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使用低成本的 LCD 3D 打印机进行高分辨率增材制造可生物降解弹性体。

High-Resolution Additive Manufacturing of a Biodegradable Elastomer with A Low-Cost LCD 3D Printer.

机构信息

Biomedical Engineering Department, McGill University, Montreal, QC, H3A 0G4, Canada.

McGill Genome Centre, McGill University, Montreal, QC, H3A 0G4, Canada.

出版信息

Adv Healthc Mater. 2024 Apr;13(9):e2303708. doi: 10.1002/adhm.202303708. Epub 2023 Dec 7.

Abstract

Artificial organs and organs-on-a-chip (OoC) are of great clinical and scientific interest and have recently been made by additive manufacturing, but depend on, and benefit from, biocompatible, biodegradable, and soft materials. Poly(octamethylene maleate (anhydride) citrate (POMaC) meets these criteria and has gained popularity, and as in principle, it can be photocured and is amenable to vat-photopolymerization (VP) 3D printing, but only low-resolution structures have been produced so far. Here, a VP-POMaC ink is introduced and 3D printing of 80 µm positive features and complex 3D structures is demonstrated using low-cost (≈US$300) liquid-crystal display (LCD) printers. The ink includes POMaC, a diluent and porogen additive to reduce viscosity within the range of VP, and a crosslinker to speed up reaction kinetics. The mechanical properties of the cured ink are tuned to match the elastic moduli of different tissues simply by varying the porogen concentration. The biocompatibility is assessed by cell culture which yielded 80% viability and the potential for tissue engineering illustrated with a 3D-printed gyroid seeded with cells. VP-POMaC and low-cost LCD printers make the additive manufacturing of high resolution, elastomeric, and biodegradable constructs widely accessible, paving the way for a myriad of applications in tissue engineering and 3D cell culture as demonstrated here, and possibly in OoC, implants, wearables, and soft robotics.

摘要

人工器官和器官芯片(OoC)具有重要的临床和科学意义,最近已经通过增材制造来实现,但它们依赖于生物相容性、可生物降解和柔软的材料,并从中受益。聚(辛烷马来酸酐(酸酐)柠檬酸酯(POMaC)符合这些标准,已经得到了广泛的应用,而且原则上它可以光固化,并适用于立体平版印刷法(VP)3D 打印,但迄今为止仅生产了低分辨率的结构。在这里,介绍了一种 VP-POMaC 墨水,并使用低成本(约 300 美元)的液晶显示器(LCD)打印机演示了 80µm 正特征和复杂 3D 结构的 VP 3D 打印。该墨水包括 POMaC、一种稀释剂和一种致孔剂添加剂,以在 VP 范围内降低粘度,并使用一种交联剂来加速反应动力学。通过改变致孔剂的浓度来调整固化墨水的机械性能,使其与不同组织的弹性模量相匹配。通过细胞培养评估生物相容性,细胞活力达到 80%,通过 3D 打印的具有细胞接种的胞状结构说明了其在组织工程中的应用潜力。VP-POMaC 和低成本的 LCD 打印机使得高分辨率、弹性和可生物降解的构建体的增材制造变得广泛可用,为组织工程和 3D 细胞培养中的各种应用铺平了道路,如这里所示,并且可能在 OoC、植入物、可穿戴设备和软机器人中也有应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a258/11468968/0f029e56a867/ADHM-13-2303708-g002.jpg

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