Frontier Institute of Science and Technology, Xi'an Jiaotong University, Xi'an, 710054, China.
Department of Biomedical Engineering, University of Michigan, Ann Arbor, MI, 48109, USA.
Front Med. 2019 Apr;13(2):189-201. doi: 10.1007/s11684-018-0664-6. Epub 2018 Oct 30.
Native tissues possess unparalleled physiochemical and biological functions, which can be attributed to their hybrid polymer composition and intrinsic bioactivity. However, there are also various concerns or limitations over the use of natural materials derived from animals or cadavers, including the potential immunogenicity, pathogen transmission, batch to batch consistence and mismatch in properties for various applications. Therefore, there is an increasing interest in developing degradable hybrid polymer biomaterials with controlled properties for highly efficient biomedical applications. There have been efforts to mimic the extracellular protein structure such as nanofibrous and composite scaffolds, to functionalize scaffold surface for improved cellular interaction, to incorporate controlled biomolecule release capacity to impart biological signaling, and to vary physical properties of scaffolds to regulate cellular behavior. In this review, we highlight the design and synthesis of degradable hybrid polymer biomaterials and focus on recent developments in osteoconductive, elastomeric, photoluminescent and electroactive hybrid polymers. The review further exemplifies their applications for bone tissue regeneration.
天然组织具有无与伦比的物理化学和生物学功能,这归因于其混合聚合物组成和内在的生物活性。然而,源自动物或尸体的天然材料的使用也存在各种问题或限制,包括潜在的免疫原性、病原体传播、批次间一致性以及不同应用中性能的不匹配。因此,人们越来越有兴趣开发具有可控性能的可降解混合聚合物生物材料,以用于高效的生物医学应用。人们一直在努力模拟细胞外蛋白结构,如纳米纤维和复合材料支架,对支架表面进行功能化以改善细胞相互作用,加入控制生物分子释放能力以赋予生物信号,并改变支架的物理性质以调节细胞行为。在这篇综述中,我们重点介绍了可降解混合聚合物生物材料的设计和合成,并关注了骨诱导性、弹性体、光致发光和电活性混合聚合物的最新进展。本综述进一步举例说明了它们在骨组织再生中的应用。