Nanobody-Targeted Photodynamic Therapy Selectively Kills Viral GPCR-Expressing Glioblastoma Cells

Publication date

2019-06-05

Authors

De Groof, Timo W.M.
Mashayekhi, Vida
Fan, Tian Shu
Bergkamp, Nick D.
Toraño, Javier Sastre
Van Senten, Jeffrey R.
Heukers, Raimond
Smit, Martine J.
Oliveira, SabrinaORCID 0000-0002-6011-2122ISNI 0000000392912295

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Article
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Abstract

Photodynamic therapy (PDT) eradicates tumors by the local activation of a photosensitizer with near-infrared light. One of the aspects hampering the clinical use of PDT is the poor selectivity of the photosensitizer. To improve this, we have recently introduced a new approach for targeted PDT by conjugating photosensitizers to nanobodies. Diverse G protein-coupled receptors (GPCRs) show aberrant overexpression in tumors and are therefore interesting targets in cancer therapy. Here we show that GPCR-targeting nanobodies can be used in targeted PDT. We have developed a nanobody binding the extracellular side of the viral GPCR US28, which is detected in tumors like glioblastoma. The nanobody was site-directionally conjugated to the water-soluble photosensitizer IRDye700DX. This nanobody-photosensitizer conjugate selectively killed US28-expressing glioblastoma cells both in 2D and 3D cultures upon illumination with near-infrared light. This is the first example employing a GPCR as target for nanobody-directed PDT. With the emerging role of GPCRs in cancer, this data provides a new angle for exploiting this large family of receptors for targeted therapies.

Keywords

cancer, G protein-coupled receptors, glioblastoma, nanobody, photodynamic therapy, targeted photosensitizer, US28, Molecular Medicine, Pharmaceutical Science, Drug Discovery, SDG 3 - Good Health and Well-being

Citation

De Groof, T W M, Mashayekhi, V, Fan, T S, Bergkamp, N D, Toraño, J S, Van Senten, J R, Heukers, R, Smit, M J & Oliveira, S 2019, 'Nanobody-Targeted Photodynamic Therapy Selectively Kills Viral GPCR-Expressing Glioblastoma Cells', Molecular Pharmaceutics, vol. 16, no. 7, pp. 3145-3156. https://doi.org/10.1021/acs.molpharmaceut.9b00360