Using hardystonite as a biomaterial in biomedical and bone tissue engineering applications

被引:0
|
作者
Wang, Haoyu [1 ,2 ]
Sanghvi, Gaurav [3 ]
Arefpour, Ahmadreza [4 ]
Alkhayyat, Ahmad [5 ,6 ,7 ]
Soheily, Ali [8 ]
Jabbarzare, Saeid [8 ]
Salahshour, Soheil [9 ,10 ,11 ]
Alizadeh, As'ad [12 ]
Baghaei, Sh. [13 ]
机构
[1] Xijing Univ, Med Coll, Xian 710123, Shaanxi, Peoples R China
[2] Xi An Jiao Tong Univ, Affiliated Hosp 2, Dept Orthoped, Xian 710004, Shaanxi, Peoples R China
[3] Marwadi Univ, Marwadi Univ Res Ctr, Fac Sci, Dept Microbiol, Rajkot 360003, Gujarat, India
[4] Isfahan Univ Technol, Dept Mat Engn, Esfahan 8415683111, Iran
[5] Islamic Univ, Coll Tech Engn, Dept Comp Tech Engn, Najaf, Iraq
[6] Islamic Univ Al Diwaniyah, Coll Tech Engn, Dept Comp Tech Engn, Al Diwaniyah, Iraq
[7] Islamic Univ Babylon, Coll Tech Engn, Dept Comp Tech Engn, Babylon, Iraq
[8] Islamic Azad Univ, Adv Mat Res Ctr, Dept Mat Engn, Najafabad Branch, Najafabad, Iran
[9] Istanbul Okan Univ, Fac Engn & Nat Sci, Istanbul, Turkiye
[10] Bahcesehir Univ, Fac Engn & Nat Sci, Istanbul, Turkiye
[11] Lebanese Amer Univ, Dept Comp Sci & Math, Beirut, Lebanon
[12] Urmia Univ, Coll Engn, Dept Mech Engn, Orumiyeh, Iran
[13] Islamic Azad Univ, Khomeinishahr Branch, Dept Mech Engn, Khomeinishahr, Iran
来源
TISSUE & CELL | 2024年 / 91卷
关键词
Bioactivity; Biocompatibility; Biological Responses; Bone Tissue Engineering; Hardystonite; Coating; BETA-TRICALCIUM PHOSPHATE; IN-VITRO; OSTEOGENIC DIFFERENTIATION; MECHANICAL-PROPERTIES; BIOACTIVE GLASS; AUTOGENOUS BONE; HYDROXYAPATITE SCAFFOLDS; COMPOSITE SCAFFOLDS; PRECERAMIC POLYMERS; SILICATE CERAMICS;
D O I
10.1016/j.tice.2024.102551
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
Widespread adoption for substitutes of artificial bone grafts based on proper bioceramics has been generated in recent years. Among them, calcium-silicate-based bioceramics, which possess osteoconductive properties and can directly attach to biological organs, have attracted substantial attention for broad ranges of applications in bone tissue engineering. Approaches exist for a novel strategy to promote the drawbacks of bioceramics such as the incorporation of Zn2+, Mg2+, and Zr4+ ions into calcium-silicate networks, and the improvement of their physical, mechanical, and biological properties. Recently, hardystonite (Ca2ZnSi2O7) bioceramics, as one of the most proper calcium-silicate-based bioceramics, has presented excellent biocompatibility, bioactivity, and interaction. Due to its physical, mechanical, and biological behaviors and ability to be shaped utilizing a variety of fabrication techniques, hardystonite possesses the potential to be applied in biomedical and tissue engineering, mainly bone tissue engineering. A notable potential exists for the newly developed bioceramics to help therapies supply clinical outputs. The promising review paper has been presented by considering major aims to summarize and discuss the most applicable studies carried out for its physical, mechanical, and biological behaviors.
引用
收藏
页数:27
相关论文
共 50 条
  • [31] Albumin-based biomaterial for lung tissue engineering applications
    Aiyelabegan, Hammed T.
    Zaidi, Sadaf S. Z.
    Fanuel, Songwe
    Eatemadi, Ali
    Ebadi, Malihe T. K.
    Sadroddiny, Esmaeil
    INTERNATIONAL JOURNAL OF POLYMERIC MATERIALS AND POLYMERIC BIOMATERIALS, 2016, 65 (16) : 853 - 861
  • [32] Experimental approaches to study vascularization in tissue engineering and biomaterial applications
    Kirkpatrick, CJ
    Unger, RE
    Krump-Konvalinkova, V
    Peters, K
    Schmidt, H
    Kamp, G
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2003, 14 (08) : 677 - 681
  • [33] Nanoscale biomaterial interface modification for advanced tissue engineering applications
    Safonov, V.
    Zykova, A.
    Smolik, J.
    Rogovska, R.
    Donkov, N.
    Goltsev, A.
    Dubrava, T.
    Rassokha, I.
    Georgieva, V.
    17TH INTERNATIONAL SUMMER SCHOOL ON VACUUM, ELECTRON, AND ION TECHNOLOGIES (VEIT 2011), 2012, 356
  • [34] A potential bioactive peptide candidate for biomaterial and tissue engineering applications
    Sivaraman, K.
    Muthukumar, K.
    Shanthi, C.
    LIFE SCIENCES, 2019, 226 : 140 - 148
  • [35] Vitrified Wharton's jelly tissue as a biomaterial for multiple tissue engineering applications
    Mallis, Panagiotis
    Boulari, Dimitra
    Chachlaki, Panagiota
    Stavropoulos Giokas, Catherine
    Michalopoulos, Efstathios
    GYNECOLOGICAL ENDOCRINOLOGY, 2020, 36 (02) : 139 - 142
  • [36] Osteoblasts and their applications in bone tissue engineering
    Rupani, Asha
    Balint, Richard
    Cartmell, Sarah H.
    CELL HEALTH AND CYTOSKELETON, 2012, 4 : 49 - 61
  • [37] A Comprehensive Review on Silk Fibroin as a Persuasive Biomaterial for Bone Tissue Engineering
    Li, Minghui
    You, Jiaqian
    Qin, Qiuyue
    Liu, Manxuan
    Yang, Yixin
    Jia, Kewen
    Zhang, Yidi
    Zhou, Yanmin
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (03)
  • [38] Biomaterial scaffolds in maxillofacial bone tissue engineering: A review of recent advances
    Huang, Xiangya
    Lou, Yaxin
    Duan, Yihong
    Liu, He
    Tian, Jun
    Shen, Ya
    Wei, Xi
    BIOACTIVE MATERIALS, 2024, 33 : 129 - 156
  • [39] Poly(3-hydroxybutyrate): Promising biomaterial for bone tissue engineering
    Daris, Barbara
    Knez, Zeljko
    ACTA PHARMACEUTICA, 2020, 70 (01) : 1 - 15
  • [40] Fabrication of a three-dimensional nanostructured biomaterial for tissue engineering of bone
    Garreta, E.
    Gasset, D.
    Semino, C.
    Borros, S.
    BIOMOLECULAR ENGINEERING, 2007, 24 (01): : 75 - 80