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Harmonizing HeLa cell cytoskeleton behavior by multi-Ti oxide phased nanostructure synthesized through ultrashort pulsed laser

机译:超短脉冲激光合成的多氧化钛相控纳米结构协调HeLa细胞骨架行为

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Knowledge about cancer cell behavior on heterogeneous nanostructures is relevant for developing a distinct biomaterial that can actuate cancer cells. In this manuscript, we have demonstrated a harmonized approach of forming multi Ti-oxide phases in a nanostructure (MTOP nanostructure) for its unique cancer cell controlling behavior.Conventionally, single phases of TiO2 are used for targeted therapy and as drug carrier systems.In this research, we have shown a biomaterial that can control HeLa cells diligently using a combination of TiO, Ti3O and TiO2 phases when compared to fibroblast (NIH3T3) cells.MTOP-nanostructures are generated by varying the ionization energy in the vapor plume of the ultrashort pulse laser; this interaction with the material allows accurate tuning and composition of phases within the nanostructure. In addition, the lattice spacing of MTOP-nanostructures was analyzed as shown by HR-TEM investigations. An FESEM investigation of MTOP-nanostructures revealed a greater reduction of HeLa cells relative to fibroblast cells. Altered cell adhesion was followed by modulation of HeLa cell architecture with a significant reduction of actin stress fibers.The intricate combination of MTOP-nanostructures renders a biomaterial that can precisely alter HeLa cell but not fibroblast cell behavior, filling a void in the research for a biomaterial to modulate cancer cell behavior.
机译:关于癌细胞在异质纳米结构上的行为的知识与开发可以激活癌细胞的独特生物材料有关。在本手稿中,我们展示了一种在纳米结构(MTOP纳米结构)中形成多种Ti-氧化物相的统一方法,以实现其独特的癌细胞控制行为。传统上,将TiO 2 的单相用于靶向在这项研究中,我们显示了一种生物材料,与成纤维细胞(NIH3T3)细胞相比,可以通过TiO,Ti3O和TiO2相的组合来勤奋地控制HeLa细胞.MTOP纳米结构是通过改变电离而产生的超短脉冲激光蒸气羽中的能量;与材料的这种相互作用允许在纳米结构内精确调整和合成相。此外,如HR-TEM研究所示,分析了MTOP纳米结构的晶格间距。 FESEM对MTOP纳米结构的研究表明,相对于成纤维细胞,HeLa细胞的减少更大。改变细胞黏附力后,通过调节肌动蛋白应力纤维来显着减少HeLa细胞结构。MTOP-纳米结构的复杂结合提供了一种可以精确改变HeLa细胞但不能改变成纤维细胞行为的生物材料,填补了研究空白。生物材料来调节癌细胞的行为。

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