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A novel Granzyme B nanoparticle delivery system simulates immune cell functions for suppression of solid tumors. | LitMetric

A novel Granzyme B nanoparticle delivery system simulates immune cell functions for suppression of solid tumors.

Theranostics

Laboratory of Neuro-Oncology, Tianjin Neurological Institute, Department of Neurosurgery, Tianjin Medical University General Hospital and Key Laboratory of Neurotrauma, Variation, and Regeneration, Ministry of Education and Tianjin Municipal Government, Tianjin 300052, China.

Published: September 2020

AI Article Synopsis

  • Cell-based immunotherapy has shown success in treating blood cancers, but it's less effective for solid tumors due to the immune suppression from tumor cells.
  • A new delivery system using granzyme B (GrB) encapsulated in nanocapsules with a cell-penetrating peptide (TAT) aims to enhance the efficacy of this treatment by improving GrB's ability to induce tumor cell death.
  • The system, called TCiGNPs, was tested in mice, showing promising results in targeting solid tumors and facilitating apoptosis through the release of GrB in the tumor microenvironment.

Article Abstract

Cell-based immunotherapy for the treatment of hematologic malignancies, such as leukemia and lymphoma, has seen much success and played an increasingly important role in clinical studies. Nevertheless, the efficacy of immunotherapy in solid tumors still needs improvements due to the immunosuppressive properties of tumor cells and the microenvironment. To overcome these limitations, we prepared a novel tumor-targeting delivery system based on the underlying mechanism of immune-targeted cell death that encapsulated granzyme B protein within a porous polymeric nanocapsule. : A cell-penetrating peptide TAT was attached onto granzyme B (GrB) to enhance its transmembrane transport efficiency and potency to induce cell apoptosis. The endocytosis and internalization pathways of GrB-TAT (GrB-T) were analyzed in comparison with perforin by confocal microscopy and flow cytometry. Furthermore, the positively charged GrB-T was wrapped into nanoparticles by p-2-methacryloyloxy ethyl phosphorylcholine (PMPC)-modified HA (hyaluronic acid). The nanoparticles (called TCiGNPs) were characterized in terms of zeta potential and by transmission electron microscopy (TEM). The anti-tumor effects of GrB-T were examined by cell apoptosis assay and Western blotting analysis. The anti-tumor therapeutic efficacy of TCiGNPs was evaluated in a mouse tumor model. : The TAT peptide could play a role similar to perforin to mediate direct transmembrane transfer of GrB and improve GrB-induced cell apoptosis. The TCiGNPs were successfully synthesized and accumulated in the solid tumor through enhanced permeability and retention (EPR) effect. In the tumor microenvironment, TCiGNPs could be degraded by hyaluronidase and triggered the release of GrB-T. The TAT peptide enabled the translocation of GrB across the plasma membrane to induce tumor cell apoptosis : We successfully developed a granzyme B delivery system with a GrB-T core and a PMPC/HA shell that simulated CTL/NK cell-mediated cancer immunotherapy mechanism. The GrB delivery system holds great promise for cancer treatment analogous to the CTL/NK cell-induced immunotherapy.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6831455PMC
http://dx.doi.org/10.7150/thno.35900DOI Listing

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