CICECO - Aveiro Institute of Materials, Department of Chemistry, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.
CICECO - Aveiro Institute of Materials, Department of Chemistry, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.
Biomater Adv. 2022 Sep;140:213058. doi: 10.1016/j.bioadv.2022.213058. Epub 2022 Aug 2.
The well-known synergetic interplay between the skeletal and immune systems has changed the design of advanced bone tissue engineering strategies. The immune system is essential during the bone lifetime, with macrophages playing multiple roles in bone healing and biomaterial integration. If in the past, the most valuable aspect of implants was to avoid immune responses of the host, nowadays, it is well-established how important are the crosstalks between immune cells and bone-engineered niches for an efficient regenerative process to occur. For that, it is essential to recapitulate the multiphenotypic cellular environment of bone tissue when designing new approaches. Indeed, the lack of osteoimmunomodulatory knowledge may be the explanation for the poor translation of biomaterials into clinical practice. Thus, smarter hydrogels incorporating immunomodulatory bioactive factors, stem cells, and immune cells are being proposed to develop a new generation of bone tissue engineering strategies. This review highlights the power of immune cells to upgrade the development of innovative engineered strategies, mainly focusing on orthopaedic and dental applications.
骨骼系统和免疫系统之间众所周知的协同作用改变了先进的骨组织工程策略的设计。免疫系统在骨的整个生命周期中都是必不可少的,巨噬细胞在骨愈合和生物材料整合中发挥着多种作用。如果过去植入物最有价值的方面是避免宿主的免疫反应,那么现在已经明确,免疫细胞和骨工程龛之间的相互作用对于发生有效的再生过程是多么重要。为此,在设计新方法时,必须重现骨组织的多表型细胞环境。事实上,缺乏骨免疫学调节知识可能是生物材料在临床实践中转化效果不佳的原因。因此,正在提出更智能的水凝胶,其中包含免疫调节生物活性因子、干细胞和免疫细胞,以开发新一代的骨组织工程策略。这篇综述强调了免疫细胞在提升创新性工程策略发展方面的作用,主要集中在骨科和牙科应用上。