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一步法在微流控装置中合成壳聚糖-二氧化硅杂化微球。

One-step synthesis of chitosan-silica hybrid microspheres in a microfluidic device.

机构信息

The State Key Lab of Chemical Engineering, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.

出版信息

Biomed Microdevices. 2010 Dec;12(6):1087-95. doi: 10.1007/s10544-010-9463-9.

Abstract

This article describes a simple microfluidic method to fabricate chitosan-silica hybrid microspheres in one step. We dissolved tetraethoxysilane (TEOS) into a chitosan/acetic acid aqueous solution to form a chitosan-silica sol, and then emulsified it in an organic phase mainly containing n-octanol and an organic base triotylamine (TOA) via a co-axial microfluidic device. The formed aqueous droplets were solidified because of the extraction of acetic acid and water to the organic phase. The simple method presented has the advantages of controllable sphere diameter, narrow size distribution and good sphericity. The porous structures of the microspheres were displayed by SEM images. It is found that the inner and surface structures can be controlled by adjusting the solidification reagent component. Furthermore, we chemically grafted bovine serum albumin (BSA) on the microspheres. The existence of silica in the chitosan spheres can enhance both of mechanical intensity and protein loading capacity of the microspheres.

摘要

本文描述了一种一步法制备壳聚糖-二氧化硅杂化微球的简单微流控方法。我们将正硅酸乙酯(TEOS)溶解在壳聚糖/乙酸水溶液中形成壳聚糖-二氧化硅溶胶,然后通过同轴微流控装置将其乳化在主要含有正辛醇和有机碱三辛胺(TOA)的有机相中。形成的水相液滴由于乙酸和水被萃取到有机相中而固化。所提出的简单方法具有可控的球径、较窄的粒径分布和良好的球形度的优点。微球的多孔结构通过 SEM 图像显示。结果发现,通过调整固化试剂的组成可以控制微球的内、表面结构。此外,我们还将牛血清白蛋白(BSA)化学接枝到微球上。壳聚糖球中的二氧化硅可以提高微球的机械强度和蛋白质负载能力。

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