Bioprinted Scaffolds for Biomimetic Applications: A State-of-the-Art Technology.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Ille C Gebeshuber, Sayak Khawas, Rishi Sharma, Neelima Sharma
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Abstract

This review emphasizes the latest developments in bioprinted scaffolds in tissue engineering, with a focus on their biomimetic applications. The accelerated pace of development of 3D bioprinting technologies has transformed the ability to fabricate scaffolds with the potential to replicate the structure and function of native tissues. Bioprinting methods such as inkjet, extrusion-based, laser-assisted, and digital light processing (DLP) approaches have the potential to fabricate complex, multi-material structures with high precision in geometry, material composition, and cellular microenvironments. Incorporating biomimetic design principles to replicate the mechanical and biological behaviors of native tissues has been of major research interest. Scaffold geometries that support cell adhesion, growth, and differentiation essential for tissue regeneration are mainly of particular interest. The review also deals with the development of bioink, with an emphasis on the utilization of natural, synthetic, and composite materials for enhanced scaffold stability, printability, and biocompatibility. Rheological characteristics, cell viability, and the utilization of stimuli-responsive bioinks are also discussed in detail. Their utilization in bone, cartilage, skin, neural, and cardiovascular tissue engineering demonstrates the versatility of bioprinted scaffolds. Despite the significant advancements, there are still challenges that include achieving efficient vascularization, long-term integration with host tissues, and scalability. The review concludes by underlining future trends such as 4D bioprinting, artificial intelligence-augmented scaffold design, and the regulatory and ethical implications involved in clinical translation. By considering these challenges in detail, this review provides insight into the future of bioprinted scaffolds in regenerative medicine.

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用于仿生应用的生物打印支架:一项最新技术。
本文综述了生物打印支架在组织工程中的最新进展,重点介绍了其在仿生方面的应用。3D生物打印技术的加速发展改变了制造具有复制天然组织结构和功能潜力的支架的能力。生物打印方法,如喷墨、基于挤压、激光辅助和数字光处理(DLP)方法,具有制造复杂的、多材料结构的潜力,在几何形状、材料组成和细胞微环境方面具有高精度。结合仿生设计原理来复制天然组织的机械和生物行为一直是主要的研究兴趣。支持细胞粘附、生长和组织再生所必需的分化的支架几何形状主要是特别感兴趣的。该综述还涉及生物链接的发展,重点是利用天然、合成和复合材料来增强支架的稳定性、可打印性和生物相容性。流变学特性,细胞活力和刺激反应生物墨水的应用也进行了详细的讨论。它们在骨、软骨、皮肤、神经和心血管组织工程中的应用证明了生物打印支架的多功能性。尽管取得了重大进展,但仍然存在挑战,包括实现有效的血管化,与宿主组织的长期整合以及可扩展性。该综述最后强调了未来的趋势,如4D生物打印、人工智能增强支架设计以及临床翻译涉及的监管和伦理影响。通过详细考虑这些挑战,本综述为再生医学中生物打印支架的未来提供了见解。
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
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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