Zhu Ying-Jie, Lu Bing-Qiang
State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, P. R. China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
ACS Biomater Sci Eng. 2019 Oct 14;5(10):4951-4961. doi: 10.1021/acsbiomaterials.9b01183. Epub 2019 Sep 6.
Hydroxyapatite (HAP) biomaterials with high biocompatibility, bioactivity, and osteoconductivity/osteoinductivity have many applications in the biomedical fields. The traditional HAP materials usually feature high brittleness. Although hybridizing HAP with polymers can obtain deformable materials, their deformability is mainly contributed by polymers. Recently, research progress has been made in the deformable HAP biomaterials with high flexibility, softness, or elasticity based on ultralong HAP nanowires (UHANWs). This article provides a brief review on the recent progress on this research topic. Specifically, the strategy is proposed for solving the high brittleness of HAP biomaterials using UHANWs; the synthetic strategies for UHANWs are presented; and a variety of deformable biomaterials based on UHANWs are discussed. This review article provides a new concept of deformable biomaterials consisting of UHANWs and will stimulate new research works on deformable HAP biomaterials and further contribute to their development and applications in the biomedical fields such as bone regeneration, artificial periosteum, skin wound healing, biomedical paper, medical test paper, drug delivery, diagnosis, and therapy.
具有高生物相容性、生物活性以及骨传导性/骨诱导性的羟基磷灰石(HAP)生物材料在生物医学领域有诸多应用。传统的HAP材料通常具有高脆性。尽管将HAP与聚合物杂化可得到可变形材料,但其可变形性主要由聚合物贡献。最近,基于超长HAP纳米线(UHANWs)的具有高柔韧性、柔软性或弹性的可变形HAP生物材料取得了研究进展。本文对该研究主题的最新进展进行简要综述。具体而言,提出了利用UHANWs解决HAP生物材料高脆性的策略;介绍了UHANWs的合成策略;并讨论了基于UHANWs的各种可变形生物材料。这篇综述文章提供了一种由UHANWs组成的可变形生物材料的新概念,并将激发关于可变形HAP生物材料的新研究工作,进一步推动其在骨再生、人工骨膜、皮肤伤口愈合、生物医学纸、医学试纸、药物递送、诊断和治疗等生物医学领域的发展与应用。