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用于控制细胞黏附、生长和脱落的温敏共聚物纳米薄膜。

Thermoresponsive copolymer nanofilms for controlling cell adhesion, growth, and detachment.

机构信息

Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology, Dalian 116024, China.

出版信息

Langmuir. 2010 Nov 16;26(22):17304-14. doi: 10.1021/la102411u. Epub 2010 Oct 21.

DOI:10.1021/la102411u
PMID:20964301
Abstract

This study reports the development and use of a novel thermoresponsive polymeric nanofilm for controlling cell adhesion and growth at 37 °C, and then cell detachment for cell recovery by subsequent temperature drop to the ambient temperature, without enzymatic cleavage or mechanical scraping. A copolymer, poly(N-isopropylacrylamide-co-hydroxypropyl methacrylate-co-3-(trimethoxysilyl)propyl methacrylate) (abbreviated PNIPAAm copolymer), was synthesized by free radical polymerization. The thermoresponses of the copolymer in aqueous solution were demonstrated by dynamic light scattering (DLS) through detecting the sensitive changes of copolymer aggregation against temperature. The DLS measurements revealed the lower critical solution temperature (LCST) at approximately 30 °C. The PNIPAAm film stability and robustness was provided through silyl cross-linking within the film and with the hydroxyl groups on the substrate surface. Film thickness, stability, and reversibility with respect to temperature switches were examined by spectroscopic ellipsometry (SE), atomic force microscopy (AFM), and contact angle measurements. The results confirmed the high extent of thermosensitivity and structural restoration based on the alterations of film thickness and surface wettability. The effective control of adhesion, growth, and detachment of HeLa and HEK293 cells demonstrated the physical controllability and cellular compatibility of the copolymer nanofilms. These PNIPAAm copolymer nanofilms could open up a convenient interfacial mediation for cell film production and cell expansion by nonenzymatic and nonmechanical cell recovery.

摘要

本研究报告了一种新型温敏聚合物纳米薄膜的开发和应用,该薄膜可在 37°C 时控制细胞黏附与生长,随后通过降温至环境温度实现细胞脱附,从而实现细胞回收,无需酶切或机械刮除。通过动态光散射(DLS)检测共聚物聚集对温度的敏感变化,证明了共聚物在水溶液中的温敏性。DLS 测量结果表明共聚物的低临界溶液温度(LCST)约为 30°C。通过薄膜内和基底表面上的羟基之间的硅烷基交联,提供了 PNIPAAm 薄膜的稳定性和坚固性。通过光谱椭圆术(SE)、原子力显微镜(AFM)和接触角测量,考察了薄膜的厚度、稳定性以及对温度变化的可逆性。结果证实了基于薄膜厚度和表面润湿性变化的高度热敏感性和结构恢复能力。HeLa 和 HEK293 细胞的黏附、生长和脱附的有效控制证明了共聚物纳米薄膜的物理可控性和细胞相容性。这些 PNIPAAm 共聚物纳米薄膜可为非酶和非机械细胞回收的细胞薄膜生产和细胞扩增提供一种方便的界面介导。

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