Advances in 3D-printed scaffold technologies for bone defect repair: materials, biomechanics, and clinical prospects.

IF 2.9 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Jie Sun, Cao Chen, Bo Zhang, Chen Yao, Yafeng Zhang
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引用次数: 0

Abstract

The treatment of large bone defects remains a significant clinical challenge due to the limitations of current grafting techniques, including donor site morbidity, restricted availability, and suboptimal integration. Recent advances in 3D bioprinting technology have enabled the fabrication of structurally and functionally optimized scaffolds that closely mimic native bone tissue architecture. This review comprehensively examines the latest developments in 3D-printed scaffolds for bone regeneration, focusing on three critical aspects: (1) material selection and composite design encompassing metallic; (2) structural optimization with hierarchical porosity (macro/micro/nano-scale) and biomechanical properties tailored; (3) biological functionalization through growth factor delivery, cell seeding strategies and surface modifications. We critically analyze scaffold performance metrics from different research applications, while discussing current translational barriers, including vascular network establishment, mechanical stability under load-bearing conditions, and manufacturing scalability. The review concludes with a forward-looking perspective on innovative approaches such as 4D dynamic scaffolds, smart biomaterials with stimuli-responsive properties, and the integration of artificial intelligence for patient-specific design optimization. These technological advancements collectively offer unprecedented opportunities to address unmet clinical needs in complex bone reconstruction.

骨缺损修复用3d打印支架技术的进展:材料、生物力学和临床前景。
由于目前移植技术的局限性,包括供体部位的发病率、可用性的限制和不理想的整合,大骨缺损的治疗仍然是一个重大的临床挑战。生物3D打印技术的最新进展使得制造结构和功能优化的支架能够非常接近地模拟天然骨组织结构。本文综述了3d打印骨再生支架的最新进展,重点介绍了三个关键方面:(1)材料选择和复合材料设计;(2)结构优化,孔隙度分级(宏观/微观/纳米尺度),生物力学性能量身定制;(3)通过生长因子传递、细胞播种策略和表面修饰实现生物功能化。我们批判性地分析了来自不同研究应用的支架性能指标,同时讨论了当前的平移障碍,包括血管网络的建立、承重条件下的机械稳定性和制造可扩展性。最后,展望了4D动态支架、具有刺激响应特性的智能生物材料、结合人工智能进行患者特异性设计优化等创新方法。这些技术进步共同为解决复杂骨重建中未满足的临床需求提供了前所未有的机会。
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来源期刊
BioMedical Engineering OnLine
BioMedical Engineering OnLine 工程技术-工程:生物医学
CiteScore
6.70
自引率
2.60%
发文量
79
审稿时长
1 months
期刊介绍: BioMedical Engineering OnLine is an open access, peer-reviewed journal that is dedicated to publishing research in all areas of biomedical engineering. BioMedical Engineering OnLine is aimed at readers and authors throughout the world, with an interest in using tools of the physical and data sciences and techniques in engineering to understand and solve problems in the biological and medical sciences. Topical areas include, but are not limited to: Bioinformatics- Bioinstrumentation- Biomechanics- Biomedical Devices & Instrumentation- Biomedical Signal Processing- Healthcare Information Systems- Human Dynamics- Neural Engineering- Rehabilitation Engineering- Biomaterials- Biomedical Imaging & Image Processing- BioMEMS and On-Chip Devices- Bio-Micro/Nano Technologies- Biomolecular Engineering- Biosensors- Cardiovascular Systems Engineering- Cellular Engineering- Clinical Engineering- Computational Biology- Drug Delivery Technologies- Modeling Methodologies- Nanomaterials and Nanotechnology in Biomedicine- Respiratory Systems Engineering- Robotics in Medicine- Systems and Synthetic Biology- Systems Biology- Telemedicine/Smartphone Applications in Medicine- Therapeutic Systems, Devices and Technologies- Tissue Engineering
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