Instability-Driven 3D bioprinting for engineering composite bio-inks

Q1 Medicine Engineered regeneration Pub Date : 2023-12-30 DOI:10.1016/j.engreg.2023.12.004
Jing Ma , Cheng Qi , Zhou Liu , Si Meng , Tiantian Kong
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引用次数: 0

Abstract

Extrusion-based 3D bioprinting techniques are revolutionizing bioengineering by facilitating the creation of complex 3D microstructures. This review offers a thorough overview of extrusion-based 3D bioprinting methods, particularly highlighting the innovative electric-assisted coil-write 3D bioprinting technology. The review begins by explicating the fundamental principles underlying various extrusion-based 3D bioprinting technologies. It covers the printing equipment composition, suitable materials for 3D bioprinting, and the latest breakthroughs in technology. A critical aspect of this review is the in-depth comparison of the strengths and weaknesses associated with each 3D bioprinting approach. The electro-microfluidic extrusion method and the electric-assisted coil-write 3D bioprinting technology are highlighted. This advanced technology successfully overcomes the limitations of conventional extrusion-based methods, notably in the precise printing of intricately curved line structures with high resolution and speed. This method ingeniously integrates mechanical motion for creating microscale features with electrical coiling for sub-micron details, thus achieving remarkable printing speeds and structural complexity. This review concludes by exploring the potential applications and future advancements of this state-of-the-art technology. It underscores the ability of electric-assisted coil-write 3D bioprinting to develop pioneering materials and micro-devices for a variety of technological sectors, highlighting its transformative impact in bioengineering.

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用于工程复合生物墨水的不稳定性驱动三维生物打印技术
基于挤压的三维生物打印技术通过促进复杂三维微结构的创建,正在为生物工程带来革命性的变化。本综述全面概述了基于挤压的三维生物打印方法,特别强调了创新的电动辅助线圈写入三维生物打印技术。综述首先阐述了各种基于挤压的三维生物打印技术的基本原理。它涵盖了打印设备的组成、适合三维生物打印的材料以及最新的技术突破。本综述的一个重要方面是深入比较了每种三维生物打印方法的优缺点。其中重点介绍了电-微流体挤压法和电辅助线圈写入三维生物打印技术。这种先进的技术成功克服了传统挤压法的局限性,尤其是能以高分辨率和高速度精确打印出复杂的弯曲线条结构。这种方法巧妙地将用于创建微米级特征的机械运动与用于亚微米级细节的电子卷绕结合在一起,从而实现了出色的打印速度和结构复杂性。本综述最后探讨了这一先进技术的潜在应用和未来发展。它强调了电辅助线圈写入三维生物打印技术为各种技术领域开发先锋材料和微型设备的能力,突出了其在生物工程领域的变革性影响。
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来源期刊
Engineered regeneration
Engineered regeneration Biomaterials, Medicine and Dentistry (General), Biotechnology, Biomedical Engineering
CiteScore
22.90
自引率
0.00%
发文量
0
审稿时长
33 days
期刊最新文献
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