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Noble Hybrid Nanostructures as Efficient Anti-Proliferative Platforms for Human Breast Cancer Cell

机译:贵族杂种纳米结构作为人类乳腺癌细胞的有效抗增殖平台

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Nanomaterials have proven to possess great potential in biomaterials research. Recently, they have suggested considerable promise in cancer diagnosis and therapy. Among others, silicon (Si) nanomaterials have been extensively employed for various biomedical applications; however, the utilization of Si for cancer therapy has been limited to nanoparticles, and its potential as anticancer substrates has not been fully explored. Noble nanoparticles have also received considerable attention owing to unique anticancer properties to improve the efficiency of biomaterials for numerous biological applications. Nevertheless, immobilization and control over delivery of the nanoparticles have been challenge. Here, we develop hybrid nanoplatforms to efficiently hamper breast cancer cell adhesion and proliferation. Platforms are synthesized by femtosecond laser processing of Si into multiphase nanostructures, followed by sputter-coating with gold (Au)/gold-palladium (Au-Pd) nanoparticles. The performance of the developed platforms was then examined by exploring the response of normal fibroblast and metastatic breast cancer cells. Our results from the quantitative and qualitative analyses show a dramatic decrease in the number of breast cancer cells on the hybrid platform compared to untreated substrates. Whereas, fibroblast cells form stable adhesion with stretched and elongated cytoskeleton and actin filaments. The hybrid platforms perform as dual-acting cytophobic/cytostatic stages where Si nanostructures depress breast cancer cell adhesion while immobilized Au/Au-Pd nanoparticles are gradually released to affect any surviving cell on the nanostructures. The nanoparticles are believed to be taken up by breast cancer cells via endocytosis, which subsequently alter the cell nucleus and may cause cell death. The findings suggest that the density of nanostructures and concentration of coated nanoparticles play critical roles on cytophobic/cytostatic properties of the platforms on human breast cancer cells while having no or even cytophilic effects on fibroblast cells. Because of the remarkable contrary responses of normal and cancer cells to the proposed platform, we envision that it will provide novel applications in cancer research.
机译:纳米材料已被证明在生物材料研究中具有巨大的潜力。最近,他们提出了在癌症诊断和治疗中的巨大希望。其中,硅(Si)纳米材料已被广泛用于各种生物医学应用中。然而,硅在癌症治疗中的应用仅限于纳米颗粒,其作为抗癌底物的潜力尚未得到充分研究。贵族纳米颗粒还因其独特的抗癌性能而得到了相当大的关注,以提高生物材料在众多生物学应用中的效率。然而,固定和控制纳米颗粒的递送一直是挑战。在这里,我们开发了混合纳米平台来有效地阻止乳腺癌细胞的粘附和增殖。通过飞秒激光将Si加工成多相纳米结构,然后用金(Au)/金-钯(Au-Pd)纳米粒子进行溅射涂覆来合成平台。然后通过探索正常的成纤维细胞和转移性乳腺癌细胞的反应来检查开发平台的性能。我们的定量和定性分析结果表明,与未处理的底物相比,杂交平台上乳腺癌细胞的数量显着减少。而成纤维细胞则与伸长和伸长的细胞骨架和肌动蛋白丝形成稳定的粘附。混合平台起到双重作用,具有疏液/抑制细胞生长的双重作用,其中Si纳米结构抑制乳腺癌细胞的粘附,而固定化的Au / Au-Pd纳米颗粒则逐渐释放,从而影响纳米结构上任何存活的细胞。据信纳米颗粒通过内吞作用被乳腺癌细胞吸收,其随后改变细胞核并可能导致细胞死亡。这些发现表明,纳米结构的密度和包被的纳米颗粒的浓度对平台对人乳腺癌细胞的疏水/细胞抑制特性起关键作用,而对成纤维细胞则没有甚至具有亲细胞作用。由于正常细胞和癌细胞对提出的平台有显着的相反反应,我们预想它将在癌症研究中提供新的应用。

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