Multivalent HER2-binding polymer conjugates facilitate rapid endocytosis and enhance intracellular drug delivery

D Christopher Radford1, Jiyuan Yang2, Mai C Doan1

  • 1Department of Biomedical Engineering, University of Utah, Salt Lake City, UT 84112, USA.

Insights

This study developed a novel nanomedicine targeting HER2-positive cancer cells. By using polymer-affibody conjugates, researchers achieved efficient intracellular drug delivery, enhancing cancer cell killing.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • HER2 receptor overexpression in cancers presents a therapeutic target.
  • HER2 is an internalization-resistant receptor, challenging intracellular drug delivery.
  • Hyper-crosslinking HER2 can trigger its internalization, overcoming resistance.

Purpose of the Study:

  • To develop and evaluate HER2-targeted nanomedicines for enhanced intracellular drug delivery.
  • To investigate the effect of conjugate valence on HER2-mediated endocytosis.
  • To assess the therapeutic efficacy of the targeted nanomedicine against HER2-positive cancer cells.

Main Methods:

  • Conjugation of HER2-binding affibody peptides to HPMA copolymer nanocarriers at varying valences.
  • Evaluation of conjugate binding affinity and uptake in HER2-positive ovarian carcinoma cells.
  • Assessment of intracellular accumulation and cytotoxicity of targeted versus untargeted nanomedicines.

Main Results:

  • All polymer-affibody conjugates showed nanomolar binding affinity for HER2-positive cells.
  • Higher-valence conjugates (2-10 peptides/polymer) demonstrated rapid HER2-mediated endocytosis (>90% uptake within 4h).
  • Targeted nanomedicines achieved high intracellular delivery at picomolar concentrations, significantly lower than untargeted carriers.

Conclusions:

  • Conjugate valence critically influences the efficiency of HER2-mediated endocytosis.
  • This crosslinking-mediated endocytosis mechanism enables potent intracellular drug delivery.
  • Targeted nanomedicines demonstrate enhanced cytotoxicity against HER2-positive cancer cells, offering a promising therapeutic strategy.