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Biological Assessment of Laser-Synthesized Silicon Nanoparticles Effect in Two-Photon Photodynamic Therapy on Breast Cancer MCF-7 Cells

机译:激光合成硅纳米粒子效应对乳腺癌MCF-7细胞两光炎光动力疗法的生物学评估

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摘要

Driven by their distinctive physiological activities, biological properties and unique theranostic modalities, silicon nanoparticles (SiNPs) are one of the promising materials for the development of novel multifunctional nanoplatforms for biomedical applications. In this work, we assessed the possibility to use laser-synthesized Si NPs as photosensitizers in two-photon excited photodynamic therapy (TPE-PDT) modality. Herein, we used an easy strategy to synthesize ultraclean and monodispersed SiNPs using laser ablation and fragmentation sequences of silicon wafer in aqueous solution, which prevent any specific purification step. Structural analysis revealed the spherical shape of the nanoparticles with a narrow size distribution centered at the mean size diameter of 62 nm ± 0.42 nm, while the negative surface charge of −40 ± 0.3 mV ensured a great stability without sedimentation over a long period of time. In vitro studies on human cancer cell lines (breast and liver) and healthy cells revealed their low cytotoxicity without any light stimulus and their therapeutic potential under TPE-PDT mode at 900 nm with a promising cell death of 45% in case of MCF-7 breast cancer cells, as a consequence of intracellular reactive oxygen species release. Their luminescence emission inside the cells was clearly observed at UV-Vis region. Compared to Si nanoparticles synthesized via chemical routes, which are often linked to additional modules with photochemical and photobiological properties to boost photodynamic effect, laser-synthesized SiNPs exhibit promising intrinsic therapeutic and imaging properties to develop advanced strategy in nanomedicine field.
机译:由其独特的生理活性,生物学特性和独特的治疗方式,硅纳米颗粒(SINPS)是用于开发用于生物医学应用的新型多功能纳米片的有希望的材料之一。在这项工作中,我们评估了在双光子激发光动力疗法(TPE-PDT)模态中使用激光合成的Si NPS作为光敏剂的可能性。在此,我们使用了一种简单的策略来利用硅晶片在水溶液中的激光烧蚀和分段序列来合成超薄和单分散的SINP,这防止了任何特定的纯化步骤。结构分析揭示了纳米颗粒的球形形状,窄尺寸分布以平均直径为62nm±0.42nm,而-40±0.3mV的负面电荷确保了长时间内没有沉降的稳定性。对人类癌细胞系(乳腺和肝脏)和健康细胞的体外研究揭示了它们的低细胞毒性,在没有任何光刺激的情况下,在TPE-PDT模式下,在900nm下的治疗潜力,在MCF-7的情况下,有前景的细胞死亡为45%由于细胞内反应性氧物种释放的结果,乳腺癌细胞。在UV-Vis区清楚地观察到细胞内的发光发射。与通过化学途径合成的Si纳米颗粒相比,这通常与具有光化学和光生物学性质的另外的模块连接以提高光动力学效果,激光合成的SINPS表现出有希望的内在治疗和成像性质,以在纳米美床场中发育先进的策略。

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