Cisplatin Loaded Poly(L-glutamic acid)-g-Methoxy Poly(ethylene glycol) Complex Nanoparticles for Potential Cancer Therapy: Preparation, In Vitro and In Vivo Evaluation

被引:82
|
作者
Yu, Haiyang [1 ,4 ]
Tang, Zhaohui [1 ]
Li, Mingqiang [1 ,4 ]
Song, Wantong [1 ]
Zhang, Dawei [1 ]
Zhang, Ying [1 ]
Yang, Yan [2 ]
Sun, Hai [1 ]
Deng, Mingxiao [3 ]
Chen, Xuesi [1 ]
机构
[1] Chinese Acad Sci, Changchun Inst Appl Chem, Key Lab Polymer Ecomat, Changchun 130022, Peoples R China
[2] Jilin Univ, Minist Educ, Key Lab Mol Enzymol & Engn, Changchun 130012, Peoples R China
[3] NE Normal Univ, Dept Chem, Changchun 130024, Peoples R China
[4] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Cisplatin; Poly(L-glutamic acid); Complex; Nanoparticle; Cancer Therapy; PLGA-MPEG NANOPARTICLES; DRUG-DELIVERY; POLYMERIC MICELLES; ANTITUMOR-ACTIVITY; TARGETED DELIVERY; SOLID TUMORS; NANOCARRIERS; NEPHROTOXICITY; CIRCULATION; PACLITAXEL;
D O I
10.1166/jbn.2016.2152
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A series of novel polypeptide-based graft copolymer poly(L-glutamic acid)-graft-methoxy poly(ethylene glycol) (PLG-g-mPEG) was synthesized through a Steglich esterification reaction of PLG with mPEG. The structure of the copolymers was confirmed by nuclear magnetic resonance spectra (NMR) and gel permeation chromatography (GPC). MTT assay demonstrated that the PLG-g-mPEGs had good cell compatibility. The unreacted carboxyl groups of the PLG-g-mPEGs were used to complex cisplatin to form polymer-metal complex nanoparticles (CDDP/PLG-g-mPEG) for cancer therapy. The average hydrodynamic radius of the CDDP/PLG-g-mPEG nanoparticles was in the range of 14-25 nm, which was beneficial for solid tumor targeting delivery. A sustained release without initial burst was achieved for the CDDP/PLG-gmPEG nanoparticles, indicating that the COOP-loaded nanoparticles had great potential to suppress the drug release in blood circulation before the nanoparticles had arrived at targeting tumors. The CDDP/PLG-g-mPEG nanoparticles showed a much longer blood retention profile as compared with the free CDDP. This indicated that the COOP-loaded nanoparticles had much more opportunity to accumulate in tumor tissue by exerting the EPR effect. In vitro tests demonstrated that the CDOP/PLG-g-mPEG nanoparticles could inhibit the proliferation of HeLa, MCF-7 and A549 cancer cells. At equal dose (4 mg kg(-1)), the CDDP/PLG-g-mPEG nanoparticles showed comparable in vivo antitumor efficacy and significantly lower systemic toxicity as compared with free cis-Diaminedichloroplatinum (cisplatin, CDDP) in MCF-7 tumor bearing mice. These suggested that the CDDP/PLG-g-mPEG nanoparticle drug delivery system had a great potential to be used for cancer therapy.
引用
收藏
页码:69 / 78
页数:10
相关论文
共 50 条
  • [41] Biodegradable methoxy poly (ethylene glycol)-poly (lactide) nanoparticles for controlled delivery of dacarbazine: Preparation, characterization and anticancer activity evaluation
    Ding, Bao-yue
    Zhang, Wei
    Wu, Xin
    Wang, Xiang
    Fan, Wei
    Gao, Shen
    Gao, Jing
    Ma, Lu-lu
    Ding, Xue-ying
    Hao, Qiang
    AFRICAN JOURNAL OF PHARMACY AND PHARMACOLOGY, 2011, 5 (11): : 1369 - 1377
  • [42] The size effect of poly(γ,l-glutamic acid) (γ-PGA) based cisplatin-loaded nanoparticles on hela cells by changing the γ-PGA molecular weight
    Chen, Yazhou
    Tan, Shiming
    Zhang, Huasheng
    Wang, Zhi
    Wu, Zirong
    Huang, Jing
    NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2016, 12 (02) : 565 - 565
  • [43] pH-responsive poly(ethylene glycol)-poly(ε-caprolactone)-poly(glutamic acid) polymersome as an efficient doxorubicin carrier for cancer therapy
    Zhao, Lanxia
    Zhang, Xia
    Liu, Xin
    Li, Juan
    Luan, Yuxia
    POLYMER INTERNATIONAL, 2017, 66 (11) : 1579 - 1586
  • [44] Synthesis and characterization of RGD peptide grafted poly(ethylene glycol)-b-poly(L-lactide)-b-poly(L-glutamic acid) triblock copolymer
    Deng, C
    Tian, HY
    Zhang, PB
    Sun, J
    Chen, XS
    Jing, XB
    BIOMACROMOLECULES, 2006, 7 (02) : 590 - 596
  • [45] Methoxy poly(ethylene glycol)-b-poly(L-lactic acid) copolymer nanoparticles as delivery vehicles for paclitaxel
    Deng, LD
    Li, AG
    Yao, CM
    Sun, DX
    Dong, AJ
    JOURNAL OF APPLIED POLYMER SCIENCE, 2005, 98 (05) : 2116 - 2122
  • [46] Methoxy poly(ethylene glycol)-b-poly(L-lactic acid) copolymer nanoparticles as delivery vehicles for paclitaxel
    Dong, A. (ajdong@tju.edu.cn), 1600, John Wiley and Sons Inc. (98):
  • [47] In Vitro and In Vivo Evaluation of Desogestrel-Loaded Poly(D,L-lactic Acid) Nanoparticles
    Lin, Hui
    Jia, Guoyong
    Sun, Peng
    Zhu, Liqiao
    Chen, Jinna
    Wan, Qiyue
    Xiao, Lingyun
    Liu, Xianghong
    JOURNAL OF NANOMATERIALS, 2019, 2019
  • [48] Preparation and Characterization of Poly(ethylene glycol)-Doxorubicin/SPION Magnetic Nanoparticles for Cancer Therapy
    Kim, Yugyeong
    Lee, Seonmin
    Kim, Danbee
    Noh, Kangmin
    Oh, Keun Sang
    Cho, Sunghoon
    Choi, Eunpyo
    Kim, Kyu-pyo
    Huh, Kang Moo
    POLYMER-KOREA, 2018, 42 (06) : 1059 - 1067
  • [49] Preparation and evaluation of lysozyme-loaded nanoparticles coated with poly-γ-glutamic acid and chitosan
    Liu, Yong
    Sun, Yan
    Xu, Yaoxing
    Feng, Hai
    Fu, Sida
    Tang, Jiangwu
    Liu, Wei
    Sun, Dongchang
    Jiang, Hua
    Xu, Shaochun
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2013, 59 : 201 - 207
  • [50] Paclitaxel-loaded polymeric micelles based on poly(ε-caprolactone)-poly(ethylene glycol)-poly(ε-caprolactone) triblock copolymers: in vitro and in vivo evaluation
    Zhang, Linhua
    He, Yingna
    Ma, Guilei
    Song, Cunxian
    Sun, Hongfan
    NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2012, 8 (06) : 925 - 934