首页> 外文期刊>Applied Surface Science >Differential cellular interactions and responses to ultrathin micropatterned graphene oxide arrays with or without ordered in turn RGD peptide films
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Differential cellular interactions and responses to ultrathin micropatterned graphene oxide arrays with or without ordered in turn RGD peptide films

机译:差分细胞相互作用和对超薄微肽的石墨烯氧化物阵列的反应,或者不依次排序RGD肽膜

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摘要

Owing to the surface interactions at the biomaterial-cell interface inevitable for improved cellular functions, a variety of efforts has been made for the development of the physical and chemical strategies to synchronize and adjust cellular behaviors by utilizing the micro/nanopatterned structures. As one of the most recent emerging nanomaterials, graphene oxide (GO) or reduced GO has increasingly utilized as biocompatible scaffolds, antibacterial films, and biosensor platforms. Here, we report a simple fabrication method for the alternately patterned arrays of the arginine-glycine-aspartic acid (RGD) peptide and GO (RGD/GO) on a single substrate of glass via a sequential process of self-assembly. The responses of fibroblasts to the nanoscopic topographical cues and their preference were explored on the well-separated GO microstructures with or without micropatterned RGD stripes. When separately cultured on those two different arrays of GO and RGD/GO micropatterns, the cells expressed noticeable discrimination in cellular behaviors such as the adhesion, localized population and alignment, and proliferation, according to the presence and absence of alternate RGD patterns. It was also revealed that the GO surface exhibits preferable interactions with cells through the developed focal adhesion sites to the RGD surface. Conclusively, our findings suggest that alternate micropatterns of RGD peptide and graphene family nanomaterials (i.e., GO) may not only be employed for an analyzing device to precisely control the cell migration/motility but also applied in a biosensor interface for electrochemical detection and analysis of cellular responsiveness under a specific external stimulus.
机译:由于生物材料界面的表面相互作用不可避免地用于改善蜂窝功能,因此通过利用微/纳米透明理由结构来开发物理和化学策略来发展和调节蜂窝行为的各种努力。作为最新的新兴纳米材料之一,石墨烯氧(GO)或降低越来越多地用于生物相容性支架,抗菌膜和生物传感器平台。这里,我们通过一系列自组装的顺序过程报告了一种用于精氨酸 - 甘氨酸 - 天冬氨酸(RGD)肽(RGD)肽(RGD)肽的交替图案化阵列的简单制造方法,并通过自组装的顺序过程在玻璃的单个基板上进行(RGD / GO)。成纤维细胞对纳米镜的地形提示的反应及其偏好在具有或没有微图示的RGD条纹的分离良好的GO微结构上探索。当在这两个不同的GO和RGD / GO MICROPATTERN上分别培养时,细胞在诸如替代RGD图案的存在和不存在的粘合性,局部群体和对准和增殖之类的细胞行为中表达显着的判断。还揭示了去表面通过发育的焦粘性位点与RGD表面表现出与细胞的优选相互作用。我们发现,我们的研究结果表明RGD肽和石墨烯家族纳米材料(即,GO)的替代微型图案可能不仅可以用于分析装置,以精确地控制细胞迁移/运动,而且还应用于用于电化学检测和分析的生物传感器界面中特定外部刺激下的细胞响应性。

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  • 来源
    《Applied Surface Science》 |2021年第30期|150115.1-150115.10|共10页
  • 作者单位

    Pusan Natl Univ Dept Cognomechatron Engn Dept Opt & Mechatron Engn 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea;

    Pusan Natl Univ Dept Cognomechatron Engn Dept Opt & Mechatron Engn 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea;

    Pusan Natl Univ Dept Cognomechatron Engn Dept Opt & Mechatron Engn 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea;

    Pusan Natl Univ Res Ctr Dielect & Adv Matter Phys 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea;

    Pusan Natl Univ Dept Cognomechatron Engn Dept Opt & Mechatron Engn 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea|Pusan Natl Univ BioIT Foundry Technol Inst 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea;

    Pusan Natl Univ Dept Cognomechatron Engn Dept Opt & Mechatron Engn 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea|Pusan Natl Univ Res Ctr Dielect & Adv Matter Phys 2 Busandaehak Ro 63Beon Gil Busan 46241 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Micropatterned arrays; Graphene oxide; RGD peptide; Cellular behaviors; Cells on chips;

    机译:微图案阵列;石墨烯氧化物;RGD肽;蜂窝行为;芯片上的细胞;

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