Engineering biomaterials by inkjet printing of hydrogels with functional particulates.

Med-X Pub Date : 2024-01-01 Epub Date: 2024-07-03 DOI:10.1007/s44258-024-00024-4
Cih Cheng, Eric J Williamson, George T-C Chiu, Bumsoo Han
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Abstract

Hydrogels with particulates, including proteins, drugs, nanoparticles, and cells, enable the development of new and innovative biomaterials. Precise control of the spatial distribution of these particulates is crucial to produce advanced biomaterials. Thus, there is a high demand for manufacturing methods for particle-laden hydrogels. In this context, 3D printing of hydrogels is emerging as a promising method to create numerous innovative biomaterials. Among the 3D printing methods, inkjet printing, so-called drop-on-demand (DOD) printing, stands out for its ability to construct biomaterials with superior spatial resolutions. However, its printing processes are still designed by trial and error due to a limited understanding of the ink behavior during the printing processes. This review discusses the current understanding of transport processes and hydrogel behaviors during inkjet printing for particulate-laden hydrogels. Specifically, we review the transport processes of water and particulates within hydrogel during ink formulation, jetting, and curing. Additionally, we examine current inkjet printing applications in fabricating engineered tissues, drug delivery devices, and advanced bioelectronics components. Finally, the challenges and opportunities for next-generation inkjet printing are also discussed.

Graphical abstract:

通过喷墨打印带有功能微粒的水凝胶来制造生物材料。
含有微粒(包括蛋白质、药物、纳米粒子和细胞)的水凝胶有助于开发新型创新生物材料。精确控制这些微粒的空间分布对于生产先进的生物材料至关重要。因此,对含有颗粒的水凝胶的制造方法有很高的要求。在这种情况下,水凝胶的三维打印技术正成为制造众多创新生物材料的一种前景广阔的方法。在各种三维打印方法中,喷墨打印(即所谓的按需滴注(DOD)打印)因其能够以出色的空间分辨率构建生物材料而脱颖而出。然而,由于对打印过程中墨水行为的了解有限,其打印过程仍是通过试验和错误来设计的。本综述将讨论目前对含微粒水凝胶喷墨打印过程中的传输过程和水凝胶行为的理解。具体来说,我们回顾了在油墨配制、喷射和固化过程中水和微粒在水凝胶中的传输过程。此外,我们还考察了目前喷墨打印在制造工程组织、给药设备和先进生物电子元件方面的应用。最后,我们还讨论了下一代喷墨打印所面临的挑战和机遇:
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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