Enhanced photo/chemo combination efficiency against bladder tumor by encapsulation of DOX and ZnPC into in situ-formed thermosensitive polymer hydrogel

被引:45
作者
Huang, Zhongming
Xiao, He
Lu, Xiangyun
Yan, Weigang
Ji, Zhigang [1 ,2 ]
机构
[1] Chinese Acad Med Sci, Dept Urol, Peking Union Med Coll Hosp, 1 Shuaifuyuan Wangfujing, Beijing 100730, Peoples R China
[2] Peking Union Med Coll, 1 Shuaifuyuan Wangfujing, Beijing 100730, Peoples R China
来源
INTERNATIONAL JOURNAL OF NANOMEDICINE | 2018年 / 13卷
关键词
chemotherapy; photodynamic therapy; combination therapy; hydrogel; thermosensitive; bladder cancer; PHOTODYNAMIC THERAPY; PHTHALOCYANINE; DELIVERY; NANOPARTICLES; DOXORUBICIN; CANCER; PHOTOSENSITIZER; CHEMOTHERAPY; MICELLES;
D O I
10.2147/IJN.S179226
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Background: Chemotherapy after transurethral resection is commonly recommended for bladder cancer. However, studies have shown that chemotherapy solely can hardly decrease progression rates of bladder cancer. The combination of chemotherapeutic agents with photodynamic therapy (PDT), a new promising localized therapy, may become a workable strategy for combating bladder cancer. This study reports the combination of doxorubicin (DOX)-based chemotherapy and zinc phthalocyanine (ZnPC)-based PDT using in situ-formed thermal-responsive copolymer hydrogel. Materials and methods: The copolymer was synthesized by polymerization of 3-caprolactone, 1,4,8-trioxa[4.6]spiro-9-undecanone and poly(ethylene glycol) and was abbreviated as PCL-PTSUO-PEG. The thermal-responsive nanoparticles (TNPs) were prepared by the nanoprecipitation technology. The thermal-responsive hydrogel was formed after 37 degrees C heating of TNP solution. The size, morphology and dynamic viscosity of hydrogel were detected. The in vitro drug release profile of TNP/DOX/ZnPC was performed. Cell uptake, cell inhibition and ROS generation of TNP/DOX/ZnPC were studied in 5637 cells. The in vivo antitumor activity of TNP/DOX/ZnPC was evaluated in nude mice bearing 5637 cells xenograft. Results: TNP/DOX and TNP/ZnPC had an average diameter of 102 and 108 nm, respectively. After being heated at 37 degrees C for 5 minutes, TNP/DOX and TNP/ZnPC solution turned uniform light red and dark green hydrogel. ZnPC encapsulation designed by TNP could significantly improve its aqueous solubility to 1.9 mg/mL. Cell inhibition showed that the best cell inhibition was found, with cell viability of 18.5%, when the weight ratio of DOX and ZnPC encapsulated in the TNP reached about 1:5. TNP/DOX/ZnPC generated relative high level of ROS with 4.8-fold of free ZnPC and 1.6-fold of TNP/ZnPC. TNP/DOX/ZnPC showed only 8-fold of relative tumor growth without obvious toxicity to the mice. Conclusion: Thermosensitive thermal-responsive hydrogel reported in this contribution are promising in situ-formed matrix for DOX- and ZnPC-based photo/chemo combination treatment for bladder cancer therapy.
引用
收藏
页码:7623 / 7631
页数:9
相关论文
共 34 条
[21]   Advancing porphyrin's biomedical utility via supramolecular chemistry [J].
Rajora, M. A. ;
Lou, J. W. H. ;
Zheng, G. .
CHEMICAL SOCIETY REVIEWS, 2017, 46 (21) :6433-6469
[22]   Smart chemistry-based nanosized drug delivery systems for systemic applications: A comprehensive review [J].
Ramasamy, Thiruganesh ;
Ruttala, Hima Bindu ;
Gupta, Biki ;
Poudel, Bijay Kumar ;
Choi, Han-Gon ;
Yong, Chul Soon ;
Kim, Jong Oh .
JOURNAL OF CONTROLLED RELEASE, 2017, 258 :226-253
[23]   Layer-by-layer assembly of liposomal nanoparticles with PEGylated polyelectrolytes enhances systemic delivery of multiple anticancer drugs [J].
Ramasamy, Thiruganesh ;
Haidar, Ziyad S. ;
Tran, Tuan Hiep ;
Choi, Ju Yeon ;
Jeong, Jee-Heon ;
Shin, Beom Soo ;
Choi, Han-Gon ;
Yong, Chul Soon ;
Kim, Jong Oh .
ACTA BIOMATERIALIA, 2014, 10 (12) :5116-5127
[24]   Preparation, characterization, photocytotoxicity assay of PLGA nanoparticles containing zinc (II) phthalocyanine for photodynamic therapy use [J].
Ricci-Junior, Eduardo ;
Marchetti, Juliana M. .
JOURNAL OF MICROENCAPSULATION, 2006, 23 (05) :523-538
[25]   Photodynamic Therapy [J].
Rkein, Ali M. ;
Ozog, David M. .
DERMATOLOGIC CLINICS, 2014, 32 (03) :415-+
[26]   Syntheses and Functional Properties of Phthalocyanines [J].
Sakamoto, Keiichi ;
Ohno-Okumura, Eiko .
MATERIALS, 2009, 2 (03) :1127-1179
[27]   Like a Bolt from the Blue: Phthalocyanines in Biomedical Optics [J].
Sekkat, Nawal ;
van den Bergh, Hubert ;
Nyokong, Tebello ;
Lange, Norbert .
MOLECULES, 2012, 17 (01) :98-144
[28]   Nanostructured delivery system for zinc phthalocyanine: preparation, characterization, and phototoxicity study against human lung adenocarcinoma A549 cells [J].
Soares, Mariana da Volta ;
Oliveira, Mainara Rangel ;
dos Santos, Elisabete Pereira ;
Gitirana, Lycia de Brito ;
Barbosa, Gleyce Moreno ;
Quaresma, Carla Holandino ;
Ricci-Junior, Eduardo .
INTERNATIONAL JOURNAL OF NANOMEDICINE, 2011, 6 :227-238
[29]   Phthalocyanine-loaded graphene nanoplatform for imaging-guided combinatorial phototherapy [J].
Taratula, Olena ;
Patel, Mehulkumar ;
Schumann, Canan ;
Naleway, Michael A. ;
Pang, Addison J. ;
He, Huixin ;
Taratula, Oleh .
INTERNATIONAL JOURNAL OF NANOMEDICINE, 2015, 10 :2347-2362
[30]   Current concepts in the diagnosis and pathobiology of intraepithelial neoplasia: A review by organ system [J].
Voltaggio, Lysandra ;
Cimino-Mathews, Ashley ;
Bishop, Justin A. ;
Argani, Pedram ;
Cuda, Jonathan D. ;
Epstein, Jonathan I. ;
Hruban, Ralph H. ;
Netto, George J. ;
Stoler, Mark H. ;
Taube, Janis M. ;
Vang, Russell ;
Westra, William H. ;
Montgomery, Elizabeth A. .
CA-A CANCER JOURNAL FOR CLINICIANS, 2016, 66 (05) :408-436