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生物活性增强的表面贴剂结合的胶原蛋白-果胶水凝胶。

Bioactivity reinforced surface patch bound collagen-pectin hydrogel.

机构信息

Department of Applied Chemistry, Delhi Technological University, New Delhi, India.

Department of Applied Chemistry, Delhi Technological University, New Delhi, India; School of Physical Science, Jawaharlal Nehru University, New Delhi, India.

出版信息

Int J Biol Macromol. 2021 Mar 31;174:240-253. doi: 10.1016/j.ijbiomac.2021.01.166. Epub 2021 Jan 27.

Abstract

In this report, we discuss the design of a novel collagen/pectin (CP) hybrid composite hydrogel (CPBG) containing in-situ mineralized bioactive glass (BG) particles to simulate an integrative 3D cell environment. Systematic analysis of the CP sol revealed collagen and pectin molecules interacted regardless of both possessing similar net negative charge through the mechanism of surface patch binding interaction. Fourier transform infrared spectroscopy (FTIR) and thermogravimetric analysis (TGA) confirmed this associative interaction which resulted in the formation of a hybrid crosslinked network with the BG nanoparticles acting as pseudo crosslink junctions. Scanning Electron Microscopy (SEM), Energy Dispersive X-Ray Analysis (EDAX) and Transmission Electron Microscopy (TEM) results confirmed uniform mineralization of BG particles, and their synergetic interaction with the network. The in-vitro bioactivity tests on CPBG indicated the formation of bone-like hydroxyapatite (Ca(PO)(OH)) microcrystals on its surface after interaction with simulated body fluid. This hydrogel was loaded with a model antifungal drug amphotericin-B (AmB) and tested against Candida albicans. The AmB release kinetics from the hydrogel followed the Fickian mechanism and showed direct proportionality to gel swelling behavior. Rheological analysis revealed the viscoelastic compatibility of CPBG for the mechanical load bearing applications. Cell viability tests indicated appreciable compatibility of the hydrogel against U2OS and HaCaT cell lines. FDA/PI on the hydrogel portrayed preferential U2OS cell adhesion on hydrophobic hydroxyapatite layer compared to hydrophilic surfaces, thereby promising the regeneration of both soft and hard tissues.

摘要

在本报告中,我们讨论了一种新型的胶原蛋白/果胶(CP)杂化复合水凝胶(CPBG)的设计,该水凝胶含有原位矿化的生物活性玻璃(BG)颗粒,以模拟整合的 3D 细胞环境。对 CP 溶胶的系统分析表明,无论两者都具有相似的净负电荷,胶原蛋白和果胶分子都通过表面斑块结合相互作用的机制相互作用。傅里叶变换红外光谱(FTIR)和热重分析(TGA)证实了这种缔合相互作用,导致形成具有 BG 纳米颗粒作为伪交联结的杂化交联网络。扫描电子显微镜(SEM)、能谱分析(EDAX)和透射电子显微镜(TEM)结果证实了 BG 颗粒的均匀矿化及其与网络的协同相互作用。CPBG 的体外生物活性测试表明,与模拟体液相互作用后,其表面形成了类似骨的羟基磷灰石(Ca(PO)(OH))微晶。该水凝胶负载有模型抗真菌药物两性霉素 B(AmB),并针对白色念珠菌进行了测试。水凝胶中 AmB 的释放动力学遵循菲克定律机制,并与凝胶溶胀行为呈直接比例关系。流变分析表明 CPBG 具有粘弹性兼容性,可用于机械承重应用。细胞活力测试表明,水凝胶对 U2OS 和 HaCaT 细胞系具有相当的兼容性。水凝胶上的 FDA/PI 描绘了与亲水表面相比,疏水性羟基磷灰石层上 U2OS 细胞的优先粘附,从而有望再生软、硬组织。

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