Department of Biomaterials, Institute of Clinical Dentistry, University of Oslo, 0317 Oslo, Norway. h.j.haugen.odont.uio.no.
Chem Soc Rev. 2020 Aug 7;49(15):5178-5224. doi: 10.1039/d0cs00103a. Epub 2020 Jul 9.
Biomedical scientists use chemistry-driven processes found in nature as an inspiration to design biomaterials as promising diagnostic tools, therapeutic solutions, or tissue substitutes. While substantial consideration is devoted to the design and validation of biomaterials, the nature of their interactions with the surrounding biological microenvironment is commonly neglected. This gap of knowledge could be owing to our poor understanding of biochemical signaling pathways, lack of reliable techniques for designing biomaterials with optimal physicochemical properties, and/or poor stability of biomaterial properties after implantation. The success of host responses to biomaterials, known as biocompatibility, depends on chemical principles as the root of both cell signaling pathways in the body and how the biomaterial surface is designed. Most of the current review papers have discussed chemical engineering and biological principles of designing biomaterials as separate topics, which has resulted in neglecting the main role of chemistry in this field. In this review, we discuss biocompatibility in the context of chemistry, what it is and how to assess it, while describing contributions from both biochemical cues and biomaterials as well as the means of harmonizing them. We address both biochemical signal-transduction pathways and engineering principles of designing a biomaterial with an emphasis on its surface physicochemistry. As we aim to show the role of chemistry in the crosstalk between the surface physicochemical properties and body responses, we concisely highlight the main biochemical signal-transduction pathways involved in the biocompatibility complex. Finally, we discuss the progress and challenges associated with the current strategies used for improving the chemical and physical interactions between cells and biomaterial surface.
生物医学科学家以自然界中存在的化学驱动过程为灵感,设计生物材料作为有前途的诊断工具、治疗解决方案或组织替代品。虽然对生物材料的设计和验证给予了大量关注,但它们与周围生物微环境相互作用的性质通常被忽视。这种知识差距可能是由于我们对生化信号通路的理解不足、缺乏设计具有最佳物理化学性能的生物材料的可靠技术以及/或生物材料植入后的性能稳定性差。宿主对生物材料的反应成功,即生物相容性,取决于化学原理,这些原理是体内细胞信号通路的根源,也是生物材料表面设计的根源。大多数当前的评论文章都将化学工程和生物材料设计的生物学原理作为单独的主题进行了讨论,从而忽略了化学在该领域的主要作用。在这篇综述中,我们将在化学的背景下讨论生物相容性,包括它是什么以及如何评估它,同时描述生物化学线索和生物材料的贡献以及协调它们的方法。我们既讨论了生物材料设计的生化信号转导途径,也讨论了工程原理,重点是其表面物理化学。由于我们旨在展示化学在表面物理化学性质与机体反应之间相互作用中的作用,我们简明扼要地突出了生物相容性复合物中涉及的主要生化信号转导途径。最后,我们讨论了与当前用于改善细胞与生物材料表面之间化学和物理相互作用的策略相关的进展和挑战。