Safiaghdam Hannaneh, Nokhbatolfoghahaei Hanieh, Khojasteh Arash
Student Research Committee, Dental school, Shahid Beheshti university of medical sciences, Tehran, Iran.
Department of Tissue Engineering and Applied Cell Sciences, School of Advanced Technologies in Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran.
Iran J Pharm Res. 2019 Fall;18(Suppl1):101-118. doi: 10.22037/ijpr.2020.112641.13894.
An important field of bone tissue engineering (BTE) concerns the design and fabrication of smart scaffolds capable of inducing cellular interactions and differentiation of osteo-progenitor cells. One of these additives that has gained growing attention is metallic ions as therapeutic agents (MITAs). The specific biological advantage that these ions bring to scaffolds as well as other potential mechanical, and antimicrobial enhancements may vary depending on the ion entity, fabrication method, and biomaterials used. Therefore, this article provides an overview on current status of application of MITAs in BTE and the remaining challenges in the field. Electronic databases, including PubMed, Scopus, Science direct and Cochrane library were searched for studies on MITAs treatments for BTE. We searched for articles in English from January-2000 to October-2019. Abstracts, letters, conference papers and reviews, studies, studies on alloys and studies investigating effects other than enhancement of new bone formation (NBF) were excluded. A detailed summary of relevant metallic ions with specific scaffold material and design, cell type, animal model and defect type, the implantation period, measured parameters and obtained qualitative and quantitative results is presented. No ideal material or fabrication method suited to deliver MITAs can yet be agreed upon, but an investigation into various systems and their drawbacks or potential advantages can lead the future research. A tendency to enhance NBF with MITAs can be observed in the studies. However, this needs to be validated with further studies comparing various ions with each other in the same animal model using critical-sized defects.
骨组织工程(BTE)的一个重要领域涉及智能支架的设计与制造,这种支架能够诱导细胞相互作用以及骨祖细胞的分化。其中一种越来越受关注的添加剂是作为治疗剂的金属离子(MITAs)。这些离子给支架带来的特定生物学优势以及其他潜在的机械和抗菌增强作用可能会因离子种类、制造方法和所用生物材料的不同而有所差异。因此,本文概述了MITAs在BTE中的应用现状以及该领域尚存的挑战。我们检索了包括PubMed、Scopus、Science direct和Cochrane图书馆在内的电子数据库,以查找关于MITAs用于BTE治疗的研究。我们搜索了2000年1月至2019年10月期间的英文文章。排除了摘要、信件、会议论文和综述、关于合金的研究以及调查除促进新骨形成(NBF)以外其他作用的研究。文中呈现了相关金属离子的详细总结,包括特定的支架材料与设计、细胞类型、动物模型和缺损类型、植入期、测量参数以及获得的定性和定量结果。目前尚未能就适合递送MITAs的理想材料或制造方法达成共识,但对各种系统及其缺点或潜在优势进行研究可为未来的研究指明方向。在这些研究中可以观察到使用MITAs促进NBF的趋势。然而,这需要通过在相同动物模型中使用临界尺寸缺损对各种离子进行相互比较的进一步研究来验证。