cardiac fibrosis.
- The Wnt/β-catenin signaling pathway is implicated in fibrosis, but upstream inhibition has risks.
Purpose of the Study:
- To evaluate the therapeutic potential of LF3, a β-catenin/TCF4 interaction inhibitor, in mitigating cardiac fibrosis.
- To investigate the underlying mechanisms of LF3's action in a cardiac fibrosis model.
Main Methods:
- Male mice received Angiotensin II (Ang II) infusion to induce cardiac fibrosis and were treated with LF3.
- In vitro studies used mouse cardiac fibroblasts stimulated with Ang II and LF3.
- Wnt/β-catenin signaling, cardiac structure/function, fibrosis, inflammation, and fibroblast activation were assessed.
Main Results:
- LF3 treatment significantly improved cardiac function and attenuated ventricular dilation in Ang II-infused mice.
- LF3 reduced myocardial fibrosis and CD45+ inflammatory cell infiltration.
- In vitro, LF3 inhibited Ang II-induced fibroblast proliferation, differentiation, migration, and collagen synthesis.
Conclusions:
- Pharmacological disruption of β-catenin/TCF4 signaling by LF3 is a viable strategy.
- LF3 shows promise in mitigating Ang II-induced cardiac fibrosis and dysfunction.
- LF3 represents a potential therapeutic agent for heart failure associated with fibrosis.
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