Phagocytosed Polyhedrin-Cytokine Cocrystal Nanoparticles Provide Sustained Secretion of Bioactive Cytokines from

Astrid Wendler1, Nicholas James1, Michael H Jones1

  • 1Cell Guidance Systems Ltd., Maia Building, Babraham Research Campus, Cambridge CB22 3AT, UK.

Biodesign Research
|October 18, 2023
PubMed

Insights

New nanoparticles called PODS® can be engulfed by phagocytic cells, offering a way to deliver therapeutic proteins. These cells retain normal function and can release the cargo, aiding in drug delivery and immunotherapy research.

Area of Science:

  • Cell Biology
  • Nanotechnology
  • Immunology

Background:

  • Phagocytosis is a key cellular process utilized by professional and nonprofessional phagocytes.
  • Professional phagocytes are crucial for immune responses, wound healing, and tissue homeostasis.
  • Difficulties in transfecting phagocytic cells necessitate alternative delivery methods for therapeutic applications.

Purpose of the Study:

  • To develop and evaluate nanoscale cocrystalline protein depots (PODS®) for delivering protein cargos to phagocytic cells.
  • To assess the utility of PODS® for studying and manipulating phagocytic cells in therapeutic contexts.
  • To explore the potential of PODS® in drug delivery and Trojan horse immunotherapy strategies.

Main Methods:

  • Development of PODS® nanoparticles encapsulating protein cargos, including cytokines.
  • Assessment of PODS® phagocytosis by both professional (monocytes, macrophages) and nonprofessional phagocytic cells.
  • Evaluation of cargo release kinetics and cellular functional retention (e.g., chemotaxis) post-ingestion.
  • Analysis of secreted cytokine levels and their impact on surrounding nonphagocytic cells.

Main Results:

  • PODS® are readily phagocytosed by a range of phagocytic cell types.
  • Ingested PODS® exhibit sustained cargo release and do not impair cellular functions like chemotaxis.
  • Loaded phagocytic cells secrete functional cytokines, effectively modulating the behavior of nearby nonphagocytic cells.
  • Demonstrated potential for PODS® as a tool for drug delivery and immunotherapy.

Conclusions:

  • PODS® nanoparticles represent a promising novel molecular tool for the study and manipulation of phagocytic cells.
  • The sustained release and functional cargo delivery capabilities of PODS® open avenues for advanced drug delivery systems.
  • PODS® hold potential for developing innovative therapeutic strategies, including Trojan horse immunotherapy for diseases like cancer.

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