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Paracrine Effects of FGF23 on the Heart
Maren Leifheit-Nestler1, Dieter Haffner1
1Department of Pediatric Kidney, Liver and Metabolic Diseases, Pediatric Research Center, Hannover Medical School, Hannover, Germany.
Insights
Fibroblast growth factor (FGF) 23, a hormone, promotes cardiac remodeling and heart failure. FGF23 acts directly on heart cells, worsening conditions like left ventricular hypertrophy and fibrosis.
Area of Science:
- Cardiovascular Biology
- Endocrinology
- Molecular Medicine
Background:
- Fibroblast growth factor (FGF) 23 is a key hormone regulating phosphate and mineral balance.
- Elevated FGF23 levels are linked to cardiac remodeling, including left ventricular hypertrophy (LVH) and fibrosis, and increased cardiovascular mortality.
- FGF23's role in cardiac pathology is increasingly recognized, independent of kidney function.
Purpose of the Study:
- To review the molecular mechanisms underlying FGF23's paracrine actions on the heart.
- To explore FGF23's contribution to pathological cardiac remodeling.
Main Methods:
- Review of recent clinical and experimental studies on FGF23 and cardiac remodeling.
- Analysis of FGF23 signaling pathways in cardiac myocytes and non-myocytes.
Main Results:
- FGF23 promotes cardiac myocyte hypertrophy via FGF receptor 4 and PLCγ/calcineurin/NFAT signaling.
- FGF23 is expressed in the heart and acts through autocrine and paracrine mechanisms.
- Cardiac FGF23 stimulates pro-fibrotic pathways in cardiac fibroblasts, leading to myocardial fibrosis.
Conclusions:
- FGF23 contributes to pathological cardiac remodeling through both endocrine and local paracrine/autocrine actions.
- Understanding FGF23's cardiac effects is crucial for managing heart failure and cardiovascular disease.
- Targeting FGF23 signaling may offer novel therapeutic strategies for cardiac conditions.
Abstract:
Fibroblast growth factor (FGF) 23 is a phosphaturic hormone primarily secreted by osteocytes to maintain phosphate and mineral homeostasis. In patients with and without chronic kidney disease, enhanced circulating FGF23 levels associate with pathologic cardiac remodeling, i.e., left ventricular hypertrophy (LVH) and myocardial fibrosis and increased cardiovascular mortality. Experimental studies demonstrate that FGF23 promotes hypertrophic growth of cardiac myocytes via FGF receptor 4-dependent activation of phospholipase Cγ/calcineurin/nuclear factor of activated T cell signaling independent of its co-receptor klotho. Recent studies indicate that FGF23 is also expressed in the heart, and markedly enhanced in various clinical and experimental settings of cardiac remodeling and heart failure independent of preserved or reduced renal function. On a cellular level, FGF23 is expressed in cardiac myocytes and in other non-cardiac myocytes, including cardiac fibroblasts, vascular smooth muscle and endothelial cells in coronary arteries, and in inflammatory macrophages. Current data suggest that secreted by cardiac myocytes, FGF23 can stimulate pro-fibrotic factors in myocytes to induce fibrosis-related pathways in fibroblasts and consequently cardiac fibrosis in a paracrine manner. While acting on cardiac myocytes, FGF23 directly induces pro-hypertrophic genes and promotes the progression of LVH in an autocrine and paracrine fashion. Thus, enhanced FGF23 may promote cardiac injury in various clinical settings not only by endocrine but also via paracrine/autocrine mechanisms. In this review, we discuss recent clinical and experimental data regarding molecular mechanisms of FGF23's paracrine action on the heart with respect to pathological cardiac remodeling.
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