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3D 打印分级丝素蛋白结构。

3D Printing of Hierarchical Silk Fibroin Structures.

机构信息

Complex Materials, Department of Materials, ETH Zurich , 8093 Zurich, Switzerland.

出版信息

ACS Appl Mater Interfaces. 2016 Dec 21;8(50):34677-34685. doi: 10.1021/acsami.6b11440. Epub 2016 Dec 9.

DOI:10.1021/acsami.6b11440
PMID:27933765
Abstract

Like many other natural materials, silk is hierarchically structured from the amino acid level up to the cocoon or spider web macroscopic structures. Despite being used industrially in a number of applications, hierarchically structured silk fibroin objects with a similar degree of architectural control as in natural structures have not been produced yet due to limitations in fabrication processes. In a combined top-down and bottom-up approach, we exploit the freedom in macroscopic design offered by 3D printing and the template-guided assembly of ink building blocks at the meso- and nanolevel to fabricate hierarchical silk porous materials with unprecedented structural control. Pores with tunable sizes in the range 40-350 μm are generated by adding sacrificial organic microparticles as templates to a silk fibroin-based ink. Commercially available wax particles or monodisperse polycaprolactone made by microfluidics can be used as microparticle templates. Since closed pores are generated after template removal, an ultrasonication treatment can optionally be used to achieve open porosity. Such pore templating particles can be further modified with nanoparticles to create a hierarchical template that results in porous structures with a defined nanotopography on the pore walls. The hierarchically porous silk structures obtained with this processing technique can potentially be utilized in various application fields from structural materials to thermal insulation to tissue engineering scaffolds.

摘要

与许多其他天然材料一样,丝从氨基酸水平到茧或蜘蛛网宏观结构都具有层次结构。尽管在许多应用中已经在工业上使用了具有类似结构控制程度的分层结构丝素蛋白制品,但由于制造工艺的限制,仍然没有生产出具有类似天然结构的分层结构丝素蛋白制品。在自上而下和自下而上的综合方法中,我们利用 3D 打印在宏观设计方面提供的自由度和在介观和纳米尺度上的墨水构建块的模板引导组装,来制造具有前所未有的结构控制的分层丝多孔材料。通过向丝素蛋白基油墨中添加牺牲性有机微球作为模板,可以生成尺寸在 40-350 μm 之间可调的孔。可以使用市售的蜡颗粒或通过微流控技术制备的单分散聚己内酯作为微球模板。由于模板去除后会生成封闭的孔,因此可以选择进行超声处理以实现开孔率。可以进一步用纳米颗粒修饰这种孔模板化颗粒,以创建具有定义的纳米形貌的多孔结构的分层模板。通过这种处理技术获得的分层多孔丝结构可能会在从结构材料到隔热到组织工程支架等各种应用领域得到应用。

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