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用于骨组织工程的3D生物打印支架:现状与新兴技术

3D Bioprinted Scaffolds for Bone Tissue Engineering: State-Of-The-Art and Emerging Technologies.

作者信息

Yazdanpanah Zahra, Johnston James D, Cooper David M L, Chen Xiongbiao

机构信息

Division of Biomedical Engineering, College of Engineering, University of Saskatchewan, Saskatoon, SK, Canada.

Department of Mechanical Engineering, College of Engineering, University of Saskatchewan, Saskatoon, SK, Canada.

出版信息

Front Bioeng Biotechnol. 2022 Apr 11;10:824156. doi: 10.3389/fbioe.2022.824156. eCollection 2022.

Abstract

Treating large bone defects, known as critical-sized defects (CSDs), is challenging because they are not spontaneously healed by the patient's body. Due to the limitations associated with conventional bone grafts, bone tissue engineering (BTE), based on three-dimensional (3D) bioprinted scaffolds, has emerged as a promising approach for bone reconstitution and treatment. Bioprinting technology allows for incorporation of living cells and/or growth factors into scaffolds aiming to mimic the structure and properties of the native bone. To date, a wide range of biomaterials (either natural or synthetic polymers), as well as various cells and growth factors, have been explored for use in scaffold bioprinting. However, a key challenge that remains is the fabrication of scaffolds that meet structure, mechanical, and osteoconductive requirements of native bone and support vascularization. In this review, we briefly present the latest developments and discoveries of CSD treatment by means of bioprinted scaffolds, with a focus on the biomaterials, cells, and growth factors for formulating bioinks and their bioprinting techniques. Promising state-of-the-art pathways or strategies recently developed for bioprinting bone scaffolds are highlighted, including the incorporation of bioactive ceramics to create composite scaffolds, the use of advanced bioprinting technologies (, core/shell bioprinting) to form hybrid scaffolds or systems, as well as the rigorous design of scaffolds by taking into account of the influence of such parameters as scaffold pore geometry and porosity. We also review assays and models to track bone regeneration, followed by a discussion of current limitations associated with 3D bioprinting technologies for BTE. We conclude this review with emerging approaches in this field, including the development of gradient scaffolds, four-dimensional (4D) printing technology via smart materials, organoids, and cell aggregates/spheroids along with future avenues for related BTE.

摘要

治疗大的骨缺损,即临界尺寸缺损(CSD),具有挑战性,因为患者身体无法自发愈合这些缺损。由于传统骨移植存在局限性,基于三维(3D)生物打印支架的骨组织工程(BTE)已成为骨重建和治疗的一种有前景的方法。生物打印技术允许将活细胞和/或生长因子纳入支架,旨在模拟天然骨的结构和特性。迄今为止,人们已经探索了多种生物材料(天然或合成聚合物)以及各种细胞和生长因子用于支架生物打印。然而,仍然存在的一个关键挑战是制造出满足天然骨的结构、力学和骨传导要求并支持血管化的支架。在本综述中,我们简要介绍了通过生物打印支架治疗CSD的最新进展和发现,重点关注用于配制生物墨水的生物材料、细胞和生长因子及其生物打印技术。突出了最近为生物打印骨支架开发的有前景的前沿途径或策略,包括加入生物活性陶瓷以创建复合支架、使用先进的生物打印技术(如核/壳生物打印)形成混合支架或系统,以及通过考虑支架孔隙几何形状和孔隙率等参数的影响来进行支架的精确设计。我们还综述了跟踪骨再生的检测方法和模型,随后讨论了当前与用于BTE的3D生物打印技术相关的局限性。我们以该领域的新兴方法结束本综述,包括梯度支架的开发、通过智能材料的四维(4D)打印技术、类器官以及细胞聚集体/球体,以及相关BTE的未来发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60c4/9035802/d3a9daf62456/fbioe-10-824156-g001.jpg

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