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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Self-assembled structures of halloysite nanotubes: towards the development of high-performance biomedical materials
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Self-assembled structures of halloysite nanotubes: towards the development of high-performance biomedical materials

机译:Halloysite Nanotubes的自组装结构:朝向高性能生物医学材料的发展

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Halloysite nanotubes (HNTs), 1D natural tubular nanoparticles, exhibit a high aspect ratio, empty lumen, high adsorption ability, good biocompatibility, and high biosafety, which have attracted researchers' attention in applications of the biomedical area. HNTs can be readily dispersed in water due to their negatively charged surface and good hydrophilicity. The unique rod-like structure and surface properties give HNTs assembly ability into ordered hierarchical structures. In this review, the self-assembly approaches of HNTs including evaporation induced self-assembly by a "coffee-ring" mechanism, shear force induced self-assembly, and electric field force induced self-assembly were introduced. In addition, HNT self-assembly on polymeric substrates and biological substrates including hair, cells, and zebrafish embryos was discussed. These assembly processes are related to noncovalent interactions such as electrostatic, hydrogen bonding, and van der Waals forces or electron-transfer reactions. Moreover, the applications of self-assembled HNT patterns in biomedical areas such as capture of circulating tumor cells, guiding oriented cell growth, controlling cell germination, and delivery of drugs or nutrients were discussed and highlighted. Finally, challenges and future directions of assembly of HNTs were introduced. This review will inspire researchers in the design and fabrication of functional biodevices based on HNTs for tissue engineering, cancer diagnosis/therapy, and personal healthcare products.
机译:Halloysite Nanotubes(HNT),1D天然管状纳米粒子,表现出高纵横比,空腔,高吸附能力,良好的生物相容性,高生物相容性,吸引了研究人员对生物医学区域的应用中的关注。由于其带负电的表面和良好的亲水性,HNT可以容易地分散在水中。独特的杆状结构和表面性能使HNTS组装能力为有序的分层结构提供HNTS组装能力。在本文中,引入了通过“咖啡环”机构,剪切力诱导的自组装和电场力诱导自组装的蒸发诱导自组装的HNT的自组装方法。此外,讨论了HNT自组装在聚合物底物和包括毛发,细胞和斑马鱼胚的生物基质上。这些组装方法与非共价相互作用如静电,氢键和范德瓦尔斯力或电子转移反应有关。此外,探讨了诸如捕获循环肿瘤细胞的生物医学区域中的自组装HNT模式,引导导向细胞生长,控制细胞萌发和药物或营养素的递送,并突出显示。最后,介绍了HNT大会的挑战和未来方向。该审查将激发基于组织工程,癌症诊断/治疗和个人医疗产品的HNT的功能性生物设计的设计和制作研究人员。

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