Sustained release of a human PD-L1 single-domain antibody using peptide-based hydrogels

Julie Heremans1, Robin Maximilian Awad2, Jessica Bridoux3

  • 1Research Group of Organic Chemistry, Vrije Universiteit Brussel, B-1050 Brussels, Belgium.

Insights

This study explores peptide hydrogels for sustained release of single-domain antibodies (sdAbs) targeting PD-L1. This approach enhances drug presence and tumor uptake, potentially improving cancer immunotherapy efficacy.

Area of Science:

  • Oncology
  • Biomaterials Science
  • Immunotherapy

Background:

  • Monoclonal antibodies (mAbs) revolutionized cancer treatment but face limitations in tumor penetration and off-target effects.
  • Single-domain antibodies (sdAbs) offer a smaller, more penetrative alternative to mAbs for immune checkpoint inhibition.
  • Short half-lives of sdAbs necessitate strategies for prolonged therapeutic presence.

Purpose of the Study:

  • To investigate peptide hydrogels as a depot formulation for sustained release of PD-L1 sdAbs.
  • To evaluate the in vivo release kinetics and biodistribution of sdAbs formulated in hydrogels.
  • To assess the impact of hydrogel encapsulation on systemic presence and tumor accumulation of sdAbs.

Main Methods:

  • Formulation of a peptide hydrogel using H-FQFQFK-NH2.
  • Encapsulation of the human PD-L1 sdAb K2 within the peptide hydrogel.
  • Subcutaneous administration and in vivo monitoring of K2 release using SPECT/CT and fluorescence imaging.
  • Assessment of systemic exposure and tumor uptake in a melanoma mouse model.

Main Results:

  • The peptide hydrogel successfully prolonged the in vivo release of K2 for at least 72 hours.
  • Hydrogel encapsulation led to significantly extended systemic presence of K2.
  • Enhanced tumor uptake of K2 was observed in mice bearing human PD-L1-expressing melanoma.
  • SPECT/CT and fluorescence imaging confirmed sustained drug release and biodistribution.

Conclusions:

  • Peptide hydrogels serve as effective injectable depots for sustained release of sdAbs.
  • This formulation strategy can enhance the therapeutic potential of sdAbs by prolonging their circulation and tumor targeting.
  • Hydrogel-based delivery systems offer a promising approach for improving immune checkpoint inhibitor therapies.

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