Biomimetic oxygen delivery nanoparticles for enhancing photodynamic therapy in triple-negative breast cancer

体内 光动力疗法 三阴性乳腺癌 乳腺癌 化学 肿瘤缺氧 纳米探针 吲哚青绿 转移 癌细胞 离体 癌症研究 癌症 医学 纳米颗粒 体外 病理 内科学 材料科学 放射治疗 生物 纳米技术 生物化学 有机化学 生物技术
作者
Hanyi Fang,Yongkang Gai,Sheng Wang,Qingyao Liu,Xiao Zhang,Min Ye,Jianling Tan,Yu Long,Kuanyin Wang,Yongxue Zhang,Xiaoli Lan
出处
期刊:Journal of Nanobiotechnology [BioMed Central]
卷期号:19 (1) 被引量:97
标识
DOI:10.1186/s12951-021-00827-2
摘要

Abstract Background Triple-negative breast cancer (TNBC) is a kind of aggressive breast cancer with a high rate of metastasis, poor overall survival time, and a low response to targeted therapies. To improve the therapeutic efficacy and overcome the drug resistance of TNBC treatments, here we developed the cancer cell membrane-coated oxygen delivery nanoprobe, CCm–HSA–ICG–PFTBA, which can improve the hypoxia at tumor sites and enhance the therapeutic efficacy of the photodynamic therapy (PDT), resulting in relieving the tumor growth in TNBC xenografts. Results The size of the CCm–HSA–ICG–PFTBA was 131.3 ± 1.08 nm. The in vitro 1 O 2 and ROS concentrations of the CCm–HSA–ICG–PFTBA group were both significantly higher than those of the other groups ( P < 0.001). In vivo fluorescence imaging revealed that the best time window was at 24 h post-injection of the CCm–HSA–ICG–PFTBA. Both in vivo 18 F-FMISO PET imaging and ex vivo immunofluorescence staining results exhibited that the tumor hypoxia was significantly improved at 24 h post-injection of the CCm–HSA–ICG–PFTBA. For in vivo PDT treatment, the tumor volume and weight of the CCm–HSA–ICG–PFTBA with NIR group were both the smallest among all the groups and significantly decreased compared to the untreated group ( P < 0.01). No obvious biotoxicity was observed by the injection of CCm–HSA–ICG–PFTBA till 14 days. Conclusions By using the high oxygen solubility of perfluorocarbon (PFC) and the homologous targeting ability of cancer cell membranes, CCm–HSA–ICG–PFTBA can target tumor tissues, mitigate the hypoxia of the tumor microenvironment, and enhance the PDT efficacy in TNBC xenografts. Furthermore, the HSA, ICG, and PFC are all FDA-approved materials, which render the nanoparticles highly biocompatible and enhance the potential for clinical translation in the treatment of TNBC patients.
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