仿生骨移植物及其替代物:近期进展及应用综述

Sandleen Feroz , Peter Cathro , Sašo Ivanovski , Nawshad Muhammad
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引用次数: 0

摘要

设计一种理想的骨替代物的需求已经显著地出现,以解决与当前植骨材料相关的临床局限性。深入了解天然骨的复杂结构和细胞组成对于设计仿生骨移植物至关重要,这种移植物可以密切模拟丢失骨的生理结构。迫切需要临床医生、纳米技术专家和组织工程师之间的密切合作,设计临床相关的骨移植物,以促进有效的骨传导、成骨和骨诱导。在临床上,植骨手术主要包括利用异种移植物、同种异体移植物或自体移植物,结合天然和合成材料、聚合物、金属和生物陶瓷。3D打印技术的出现彻底改变了骨组织工程领域。这些增材制造技术利用数字设计特征和高精度,使研究人员能够复制复杂的解剖结构,包括骨骼。本文综述了理想骨移植的决定因素、可用骨移植材料的类型,并着重介绍了再生医学领域仿生骨修复支架设计的最新进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biomimetic bone grafts and substitutes: A review of recent advancements and applications

The demand for designing an ideal bone substitute has emerged significantly to address the clinical limitations associated with the current bone grafting materials. A thorough understanding of the complex architecture and cellular composition of natural bone is crucial to design a biomimetic bone graft that closely emulates the physiological structure of the lost bone. There is a dire need for close collaboration among clinicians, nanotechnologists, and tissue engineers to design clinically relevant bone grafts that can promote efficient osteoconduction, osteogenesis and osteoinduction. Clinically, bone grafting procedures mainly involves the utilization of xenografts, allografts or autograft, a combination of natural and synthetic materials, polymer, metals and bioceramics. The advent of 3D printing techniques has revolutionized the field of bone tissue engineering. These additive manufacturing technologies utilizing digital design features and high precision enable researchers to replicate complex anatomical structures including bone. This review aims to present an overview of the determinants of an ideal bone graft, types of available bone grafting materials, and emphasizes the recent advancements in the field of regenerative medicine for designing biomimetic bone repairing scaffolds.

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来源期刊
Biomedical engineering advances
Biomedical engineering advances Bioengineering, Biomedical Engineering
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