3D/4D printed bio-piezoelectric smart scaffolds for next-generation bone tissue engineering

IF 16.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING International Journal of Extreme Manufacturing Pub Date : 2023-05-24 DOI:10.1088/2631-7990/acd88f
Annan Chen, Jin Su, Yinjin Li, Haibo Zhang, Yusheng Shi, C. Yan, Jian Lu
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引用次数: 11

Abstract

Piezoelectricity in native bones has been well recognized as the key factor in bone regeneration. Thus, bio-piezoelectric materials have gained substantial attention in repairing damaged bone by mimicking the tissue’s electrical microenvironment (EM). However, traditional manufacturing strategies still encounter limitations in creating personalized bio-piezoelectric scaffolds, hindering their clinical applications. Three-dimensional (3D)/four-dimensional (4D) printing technology based on the principle of layer-by-layer forming and stacking of discrete materials has demonstrated outstanding advantages in fabricating bio-piezoelectric scaffolds in a more complex-shaped structure. Notably, 4D printing functionality-shifting bio-piezoelectric scaffolds can provide a time-dependent programmable tissue EM in response to external stimuli for bone regeneration. In this review, we first summarize the physicochemical properties of commonly used bio-piezoelectric materials (including polymers, ceramics, and their composites) and representative biological findings for bone regeneration. Then, we discuss the latest research advances in the 3D printing of bio-piezoelectric scaffolds in terms of feedstock selection, printing process, induction strategies, and potential applications. Besides, some related challenges such as feedstock scalability, printing resolution, stress-to-polarization conversion efficiency, and non-invasive induction ability after implantation have been put forward. Finally, we highlight the potential of shape/property/functionality-shifting smart 4D bio-piezoelectric scaffolds in bone tissue engineering (BTE). Taken together, this review emphasizes the appealing utility of 3D/4D printed biological piezoelectric scaffolds as next-generation BTE implants.
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3D/4D打印生物压电智能支架用于下一代骨组织工程
原生骨的压电性已被公认为是骨再生的关键因素。因此,生物压电材料通过模拟组织的电微环境(EM)在修复受损骨方面得到了广泛的关注。然而,传统的制造策略在制造个性化生物压电支架方面仍然存在局限性,阻碍了其临床应用。基于离散材料逐层成形和堆叠原理的三维/四维打印技术在制造更复杂形状结构的生物压电支架方面具有突出的优势。值得注意的是,4D打印功能转移生物压电支架可以为响应外部刺激的骨骼再生提供时间依赖的可编程组织EM。在这篇综述中,我们首先总结了常用的生物压电材料(包括聚合物、陶瓷及其复合材料)的物理化学性质以及在骨再生方面具有代表性的生物学发现。然后,我们从原料选择、打印工艺、诱导策略和潜在应用等方面讨论了生物压电支架3D打印的最新研究进展。此外,还提出了进料可扩展性、打印分辨率、应力-极化转换效率、植入后无创感应能力等相关挑战。最后,我们强调了形状/性质/功能转换的智能4D生物压电支架在骨组织工程(BTE)中的潜力。综上所述,本综述强调了3D/4D打印生物压电支架作为下一代BTE植入物的吸引力。
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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来源期刊
International Journal of Extreme Manufacturing
International Journal of Extreme Manufacturing Engineering-Industrial and Manufacturing Engineering
CiteScore
17.70
自引率
6.10%
发文量
83
审稿时长
12 weeks
期刊介绍: The International Journal of Extreme Manufacturing (IJEM) focuses on publishing original articles and reviews related to the science and technology of manufacturing functional devices and systems with extreme dimensions and/or extreme functionalities. The journal covers a wide range of topics, from fundamental science to cutting-edge technologies that push the boundaries of currently known theories, methods, scales, environments, and performance. Extreme manufacturing encompasses various aspects such as manufacturing with extremely high energy density, ultrahigh precision, extremely small spatial and temporal scales, extremely intensive fields, and giant systems with extreme complexity and several factors. It encompasses multiple disciplines, including machinery, materials, optics, physics, chemistry, mechanics, and mathematics. The journal is interested in theories, processes, metrology, characterization, equipment, conditions, and system integration in extreme manufacturing. Additionally, it covers materials, structures, and devices with extreme functionalities.
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