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A Futuristic Development in 3D Printing Technique Using Nanomaterials with a Step Toward 4D Printing

机译:使用纳米材料的 3D 打印技术的未来发展向 4D 打印迈进

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摘要

3D bioprinting has shown great promise in tissue engineering and regenerative medicine for creating patient-specific tissue scaffolds and medicinal devices. The quickness, accurate imaging, and design targeting of this emerging technology have excited biomedical engineers and translational medicine researchers. Recently, scaffolds made from 3D bioprinted tissue have become more clinically effective due to nanomaterials and nanotechnology. Because of quantum confinement effects and high surface area/volume ratios, nanomaterials and nanotechnological techniques have unique physical, chemical, and biological features. The use of nanomaterials and 3D bioprinting has led to scaffolds with improved physicochemical and biological properties. Nanotechnology and nanomaterials affect 3D bioprinted tissue engineered scaffolds for regenerative medicine and tissue engineering. Biomaterials and cells that respond to stimuli change the structural shape in 4D bioprinting. With such dynamic designs, tissue architecture can change morphologically. New 4D bioprinting techniques will aid in bioactuation, biorobotics, and biosensing. The potential of 4D bioprinting in biomedical technologies is also discussed in this article.
机译:3D 生物打印在组织工程和再生医学领域显示出巨大的前景,可用于创建患者特定的组织支架和药物设备。这项新兴技术的快速性、准确成像和设计针对性让生物医学工程师和转化医学研究人员兴奋不已。最近,由于纳米材料和纳米技术,由 3D 生物打印组织制成的支架在临床上变得更加有效。由于量子限制效应和高表面积/体积比,纳米材料和纳米技术技术具有独特的物理、化学和生物特性。纳米材料和 3D 生物打印的使用导致支架具有更好的物理化学和生物特性。纳米技术和纳米材料影响着用于再生医学和组织工程的 3D 生物打印组织工程支架。在 4D 生物打印中,对刺激做出反应的生物材料和细胞会改变结构形状。通过这种动态设计,组织结构可以在形态上发生变化。新的 4D 生物打印技术将有助于生物驱动、生物机器人和生物传感。本文还讨论了 4D 生物打印在生物医学技术中的潜力。

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