The Scientific Rationale for the Introduction of Renalase in the Concept of Cardiac Fibrosis

Dijana Stojanovic1, Valentina Mitic2, Miodrag Stojanovic3,4

  • 1Institute of Pathophysiology, Faculty of Medicine, University of Niš, Niš, Serbia.

Insights

Cardiac fibrosis, a cause of heart failure, involves matrix protein buildup. Renalase, a kidney-secreted protein, shows promise as an anti-fibrotic factor by reducing inflammation and oxidative stress.

Area of Science:

  • Cardiovascular Biology
  • Renal Physiology
  • Fibrosis Research

Background:

  • Cardiac fibrosis, characterized by excessive extracellular matrix accumulation, is a key driver of heart failure.
  • Its pathogenesis involves complex cellular crosstalk, profibrotic mediators, and cellular transitions like epithelial-mesenchymal transition.
  • Current anti-fibrotic strategies necessitate targeting these diverse pathways.

Purpose of the Study:

  • To review the scientific rationale for investigating renalase as a therapeutic agent for cardiac fibrosis.
  • To highlight renalase's multifaceted anti-fibrotic properties and potential mechanisms of action.

Main Methods:

  • Literature review of existing studies on cardiac fibrosis and renalase.
  • Analysis of in vitro and in vivo evidence for renalase's effects on cellular and molecular pathways involved in fibrosis.

Main Results:

  • Renalase exhibits cytoprotective effects across various organ injuries, including the heart.
  • It alleviates inflammation, oxidative stress, apoptosis, and fibrotic responses.
  • Specific actions include reducing inflammatory cell infiltration, promoting M2 macrophage polarization, decreasing pro-inflammatory mediators, and suppressing pro-fibrotic markers.

Conclusions:

  • Renalase demonstrates significant therapeutic potential as an anti-fibrotic factor for cardiac conditions.
  • Its pleiotropic effects suggest a novel therapeutic avenue for managing cardiac fibrosis and preventing heart failure.
  • Further research is required to elucidate the precise mechanisms underlying renalase's action in cardiac fibrosis before clinical translation.