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聚(N-乙烯基己内酰胺)基微凝胶的尺寸、交联度和表面结构对其穿透多细胞肿瘤球体的影响。

Influence of size, crosslinking degree and surface structure of poly(N-vinylcaprolactam)-based microgels on their penetration into multicellular tumor spheroids.

机构信息

State Key Laboratory for Modification of Chemical Fiber and Polymer Materials, International Joint Laboratory for Advanced Fiber and Low-dimension Materials, College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, Shanghai 201620, People's Republic of China.

Functional and Interactive Polymers, Institute of Technical and Macromolecular Chemistry, RWTH Aachen University, Worringerweg 2, 52074, Aachen, Germany.

出版信息

Biomater Sci. 2019 Nov 1;7(11):4738-4747. doi: 10.1039/c9bm01132c. Epub 2019 Sep 10.

Abstract

Current nanomedicine suffers from a big challenge due to the fact that most of the nanocarrier systems lack the desired tumor penetration depth, thereby limiting their clinical translation. Unlike the nanomaterials with a similar size or shape, microgels display excellent softness, fluidity and deformability, as well as stimuli-responsiveness in the tumor microenvironment. Herein, we report the synthesis of temperature-responsive poly(N-vinylcaprolactam)/oligo (ethylene glycol) acrylate/glycidyl methacrylate (PVCL/OEGA/GMA) microgels with different hydrodynamic radii (100-500 nm), crosslinking densities, 2-methoxyethyl acrylate (MEA) contents and OEGA chain lengths using a precipitation polymerization method and the investigation of the microgels in terms of their tumor penetration capability using a multicellular tumor spheroid (MCTS) model. The prepared microgels were well characterized with different techniques. We show that regardless of the size, crosslinking density, MEA content and OEGA chain length, all microgels display the desired cytocompatibility in the given concentration range. In vitro cellular uptake data reveal that similar to 2-dimensional (2-D) adherent cells, microgels with a smaller size display more enhanced cellular uptake than those having a larger size in the 3-D MCTS model. Likewise, 3-D MCTS penetration results indicate that the PVCL/OEGA/GMA microgels with the smallest radius of 100 nm exhibit the deepest penetration length. We then selected the microgels with a radius of 200 nm but with different physicochemical parameters to investigate their cellular uptake and tumor penetration behavior. Our data show that microgels with varying crosslinking densities, MEA contents and OEGA chain lengths do not have any appreciable changes in terms of their cellular uptake and penetration in the 3-D MCTS model. Our study provides new insights for the design of different microgel-based systems for further cancer theranostic applications.

摘要

当前的纳米医学面临着一个巨大的挑战,因为大多数纳米载体系统缺乏理想的肿瘤穿透深度,从而限制了它们的临床转化。与具有相似尺寸或形状的纳米材料不同,微凝胶具有优异的柔软性、流动性和变形性,以及在肿瘤微环境中的刺激响应性。在此,我们报告了使用沉淀聚合方法合成具有不同水动力半径(100-500nm)、交联密度、2-甲氧基乙酯(MEA)含量和 OEGA 链长的温度响应性聚(N-乙烯基己内酰胺)/聚(乙二醇)丙烯酸酯/甲基丙烯酸缩水甘油酯(PVCL/OEGA/GMA)微凝胶,并使用多细胞肿瘤球体(MCTS)模型研究了微凝胶的肿瘤穿透能力。使用不同的技术对制备的微凝胶进行了很好的表征。我们表明,无论大小、交联密度、MEA 含量和 OEGA 链长如何,所有微凝胶在给定浓度范围内均表现出所需的细胞相容性。体外细胞摄取数据表明,与 2 维(2-D)贴壁细胞类似,在 3-D MCTS 模型中,较小尺寸的微凝胶比较大尺寸的微凝胶具有更高的细胞摄取能力。同样,3-D MCTS 穿透结果表明,具有最小半径为 100nm 的 PVCL/OEGA/GMA 微凝胶表现出最深的穿透长度。然后,我们选择了具有不同物理化学参数的半径为 200nm 的微凝胶来研究它们的细胞摄取和肿瘤穿透行为。我们的数据表明,具有不同交联密度、MEA 含量和 OEGA 链长的微凝胶在 3-D MCTS 模型中其细胞摄取和穿透行为没有任何明显变化。我们的研究为设计用于进一步癌症治疗应用的不同基于微凝胶的系统提供了新的见解。

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