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微流控合成用于研究细胞-生物材料相互作用的复合十字梯度材料。

Microfluidic synthesis of composite cross-gradient materials for investigating cell-biomaterial interactions.

机构信息

Center for Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts 02115, USA.

出版信息

Biotechnol Bioeng. 2011 Jan;108(1):175-85. doi: 10.1002/bit.22901.

Abstract

Combinatorial material synthesis is a powerful approach for creating composite material libraries for the high-throughput screening of cell-material interactions. Although current combinatorial screening platforms have been tremendously successful in identifying target (termed "hit") materials from composite material libraries, new material synthesis approaches are needed to further optimize the concentrations and blending ratios of the component materials. Here we employed a microfluidic platform to rapidly synthesize composite materials containing cross-gradients of gelatin and chitosan for investigating cell-biomaterial interactions. The microfluidic synthesis of the cross-gradient was optimized experimentally and theoretically to produce quantitatively controllable variations in the concentrations and blending ratios of the two components. The anisotropic chemical compositions of the gelatin/chitosan cross-gradients were characterized by Fourier transform infrared spectrometry and X-ray photoelectron spectrometry. The three-dimensional (3D) porous gelatin/chitosan cross-gradient materials were shown to regulate the cellular morphology and proliferation of smooth muscle cells (SMCs) in a gradient-dependent manner. We envision that our microfluidic cross-gradient platform may accelerate the material development processes involved in a wide range of biomedical applications.

摘要

组合材料合成是一种强大的方法,可以用于创建复合材料库,以便高通量筛选细胞与材料的相互作用。虽然目前的组合筛选平台在从复合材料库中识别目标(称为“命中”)材料方面已经取得了巨大的成功,但需要新的材料合成方法来进一步优化成分材料的浓度和混合比例。在这里,我们使用微流控平台快速合成含有明胶和壳聚糖的交叉梯度的复合材料,以研究细胞-生物材料的相互作用。通过实验和理论优化了微流控合成交叉梯度的方法,以产生两种成分浓度和混合比例的定量可控变化。通过傅里叶变换红外光谱和 X 射线光电子能谱对明胶/壳聚糖交叉梯度的各向异性化学成分进行了表征。三维(3D)多孔明胶/壳聚糖交叉梯度材料显示出以梯度依赖的方式调节平滑肌细胞(SMC)的细胞形态和增殖。我们设想我们的微流控交叉梯度平台可以加速涉及广泛生物医学应用的材料开发过程。

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