Apoptotic human neutrophil peptide-1 anti-tumor activity revealed by cellular biomechanics

Diana Gaspar1, João M Freire1, Teresa R Pacheco1

  • 1Instituto de Medicina Molecular, Faculdade de Medicina, Universidade de Lisboa, Av. Prof. Egas Moniz, Lisbon 1649-028, Portugal.

Insights

Human neutrophil peptide-1 (HNP-1), an antimicrobial peptide (AMP), shows preferential binding to solid tumor cells, inducing apoptosis. This discovery offers potential for novel cancer therapies and biomarkers.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Oncology

Background:

  • Cancer is a leading global health burden requiring novel therapies with reduced resistance and cytotoxicity.
  • Antimicrobial peptides (AMPs) are explored as anticancer agents (ACPs) due to their potential for low resistance development and cytotoxicity.
  • Human neutrophil peptide-1 (HNP-1) is an endogenous AMP linked to tumor proliferation and a potential cancer biomarker.

Purpose of the Study:

  • To investigate the effects of HNP-1 on the biophysical and nanomechanical properties of solid and hematological tumor cells.
  • To determine the preferential binding of HNP-1 to specific tumor cell types.
  • To elucidate the mechanism of HNP-1-induced cell death.

Main Methods:

  • Atomic force microscopy (AFM) to assess cellular morphology, stiffness, and membrane ultrastructure.
  • Zeta potential measurements to analyze membrane charge.
  • Comparative studies on human prostate adenocarcinoma and human leukemia cells.

Main Results:

  • HNP-1 demonstrated preferential binding to solid tumor cells (prostate adenocarcinoma) over hematological tumor cells (leukemia).
  • AFM revealed HNP-1 induced apoptosis and membrane defects in tumor cells at low concentrations.
  • Differential effects on cellular stiffness and membrane charge were observed between solid and hematological tumor cells.

Conclusions:

  • HNP-1 exhibits selective interaction with solid tumor cells, suggesting a targeted therapeutic potential.
  • HNP-1's ability to induce apoptosis via membrane disruption highlights its role as an anticancer peptide.
  • Further understanding of ACP mechanisms, like HNP-1, can drive innovative cancer drug development and biomarker strategies.