Heart-Type Fatty Acid-Binding Protein (H-FABP) as a Candidate Adjunctive Biomarker for Immune Checkpoint

Vincenzo Quagliariello1, Massimiliano Berretta2, Fabrizio Maurea3

  • 1Division of Cardiology, Istituto Nazionale Tumori-IRCCS-Fondazione G. Pascale, 80131 Napoli, Italy.

Insights

Heart-type fatty acid-binding protein (H-FABP) may help detect early cardiac injury in patients receiving immune checkpoint inhibitors (ICIs). This biomarker shows potential for early surveillance of myocarditis, complementing troponin testing.

Area of Science:

  • Cardio-oncology
  • Immunology
  • Biomarker research

Background:

  • Immune checkpoint inhibitors (ICIs) are vital cancer therapies but can cause severe cardiovascular immune-related adverse events (irAEs).
  • ICI-associated myocarditis is a critical irAE with high mortality and diagnostic challenges.
  • Early detection of subclinical myocardial injury during ICI therapy is a significant unmet need.

Purpose of the Study:

  • To review the potential of heart-type fatty acid-binding protein (H-FABP) as an adjunctive biomarker for early detection of immune-mediated myocardial injury in patients undergoing ICI therapy.
  • To examine the biological rationale, preclinical evidence, and clinical data supporting H-FABP's role in cardio-oncology.

Main Methods:

  • Narrative expert review of existing literature.
  • Analysis of biological mechanisms linking H-FABP release to cardiomyocyte stress and immune response.
  • Evaluation of preclinical and preliminary clinical data on H-FABP in ICI-treated patients.

Main Results:

  • H-FABP is released from cardiomyocytes due to metabolic stress and membrane destabilization, often preceding troponin elevation.
  • Experimental studies suggest H-FABP release is associated with inflammasome activation and immune-metabolic stress.
  • Preliminary data indicate H-FABP may rise during ICI treatment even without overt myocarditis or elevated hs-cTn.

Conclusions:

  • H-FABP shows promise as an investigational adjunctive biomarker for early surveillance and risk stratification of ICI-associated myocardial injury.
  • While not replacing hs-cTn for diagnosing significant myocarditis, H-FABP's rapid kinetics may aid in identifying early metabolic injury.
  • Further large-scale prospective studies are needed to validate H-FABP's clinical utility alongside other biomarkers and imaging modalities.

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