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Injectable Supramolecular Polymer-Nanoparticle Hydrogels for Cell and Drug Delivery Applications
Published on: February 7, 2021
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.
Abstract:
Monoclonal antibodies (mAbs) targeting the immune checkpoint axis, which contains the programmed cell death protein-1 (PD-1) and its ligand PD-L1, revolutionized the field of oncology. Unfortunately, the large size of mAbs and the presence of an Fc fraction limit their tumor penetrative capacities and support off-target effects, potentially resulting in unresponsive patients and immune-related adverse events (irAEs) respectively. Single-domain antibodies (sdAbs) are ten times smaller than conventional mAbs and represent an emerging antibody subclass that has been proposed as next generation immune checkpoint inhibitor (ICI) therapeutics. They demonstrate favorable characteristics, such as an excellent stability, high antigen-binding affinity and an enhanced tumor penetration. Because sdAbs have a short half-life, methods to prolong their presence in the circulation and at the target site might be necessary in some cases to unfold their full therapeutic potential. In this study, we investigated a peptide-based hydrogel as an injectable biomaterial depot formulation for the sustained release of the human PD-L1 sdAb K2. We showed that a hydrogel composed of the amphipathic hexapeptide hydrogelator H-FQFQFK-NH2 prolonged the in vivo release of K2 after subcutaneous (s.c.) injection, up to at least 72 h, as monitored by SPECT/CT and fluorescence imaging. Additionally, after encapsulation in the hydrogel and s.c. administration, a significantly extended systemic presence and tumor uptake of K2 was observed in mice bearing a melanoma tumor expressing human PD-L1. Altogether, this study describes how peptide hydrogels can be exploited to provide the sustained release of sdAbs, thereby potentially enhancing its clinical and therapeutic effects.
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.

