Firdaus Hussin Mohamed Saiful, Abdullah Hasan Zuhudi, Idris Maizlinda Izwana, Abdul Wahap Mohd Arizam
Faculty of Mechanical and Manufacturing Engineering, Universiti Tun Hussein Onn Malaysia, Parit Raja, 86400 Batu Pahat, Johor, Malaysia.
Faculty of Mechanical and Manufacturing Engineering Technology, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100 Durian Tunggal, Melaka, Malaysia.
Heliyon. 2022 Aug 22;8(8):e10356. doi: 10.1016/j.heliyon.2022.e10356. eCollection 2022 Aug.
Hydroxyapatite has recently played a crucial role in the sustainable development of biomedical applications. Publications related to hydroxyapatite as filler for biopolymers have exhibited an increasing trend due to the expanding research output. Based on the latest publications, the authors reviewed the research trends regarding hydroxyapatite use in biomedical applications. Analysis of the Scopus database using the keywords 'hydroxyapatite" and "biomedical applications" determined that 1,714 papers were produced between 2012 and 2021. The number of publications related to these keywords more than doubled between 2012 (99) and 2021 (247). The hydrothermal method, solid-state reactions, the sol-gel process, emulsion, micro-emulsion, and mostly chemical precipitation were used to produce synthetic hydroxyapatite. Meanwhile, calcination, alkaline hydrolysis, precipitation, hydrothermal, and a combination of these techniques were used in producing natural hydroxyapatite. Studies in the current literature reveal that shell-based animal sources have been frequently used as hydroxyapatite resources during investigations concerning biomedical applications, while calcination was the extraction method most often applied. Essential trace elements of fish bone, oyster shell, and eggshell were also found in hydroxyapatite powder. Abalone mussel shell and eggshell showed Ca/P ratios closer to the stoichiometric ratio due to the use of effective extraction methods such as manipulating aging time or stirring process parameters. This review should greatly assist by offering scientific insights to support all the recommended future research works, not only that associated with biomedical applications.
羟基磷灰石最近在生物医学应用的可持续发展中发挥了关键作用。由于研究成果不断增加,与羟基磷灰石作为生物聚合物填料相关的出版物呈上升趋势。基于最新的出版物,作者回顾了羟基磷灰石在生物医学应用中的研究趋势。使用关键词“羟基磷灰石”和“生物医学应用”对Scopus数据库进行分析,结果表明在2012年至2021年期间共发表了1714篇论文。与这些关键词相关的出版物数量在2012年(99篇)至2021年(247篇)之间增加了一倍多。水热法、固态反应、溶胶 - 凝胶法、乳液法、微乳液法以及主要是化学沉淀法被用于制备合成羟基磷灰石。同时,煅烧、碱水解、沉淀、水热法以及这些技术的组合被用于制备天然羟基磷灰石。当前文献中的研究表明,在生物医学应用研究中,贝壳类动物来源经常被用作羟基磷灰石资源,而煅烧是最常应用的提取方法。在羟基磷灰石粉末中还发现了鱼骨、牡蛎壳和蛋壳中的必需微量元素。由于采用了有效的提取方法,如控制老化时间或搅拌工艺参数,鲍鱼壳和蛋壳的钙磷比更接近化学计量比。这篇综述通过提供科学见解来支持所有推荐的未来研究工作,不仅是与生物医学应用相关的研究,应该会有很大帮助。