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Sphyga: a multiparameter open source tool for fabricating smart and tunable hydrogel microbeads

机译:Sphyga:用于制造智能和可调水凝胶微珠的多参数开源工具

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Hydrogel microbeads are used in many biological applications, particularly for cell, protein or drug encapsulation. Although there are several methods for fabricating microbeads with controlled shapes and dimensions, many are limited to a small range of materials or sizes. We describe a compact open source tool-the spherical hydrogel generator (Sphyga)-for the fabrication of highly reproducible hydrogel based microbeads with predictable shapes and diameters ranging from 100 to 2000 μm. The unique feature of the system is the ability to modulate multiple parameters independently, so as to create a wide range of working conditions for fabricating tailored microbeads. Hence, by combining the different fabrication parameters, hydrogel beads with chosen shapes, sizes and materials can be generated with Sphyga. A multiparameter working-window was obtained by fixing the concentration of the base material, alginate, and varying the viscosity of the solution along with Sphyga's fabrication parameters (needle size, external air pressure, and material outflow). To validate the multiparameter working window, components such as proteins, cells, dyes and nanoparticles were also used to fabricate composite microbeads. The results show that the architecture of hydrogel microbeads can be engineered by considering the viscosity of the initial solution, which depends principally on the pH and composition of alginate solution. Coupled with Sphyga's multiple working parameters, material viscosity can then be used to tune hydrogel domains and thereby generate complex biologically relevant microenvironments for many biomedical applications.
机译:水凝胶微珠可用于许多生物学应用,尤其是用于细胞,蛋白质或药物的封装。尽管有几种制造形状和尺寸可控的微珠的方法,但许多方法仅限于一小部分材料或尺寸。我们描述了一种紧凑的开源工具-球形水凝胶发生器(Sphyga)-用于制造具有可预测形状和直径范围从100到2000μm的高度可复制的基于水凝胶的微珠。该系统的独特功能是能够独立调节多个参数,从而为制造定制的微珠创造了广泛的工作条件。因此,通过组合不同的制造参数,可以使用Sphyga生成具有选定形状,尺寸和材料的水凝胶珠。通过固定基础材料,藻酸盐的浓度,并改变溶液的粘度以及Sphyga的制造参数(针头尺寸,外部气压和材料流出),可以获得多参数工作窗口。为了验证多参数工作窗口,还使用诸如蛋白质,细胞,染料和纳米粒子之类的成分来制造复合微珠。结果表明,可以通过考虑初始溶液的粘度来设计水凝胶微珠的结构,该粘度主要取决于pH值和藻酸盐溶液的组成。结合Sphyga的多个工作参数,然后可以使用材料粘度来调整水凝胶域,从而为许多生物医学应用生成复杂的生物学相关的微环境。

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