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首页> 外文期刊>ACS applied materials & interfaces >Fibroblast-Cytophilic and HeLa-Cytotoxic Dual Function Carbon Nanoribbon Network Platform
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Fibroblast-Cytophilic and HeLa-Cytotoxic Dual Function Carbon Nanoribbon Network Platform

机译:成纤维细胞 - 细胞蛋白和Hela-细胞毒性双重功能碳纳米布布网平台

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Carbon nanothaterials have emerged as a promising material in cancer diagnosis and therapy. Carbon nanomaterials/nanostructures (C-C molecular structure) act as a carrier/skeleton and require further surface modification through functionalization with chemicals or biomolecules to attain cell response. We report the synthesis of a novel, carbon nanoribbon network (CNRN) platform that possesses a combination of C-C and C-O bond architecture. The bioactive CNRN showed enhanced ability for cell adhesion. Most importantly, it induced opposite cell responses from healthy cells and cancerous cells, cytophilic to fibroblasts but cytotoxic to HeLa cells. Ultrafast laser ionization under ambient conditions transforms nonbioresponsive C-C bond of graphite to C-C and C-O bonds, forming a self-assembled CNRN platform. The morphology, nanochemistry, and functionality on modulating fibroblast and HeLa adhesion and proliferation of the fabricated CNRN platforms were investigated. The results of in vitro studies suggested that the CNRN platforms not only attracted but also actively accelerated the adhesion and proliferation of both fibroblasts and HeLa cells. The proliferation rate of fibroblasts and HeLa cells is 91 and 98 times greater compared with that of a native graphite substrate, respectively. The morphology of the cells over a period of 24 to 48 h revealed that the CNRN platform induced an apoptosis-like cytotoxic function on HeLa cells, whereas fibroblasts experienced a cytophilic effect and formed a tissuelike structure. The degree of cytotoxic or cytophilic effect can be further enhanced by adjusting parameters such as the ratio of C-C bonds to C-O bonds, the nanoribbon width, and the nanovoid porosity of the CNRN platforms, which could be tuned by careful control of laser ionization. In a nutshell, for the first time, pristine carbon nanostructures free from biochemical functionalization demonstrate dual function, cytophilic to fibroblast cells and cytotoxic to HeLa cells.
机译:碳纳米材料被出现为癌症诊断和治疗中有希望的材料。碳纳米材料/纳米结构(C-C分子结构)充当载体/骨架,并通过用化学物质或生物分子进行进一步的表面改性以获得细胞应答。我们报告了具有C-C和C-O键架构的组合的新型碳纳米布布网(CNRN)平台的合成。生物活性CNRN显示出细胞粘附能力的增强能力。最重要的是,它诱导了来自健康细胞和癌细胞的相对细胞应答,使细胞纤维细胞与成纤维细胞,但对Hela细胞进行细胞毒性。在环境条件下的超快激光电离将石墨的非偏见性C-C键转变为C-C和C-O键,形成自组装的CNRN平台。研究了调节成纤维细胞和HeLa粘附和制造的CNRN平台的增殖的形态学,纳米化学和功能。体外研究的结果表明,CNRN平台不仅被吸引,而且也积极加速了成纤维细胞和HELA细胞的粘附性和增殖。与天然石墨衬底的比较,成纤维细胞和HeLa细胞的增殖率分别与天然石墨衬底相比的91倍和98倍。在24至48小时的时间内细胞的形态表明,CNRN平台在HeLa细胞中诱导了凋亡样细胞毒性功能,而成纤维细胞经历过胞质效果并形成了一根无菌型结构。通过调节C-C键与C-O键的比率,纳米孔宽度和C-O键的比率,纳米孔宽度和纳米骨孔隙率的参数,可以进一步提高细胞毒性或脱菌效果的程度,这可以通过仔细控制激光电离来调用。在简而言之,首次原始碳纳米结构不含生化官能化,证明了对成纤维细胞和细胞毒性的双重功能,对Hela细胞进行了细胞毒性。

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