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Endocytic Uptake and Intracellular Trafficking of Bis-MPA-Based Hyperbranched Copolymer Micelles in Breast Cancer Cells

机译:乳腺癌细胞中基于Bis-MPA的超支化共聚物胶束的内吞摄取和细胞内贩运

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摘要

Dendrimers and their less well-defined cousins, hyperbranched polymers, are widely investigated as scaffold materials in tissue engineering, as drug delivery agents, and in diagnostic imaging applications. Despite the large interest of using these unique materials as polymer-based nanoparticles in biomedical applications, a clear understanding of the cellular uptake and transport of these polyester-based nanoparticles is still lacking. The objective of this study is to evaluate the cellulai uptake profiles and intracellular trafficking of polymer micelles built from the hyperbranched polyester Boltorn, fitted with poly(ethylene glycol) and fluorescent groups in MDA-MB468 breast cancer cells. Results show that the uptake of these nanoparticles correlated positively to both time and concentration, and that the uptake of the nanoparticles was energy dependent. These polyesterbased nanoparticles appear to translocate across cells via clathrin- and macropinocytosis-mediated endocytosis. Observations of the intracellular trafficking of the nanoparticles Indicate that particles could be released from early endosomes after being internalized, and the particles exhibit perinuclear localization. The uptake behavior of the nanoparticles was further evaluated in a range of cell lines. These results allow the generation of the knowledge base required to design polyester-based nanocarriers that can be used efficiently and specifically for drug delivery applications and imaging applications.
机译:树枝状大分子及其不太明确的表亲(超支化聚合物)已被广泛研究为组织工程中的支架材料,药物递送剂和诊断成像应用。尽管在生物医学应用中将这些独特的材料用作基于聚合物的纳米颗粒引起了极大的兴趣,但仍缺乏对这些基于聚酯的纳米颗粒的细胞摄取和转运的清晰了解。这项研究的目的是评估MDA-MB468乳腺癌细胞中由高支化聚酯Boltorn制成的聚合物胶束的纤维素吸收曲线和细胞内运输,该聚合物装有聚乙二醇和荧光基团。结果表明,这些纳米颗粒的摄取与时间和浓度均呈正相关,并且纳米颗粒的摄取与能量有关。这些基于聚酯的纳米颗粒似乎通过网格蛋白和大胞饮作用介导的内吞作用跨细胞转运。纳米颗粒在细胞内运输的观察结果表明,颗粒在被内化后可能会从早期的内体中释放出来,并且颗粒表现出核周定位。在一系列细胞系中进一步评估了纳米颗粒的摄取行为。这些结果使得生成设计基于聚酯的纳米载体所需的知识库成为可能,该纳米载体可以有效地用于药物输送应用和成像应用。

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