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首页> 外文期刊>Journal of biomedical nanotechnology >Ex Vivo Study of Telluride Nanowires in Minigut
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Ex Vivo Study of Telluride Nanowires in Minigut

机译:碲化物纳米线在微型纳米线研究

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摘要

Compound semiconductor nanomaterials, such as telluride nanowires, nanorods, and nanoparticles, have many unique properties for wide range of potential applications. The interaction between organoids (a biological system) and telluride nanowires is a crucial research area for human health in terms of its safety concerns. In this study, we demonstrated a case study on Bi2Te3 nanowires. Through live/dead cell viability testing, bright-light image analysis, and surface area calculations, we showed that 50 mu g/mL Bi2Te3 exerts minimum influence on shrinking crypts and disrupting lumen structure, which causes unhealthy growth. Within this optimal concentration, Bi2Te3 nanowires can stay as a stable and non-toxic material inside the intestine. Unlike the previous studies of the cytotoxicity of Telluride nanomaterials interacting with single type of cells, our research demonstrated the first study of the interactions of engineered Telluride nanomaterials with a real complex gastrointestinal tract system as our primary small intestinal crypts were directly isolated from mice and grew into a self-renewable system with various types of cells and different cell pathways, which has the capability to mimic a fully functional intestinal epithelium layer for a realistic study inside the gastrointestinal tract. Most importantly, we showed that Bi2Te3 nanowires, under infrared exposure, can act as a potential shield to stimulate cell viability and improve cell survivability.
机译:化合物半导体纳米材料,例如碲化酰纳米线,纳米棒和纳米颗粒,具有许多独特的特性,可用于广泛的潜在应用。有机体(生物系统)和碲化物纳米线之间的相互作用是在安全问题方面是人类健康的关键研究领域。在这项研究中,我们证明了对Bi2Te3纳米线的案例研究。通过实时/死池活力测试,亮光图像分析和表面积计算,我们显示50μmg/ ml Bi2te3对收缩隐窝的最小影响和破坏内腔结构,这导致不健康的生长。在这种最佳浓度内,Bi2Te3纳米线可以保持在肠内部的稳定和无毒的材料。与先前的研究与单型细胞相互作用的碲化纳米材料的细胞毒性不同,我们的研究表明,由于我们的原发性小肠隐窝与小鼠直接分离出来的真正复杂的胃肠道系统,首先研究了工程碲化肽纳米材料的相互作用。进入具有各种类型的细胞和不同细胞途径的自我可再生系统,其具有模拟胃肠道内部的现实研究的能力模仿全功能性肠上皮层。最重要的是,我们展示了Bi2te3纳米线,在红外线暴露下,可以充当潜在的屏蔽以刺激细胞活力并改善细胞生存性。

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