Poly(ethylene glycol) shell-sheddable TAT-modified core cross-linked nanomicelles: TAT-enhanced cellular uptake and lysosomal pH-triggered doxorubicin release

被引:24
作者
Zhang, Yuliu [1 ]
Xiao, Yi [2 ]
Huang, Yushu [1 ]
He, Yang [1 ]
Xu, Yanyun [1 ]
Lu, Wei [1 ]
Yu, Jiahui [1 ]
机构
[1] East China Normal Univ, Shanghai Engn Res Ctr Mol Therapeut & New Drug De, Sch Chem & Mol Engn, Shanghai 200062, Peoples R China
[2] Naval Med Univ, Changzheng Hosp, Dept Radiol & Nucl Med, Shanghai 200003, Peoples R China
基金
中国国家自然科学基金;
关键词
TAT-modified; Enhanced endocytosis; Core cross-linked nanomicelles; Lysosomal pH-triggered doxorubicin release; MULTIDRUG-RESISTANCE; POLYMERIC MICELLE; DELIVERY; NANOPARTICLES; CANCER; NANOCARRIERS; PRINCIPLES; HYDROGELS; PEPTIDE;
D O I
10.1016/j.colsurfb.2020.110772
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
This study aimed to develop sheddable polyethylene glycol (PEG) shells with TAT-modified core cross-linked nanomicelles as drug-delivery carriers of doxorubicin (DOX) to establish a programmed response against the tumor microenvironment, enhanced endocytosis, and lysosomal pH-triggered DOX release. First, poly(L-succinimide) (PSI) underwent a ring-opening reaction with ethylenediamine to generate poly(N-(2-aminoethyl)-Laspartamide) (P(ae-Asp)). Next, the thiolytic cleavable PEG, 3,4-dihydroxyphenylacetic acid, and TAT were grafted onto P(ae-Asp) to synthesize the amphiphilic graft copolymer of mPEG-SS-g-P(ae-Asp)-MCA-DA-TAT. In aqueous solution, the amphiphilic polymer self-assembled into nanomicelles, encapsulating DOX into the hydrophobic core of micelles. TAT was shielded by the PEG corona during circulation to avoid non-specific transmembrane interaction with normal cells, while the tumor redox environment-responsive shedding of PEG could expose TAT to promote internalization of tumor cells. In order to improve the stability of nanomicelles and achieve pH-triggered drug release, a core cross-linking strategy based on the coordination of catechol and Fe3+ was adopted. In vitro studies demonstrated that core cross-linked nanomicelles maintained the nanostructure in 100 times dilution in pH 7.4 phosphate-buffered saline (PBS). Moreover, DOX release from DOX-loaded core cross-linked nanomicelles (DOX-TAT-CCLMs) was favored at simulated lysosomal conditions over simulated plasma conditions, indicating that these nanomicelles demonstrate characteristics of pH-triggered DOX release. The TAT modification considerably enhanced the mean fluorescence intensity of the nanomicelles endocytosed by MCF-7/ADR cells by 8 times, compared with DOX center dot HCl after 8 h of incubation. Notably, the IC50 value of nanomicelles (11.61 +/- 0.95 mu g/mL) was nearly 4 times lower than that of DOX center dot HCl against MCF-7/ADR cells, implying that the nanomicelles could overcome drug resistance observed in MCF-7/ADR cells. Furthermore, the DOX-TAT-CCLMs reported superior tumor growth suppression in a 4T1 tumor-bearing mouse model. Thus, the redox- and pH-stimuli stepwise-responsive novel nanomicelles fabricated from the mPEG-SS-g-P(ae-Asp)-MCA-DA-TAT graft copolymer exhibited multifunctionality and displayed great potential for drug delivery.
引用
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页数:9
相关论文
共 37 条
[21]   Design of nanocarriers based on complex biological barriers in vivo for tumor therapy [J].
Liu, Junjie ;
Li, Menghuan ;
Luo, Zhong ;
Dai, Liangliang ;
Guo, Xingming ;
Cai, Kaiyong .
NANO TODAY, 2017, 15 :56-90
[22]   Construction of coumarin-based cross-linked micelles with pH responsive hydrazone bond and tumor targeting moiety [J].
Long, Yu-Bo ;
Gu, Wen-Xing ;
Pang, Chengcai ;
Ma, Jianbiao ;
Gao, Hui .
JOURNAL OF MATERIALS CHEMISTRY B, 2016, 4 (08) :1480-1488
[23]  
Madani Fatemeh, 2011, J Biophys, V2011, P414729, DOI 10.1155/2011/414729
[24]   PEGylated hyaluronic acid-coated liposome for enhanced in vivo efficacy of sorafenib via active tumor cell targeting and prolonged systemic exposure [J].
Mo, Lingxuan ;
Song, Jae Geun ;
Lee, Hankyu ;
Zhao, Mengjia ;
Kim, Hyeon Young ;
Lee, Yoon Ji ;
Ko, Hyuk Wan ;
Han, Hyo-Kyung K .
NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2018, 14 (02) :557-567
[25]   Biocompatible polymersomes-based cancer theranostics: Towards multifunctional nanomedicine [J].
Mohammadi, Marzieh ;
Ramezani, Mohammad ;
Abnous, Khalil ;
Alibolandi, Mona .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2017, 519 (1-2) :287-303
[26]   Polydopamine-Based Multifunctional (Nano)materials for Cancer Therapy [J].
Mrowczynski, Radoslaw .
ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (09) :7541-7561
[27]   Polymeric micelle stability [J].
Owen, Shawn C. ;
Chan, Dianna P. Y. ;
Shoichet, Molly S. .
NANO TODAY, 2012, 7 (01) :53-65
[28]   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
[29]   Cell-penetrating peptides transport therapeutics into cells [J].
Ramsey, Joshua D. ;
Flynn, Nicholas H. .
PHARMACOLOGY & THERAPEUTICS, 2015, 154 :78-86
[30]   pH/Sugar Dual Responsive Core-Cross-Linked PIC Micelles for Enhanced Intracellular Protein Delivery [J].
Ren, Jie ;
Zhang, Yanxin ;
Zhang, Ju ;
Gao, Hongjun ;
Liu, Gan ;
Ma, Rujiang ;
An, Yingli ;
Kong, Deling ;
Shi, Linqi .
BIOMACROMOLECULES, 2013, 14 (10) :3434-3443