用于高效清除腺病毒的三维打印高多孔功能材料

Benedikt Keitel, Sandra Dietl, Tom Philipp, Gregor Neusser, Christine Kranz, Harald Sobek, Boris Mizaikoff, Mehmet Dinc
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摘要

分层多孔丙烯酸酯基材料作为三维过滤材料非常有趣,例如用于从悬浮液中去除病毒。本文介绍了在基于液晶显示器(LCD)的三维打印中,通过聚合诱导相分离合成高多孔整体三维材料,用于高效清除人类腺病毒 5 型。分层多孔性可通过改变光固化树脂成分(即固有多孔性)和计算机辅助设计(即 "打印 "多孔性;微通道)进行调整。可实现具有高度复杂几何形状和结构特征的三维聚合物结构,其范围从≈20 纳米到厘米不等,可用于在实验室规模的流动方法中有效清除病毒。结合聚焦离子束/扫描电子显微镜层析成像和汞孔模拟技术,可提供有关固有孔径、孔径分布和孔隙互连性的详细信息,这对于此类功能性三维材料的性能至关重要。理论空隙率为 75% 的聚合物可捕获病毒,腺病毒的清除率≈70%。具有相同理论空隙体积和宏观设计但疏水性更强的聚合物只能捕获≈33%的病毒。通过调整可调插件的微通道,可实现 98% 的最佳腺病毒截留率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

3D‐Printed Highly Porous Functional Materials for the Efficient Removal of Adenovirus

3D‐Printed Highly Porous Functional Materials for the Efficient Removal of Adenovirus
Hierarchical porous acrylate‐based materials are highly interesting as 3D filter materials, such as for virus removal from suspensions. Here, the synthesis of highly porous monolithic 3D materials by polymerization‐induced phase separation in liquid crystal display (LCD) based 3D printing is presented for the efficient removal of human adenovirus type 5. The hierarchical porosity can be tuned via the variation of the photocurable resin composition (i.e., inherent porosity) and the computer‐aided design (i.e., “printed” porosity; microchannels). 3D polymer structures with highly intricate geometries and structural features ranging from ≈20 nm up to cm can be achieved, which can be used for effective virus removal in a laboratory‐scale flow‐through approach. Combined focused ion beam/scanning electron microscopy tomography and mercury porosimetry provide detailed information on the inherent pore size, pore size distribution, and pore interconnectivity, which is key for the performance of such functional 3D materials. Polymers with a theoretical void volume of 75% show virus capture with a removal efficiency of ≈70% of the adenovirus. Polymers with the same theoretical void volume and macroscopic design but a more hydrophobic nature captured only ≈33%. An optimized adenovirus retention of 98% is achieved by adjusting the microchannels of the tunable inserts.
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