Literature DB >> 35776159

Cancer-targeted photoimmunotherapy induces antitumor immunity and can be augmented by anti-PD-1 therapy for durable anticancer responses in an immunologically active murine tumor model.

Michelle A Hsu1, Stephanie M Okamura1, C Daniel De Magalhaes Filho1, Daniele M Bergeron1, Ahiram Rodriguez1, Melissa West1, Deepak Yadav1, Roger Heim1, Jerry J Fong2, Miguel Garcia-Guzman1.   

Abstract

The complex immunosuppressive nature of solid tumor microenvironments poses a significant challenge to generating efficacious and durable anticancer responses. Photoimmunotherapy is a cancer treatment strategy by which an antibody is conjugated with a non-toxic light-activatable dye. Following administration of the conjugate and binding to the target tumor, subsequent local laser illumination activates the dye, resulting in highly specific target cell membrane disruption. Here we demonstrate that photoimmunotherapy treatment elicited tumor necrosis, thus inducing immunogenic cell death characterized by the release of damage-associated molecular patterns (DAMPs). Photoimmunotherapy-killed tumor cells activated dendritic cells (DC), leading to the production of proinflammatory cytokines, T cell stimulation, priming antigen-specific T cells, and durable memory T cell responses, which led complete responder mice to effectively reject new tumors upon rechallenge. PD-1 blockade in combination with photoimmunotherapy enhanced overall anticancer efficacy, including against anti-PD-1-resistant tumors. The combination treatment also elicited abscopal anticancer activity, as observed by reduction of distal, non-illuminated tumors, further demonstrating the ability of photoimmunotherapy to harness local and peripheral T cell responses. With this work we therefore delineate the immune mechanisms of action for photoimmunotherapy and demonstrate the potential for cancer-targeted photoimmunotherapy to be combined with other immunotherapy approaches for augmented, durable anticancer efficacy. Moreover, we demonstrate responses utilizing various immunocompetent mouse models, as well as in vitro data from human cells, suggesting broad translational potential.
© 2022. The Author(s).

Entities:  

Keywords:  Cancer; Immuno-oncology; Immunology; Photoimmunotherapy

Year:  2022        PMID: 35776159     DOI: 10.1007/s00262-022-03239-9

Source DB:  PubMed          Journal:  Cancer Immunol Immunother        ISSN: 0340-7004            Impact factor:   6.968


  55 in total

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Authors:  Padmanee Sharma; James P Allison
Journal:  Science       Date:  2015-04-03       Impact factor: 47.728

Review 2.  The hallmarks of successful anticancer immunotherapy.

Authors:  Lorenzo Galluzzi; Timothy A Chan; Guido Kroemer; Jedd D Wolchok; Alejandro López-Soto
Journal:  Sci Transl Med       Date:  2018-09-19       Impact factor: 17.956

Review 3.  Immune checkpoint blockade: a common denominator approach to cancer therapy.

Authors:  Suzanne L Topalian; Charles G Drake; Drew M Pardoll
Journal:  Cancer Cell       Date:  2015-04-06       Impact factor: 31.743

Review 4.  Obstacles Posed by the Tumor Microenvironment to T cell Activity: A Case for Synergistic Therapies.

Authors:  Kristin G Anderson; Ingunn M Stromnes; Philip D Greenberg
Journal:  Cancer Cell       Date:  2017-03-13       Impact factor: 31.743

Review 5.  Personalized vaccines for cancer immunotherapy.

Authors:  Ugur Sahin; Özlem Türeci
Journal:  Science       Date:  2018-03-23       Impact factor: 47.728

6.  Type, density, and location of immune cells within human colorectal tumors predict clinical outcome.

Authors:  Jérôme Galon; Anne Costes; Fatima Sanchez-Cabo; Amos Kirilovsky; Bernhard Mlecnik; Christine Lagorce-Pagès; Marie Tosolini; Matthieu Camus; Anne Berger; Philippe Wind; Franck Zinzindohoué; Patrick Bruneval; Paul-Henri Cugnenc; Zlatko Trajanoski; Wolf-Herman Fridman; Franck Pagès
Journal:  Science       Date:  2006-09-29       Impact factor: 47.728

Review 7.  Natural and therapy-induced immunosurveillance in breast cancer.

Authors:  Guido Kroemer; Laura Senovilla; Lorenzo Galluzzi; Fabrice André; Laurence Zitvogel
Journal:  Nat Med       Date:  2015-10       Impact factor: 53.440

8.  Immediate in vivo target-specific cancer cell death after near infrared photoimmunotherapy.

Authors:  Makoto Mitsunaga; Takahito Nakajima; Kohei Sano; Gabriela Kramer-Marek; Peter L Choyke; Hisataka Kobayashi
Journal:  BMC Cancer       Date:  2012-08-08       Impact factor: 4.430

9.  Cancer cell-selective in vivo near infrared photoimmunotherapy targeting specific membrane molecules.

Authors:  Makoto Mitsunaga; Mikako Ogawa; Nobuyuki Kosaka; Lauren T Rosenblum; Peter L Choyke; Hisataka Kobayashi
Journal:  Nat Med       Date:  2011-11-06       Impact factor: 53.440

10.  Near-Infrared Photoimmunotherapy of Cancer.

Authors:  Hisataka Kobayashi; Peter L Choyke
Journal:  Acc Chem Res       Date:  2019-07-23       Impact factor: 22.384

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