Modification of Hypoxic States in Photodynamic Therapy

被引:0
作者
Gapeyev, A. B. [1 ]
Shcherbatyuk, T. G. [2 ,3 ]
机构
[1] Russian Acad Sci, Inst Cell Biophys, Pushchino 142290, Moscow Oblast, Russia
[2] Privolzhsky Res Med Univ, Minist Hlth Russian Federat, Nizhnii Novgorod 603950, Russia
[3] Pushchino State Inst Nat Sci, Pushchino 142290, Moscow Oblast, Russia
基金
俄罗斯基础研究基金会;
关键词
photodynamic therapy; photosensitizers; reactive oxygen species; carcinogenesis; hypoxia; antitumor effect; ANTIANGIOGENIC TREATMENT; PHOTORADIATION THERAPY; LIGHT DELIVERY; OZONE THERAPY; TUMOR HYPOXIA; CANCER; NANOPARTICLES; RESISTANCE; PHOTOSENSITIZERS; HEMATOPORPHYRIN;
D O I
10.1134/S1990747820020051
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Photodynamic therapy (PDT) is regarded as a promising approach to the treatment of malignant tumors, the effect of which is achieved due to the generation of reactive oxygen species upon irradiation of a photosensitizer with light. Reactive oxygen species cause direct destruction of tumor cells, vascular damage, and activate anti-tumor immunity. Hypoxia of tumor tissue significantly reduces the efficacy of PDT and is a serious obstacle for this method. In addition, oxygen consumption in PDT may further aggravate tumor hypoxia that leads to undesirable consequences, such as multidrug resistance, angiogenesis, tumor invasiveness, and metastasis. The purpose of this work was to review the current literature on the progress in overcoming tumor hypoxia or its use to increase the therapeutic efficacy of PDT. The following strategies for overcoming tumor hypoxia were considered: the modification of tumor microenvironment to improve oxygenation; the development of oxygen delivery systems or oxygen generation in situ; an oxygen-independent PDT; and the inhibition of the proteins associated with hypoxia. The existing approaches to use tumor hypoxia in drug release and bioreductive therapy were summarized.
引用
收藏
页码:184 / 193
页数:10
相关论文
共 105 条
[11]   Inhibition of hypoxia-inducible factor 1 with acriflavine sensitizes hypoxic tumor cells to photodynamic therapy with zinc phthalocyanine-encapsulating cationic liposomes [J].
Broekgaarden, Mans ;
Weijer, Ruud ;
Krekorian, Massis ;
van den IJssel, Bas ;
Kos, Milan ;
Alles, Lindy K. ;
van Wijk, Albert C. ;
Bikadi, Zsolt ;
Hazai, Eszter ;
van Gulik, Thomas M. ;
Heger, Michal .
NANO RESEARCH, 2016, 9 (06) :1639-1662
[12]   Effects of photodynamic therapy, 2 % chlorhexidine, triantibiotic mixture, propolis and ozone on root canals experimentally infected with Enterococcus faecalis: an in vitro study [J].
Camacho-Alonso, Fabio ;
Salmeron-Lozano, P. ;
Martinez-Beneyto, Y. .
ODONTOLOGY, 2017, 105 (03) :338-346
[13]   Mechanisms of Resistance to Photodynamic Therapy [J].
Casas, A. ;
Di Venosa, G. ;
Hasan, T. ;
Batlle, Al. .
CURRENT MEDICINAL CHEMISTRY, 2011, 18 (16) :2486-2515
[14]   H2O2-Activatable and O2-Evolving Nanoparticles for Highly Efficient and Selective Photodynamic Therapy against Hypoxic Tumor Cells [J].
Chen, Huachao ;
Tian, Jiangwei ;
He, Weijiang ;
Guo, Zijian .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2015, 137 (04) :1539-1547
[15]   Perfluorocarbon Nanoparticles for Physiological and Molecular Imaging and Therapy [J].
Chen, Junjie ;
Pan, Hua ;
Lanza, Gregory M. ;
Wickline, Samuel A. .
ADVANCES IN CHRONIC KIDNEY DISEASE, 2013, 20 (06) :466-478
[16]   Drug-induced co-assembly of albumin/catalase as smart nano-theranostics for deep intra-tumoral penetration, hypoxia relieve, and synergistic combination therapy [J].
Chen, Qian ;
Chen, Jiawen ;
Liang, Chao ;
Feng, Liangzhu ;
Dong, Ziliang ;
Song, Xuejiao ;
Song, Guosheng ;
Liu, Zhuang .
JOURNAL OF CONTROLLED RELEASE, 2017, 263 :79-89
[17]   Mesoporous silica-based versatile theranostic nanoplatform constructed by layer-by-layer assembly for excellent photodynamic/chemo therapy [J].
Chen, Wei-Hai ;
Luo, Guo-Feng ;
Qiu, Wen-Xiu ;
Lei, Qi ;
Liu, Li-Han ;
Wang, Shi-Bo ;
Zhang, Xian-Zheng .
BIOMATERIALS, 2017, 117 :54-65
[18]   Nanoparticle delivery of HIF1α siRNA combined with photodynamic therapy as a potential treatment strategy for head-and-neck cancer [J].
Chen, Wei-Hua ;
Lecaros, Rumwald Leo G. ;
Tseng, Yu-Cheng ;
Huang, Leaf ;
Hsu, Yih-Chih .
CANCER LETTERS, 2015, 359 (01) :65-74
[19]   Perfluorocarbon nanoparticles enhance reactive oxygen levels and tumour growth inhibition in photodynamic therapy [J].
Cheng, Yuhao ;
Cheng, Hao ;
Jiang, Chenxiao ;
Qiu, Xuefeng ;
Wang, Kaikai ;
Huan, Wei ;
Yuan, Ahu ;
Wu, Jinhui ;
Hu, Yiqiao .
NATURE COMMUNICATIONS, 2015, 6
[20]  
Chernigina IA, 2017, SOVREM TEHNOL MED, V9, P89, DOI 10.17691/stm2017.9.4.11