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Published on: December 14, 2019
Precision Killing of M2 Macrophages with Phage-Displayed Peptide-Photosensitizer Conjugates
Mouldy Sioud1, Qindong Zhang1,2
1Department of Cancer Immunology, Division of Cancer Medicine, Oslo University Hospital, Radiumhospitalet, Ullernchausseen 70, 0379 Oslo, Norway.
Abstract:
Among the immunosuppressive cells recruited to the tumor microenvironment, macrophages are particularly abundant and involved in angiogenesis, metastasis, and resistance to current cancer therapies. A strategy that simultaneously targets tumor cells and macrophages, particularly pro-tumoral M2 macrophages, would have significant clinical impact for various types of solid malignancies. By the use of phage display technology, we have recently developed a synthetic peptide, named NW, which binds to M1 and M2 macrophages with high affinity. Additional affinity selection on M2 macrophages identified only dominant peptides whose binding motifs are similar to that of the NW peptide. To reduce the frequency of selecting such dominating peptides, the peptide library was affinity selected on M2 macrophages blocked with NW peptide. This approach resulted in the selection of peptides that bind to M2, but not M1 macrophages. To explore the therapeutic potential of the selected peptides, the M13 phage-displayed peptides were conjugated to the photosensitizer IR700, which has been used for cancer photoimmunotherapy. The phage displaying a dominant peptide (SPILWLNAPPWA) killed both M1 and M2 macrophages, while those displaying the M2-specific peptides killed M2 macrophages only upon near-infrared light exposure. A significant fraction of the M2 macrophages were also killed with the untargeted M13 phage-IR700 conjugates. Hence, M2 macrophages can also be selectively targeted by the wild type M13 phage, which displayed a significant tropism to these cells. The benefits of this photoimmunotherapy include an automatic self-targeting ability of the wild type M13 phage, and the option of genetic manipulation of the phage genome to include tumor targeting peptides, allowing the killing of both M2 macrophages and cancer cells.
Insights
Researchers developed a novel photoimmunotherapy targeting immunosuppressive M2 macrophages in tumors. This approach utilizes engineered bacteriophage (M13) conjugated to IR700, demonstrating selective M2 macrophage destruction upon light activation for improved cancer treatment.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Macrophages, particularly M2 macrophages, are abundant immunosuppressive cells in the tumor microenvironment, promoting angiogenesis, metastasis, and therapy resistance.
- Targeting both tumor cells and M2 macrophages simultaneously offers significant clinical potential for solid malignancies.
Purpose of the Study:
- To develop a photoimmunotherapy strategy targeting M2 macrophages within the tumor microenvironment.
- To identify and characterize peptides that selectively bind to M2 macrophages.
Main Methods:
- Phage display technology was used to select peptides with high affinity for M1 and M2 macrophages.
- A modified selection process using NW peptide-blocked M2 macrophages identified M2-specific peptides.
- M13 bacteriophages displaying selected peptides were conjugated to the photosensitizer IR700 for photoimmunotherapy.
Main Results:
- Phages displaying M2-specific peptides selectively killed M2 macrophages upon near-infrared light exposure.
- Wild-type M13 phage, displaying inherent M2 tropism, also effectively killed M2 macrophages when conjugated to IR700.
- The developed photoimmunotherapy demonstrated selective targeting of M2 macrophages, with potential for dual targeting of cancer cells.
Conclusions:
- Engineered M13 bacteriophages conjugated to IR700 represent a promising platform for M2 macrophage-targeted photoimmunotherapy.
- The inherent tropism of wild-type M13 phage offers a self-targeting advantage, simplifying therapeutic strategies.
- Genetic manipulation of phage allows for combined targeting of M2 macrophages and tumor cells, enhancing therapeutic efficacy.

