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首页> 外文期刊>ACS nano >Optothermally Responsive Nanocomposite Generating Mechanical Forces for Cells Enabled by Few-Walled Carbon Nanotubes
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Optothermally Responsive Nanocomposite Generating Mechanical Forces for Cells Enabled by Few-Walled Carbon Nanotubes

机译:光热响应纳米复合材料产生的力由少壁碳纳米管的细胞的机械力。

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摘要

We have designed and fabricated a nanocomposite substrate that can deliver spatially and temporally defined mechanical forces onto cells. This nanocomposite substrate comprises a 1.5-mm-thick near-infrared (NIR) mechanoresponsive bottom layer of few-walled carbon nanotubes (FWCNTs) that are uniformly distributed and covalently connected to thermally responsive poly(N-isopropylacrylamide) and an approximately 0.15-mm-thick cell-seeding top layer of collagen-functionalized poly(acrylic acid)-co-poly(N-isopropylacrylamide) that interpenetrates into the bottom layer. Covalent coupling of all the components and uniform distribution of FWCNTs lead to a large local mechanoresponse. As an example, 50% change in strain at the point of irradiation on the order of 0.05 Hz can be produced reversibly under NIR stimulation with 0.02 wt % FWCNTs. We have further demonstrated that the mechanical strain imposed by NIR stimulation can be transmitted onto cells. Human fetal hepatocytes change shape with no sign of detrimental effect on cell viability. To the best of our knowledge, this is the first demonstration of a nanocomposite platform that can generate fast and controlled mechanical force to actuate cells. Since the amplitude, location, and timing of force can be controlled remotely with NIR, the nanocomposite substrate offers the potential to provide accurately designed force sequences for tissue engineering.
机译:我们设计和制造了一种可以在空间和时间上将机械力传递到细胞上的纳米复合材料基底。该纳米复合材料基板包含厚度为1.5毫米的近红外(NIR)机械响应底层的几壁碳纳米管(FWCNT),该壁均匀分布并共价连接至热响应性聚(N-异丙基丙烯酰胺)和约0.15 mm渗透到底层的胶原蛋白官能化聚(丙烯酸)-共聚(N-异丙基丙烯酰胺)的厚细胞播种顶层。所有组分的共价偶联和FWCNT的均匀分布会导致较大的局部机械响应。例如,在用0.02重量%的FWCNT在NIR刺激下,在辐照点处应变的50%变化可以可逆地产生,为0.05Hz。我们进一步证明了由NIR刺激施加的机械应变可以传递到细胞上。人胎儿肝细胞的形状发生改变,对细胞生存力没有有害影响的迹象。据我们所知,这是纳米复合材料平台的首次展示,该平台可以产生快速且受控的机械力来驱动细胞。由于可以使用NIR远程控制作用力的幅度,位置和时间,因此纳米复合材料基板可为组织工程提供精确设计的作用力序列。

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