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拉曼光谱与聚(ε-己内酯)纳米复合膜的材料研究及在成骨样细胞中的生物相容性测试

Raman spectroscopy and the material study of nanocomposite membranes from poly(ε-caprolactone) with biocompatibility testing in osteoblast-like cells.

作者信息

Wesełucha-Birczyńska A, Swiętek M, Sołtysiak E, Galiński P, Płachta Ł, Piekara K, Błażewicz M

机构信息

Faculty of Chemistry, Jagiellonian University, Ingardena 3, 30-060 Kraków, Poland.

出版信息

Analyst. 2015 Apr 7;140(7):2311-20. doi: 10.1039/c4an02284j.

DOI:10.1039/c4an02284j
PMID:25679018
Abstract

Modern medical treatment can be improved by nanotechnology methods for preparing nanocomposites with novel physical, chemical and biological properties. The materials studied and analysed as membranes were produced from poly(ε-caprolactone) (PCL), which contained identical amounts of nano-additives, either montmorillonite (MMT) or functionalized multi-walled carbon nanotubes (MWCNT-f), while the reference membranes were obtained from unmodified PCL. In addition to the conventional methods used in the study of materials for medical purposes such as DSC, contact angle measurements, surface topography, Raman spectroscopy was also applied. Raman microspectroscopy can decode the phenomenon that occurs in the polymer in contact with the nanoparticles. Besides identifying the vibrations of certain functional groups, the calculation of crystallinity parameters is also possible, by which the most intense interactions within the nanocomposites can be analysed. The Raman studies indicate that each of the nano-additives reacts differently with the polymer matrix, which results in material properties that influence its biological properties. MWCNT-f interacts preferentially with the oxygen-containing groups, and particularly with the backbone regions in the vicinity of the single CO bond. The human osteoblast-like MG-63 cells, cultured on the PCL/MWCNT-f membrane for three days, show almost 100% viability.

摘要

通过纳米技术制备具有新颖物理、化学和生物学特性的纳米复合材料的方法,可以改进现代医学治疗。作为膜进行研究和分析的材料由聚(ε-己内酯)(PCL)制成,其中含有相同量的纳米添加剂,即蒙脱石(MMT)或功能化多壁碳纳米管(MWCNT-f),而参考膜则由未改性的PCL制成。除了用于医学目的材料研究的常规方法,如差示扫描量热法(DSC)、接触角测量、表面形貌分析外,还应用了拉曼光谱法。拉曼显微光谱法可以解读聚合物与纳米颗粒接触时发生的现象。除了识别某些官能团的振动外,还可以计算结晶度参数,通过该参数可以分析纳米复合材料中最强烈的相互作用。拉曼研究表明,每种纳米添加剂与聚合物基体的反应不同,这导致材料特性影响其生物学特性。MWCNT-f优先与含氧基团相互作用,特别是与单个C=O键附近的主链区域相互作用。在PCL/MWCNT-f膜上培养三天的人成骨样MG-63细胞显示出几乎100%的活力。

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