Emerging Nanotechnology and Advanced Materials for Cancer Radiation Therapy

被引:683
作者
Song, Guosheng [1 ,2 ]
Cheng, Liang [1 ]
Chao, Yu [1 ]
Yang, Kai [3 ,4 ]
Liu, Zhuang [1 ]
机构
[1] Soochow Univ, Jiangsu Key Lab Carbon Based Funct Mat & Devices, Inst Funct Nano & Soft Mat FUNSOM, Suzhou 215123, Jiangsu, Peoples R China
[2] Stanford Univ, Sch Med, Dept Radiol, Mol Imaging Program Stanford, 1201 Welch Rd, Stanford, CA 94305 USA
[3] Soochow Univ, Coll Med, Sch Radiat Med & Protect, Suzhou 215123, Jiangsu, Peoples R China
[4] Soochow Univ, Coll Med, Sch Radiol & Interdisciplinary Sci RAD X, Suzhou 215123, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
combination therapy; nanomaterials; radiation therapy; radiosensitization; tumor hypoxia; IRON-OXIDE NANOPARTICLES; I-131-LABELED MULTIFUNCTIONAL DENDRIMERS; MESOPOROUS SILICA NANOPARTICLES; SOLID TUMOR MICROENVIRONMENT; UP-CONVERSION NANOPARTICLES; SQUAMOUS-CELL CARCINOMA; ALPHA-PARTICLE THERAPY; MITOMYCIN-C PRODRUG; LOW-DOSE RADIATION; ONE-POT SYNTHESIS;
D O I
10.1002/adma.201700996
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Radiation therapy (RT) including external beam radiotherapy (EBRT) and internal radioisotope therapy (RIT) has been widely used for clinical cancer treatment. However, owing to the low radiation absorption of tumors, high doses of ionizing radiations are often needed during RT, leading to severe damages to normal tissues adjacent to tumors. Meanwhile, the RT efficacies are limited by different mechanisms, among which the tumor hypoxia-associated radiation resistance is a well-known one, as there exists hypoxia inside most solid tumors while oxygen is essential to enhance radiation-induced DNA damages. With the development in nanotechnology, there have been great interests in using nanomedicine strategies to enhance radiation responses of tumors. Nanomaterials containing high-Z elements to absorb radiation rays (e.g. X-ray) can act as radio-sensitizers to deposit radiation energy within tumors and promote treatment efficacy. Nanoscale carriers are able to deliver therapeutic radioisotopes into tumors for internal RIT, or chemotherapeutic drugs for synergistically combined chemo-radiotherapy. As uncovered in recent studies, the tumor microenvironment could be modulated by various nanomedicine approaches to overcome hypoxia-associated radiation resistance. Herein, the authors will summarize the applications of nanomedicine for RT cancer treatment, and pay particular attention to the latest development of 'advanced materials' for enhanced cancer RT.
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页数:26
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共 276 条
[1]   Histological alterations in the liver of rats induced by different gold nanoparticle sizes, doses and exposure duration [J].
Abdelhalim, Mohamed Anwar K. ;
Jarrar, Bashir M. .
JOURNAL OF NANOBIOTECHNOLOGY, 2012, 10
[2]  
Aebersold DM, 2001, CANCER RES, V61, P2911
[3]   Gold-Loaded Polymeric Micelles for Computed Tomography-Guided Radiation Therapy Treatment and Radiosensitization [J].
Al Zaki, Ajlan ;
Joh, Daniel ;
Cheng, Zhiliang ;
De Barros, Andre Luis Branco ;
Kao, Gary ;
Dorsey, Jay ;
Tsourkas, Andrew .
ACS NANO, 2014, 8 (01) :104-112
[4]   Quantitative 3D Determination of Radiosensitization by Bismuth-Based Nanoparticles [J].
Alqathanni, Mamdooh ;
Blencowe, Anton ;
Geso, Moshi ;
Ibbott, Geoffrey .
JOURNAL OF BIOMEDICAL NANOTECHNOLOGY, 2016, 12 (03) :464-471
[5]   Cancer therapy and vaccination [J].
Aly, Hamdy A. A. .
JOURNAL OF IMMUNOLOGICAL METHODS, 2012, 382 (1-2) :1-23
[6]   Thermal Enhancement with Optically Activated Gold Nanoshells Sensitizes Breast Cancer Stem Cells to Radiation Therapy [J].
Atkinson, Rachel L. ;
Zhang, Mei ;
Diagaradjane, Parmeswaran ;
Peddibhotla, Sirisha ;
Contreras, Alejandro ;
Hilsenbeck, Susan G. ;
Woodward, Wendy A. ;
Krishnan, Sunil ;
Chang, Jenny C. ;
Rosen, Jeffrey M. .
SCIENCE TRANSLATIONAL MEDICINE, 2010, 2 (55)
[7]   Magnetic nanoparticle hyperthermia enhances radiation therapy: A study in mouse models of human prostate cancer [J].
Attaluri, Anilchandra ;
Kandala, Kamal ;
Wabler, Michele ;
Zhou, Haoming ;
Cornejo, Christine ;
Armour, Michael ;
Hedayati, Mohammad ;
Zhang, Yonggang ;
DeWeese, Theodore L. ;
Herman, Cila ;
Ivkov, Robert .
INTERNATIONAL JOURNAL OF HYPERTHERMIA, 2015, 31 (04) :359-374
[8]   Biodistribution of gold nanoparticles and gene expression changes in the liver and spleen after intravenous administration in rats [J].
Balasubramanian, Suresh K. ;
Jittiwat, Jinattal ;
Manikandan, Jayapal ;
Ong, Choon-Nam ;
Yu, Liya E. ;
Ong, Wei-Yi .
BIOMATERIALS, 2010, 31 (08) :2034-2042
[9]   The tumour microenvironment after radiotherapy: mechanisms of resistance and recurrence [J].
Barker, Holly E. ;
Paget, James T. E. ;
Khan, Aadil A. ;
Harrington, Kevin J. .
NATURE REVIEWS CANCER, 2015, 15 (07) :409-425
[10]   Enhancing the Efficacy of Drug-loaded Nanocarriers against Brain Tumors by Targeted Radiation Therapy [J].
Baumann, Brian C. ;
Kao, Gary D. ;
Mahmud, Abdullah ;
Harada, Takamasa ;
Swift, Joe ;
Chapman, Christina ;
Xu, Xiangsheng ;
Discher, Dennis E. ;
Dorsey, Jay F. .
ONCOTARGET, 2013, 4 (01) :64-79