Inducible Fgf13 ablation alleviates cardiac fibrosis via regulation of microtubule stability

Acta Biochim Biophys Sin (Shanghai). 2024 May 30;56(12):1802-1812. doi: 10.3724/abbs.2024075.

Abstract

Fibroblast growth factor (FGF) isoform 13, a distinct type of FGF, boasts significant potential for therapeutic intervention in cardiovascular dysfunctions. However, its impact on regulating fibrosis remains unexplored. This study aims to elucidate the role and mechanism of FGF13 on cardiac fibrosis. Here, we show that following transverse aortic constriction (TAC) surgery, interstitial fibrosis and collagen content increase in mice, along with reduced ejection fraction and fractional shortening, augmented heart mass. However, following Fgf13 deletion, interstitial fibrosis is decreased, ejection fraction and fractional shortening are increased, and heart mass is decreased, compared with those in the TAC group. Mechanistically, incubation of cardiac fibroblasts with transforming growth factor β (TGFβ) increases the expressions of types I and III collagen proteins, as well as α-smooth muscle actin (α-SMA) proteins, and enhances fibroblast proliferation and migration. In the absence of Fgf13, the expressions of these proteins are decreased, and fibroblast proliferation and migration are suppressed, compared with those in the TGFβ-stimulated group. Overexpression of FGF13, but not FGF13 mutants defective in microtubule binding and stabilization, rescues the decrease in collagen and α-SMA protein and weakens the proliferation and migration function of the Fgf13 knockdown group. Furthermore, Fgf13 knockdown decreases ROCK protein expression via microtubule disruption. Collectively, cardiac Fgf13 knockdown protects the heart from fibrosis in response to haemodynamic stress by modulating microtubule stabilization and ROCK signaling pathway.

Keywords: FGF13; ROCK; cardiac fibrosis; fibroblasts; microtubule.

MeSH terms

  • Animals
  • Cell Movement / genetics
  • Cell Proliferation / genetics
  • Fibroblast Growth Factors* / genetics
  • Fibroblast Growth Factors* / metabolism
  • Fibroblasts / metabolism
  • Fibroblasts / pathology
  • Fibrosis*
  • Male
  • Mice
  • Mice, Inbred C57BL
  • Mice, Knockout
  • Microtubules* / metabolism
  • Myocardium* / metabolism
  • Myocardium* / pathology
  • Transforming Growth Factor beta / metabolism

Substances

  • fibroblast growth factor 13
  • Fibroblast Growth Factors
  • Transforming Growth Factor beta

Grants and funding

This work was supported by the grants from the National Natural Science Foundation of China (Nos. 81770407 and 31171097), the Key Project of Precision Medicine Joint Fund of Natural Science Foundation of Hebei Province (No. H2020206409), the College Students Innovative Pilot Project in Hebei Medical University (No. USIP2023011), and the Science Fund for Creative Research Groups of Natural Science Foundation of Hebei Province (No. H2020206474).