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产 ROS 的黑磷-他莫昔芬纳米片用于靶向内分泌-声动力协同乳腺癌治疗

英文原题:ROS Generative Black Phosphorus-Tamoxifen Nanosheets for Targeted Endocrine-Sonodynamic Synergistic Breast Cancer Therapy.

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ROS Generative Black Phosphorus-Tamoxifen Nanosheets for Targeted Endocrine-Sonodynamic Synergistic Breast Cancer Therapy.

PubMed 2023/05/09(内容时间) Int J Nanomedicine Q1 · IF 8.7(JCR 2025)

分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。

研究概要

基于 BP 的新型策略不仅将 TAM 特异性递送至肿瘤细胞,还通过靶向治疗、SDT 和免疫细胞调节表现出令人满意的抗肿瘤效果。该纳米平台可能为乳腺癌治疗提供一种更优的协同策略。

研究思路结论见上方概要

他莫昔芬(TAM)已被证明是降低雌激素受体阳性(ER+)乳腺癌患者死亡率和复发率的治疗突破。然而,TAM的应用存在生物利用度低、脱靶毒性、固有性和获得性TAM耐药等问题。

我们利用黑磷(BP)作为药物载体和声敏剂,整合TAM和肿瘤靶向配体叶酸(FA),构建了TAM@BP-FA,用于乳腺癌的协同内分泌和声动力治疗(SDT)。剥离的BP纳米片通过多巴胺原位聚合进行修饰,随后通过静电吸附TAM和FA。通过体外细胞毒性和体内抗肿瘤模型评估了TAM@BP-FA的抗癌效果。采用RNA测序(RNA-seq)、定量实时PCR、Western blot分析、流式细胞术分析和外周血单核细胞(PBMCs)分析进行机制研究。

TAM@BP-FA具有令人满意的载药能力,TAM释放行为可通过pH微环境和超声刺激进行控制。在超声刺激下,预期产生了一定量的羟自由基(OH)和单线态氧(1O2)。TAM@BP-FA纳米平台在TAM敏感的MCF7和TAM耐药(TMR)细胞中均表现出优异的内化能力。在TMR细胞中,与TAM相比,TAM@BP-FA显示出显著增强的抗肿瘤能力(5 g/mL时细胞活力7.7% vs 69.6%),额外的SDT进一步导致15%更多的细胞死亡。RNA-seq揭示了TAM@BP-FA的抗肿瘤机制,包括对细胞周期、凋亡和细胞增殖的影响。进一步分析表明,额外的SDT成功触发活性氧(ROS)生成和线粒体膜电位(MMP)降低。此外,暴露于TAM@BP-FA的PBMCs通过自然杀伤(NK)细胞上调和免疫抑制巨噬细胞减少诱导抗肿瘤免疫反应。

展开英文摘要原文

We utilized black phosphorus (BP) as a drug carrier and sonosensitizer, integrated with TAM and tumor-targeting ligand folic acid (FA) to construct TAM@BP-FA for synergistic endocrine and sonodynamic therapy (SDT) of breast cancer. The exfoliated BP nanosheets were modified through in situ polymerization of dopamine, followed by electrostatic adsorption of TAM and FA. The anticancer effect of TAM@BP-FA was evaluated through in vitro cytotoxicity and in vivo antitumor model. RNA-sequencing (RNA-seq), quantitative real-time PCR, Western blot analysis, flow cytometry analysis and peripheral blood mononuclear cells (PBMCs) analysis were performed for mechanism investigation.

TAM@BP-FA had satisfactory drug loading capacity, the TAM release behavior can be controlled through pH microenvironment and ultrasonic stimulation. An amount of hydroxyl radical ( OH) and singlet oxygen ( 1 O 2 ) were as expected generated under ultrasound stimulation. TAM@BP-FA nanoplatform showed excellent internalization in both TAM-sensitive MCF7 and TAM-resistant (TMR) cells. Using TMR cells, TAM@BP-FA displayed significantly enhanced antitumor ability in comparison with TAM (7.7% vs 69.6% viability at 5 g/mL), the additional SDT further caused 15% more cell death. RNA-seq unraveled the TAM@BP-FA antitumor mechanisms including effects on cell cycle, apoptosis and cell proliferation. Further analysis showed additional SDT successfully triggering reactive oxygen species (ROS) generation and mitochondrial membrane potential (MMP) reduction. Moreover, PBMCs exposed to TAM@BP-FA induced an antitumor immune response by natural killer (NK) cell upregulation and immunosuppression macrophage reduction.

The novel BP-based strategy not only delivers TAM specifically to tumor cells but also exhibits satisfactory antitumor effects through targeted therapy, SDT, and immune cell modulation. The nanoplatform may provide a superior synergistic strategy for breast cancer therapy.

论文信息

作者
Wang J、Chen W、Du W、Zhang H、Ilmer M、Song L、Hu Y、Ma X
单位
Department of General Surgery, The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, Anhui, 230001, People's Republic of China.China
期刊
International journal of nanomedicine2023
原文标识
PubMed 37192893 · DOI 10.2147/IJN.S406627