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Published on: June 14, 2016
Scleraxis and fibrosis in the pressure-overloaded heart
Raghu S Nagalingam1,2, Sikta Chattopadhyaya1,2, Danah S Al-Hattab1,2
1Department of Physiology and Pathophysiology, Rady Faculty of Health Sciences, University of Manitoba, Winnipeg, Canada.
Insights
Scleraxis (Scx) drives cardiac fibrosis and dysfunction in heart failure. Its removal in mice prevented fibrosis, improved heart function, and increased survival, identifying Scx as a potential anti-fibrotic target.
Area of Science:
- Cardiovascular Biology
- Fibrosis Research
- Molecular Cardiology
Background:
- Scleraxis (Scx) regulates cardiac fibroblast activation in vitro.
- The in vivo role of scleraxis in cardiac fibrosis remains unknown.
- Cardiac fibrosis is a key driver of heart failure progression.
Purpose of the Study:
- To investigate the role of scleraxis in fibroblast activation, cardiac fibrosis, and dysfunction in pressure overload-induced heart failure.
- To assess the therapeutic potential of targeting scleraxis for anti-fibrotic treatments.
Main Methods:
- Utilized a tamoxifen-inducible fibroblast-specific scleraxis knockout (Scx-fKO) mouse model.
- Induced pressure overload heart failure using transverse aortic constriction (TAC).
- Assessed cardiac fibrosis, fibroblast activation, cardiac function, and survival post-TAC.
Main Results:
- Scleraxis expression was upregulated in human heart failure and in TAC mice.
- Scx-fKO mice exhibited completely attenuated cardiac fibrosis and improved systolic function and ventricular remodeling after TAC.
- Scleraxis deletion reduced mortality, attenuated fibroblast activation and myofibroblast markers like periostin, and improved function even after fibrosis was established.
Conclusions:
- Scleraxis is a critical regulator of fibroblast activation and cardiac fibrosis in pressure overload-induced heart failure.
- Targeting scleraxis presents a promising strategy for developing novel anti-fibrotic therapies.
- Scleraxis knockout significantly improves cardiac function and survival in a heart failure model.
Aims:
In response to pro-fibrotic signals, scleraxis regulates cardiac fibroblast activation in vitro via transcriptional control of key fibrosis genes such as collagen and fibronectin; however, its role in vivo is unknown. The present study assessed the impact of scleraxis loss on fibroblast activation, cardiac fibrosis, and dysfunction in pressure overload-induced heart failure.
Methods And Results:
Scleraxis expression was upregulated in the hearts of non-ischemic dilated cardiomyopathy patients, and in mice subjected to pressure overload by transverse aortic constriction (TAC). Tamoxifen-inducible fibroblast-specific scleraxis knockout (Scx-fKO) completely attenuated cardiac fibrosis, and significantly improved cardiac systolic function and ventricular remodelling, following TAC compared to Scx+/+ TAC mice, concomitant with attenuation of fibroblast activation. Scleraxis deletion, after the establishment of cardiac fibrosis, attenuated the further functional decline observed in Scx+/+ mice, with a reduction in cardiac myofibroblasts. Notably, scleraxis knockout reduced pressure overload-induced mortality from 33% to zero, without affecting the degree of cardiac hypertrophy. Scleraxis directly regulated transcription of the myofibroblast marker periostin, and cardiac fibroblasts lacking scleraxis failed to upregulate periostin synthesis and secretion in response to pro-fibrotic transforming growth factor β.
Conclusion:
Scleraxis governs fibroblast activation in pressure overload-induced heart failure, and scleraxis knockout attenuated fibrosis and improved cardiac function and survival. These findings identify scleraxis as a viable target for the development of novel anti-fibrotic treatments.
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