Marine biological waste as a source of hydroxyapatite for bone tissue engineering applications

被引:27
作者
Borciani, Giorgia [1 ]
Fischetti, Tiziana [1 ]
Ciapetti, Gabriela [2 ]
Montesissa, Matteo [1 ]
Baldini, Nicola [1 ,2 ]
Graziani, Gabriela [2 ]
机构
[1] Univ Bologna, Dept Biomed & Neuromotor Sci, Via Massarenti 9, I-40138 Bologna, Italy
[2] IRCCS Ist Ortoped Rizzoli, Biomed Sci & Technol & Nanobiotechnol Lab, Via Barbiano 1-10, I-40136 Bologna, Italy
关键词
Calcination A; Apatite D; Biomedical applications E; Nanocomposites B; CUTTLEFISH BONE; MECHANICAL-PROPERTIES; BIOGENIC HYDROXYAPATITE; SCAFFOLDS; ORIGIN; BIOMINERALIZATION; BIOMATERIALS; RESTORATION; CONVERSION; SUBSTITUTE;
D O I
10.1016/j.ceramint.2022.10.341
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The demand for bone graft substitutes for orthopedics and dentistry is constantly growing due to the increase of ageing-related diseases. Synthetic hydroxyapatite (HA) is largely used as a bone graft material thanks to its biocompatibility, osteointegration, osteoconductive and osteoinductive properties and similarity to biological apatite, the main mineral component of bones and teeth. Biogenic apatite has gained attention due to its peculiar intrinsic characteristics: multi-doped ion composition and micro- and nano-scale architecture make naturalderived HA particularly promising for biomedical applications. At the same time, the growing interest in green materials is pushing towards the use of more sustainable biomaterials precursors, including re-use materials: marine waste, such as mollusk-shells, shellfish carapaces, cuttlefish bone, and fishbone have become widely studied sources of biogenic HA. Indeed, they are rich in calcium carbonate (CaCO3), which can be converted into HA by environmentally sustainable processes. This allows the transformation of waste into valuable materials, while paying attention to the issues of sustainability and circular economy. In this review, we listed and discussed the methods to produce HA starting from shell-derived CaCO3, describing all the steps and synthesis routes proposed for the conversion procedure, with a special focus on the different species of marine shells used. We discussed the use of HA alone or in combination with other materials (natural and synthetic polymers), used to enhance the mechanical and biological properties. We summarized the types of devices obtained by marine-derived HA, including nanorods, particulates and scaffolds and we described their in vitro and in vivo behavior. The up-to-date literature was summarized in tables with a special focus on the in vitro and in vivo biological evaluation of such materials. In conclusion, composite biomaterials based on marine-derived biogenic HA are reported as potential candidates for synthetic bone substitutes highlighting their potential, limitations and future perspectives.
引用
收藏
页码:1572 / 1584
页数:13
相关论文
共 108 条
[1]   Experimental data on the characterization of hydroxyapatite synthesized from biowastes [J].
Abifarin, J. K. ;
Obada, D. O. ;
Dauda, E. T. ;
Dodoo-Arhin, D. .
DATA IN BRIEF, 2019, 26
[2]   Extracting hydroxyapatite and its precursors from natural resources [J].
Akram, Muhammad ;
Ahmed, Rashid ;
Shakir, Imran ;
Ibrahim, Wan Aini Wan ;
Hussain, Rafaqat .
JOURNAL OF MATERIALS SCIENCE, 2014, 49 (04) :1461-1475
[3]   Synthesis of Nanohydroxyapatite from Cuttlefish Bone (Sepia sp.) Using Milling Method [J].
Aminatun ;
Supardi, Adri ;
Nisa, Zulifah Izzatin ;
Hikmawati, Dyah ;
Siswanto .
INTERNATIONAL JOURNAL OF BIOMATERIALS, 2019, 2019
[4]   Synthesis methods of hydroxyapatite from natural sources: A review [J].
Arokiasamy, Pilomeena ;
Abdullah, Mohd Mustafa Al Bakri ;
Abd Rahim, Shayfull Zamree ;
Luhar, Salmabanu ;
Sandu, Andrei Victor ;
Jamil, Noorina Hidayu ;
Nabialek, Marcin .
CERAMICS INTERNATIONAL, 2022, 48 (11) :14959-14979
[5]   Optimization of hydroxyapatite (HAp) extraction from scales of Sardinella longiceps and its conjugative effect with immunostimulants [J].
Ashwitha, A. ;
Thamizharasan, K. ;
Bhatt, Prasanth .
SN APPLIED SCIENCES, 2020, 2 (07)
[6]   Preparation and characterization of hydroxyapatite from Achatina achatina snail shells: effect of carbonate substitution and trace elements on defluoridation of water [J].
Asimeng, Bernard Owusu ;
Fianko, Joseph Richmond ;
Kaufmann, Elsie Effah ;
Tiburu, Elvis Kwason ;
Hayford, Claude Fiifi ;
Anani, Prince Atsu ;
Dzikunu, Obed Korshie .
JOURNAL OF ASIAN CERAMIC SOCIETIES, 2018, 6 (03) :205-212
[7]   Simultaneous fabrication of carbon nanodots and hydroxyapatite nanoparticles from fish scale for biomedical applications [J].
Athinarayanan, Jegan ;
Periasamy, Vaiyapuri Subbarayan ;
Alshatwi, Ali A. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 117
[8]   Emerging marine derived nanohydroxyapatite and their composites for implant and biomedical applications [J].
Balu, Satheesh Kumar ;
Andra, Swetha ;
Jeevanandam, Jaison ;
Vidyavathy, Manisha S. ;
Sampath, V .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2021, 119
[9]   Facile biogenic fabrication of hydroxyapatite nanorods using cuttlefish bone and their bactericidal and biocompatibility study [J].
Balu, Satheeshkumar ;
Sundaradoss, Manisha Vidyavathy ;
Andra, Swetha ;
Jeevanandam, Jaison .
BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2020, 11 :285-295
[10]   Bone Graft Substitutes [J].
Bhatt, Reena A. ;
Rozental, Tamara D. .
HAND CLINICS, 2012, 28 (04) :457-+