Dissolution-precipitation synthesis and cold sintering of mussel shells-derived hydroxyapatite and hydroxyapatite/chitosan composites for bone tissue engineering

被引:9
|
作者
Galotta, Anna [1 ]
Rubenis, Kristaps [2 ]
Locs, Janis [2 ,3 ]
Sglavo, Vincenzo M. [1 ,4 ]
机构
[1] Univ Trento, Dept Ind Engn, Via Sommar 9, I-38123 Trento, Italy
[2] Riga Tech Univ, Inst Gen Chem Engn, Fac Mat Sci & Appl Chem, Rudolfs Cimdins Riga Biomat Innovat & Dev Ctr RTU, Pulka St 3-3, LV-1007 Riga, Latvia
[3] Riga Tech Univ, Balt Biomat Ctr Excellence, Riga, Latvia
[4] INSTM, Via G Giusti 9, I-50121 Florence, Italy
来源
OPEN CERAMICS | 2023年 / 15卷
关键词
Dissolution -precipitation synthesis; Cold sintering; Mussel shells; Hydroxyapatite; Shrimp shells; Chitosan; Composite; FREE HYDROTHERMAL SYNTHESIS; CARBONATED HYDROXYAPATITE; MECHANICAL-PROPERTIES; CALCIUM-PHOSPHATE; NANO-HYDROXYAPATITE; IN-VITRO; SUBSTITUTED HYDROXYAPATITE; BIOMIMETIC HYDROXYAPATITE; POROUS MICROSPHERES; ELASTIC-MODULUS;
D O I
10.1016/j.oceram.2023.100418
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
In the present work, seafood by-products and derivates were exploited as raw materials to produce nanocrystalline calcium phosphates-based composites in light of the rising demand for waste recovery and valorisation. Mussel shells were transformed into hydroxyapatite by dissolution-precipitation synthesis at 45 degrees C, whereas chitosan from shrimp shells was introduced as a reinforcing biopolymer to produce hydroxyapatite/ chitosan composites. The synthesised hydroxyapatite and hydroxyapatite/chitosan composite powders were cold sintered at room temperature under 1 GPa pressure for 10 min. The materials were consolidated up to -90% relative density and characterized mechanically. By increasing the polymer content up to 10 wt%, the flexural strength of the sintered pellets increases from -45 MPa to -57 MPa while the hardness decreases from -1.1 GPa to -0.8 GPa, thus better addressing the mechanical properties of cortical bone. Furthermore, hydroxyapatite/ chitosan composites were proven to be bioactive, this demonstrating their potential use in bone tissue engineering applications.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Electrospun biomimetic nanocomposite nanofibers of hydroxyapatite/chitosan for bone tissue engineering
    Zhang, Yanzhong
    Venugopal, Jayarama Reddy
    El-Turki, Adel
    Ramakrishna, Seeram
    Su, Bo
    Lim, Chwee Teck
    BIOMATERIALS, 2008, 29 (32) : 4314 - 4322
  • [32] Hydroxyapatite-Chitosan and Gelatin Based Scaffold for Bone Tissue Engineering
    Maji, Kanchan
    Dasgupta, Sudip
    TRANSACTIONS OF THE INDIAN CERAMIC SOCIETY, 2014, 73 (02) : 110 - 114
  • [33] Fish scale derived hydroxyapatite scaffold for bone tissue engineering
    Mondal, B.
    Mondal, S.
    Mondal, A.
    Mandal, N.
    MATERIALS CHARACTERIZATION, 2016, 121 : 112 - 124
  • [34] Nanostructured Hydroxyapatite-Chitosan Composite Biomaterial for Bone Tissue engineering
    Venkatesan, Jayachandran
    Kim, Se Kwon
    RECENT TRENDS IN ADVANCED MATERIALS, 2012, 584 : 212 - +
  • [35] Synthesis and characterization of chitosan-multiwalled carbon nanotubes/hydroxyapatite nanocomposites for bone tissue engineering
    Chen, Li
    Hu, Jingxiao
    Shen, Xinyu
    Tong, Hua
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2013, 24 (08) : 1843 - 1851
  • [36] LIPSS Formation of Chitosan/hydroxyapatite Composites via Femtosecond Laser Processing for Bone Tissue Engineering Applications
    Bliznakova, I.
    Daskalova, A.
    Zhelyazkova, A.
    Trifonov, A.
    Angelova, L.
    Buchvarov, I.
    Avramov, L.
    10TH JUBILEE CONFERENCE OF THE BALKAN PHYSICAL UNION, 2019, 2075
  • [37] Synthesis and characterization of a nano-hydroxyapatite/chitosan/polyethylene glycol nanocomposite for bone tissue engineering
    Shakir, Mohammad
    Jolly, Reshma
    Khan, Mohd Shoeb
    Iram, Noor-E
    Sharma, Tarun Kumar
    Al-Resayes, Saud Ibrahim
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2015, 26 (01) : 41 - 48
  • [38] Apatite/Chitosan Composites Formed by Cold Sintering for Drug Delivery and Bone Tissue Engineering Applications
    Galotta, Anna
    Demir, Oznur
    Marsan, Olivier
    Sglavo, Vincenzo M.
    Loca, Dagnija
    Combes, Christele
    Locs, Janis
    NANOMATERIALS, 2024, 14 (05)
  • [39] Alginic Acid Polymer-Hydroxyapatite Composites for Bone Tissue Engineering
    Sikkema, Rebecca
    Keohan, Blanca
    Zhitomirsky, Igor
    POLYMERS, 2021, 13 (18)
  • [40] Sodium alginate/hydroxyapatite/graphene nanoplatelets composites for bone tissue engineering
    Iswarya S.
    Theivasanthi T.
    Chinnaiah K.
    Gopinath S.C.B.
    Applied Nanoscience (Switzerland), 2024, 14 (01): : 109 - 122