Literature DB >> 26062987

T-cell mediated anti-tumor immunity after photodynamic therapy: why does it not always work and how can we improve it?

Florian Anzengruber1,2, Pinar Avci1,2,3, Lucas Freitas de Freitas4,1,2, Michael R Hamblin1,2,5.   

Abstract

Photodynamic therapy (PDT) uses the combination of non-toxic photosensitizers and harmless light to generate reactive oxygen species that destroy tumors by a combination of direct tumor cell killing, vascular shutdown, and activation of the immune system. It has been shown in some animal models that mice that have been cured of cancer by PDT, may exhibit resistance to rechallenge. The cured mice can also possess tumor specific T-cells that recognize defined tumor antigens, destroy tumor cells in vitro, and can be adoptively transferred to protect naïve mice from cancer. However, these beneficial outcomes are the exception rather than the rule. The reasons for this lack of consistency lie in the ability of many tumors to suppress the host immune system and to actively evade immune attack. The presence of an appropriate tumor rejection antigen in the particular tumor cell line is a requisite for T-cell mediated immunity. Regulatory T-cells (CD25+, Foxp3+) are potent inhibitors of anti-tumor immunity, and their removal by low dose cyclophosphamide can potentiate the PDT-induced immune response. Treatments that stimulate dendritic cells (DC) such as CpG oligonucleotide can overcome tumor-induced DC dysfunction and improve PDT outcome. Epigenetic reversal agents can increase tumor expression of MHC class I and also simultaneously increase expression of tumor antigens. A few clinical reports have shown that anti-tumor immunity can be generated by PDT in patients, and it is hoped that these combination approaches may increase tumor cures in patients.

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Year:  2015        PMID: 26062987      PMCID: PMC4547550          DOI: 10.1039/c4pp00455h

Source DB:  PubMed          Journal:  Photochem Photobiol Sci        ISSN: 1474-905X            Impact factor:   3.982


  209 in total

1.  Effect of photodynamic therapy on selected laboratory values of patients with nasopharyngeal carcinoma.

Authors:  J P Lai; Z D Tao; J Y Xiao; S P Zhao; Y Q Tian
Journal:  Ann Otol Rhinol Laryngol       Date:  1997-08       Impact factor: 1.547

Review 2.  Biology of multifunctional cytokines: IL 6 and related molecules (IL 1 and TNF).

Authors:  S Akira; T Hirano; T Taga; T Kishimoto
Journal:  FASEB J       Date:  1990-08       Impact factor: 5.191

3.  Photodynamic therapy-generated vaccine for cancer therapy.

Authors:  Mladen Korbelik; Jinghai Sun
Journal:  Cancer Immunol Immunother       Date:  2005-10-08       Impact factor: 6.968

Review 4.  Metabolism in T cell activation and differentiation.

Authors:  Erika L Pearce
Journal:  Curr Opin Immunol       Date:  2010-02-26       Impact factor: 7.486

5.  Expression of the PD-1 antigen on the surface of stimulated mouse T and B lymphocytes.

Authors:  Y Agata; A Kawasaki; H Nishimura; Y Ishida; T Tsubata; H Yagita; T Honjo
Journal:  Int Immunol       Date:  1996-05       Impact factor: 4.823

6.  Evidence for an important role of neutrophils in the efficacy of photodynamic therapy in vivo.

Authors:  W J de Vree; M C Essers; H S de Bruijn; W M Star; J F Koster; W Sluiter
Journal:  Cancer Res       Date:  1996-07-01       Impact factor: 12.701

Review 7.  Combination approaches to potentiate immune response after photodynamic therapy for cancer.

Authors:  Tyler G St Denis; Kanza Aziz; Anam A Waheed; Ying-Ying Huang; Sulbha K Sharma; Pawel Mroz; Michael R Hamblin
Journal:  Photochem Photobiol Sci       Date:  2011-04-09       Impact factor: 3.982

8.  Up-regulation of cyclooxygenase-2 and apoptosis resistance by p38 MAPK in hypericin-mediated photodynamic therapy of human cancer cells.

Authors:  Nico Hendrickx; Cédric Volanti; Ugo Moens; Ole Morten Seternes; Peter de Witte; Jackie R Vandenheede; Jacques Piette; Patrizia Agostinis
Journal:  J Biol Chem       Date:  2003-10-13       Impact factor: 5.157

9.  In vitro studies on erythrosine-based photodynamic therapy of malignant and pre-malignant oral epithelial cells.

Authors:  Abhishek D Garg; Muthiah Bose; Mohammed I Ahmed; William A Bonass; Simon R Wood
Journal:  PLoS One       Date:  2012-04-02       Impact factor: 3.240

10.  A new gene coding for a differentiation antigen recognized by autologous cytolytic T lymphocytes on HLA-A2 melanomas.

Authors:  P G Coulie; V Brichard; A Van Pel; T Wölfel; J Schneider; C Traversari; S Mattei; E De Plaen; C Lurquin; J P Szikora; J C Renauld; T Boon
Journal:  J Exp Med       Date:  1994-07-01       Impact factor: 14.307

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  22 in total

1.  Antimicrobial photodynamic therapy in skin wound healing: A systematic review of animal studies.

Authors:  Yan Sun; Rei Ogawa; Bi-Huan Xiao; Yu-Xin Feng; Yan Wu; Liang-Hong Chen; Xing-Hua Gao; Hong-Duo Chen
Journal:  Int Wound J       Date:  2019-11-14       Impact factor: 3.315

2.  Effect of Photodynamic Therapy on the microRNA Level in Breast Cancer Tissues of Female Wistar Rats.

Authors:  O V Kazakov; A V Kabakov; A F Poveshchenko; V V Kononchuk; D N Strunkin; L F Gulyaeva; V I Konenkov
Journal:  Bull Exp Biol Med       Date:  2022-09-05       Impact factor: 0.737

3.  Anti-tumor immunity of BAM-SiPc-mediated vascular photodynamic therapy in a BALB/c mouse model.

Authors:  Hing-Yuen Yeung; Pui-Chi Lo; Dennis K P Ng; Wing-Ping Fong
Journal:  Cell Mol Immunol       Date:  2015-09-21       Impact factor: 11.530

4.  Local and Systemic Antitumor Effects of Photo-activatable Paclitaxel Prodrug on Rat Breast Tumor Models.

Authors:  Bharathiraja Subramaniyan; Pallavi Rajaputra; Luong Nguyen; Mengjie Li; Cody J Peer; Jessica Kindrick; William D Figg; Sukyung Woo; Youngjae You
Journal:  Photochem Photobiol       Date:  2020-03-09       Impact factor: 3.421

5.  Transition Metal Complexes and Photodynamic Therapy from a Tumor-Centered Approach: Challenges, Opportunities, and Highlights from the Development of TLD1433.

Authors:  Susan Monro; Katsuya L Colón; Huimin Yin; John Roque; Prathyusha Konda; Shashi Gujar; Randolph P Thummel; Lothar Lilge; Colin G Cameron; Sherri A McFarland
Journal:  Chem Rev       Date:  2018-10-08       Impact factor: 60.622

Review 6.  Oncologic Photodynamic Therapy: Basic Principles, Current Clinical Status and Future Directions.

Authors:  Demian van Straten; Vida Mashayekhi; Henriette S de Bruijn; Sabrina Oliveira; Dominic J Robinson
Journal:  Cancers (Basel)       Date:  2017-02-18       Impact factor: 6.639

7.  Bis[pyrrolyl Ru(ii)] triads: a new class of photosensitizers for metal-organic photodynamic therapy.

Authors:  Deborah A Smithen; Susan Monro; Mitch Pinto; John Roque; Roberto M Diaz-Rodriguez; Huimin Yin; Colin G Cameron; Alison Thompson; Sherri A McFarland
Journal:  Chem Sci       Date:  2020-10-06       Impact factor: 9.825

8.  NIR-Absorbing RuII Complexes Containing α-Oligothiophenes for Applications in Photodynamic Therapy.

Authors:  Liubov M Lifshits; John A Roque; Houston D Cole; Randolph P Thummel; Colin G Cameron; Sherri A McFarland
Journal:  Chembiochem       Date:  2020-09-25       Impact factor: 3.164

Review 9.  Current Prospects for Treatment of Solid Tumors via Photodynamic, Photothermal, or Ionizing Radiation Therapies Combined with Immune Checkpoint Inhibition (A Review).

Authors:  Sanjay Anand; Timothy A Chan; Tayyaba Hasan; Edward V Maytin
Journal:  Pharmaceuticals (Basel)       Date:  2021-05-10

Review 10.  Targeting Antitumor Immune Response for Enhancing the Efficacy of Photodynamic Therapy of Cancer: Recent Advances and Future Perspectives.

Authors:  Yamin Yang; Yue Hu; Hongjun Wang
Journal:  Oxid Med Cell Longev       Date:  2016-09-08       Impact factor: 6.543

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