Strategies for engineering advanced nanomedicines for gas therapy of cancer

被引:222
作者
Wang, Yingshuai [1 ]
Yang, Tian [1 ]
He, Qianjun [1 ]
机构
[1] Shenzhen Univ, Guangdong Prov Key Lab Biomed Measurements & Ultr, Natl Reg Key Technol Engn Lab Med Ultrasound, Sch Biomed Engn,Hlth Sci Ctr, Shenzhen 518060, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
nanomedicine; gas therapy; drug delivery; controlled release; cancer treatment; IRON-OXIDE NANOPARTICLES; NEAR-INFRARED LIGHT; NITRIC-OXIDE; CO RELEASE; MINERALIZED NANOPARTICLES; PHOTODYNAMIC THERAPY; RESPONSIVE RELEASE; LIPOSOMAL SYSTEM; NO-RELEASE; IN-VIVO;
D O I
10.1093/nsr/nwaa034
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
As an emerging and promising treatment method, gas therapy has attracted more and more attention for treatment of inflammation-related diseases, especially cancer. However, therapeutic/therapy-assisted gases (NO, CO, H2S, H-2, O-2, SO2 and CO2) and most of their prodrugs lack the abilities of active intratumoral accumulation and controlled gas release, resulting in limited cancer therapy efficacy and potential side effects. Therefore, development of nanomedicines to realize tumor-targeted and controlled release of therapeutic/therapy-assisted gases is greatly desired, and also the combination of other therapeutic modes with gas therapy by multifunctional nanocarrier platforms can augment cancer therapy efficacy and also reduce their side effects. The design of nanomedicines with these functions is vitally important, but challenging. In this review, we summarize a series of engineering strategies for construction of advanced gas-releasing nanomedicines from four aspects: (1) stimuli-responsive strategies for controlled gas release; (2) catalytic strategies for controlled gas release; (3) tumor-targeted gas delivery strategies; (4) multi-model combination strategies based on gas therapy. Moreover, we highlight current issues and gaps in knowledge, and envisage current trends and future prospects of advanced nanomedicines for gas therapy of cancer. This review aims to inspire and guide the engineering of advanced gas-releasing nanomedicines.
引用
收藏
页码:1485 / 1512
页数:28
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[1]   Phase II study. Concurrent chemotherapy and radiotherapy with nitroglycerin in locally advanced non-small cell lung cancer [J].
Arrieta, Oscar ;
Blake, Monika ;
Dolores de la Mata-Moya, Maria ;
Corona, Francisco ;
Turcott, Jenny ;
Orta, David ;
Alexander-Alatorre, Jorge ;
Gallardo-Rincon, Dolores .
RADIOTHERAPY AND ONCOLOGY, 2014, 111 (02) :311-315
[2]   Efficient cocktail chemotherapy by co-delivery of a hydrogen sulfide-releasing aspirin prodrug and paclitaxel via single nanoparticles [J].
Cai, Lulu ;
He, Lin ;
Wang, Yan ;
Zhong, Jian ;
Zhao, Chengjian ;
Zeng, Shi ;
Yu, Jiying ;
Bian, Yuan ;
Wei, Yuquan ;
Cai, Wei ;
Long, Enwu ;
Jiao, Pengcheng ;
Yan, Junfeng ;
Xu, Quan .
RSC ADVANCES, 2017, 7 (22) :13458-13466
[3]   Localized and Controlled Delivery of Nitric Oxide to the Conventional Outflow Pathway via Enzyme Biocatalysis: Toward Therapy for Glaucoma [J].
Chandrawati, Rona ;
Chang, Jason Y. H. ;
Reina-Torres, Ester ;
Jumeaux, Coline ;
Sherwood, Joseph M. ;
Stamer, W. Daniel ;
Zelikin, Alexander N. ;
Overby, Darryl R. ;
Stevens, Molly M. .
ADVANCED MATERIALS, 2017, 29 (16)
[4]   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
[5]   NIR light controlled release of caged hydrogen sulfide based on upconversion nanoparticles [J].
Chen, Wansong ;
Chen, Min ;
Zang, Qiguang ;
Wang, Liqiang ;
Tang, Feiying ;
Han, Yajing ;
Yang, Cejun ;
Deng, Liu ;
Liu, You-Nian .
CHEMICAL COMMUNICATIONS, 2015, 51 (44) :9193-9196
[6]   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
[7]   A FRET-guided, NIR-responsive bubble-generating liposomal system for in vivo targeted therapy with spatially and temporally precise controlled release [J].
Chuang, Er-Yuan ;
Lin, Chia-Chen ;
Chen, Ko-Jie ;
Wan, De-Hui ;
Lin, Kun-Ju ;
Ho, Yi-Cheng ;
Lin, Po Yen ;
Sung, Hsing-Wen .
BIOMATERIALS, 2016, 93 :48-59
[8]   A Phase Ib and II clinical trial investigating the efficacy of nitric oxide deprivation and docetaxel in triple negative breast cancer [J].
Chung, Andrew W. ;
Ensor, Joe E. ;
Darcourt, Jorge ;
Belcheva, Anna ;
Patel, Tejal ;
Chang, Jenny C. ;
Niravath, Polly A. .
CANCER RESEARCH, 2019, 79 (13)
[9]   A Liposomal System Capable of Generating CO2 Bubbles to Induce Transient Cavitation, Lysosomal Rupturing, and Cell Necrosis [J].
Chung, Min-Fan ;
Chen, Ko-Jie ;
Liang, Hsiang-Fa ;
Liao, Zi-Xian ;
Chia, Wei-Tso ;
Xia, Younan ;
Sung, Hsing-Wen .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2012, 51 (40) :10089-10093
[10]   A pH-Responsive Carrier System that Generates NO Bubbles to Trigger Drug Release and Reverse P-Glycoprotein-Mediated Multidrug Resistance [J].
Chung, Ming-Fan ;
Liu, Hung-Yi ;
Lin, Kun-Ju ;
Chia, Wei-Tso ;
Sung, Hsing-Wen .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (34) :9890-9893