Literature DB >> 25856800

The role of photodynamic therapy in overcoming cancer drug resistance.

Bryan Q Spring1, Imran Rizvi, Nan Xu, Tayyaba Hasan.   

Abstract

Many modalities of cancer therapy induce mechanisms of treatment resistance and escape pathways during chronic treatments, including photodynamic therapy (PDT). It is conceivable that resistance induced by one treatment might be overcome by another treatment. Emerging evidence suggests that the unique mechanisms of tumor cell and microenvironment damage produced by PDT could be utilized to overcome cancer drug resistance, to mitigate the compensatory induction of survival pathways and even to re-sensitize resistant cells to standard therapies. Approaches that capture the unique features of PDT, therefore, offer promising factors for increasing the efficacy of a broad range of therapeutic modalities. Here, we highlight key preclinical findings utilizing PDT to overcome classical drug resistance or escape pathways and thus enhance the efficacy of many pharmaceuticals, possibly explaining the clinical observations of the PDT response to otherwise treatment-resistant diseases. With the development of nanotechnology, it is possible that light activation may be used not only to damage and sensitize tumors but also to enable controlled drug release to inhibit escape pathways that may lead to resistance or cell proliferation.

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Year:  2015        PMID: 25856800      PMCID: PMC4520758          DOI: 10.1039/c4pp00495g

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


  119 in total

1.  ABCG2-mediated transport of photosensitizers: potential impact on photodynamic therapy.

Authors:  Robert W Robey; Kenneth Steadman; Orsolya Polgar; Susan E Bates
Journal:  Cancer Biol Ther       Date:  2005-02-08       Impact factor: 4.742

2.  Tumor-Endothelial Cell Three-dimensional Spheroids: New Aspects to Enhance Radiation and Drug Therapeutics.

Authors:  Meenakshi Upreti; Azemat Jamshidi-Parsian; Nathan A Koonce; Jessica S Webber; Sunil K Sharma; Alexzander Aa Asea; Mathew J Mader; Robert J Griffin
Journal:  Transl Oncol       Date:  2011-12-01       Impact factor: 4.243

3.  Photophysics of silicon phthalocyanines in aqueous media.

Authors:  Tennyson L Doane; Chi-Hung Chuang; Andrew Chomas; Clemens Burda
Journal:  Chemphyschem       Date:  2013-01-10       Impact factor: 3.102

4.  EMT transcription factors snail and slug directly contribute to cisplatin resistance in ovarian cancer.

Authors:  Alexandria M Haslehurst; Madhuri Koti; Moyez Dharsee; Paulo Nuin; Ken Evans; Joseph Geraci; Timothy Childs; Jian Chen; Jieran Li; Johanne Weberpals; Scott Davey; Jeremy Squire; Paul C Park; Harriet Feilotter
Journal:  BMC Cancer       Date:  2012-03-19       Impact factor: 4.430

5.  Photodynamic therapy augments the efficacy of oncolytic vaccinia virus against primary and metastatic tumours in mice.

Authors:  M Gil; M Bieniasz; M Seshadri; D Fisher; M J Ciesielski; Y Chen; R K Pandey; D Kozbor
Journal:  Br J Cancer       Date:  2011-10-11       Impact factor: 7.640

6.  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

7.  Analysis of acute vascular damage after photodynamic therapy using benzoporphyrin derivative (BPD).

Authors:  V H Fingar; P K Kik; P S Haydon; P B Cerrito; M Tseng; E Abang; T J Wieman
Journal:  Br J Cancer       Date:  1999-04       Impact factor: 7.640

8.  Angiostatic kinase inhibitors to sustain photodynamic angio-occlusion.

Authors:  Patrycja Nowak-Sliwinska; Andrea Weiss; Judy R van Beijnum; Tse J Wong; Jean-Pierre Ballini; Blaise Lovisa; Hubert van den Bergh; Arjan W Griffioen
Journal:  J Cell Mol Med       Date:  2012-07       Impact factor: 5.310

9.  Development of photodynamic therapy regimens that control primary tumor growth and inhibit secondary disease.

Authors:  Madeeha Shams; Barbara Owczarczak; Patricia Manderscheid-Kern; David A Bellnier; Sandra O Gollnick
Journal:  Cancer Immunol Immunother       Date:  2014-11-11       Impact factor: 6.968

10.  Two combined photosensitizers: a goal for more effective photodynamic therapy of cancer.

Authors:  P Acedo; J C Stockert; M Cañete; A Villanueva
Journal:  Cell Death Dis       Date:  2014-03-13       Impact factor: 8.469

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  68 in total

Review 1.  Glycosylated Porphyrins, Phthalocyanines, and Other Porphyrinoids for Diagnostics and Therapeutics.

Authors:  Sunaina Singh; Amit Aggarwal; N V S Dinesh K Bhupathiraju; Gianluca Arianna; Kirran Tiwari; Charles Michael Drain
Journal:  Chem Rev       Date:  2015-08-28       Impact factor: 60.622

Review 2.  Type I and Type II Photosensitized Oxidation Reactions: Guidelines and Mechanistic Pathways.

Authors:  Maurício S Baptista; Jean Cadet; Paolo Di Mascio; Ashwini A Ghogare; Alexander Greer; Michael R Hamblin; Carolina Lorente; Silvia Cristina Nunez; Martha Simões Ribeiro; Andrés H Thomas; Mariana Vignoni; Tania Mateus Yoshimura
Journal:  Photochem Photobiol       Date:  2017-03-27       Impact factor: 3.421

3.  Fluorouracil Enhances Photodynamic Therapy of Squamous Cell Carcinoma via a p53-Independent Mechanism that Increases Protoporphyrin IX levels and Tumor Cell Death.

Authors:  Sanjay Anand; Kishore R Rollakanti; Nikoleta Brankov; Douglas E Brash; Tayyaba Hasan; Edward V Maytin
Journal:  Mol Cancer Ther       Date:  2017-03-23       Impact factor: 6.261

Review 4.  Recent advances in nanoparticle carriers for photodynamic therapy.

Authors:  Gawon Yi; Suk Ho Hong; Jihwan Son; Jihye Yoo; Changhee Park; Yongdoo Choi; Heebeom Koo
Journal:  Quant Imaging Med Surg       Date:  2018-05

5.  Harnessing the Potential Synergistic Interplay Between Photosensitizer Dark Toxicity and Chemotherapy.

Authors:  Yan Baglo; Aaron J Sorrin; Barry J Liang; Huang-Chiao Huang
Journal:  Photochem Photobiol       Date:  2020-02-16       Impact factor: 3.421

6.  Advanced smart-photosensitizers for more effective cancer treatment.

Authors:  Wooram Park; Soojeong Cho; Jieun Han; Heejun Shin; Kun Na; Byeongdu Lee; Dong-Hyun Kim
Journal:  Biomater Sci       Date:  2017-12-19       Impact factor: 6.843

Review 7.  Porphyrin-based cationic amphiphilic photosensitisers as potential anticancer, antimicrobial and immunosuppressive agents.

Authors:  Nela Malatesti; Ivana Munitic; Igor Jurak
Journal:  Biophys Rev       Date:  2017-03-24

8.  Photodynamic therapy: Promotion of efficacy by a sequential protocol.

Authors:  David Kessel
Journal:  J Porphyr Phthalocyanines       Date:  2016 Jan-Apr       Impact factor: 1.811

9.  Os(II) Oligothienyl Complexes as a Hypoxia-Active Photosensitizer Class for Photodynamic Therapy.

Authors:  John A Roque; Patrick C Barrett; Houston D Cole; Liubov M Lifshits; Evan Bradner; Ge Shi; David von Dohlen; Susy Kim; Nino Russo; Gagan Deep; Colin G Cameron; Marta E Alberto; Sherri A McFarland
Journal:  Inorg Chem       Date:  2020-10-30       Impact factor: 5.165

10.  Targeted photoredox catalysis in cancer cells.

Authors:  Huaiyi Huang; Samya Banerjee; Kangqiang Qiu; Pingyu Zhang; Olivier Blacque; Thomas Malcomson; Martin J Paterson; Guy J Clarkson; Michael Staniforth; Vasilios G Stavros; Gilles Gasser; Hui Chao; Peter J Sadler
Journal:  Nat Chem       Date:  2019-09-23       Impact factor: 24.427

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