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具有可调物理和机械性能的改性结冷胶水凝胶。

Modified Gellan Gum hydrogels with tunable physical and mechanical properties.

机构信息

3B's Research Group, Biomaterials, Biodegradables and Biomimetics, Dept. of Polymer Engineering, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, AvePark, Taipas, 4806-909 Guimarães, Portugal.

出版信息

Biomaterials. 2010 Oct;31(29):7494-502. doi: 10.1016/j.biomaterials.2010.06.035.

Abstract

Gellan Gum (GG) has been recently proposed for tissue engineering applications. GG hydrogels are produced by physical crosslinking methods induced by temperature variation or by the presence of divalent cations. However, physical crosslinking methods may yield hydrogels that become weaker in physiological conditions due to the exchange of divalent cations by monovalent ones. Hence, this work presents a new class of GG hydrogels crosslinkable by both physical and chemical mechanisms. Methacrylate groups were incorporated in the GG chain, leading to the production of a methacrylated Gellan Gum (MeGG) hydrogel with highly tunable physical and mechanical properties. The chemical modification was confirmed by proton nuclear magnetic resonance (1H NMR) and Fourier transform infrared spectroscopy (FTIR-ATR). The mechanical properties of the developed hydrogel networks, with Young's modulus values between 0.15 and 148 kPa, showed to be tuned by the different crosslinking mechanisms used. The in vitro swelling kinetics and hydrolytic degradation rate were dependent on the crosslinking mechanisms used to form the hydrogels. Three-dimensional (3D) encapsulation of NIH-3T3 fibroblast cells in MeGG networks demonstrated in vitro biocompatibility confirmed by high cell survival. Given the highly tunable mechanical and degradation properties of MeGG, it may be applicable for a wide range of tissue engineering approaches.

摘要

结冷胶(GG)最近被提议用于组织工程应用。GG 水凝胶是通过物理交联方法生产的,这些方法是通过温度变化或二价阳离子的存在诱导的。然而,物理交联方法可能会导致水凝胶在生理条件下变得较弱,因为二价阳离子会被单价阳离子取代。因此,本工作提出了一类新的 GG 水凝胶,可通过物理和化学机制交联。甲基丙烯酰基被引入 GG 链中,导致生产出具有高度可调物理和机械性能的甲基丙烯酰化结冷胶(MeGG)水凝胶。质子核磁共振(1H NMR)和傅里叶变换红外光谱(FTIR-ATR)证实了化学修饰。所开发的水凝胶网络的机械性能,杨氏模量值在 0.15 到 148 kPa 之间,显示出可通过使用的不同交联机制进行调节。体外溶胀动力学和水解降解速率取决于用于形成水凝胶的交联机制。MeGG 网络中 NIH-3T3 成纤维细胞的三维(3D)封装在体外表现出生物相容性,高细胞存活率得到证实。鉴于 MeGG 具有高度可调的机械和降解性能,它可能适用于广泛的组织工程方法。

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