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首页> 外文期刊>ACS nano >Size-dependent cellular uptake and expulsion of single-walled carbon nanotubes: Single particle tracking and a generic uptake model for nanoparticles
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Size-dependent cellular uptake and expulsion of single-walled carbon nanotubes: Single particle tracking and a generic uptake model for nanoparticles

机译:单壁碳纳米管的尺寸依赖性细胞吸收和排出:单粒子跟踪和纳米粒子的通用吸收模型

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The cellular uptake and expulsion rates of length-fractionated single-walled carbon nanotubes (SWNT) from 130 to 660 nm in NIH-3T3 cells were measured via single particle tracking of their intrinsic photoluminescence. We develop a quantitative model to correlate endocytosis rate with nanoparticle geometry that accurately describes this data set and also literature results for Au nanoparticles. The model asserts that nanoparticles cluster on the cell membrane to form a size sufficient to generate a large enough enthalpic contribution via receptor ligand interactions to overcome the elastic energy and entropie barriers associated with vesicle formation. Interestingly, the endocytosis rate constant of SWNT (10~(-3) min~(-1)) is found to be nearly 1000 times that of Au nanoparticles (10~(-6) min ~(-1)) but the recycling (exocytosis) rate constants are similar in magnitude (10~(-4) to 10~(-3) min~(-1)) for poly(D,L-lactide-co-glycolide), SWNT, and Au nanoparticles across distinct cell lines. The total uptake of both SWNT and Au nanoparticles is maximal at a common radius of 25 nm when scaled using an effective capture dimension for membrane diffusion. The ability to understand and predict the cellular uptake of nanoparticles quantitatively should find utility in designing nanosystems with controlled toxicity, efficacy, and functionality.
机译:通过单粒子跟踪其固有的光致发光,测量了NIH-3T3细胞中130至660 nm的长度分级的单壁碳纳米管(SWNT)的细胞吸收和排出速率。我们开发了一种定量模型,以将胞吞率与纳米颗粒的几何形状相关联,以准确描述此数据集以及Au纳米颗粒的文献结果。该模型断言,纳米粒子聚集在细胞膜上,形成的大小足以通过受体配体相互作用产生足够大的焓贡献,从而克服与囊泡形成相关的弹性能和熵屏障。有趣的是,SWNT(10〜(-3)min〜(-1))的内吞速率常数约为金纳米颗粒(10〜(-6)min〜(-1))的内吞速率的1000倍,但再循环(胞吐)速率常数的大小(10,(-4)至10,(-3)min,(-1))在聚(D,L-丙交酯-乙交酯共聚乙交酯),SWNT和Au纳米颗粒上的大小相似不同的细胞系。当使用有效的捕获尺寸进行膜扩散时,SWNT和Au纳米颗粒的总摄取在25 nm的共同半径处最大。定量了解和预测纳米颗粒对细胞摄取的能力应在设计具有可控毒性,功效和功能的纳米系统中找到实用性。

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