“Double-punch” strategy against triple-negative breast cancer via a synergistic therapy of magneto-mechanical force enhancing NIR-II hypothermal ablation

三阴性乳腺癌 光热治疗 材料科学 乳腺癌 癌症研究 烧蚀 细胞内 癌症 光热效应 生物医学工程 生物物理学 纳米技术 医学 细胞生物学 生物 内科学
作者
Hui Du,Fang Yang,Chenyang Yao,Wenhao Lv,Hao Peng,Stefan G. Stanciu,Harald Stenmark,Young Min Song,Bo Jiang,Aiguo Wu
出处
期刊:Biomaterials [Elsevier]
卷期号:291: 121868-121868 被引量:16
标识
DOI:10.1016/j.biomaterials.2022.121868
摘要

Triple-negative breast cancer (TNBC) is a form of breast cancer that is more aggressive and harder to treat than others, with a higher probability of relapse. Its nefarious capabilities for migrating and invading other parts of the body together with the current lack of clinically established effective therapies account for a low survival rate. In this work, we demonstrate the in-tandem use of two complementary therapeutic routes to effectively combat TNBC. A versatile magnetic-photothermal converter (MPC) consisting of zinc-doped ferrite nanoparticles and polyethene glycol, is shown to display excellent therapeutic efficiency, being capable to fight TNBC via two distinct routes: magneto-mechanical force (MMF) and near-infrared-II (NIR-II) hypothermal ablation. The combined use of these two complementary and synergistic therapies, which are less aggressive to the human body compared to conventional chemotherapeutic approaches, results in the splendid suppression of TNBC migration and invasion. Remotely controlling the MPCs by an external magnetic field, results in cellular MMF effects that cause direct mechanical destruction to the cancer cell membrane, leading to its necrosis. Furthermore, the MMF disrupts intracellular lysosomes, thereby triggering the release of large amounts of protein hydrolases, which induce intracellular oxidative stress, and accelerate the induction of apoptosis. Complementing the therapeutic approach based on MMF, the excellent photothermal performance of the MPC in the NIR-II region (1064 nm) is exploited to enable effective hypothermal ablation of the tumours, which can be achieved in deep tissue layers. The proposed multifunctional nanocomposites, together with the demonstrated "double-punch" therapeutic approach, hold significant potential to pave the way for future cutting-edge weapons against the dreadful TNBC.
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