TY - JOUR
T1 - Reduction-sensitive mixed micelles based on mPEG-SS-PzLL /TPGS to enhance anticancer efficiency of doxorubicin
AU - Chen, Guoguang
AU - Zheng, Qiqi
AU - Dai, Jie
AU - Liu, Jia
AU - Yin, Jun
AU - Xu, Xiaoqing
AU - Chen, Aiping
AU - Ren, Lili
N1 - Publisher Copyright:
© 2022
PY - 2022/5
Y1 - 2022/5
N2 - Currently, the drawbacks of the chemotherapy drugs are still demonstrated poor water solubility, systemic toxicity and even multidrug resistance (MDR) in clinical applications. To address these problems, an amphiphilic block polymer self-assembled reduction sensitive micelle, mPEG-SS-PzLL/TPGS/DOX, was synthesized for efficient anticancer therapy. The polymer had a biodegradable backbone and disulfide bond can be cleaved by reduced glutathione (GHS) in tumor cells, which led to fast release of the DOX. TPGS was designed for an increaseing drug accumulation and a reduction in drug efflux. In follow-up research, we found that mPEG-SS-PzLL/TPGS/DOX micelles achieved a high encapsulation efficiency of 96.1%. Photomicrographs gotten by TEM showed homogeneous and spherical-shaped particles with the particl size of 83.7 ± 3.2 nm. The in vitro release in high reducing conditions reached 96% within 48 h. Furthermore, the mPEG-SS-PzLL/TPGS/DOX micelles caused stronger cytotoxicity to 4 T1 cells and promising therapeutic efficacy for BALB/c mice bearing 4 T1 tumors. Therefore, an excellent drug delivery system was created by combing restore sensitivity with multidrug resistance strategy while maximize drug accumulation in tumor cells. Alternatively, this study offers a bright perspective for cancer therapy with chemotherapeutics.
AB - Currently, the drawbacks of the chemotherapy drugs are still demonstrated poor water solubility, systemic toxicity and even multidrug resistance (MDR) in clinical applications. To address these problems, an amphiphilic block polymer self-assembled reduction sensitive micelle, mPEG-SS-PzLL/TPGS/DOX, was synthesized for efficient anticancer therapy. The polymer had a biodegradable backbone and disulfide bond can be cleaved by reduced glutathione (GHS) in tumor cells, which led to fast release of the DOX. TPGS was designed for an increaseing drug accumulation and a reduction in drug efflux. In follow-up research, we found that mPEG-SS-PzLL/TPGS/DOX micelles achieved a high encapsulation efficiency of 96.1%. Photomicrographs gotten by TEM showed homogeneous and spherical-shaped particles with the particl size of 83.7 ± 3.2 nm. The in vitro release in high reducing conditions reached 96% within 48 h. Furthermore, the mPEG-SS-PzLL/TPGS/DOX micelles caused stronger cytotoxicity to 4 T1 cells and promising therapeutic efficacy for BALB/c mice bearing 4 T1 tumors. Therefore, an excellent drug delivery system was created by combing restore sensitivity with multidrug resistance strategy while maximize drug accumulation in tumor cells. Alternatively, this study offers a bright perspective for cancer therapy with chemotherapeutics.
KW - Breast cancer
KW - Doxorubicin
KW - Mixed micelles
KW - Multidrug resistance
KW - Reduction sensitive
UR - http://www.scopus.com/inward/record.url?scp=85126513102&partnerID=8YFLogxK
U2 - 10.1016/j.reactfunctpolym.2022.105242
DO - 10.1016/j.reactfunctpolym.2022.105242
M3 - 文章
AN - SCOPUS:85126513102
SN - 1381-5148
VL - 174
JO - Reactive and Functional Polymers
JF - Reactive and Functional Polymers
M1 - 105242
ER -