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Updated: Jul 13, 2025

Author Spotlight: Unveiling the Polyfunctionality and Heterogeneity in Immune Responses
Published on: March 8, 2024
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.
Abstract:
Many cells possess the ability to engulf and incorporate particles by phagocytosis. This active process is characteristic of microorganisms as well as higher order species. In mammals, monocytes, macrophages, and microglia are among the so-called professional phagocytes. In addition, cells such as fibroblast and chondrocytes are classified as nonprofessional phagocytes. Professional phagocytes play important roles in both the innate and adaptive immune responses, wound healing, and tissue homeostasis. Consequently, these cells are increasingly studied as targets and vectors of therapeutic intervention to treat a range of diseases. Professional phagocytes are notoriously difficult to transfect limiting their study and manipulation. Consequently, efforts have shifted towards the development of nanoparticles to deliver a cargo to phagocytic cells via phagocytosis. However, this approach carries significant technical challenges, particularly for protein cargos. We have focused on the development of nanoscale cocrystalline protein depots, known as PODS®, that contain protein cargos, including cytokines. Here, we show that PODS are readily phagocytosed by nonprofessional as well as professional phagocytic cells and have attributes, such as highly sustained release of cargo, that suggest potential utility for the study and exploitation of phagocytic cells for drug delivery. Monocytes and macrophages that ingest PODS retain normal characteristics including a robust chemotactic response. Moreover, the PODS-cytokine cargo is secreted by the loaded cell at a level sufficient to modulate the behavior of surrounding nonphagocytic cells. The results presented here demonstrate the potential of PODS nanoparticles as a novel molecular tool for the study and manipulation of phagocytic cells and for the development of Trojan horse immunotherapy strategies to treat cancer and other diseases.
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.

