Magnetic manipulation for spatially patternel alginate hydrogel microfibers

Chengzhi Hu, M. Nakajima, Huaping Wang, Tao Yue, Yajing Shen, Masaru Takeuchi, Qiang Huang, M. Seki, T. Fukuda
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引用次数: 1

Abstract

Alginate hydrogel finds widespread applications in tissue engineering, cancer therapy, wound management and drug/cell/growth factor delivery due to its biocompatibility, hydrated environment and desirable viscoelastic properties. However Lack of controllability is still an obstacle for utilizing it in the fabrication of 3D tissue constructs and accurate targeting in mass delivery. Here, we proposed a new method for achieving magnetic alginate hydrogel microfiber by encapsulating magnetic nanoparticles inside alginate solution and solidifying the magnetic alginate into hydrogel fiber inside microfluidic chips and micro syringe system. The fabrication method for 3 layered microfluidic channel was given. In the experiments, the magnetic nanoparticles and alginate solution present to be a uniform suspension, no aggregation of magnetic nanoparticles was found, which is crucial for flow control inside microfluidic chips. By regulating the flow rate of different solutions inside the chip, magnetic hydrogel fiber and pure hydrogel fiber are achieved with controllable diameters. Patterning device and magnetic pillar were employed as a magnetic guidance to pattern and align the magnetic fibers. The proposed method for fabricating magnetic hydrogel fiber holds great potentials to engineer 3D tissue constructs with complex architectures and hierarchical vascular networks to mimic the native tissue microenvironment.
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空间模式海藻酸盐水凝胶微纤维的磁操纵
海藻酸盐水凝胶由于其生物相容性、水合环境和理想的粘弹性特性,在组织工程、癌症治疗、伤口管理和药物/细胞/生长因子输送方面有着广泛的应用。然而,缺乏可控性仍然是利用它制造三维组织结构和精确定位的障碍。本文提出了一种磁性藻酸盐水凝胶微纤维的制备方法,将磁性纳米颗粒包埋在藻酸盐溶液中,并将磁性藻酸盐固化在微流控芯片和微注射器系统中的水凝胶纤维中。给出了三层微流控通道的制备方法。在实验中,磁性纳米颗粒与海藻酸盐溶液呈均匀悬浮,没有发现磁性纳米颗粒的聚集,这对微流控芯片内部的流动控制至关重要。通过调节芯片内不同溶液的流速,实现磁性水凝胶纤维和纯水凝胶纤维的直径可控。采用图纹装置和磁柱作为磁导,对磁性纤维进行图纹和排列。所提出的制备磁性水凝胶纤维的方法在设计具有复杂结构和分层血管网络的3D组织结构以模拟天然组织微环境方面具有很大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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