Progress in Clinical Trials of Photodynamic Therapy for Solid Tumors and the Role of Nanomedicine

被引:101
作者
Alsaab, Hashem O. [1 ]
Alghamdi, Maha S. [2 ]
Alotaibi, Albatool S. [3 ]
Alzhrani, Rami [1 ]
Alwuthaynani, Fatimah [3 ]
Althobaiti, Yusuf S. [4 ]
Almalki, Atiah H. [5 ]
Sau, Samaresh [6 ]
Iyer, Arun K. [6 ,7 ]
机构
[1] Taif Univ, Dept Pharmaceut & Pharmaceut Technol, Coll Pharm, At Taif 21944, Saudi Arabia
[2] King Abdul Aziz Specialist Hosp KAASH, Dept Pharmaceut Care, At Taif 26521, Saudi Arabia
[3] Taif Univ, Coll Pharm, Al Haweiah 21944, Taif, Saudi Arabia
[4] Taif Univ, Dept Pharmacol & Toxicol, Coll Pharm, At Taif 21944, Saudi Arabia
[5] Taif Univ, Dept Pharmaceut Chem, Coll Pharm, At Taif 21944, Saudi Arabia
[6] Wayne State Univ, Eugene Applebaum Coll Pharm & Hlth Sci, Dept Pharmaceut Sci, Use Inspired Biomat & Integrated Nano Delivery Sy, Detroit, MI 48021 USA
[7] Wayne State Univ, Sch Med, Barbara Ann Karmanos Canc Inst, Mol Therapeut Program, Detroit, MI 48201 USA
关键词
photodynamic therapy; PDT; cancer; solid tumors; nanotechnology; photoimmunotherapy; photosensitizing agents; PHASE-II TRIAL; NEAR-INFRARED PHOTOIMMUNOTHERAPY; SUPERFICIAL BLADDER-CANCER; 5-AMINOLEVULINIC ACID; LASER PHOTORADIATION; MALIGNANT GLIOMA; CELL CARCINOMA; NANOPARTICLES; DELIVERY; PDT;
D O I
10.3390/cancers12102793
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Simple Summary Photodynamic therapy (PDT) has been undertaken with growing focus in recent studies to identify successful anticancer therapies. The field of PDT has evolved rapidly and is continuously being evaluated with new techniques. To make PDT more active and selective, molecular strategies are being developed. In the latest clinical studies on the use of PDT, some challenges are presented. Therefore, the use of nanotechnology-based approaches as delivery tools for PSs may improve their cancer cellular uptake and their toxic properties, as well as the PDT's therapeutic impact. In addition, photoimmunotherapy (PIT) and photothermal therapy (PTT) might have a significant impact on solid tumor therapeutic strategies. Current research to find effective anticancer treatments is being performed on photodynamic therapy (PDT) with increasing attention. PDT is a very promising therapeutic way to combine a photosensitive drug with visible light to manage different intense malignancies. PDT has several benefits, including better safety and lower toxicity in the treatment of malignant tumors over traditional cancer therapy. This reasonably simple approach utilizes three integral elements: a photosensitizer (PS), a source of light, and oxygen. Upon light irradiation of a particular wavelength, the PS generates reactive oxygen species (ROS), beginning a cascade of cellular death transformations. The positive therapeutic impact of PDT may be limited because several factors of this therapy include low solubilities of PSs, restricting their effective administration, blood circulation, and poor tumor specificity. Therefore, utilizing nanocarrier systems that modulate PS pharmacokinetics (PK) and pharmacodynamics (PD) is a promising approach to bypassing these challenges. In the present paper, we review the latest clinical studies and preclinical in vivo studies on the use of PDT and progress made in the use of nanotherapeutics as delivery tools for PSs to improve their cancer cellular uptake and their toxic properties and, therefore, the therapeutic impact of PDT. We also discuss the effects that photoimmunotherapy (PIT) might have on solid tumor therapeutic strategies.
引用
收藏
页码:1 / 26
页数:26
相关论文
共 124 条
[1]   Nanoparticles for Advanced Photodynamic Therapy of Cancer [J].
Abrahamse, Heidi ;
Kruger, Cherie Ann ;
Kadanyo, Sania ;
Mishra, Ajay .
PHOTOMEDICINE AND LASER SURGERY, 2017, 35 (11) :581-588
[2]   New photosensitizers for photodynamic therapy [J].
Abrahamse, Heidi ;
Hamblin, Michael R. .
BIOCHEMICAL JOURNAL, 2016, 473 :347-364
[3]   Photodynamic Therapy of Cancer: An Update [J].
Agostinis, Patrizia ;
Berg, Kristian ;
Cengel, Keith A. ;
Foster, Thomas H. ;
Girotti, Albert W. ;
Gollnick, Sandra O. ;
Hahn, Stephen M. ;
Hamblin, Michael R. ;
Juzeniene, Asta ;
Kessel, David ;
Korbelik, Mladen ;
Moan, Johan ;
Mroz, Pawel ;
Nowis, Dominika ;
Piette, Jacques ;
Wilson, Brian C. ;
Golab, Jakub .
CA-A CANCER JOURNAL FOR CLINICIANS, 2011, 61 (04) :250-281
[4]   Tumor hypoxia directed multimodal nanotherapy for overcoming drug resistance in renal cell carcinoma and reprogramming macrophages [J].
Alsaab, Hashem O. ;
Sau, Samaresh ;
Alzhrani, Rami M. ;
Cheriyan, Vino T. ;
Polin, Lisa A. ;
Vaishampayan, Ulka ;
Rishi, Arun K. ;
Iyer, Arun K. .
BIOMATERIALS, 2018, 183 :280-294
[5]   PD-1 and PD-L1 Checkpoint Signaling Inhibition for Cancer Immunotherapy: Mechanism, Combinations, and Clinical Outcome [J].
Alsaab, Hashem O. ;
Sau, Samaresh ;
Alzhrani, Rami ;
Tatiparti, Katyayani ;
Bhise, Ketki ;
Kashaw, Sushil K. ;
Iyer, Arun K. .
FRONTIERS IN PHARMACOLOGY, 2017, 8
[6]   Synthesis of NiO nanoparticles and their evaluation for photodynamic therapy against HeLa cancer cells [J].
AlSalhi, Mohamad S. ;
Aziz, Muhammad Hammad ;
Atif, M. ;
Fatima, Mahvish ;
Shaheen, Fozia ;
Devanesan, Sandhanasamy ;
Farooq, W. Aslam .
JOURNAL OF KING SAUD UNIVERSITY SCIENCE, 2020, 32 (02) :1395-1402
[7]   The role of photodynamic therapy on multidrug resistant breast cancer [J].
Aniogo, Eric Chekwube ;
George, Blassan Plackal Adimuriyil ;
Abrahamse, Heidi .
CANCER CELL INTERNATIONAL, 2019, 19 (1)
[8]   Photodynamic Therapy: One Step Ahead with Self-Assembled Nanoparticles [J].
Avci, Pinar ;
Erdem, S. Sibel ;
Hamblin, Michael R. .
JOURNAL OF BIOMEDICAL NANOTECHNOLOGY, 2014, 10 (09) :1937-1952
[9]   Nanoparticle-Based Drug Delivery for Therapy of Lung Cancer: Progress and Challenges [J].
Babu, Anish ;
Templeton, Amanda K. ;
Munshi, Anupama ;
Ramesh, Rajagopal .
JOURNAL OF NANOMATERIALS, 2013, 2013
[10]   Nanoparticles as vehicles for delivery of photodynamic therapy agents [J].
Bechet, Denise ;
Couleaud, Pierre ;
Frochot, Celine ;
Viriot, Marie-Laure ;
Guillemin, Francois ;
Barberi-Heyob, Muriel .
TRENDS IN BIOTECHNOLOGY, 2008, 26 (11) :612-621