Magnesium Phosphate Bioceramics for Bone Tissue Engineering

被引:40
作者
Devi, K. Bavya [1 ]
Lalzawmliana, V [2 ]
Saidivya, Maktumkari [3 ]
Kumar, Vinod [4 ]
Roy, Mangal [3 ]
Nandi, Samit Kumar [5 ]
机构
[1] Thassim Beevi Abdul Kader Coll Women, Dept Chem, Kilakarai 623517, Ramanathapuram, India
[2] Coll Vet Sci & Anim Husb, Dept Vet Surg & Radiol, Rk Nagar 799008, Tripura West, India
[3] Indian Inst Technol Kharagpur, Dept Met & Mat Engn, Kharagpur 721302, W Bengal, India
[4] Banaras Hindu Univ, Fac Vet & Anim Sci, Dept Vet Clin Complex, Mirzapur 221005, India
[5] West Bengal Univ Anim & Fishery Sci, Dept Vet Surg & Radiol, Kolkata 700037, India
关键词
Bone regeneration; Bioceramics; magnesium phosphates; in vitro and in vivo biocompatibility; bioresorbable materials; IN-VIVO DEGRADATION; CALCIUM PHOSPHATES; VITRO; FABRICATION; SCAFFOLDS; REGENERATION; OSTEOBLAST; CERAMICS; CEMENT; STRENGTH;
D O I
10.1002/tcr.202200136
中图分类号
O6 [化学];
学科分类号
070301 [无机化学];
摘要
Magnesium phosphate (MgP) is a family of newly developed resorbable bioceramics for bone tissue engineering. Although calcium phosphates (CaP) are the most commonly used bioceramics, low solubility, and slow degradation, when implanted in vivo, are their main drawbacks. Magnesium (Mg) is an essential element in the human body as it plays important role in bone metabolism, DNA stabilization, and skeletal development. Recent research on magnesium phosphates has established their higher degradability, in vitro, and in vivo biocompatibility. Compared to CaP, very limited research work has been found in the area of MgP. The prime goal of this review is to bring out the importance of magnesium phosphate ceramics for biomedical applications. In this review, we have discussed the synthesis methods, mechanical properties, in vitro and in vivo biocompatibility of MgP bioceramics. Moreover, we have highlighted the recent developments in metal ion-doped MgPs and MgP scaffolds for bone tissue engineering.
引用
收藏
页数:17
相关论文
共 72 条
[1]
Doping metal into calcium phosphate phase for better performance of bone implant materials [J].
Adzila, Sharifah ;
Murad, Mardziah C. ;
Sopyan, Iis .
Recent Patents on Materials Science, 2012, 5 (01) :18-47
[2]
BONE MAGNESIUM POOLS IN UREMIA [J].
ALFREY, AC ;
MILLER, NL .
JOURNAL OF CLINICAL INVESTIGATION, 1973, 52 (12) :3019-3027
[3]
Microwave sintering of fine grained MgP and Mg substitutes with amorphous tricalcium phosphate: Structural, and mechanical characterization [J].
Babaie, Elham ;
Ren, Yufu ;
Bhaduri, Sarit B. .
JOURNAL OF MATERIALS RESEARCH, 2016, 31 (08) :995-1003
[4]
Baker S B, 2002, Crit Care Resusc, V4, P301
[5]
Calcium phosphate-based resorbable ceramics:: Influence of MgO, ZnO, and SiO2 dopants [J].
Bandyopadhyay, Amit ;
Bernard, Sheldon ;
Xue, Weichang ;
Bose, Susmita .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2006, 89 (09) :2675-2688
[6]
OSTEOINDUCTIVE BIOMATERIALS: CURRENT KNOWLEDGE OF PROPERTIES, EXPERIMENTAL MODELS AND BIOLOGICAL MECHANISMS [J].
Barradas, Ana M. C. ;
Yuan, Huipin ;
van Blitterswijk, Clemens A. ;
Habibovic, Pamela .
EUROPEAN CELLS & MATERIALS, 2011, 21 :407-429
[7]
Doped biphasic calcium phosphate: synthesis and structure [J].
Basu, Subhadip ;
Basu, Bikramjit .
JOURNAL OF ASIAN CERAMIC SOCIETIES, 2019, 7 (03) :265-283
[8]
Ionic substitutions in calcium phosphates synthesized at low temperature [J].
Boanini, E. ;
Gazzano, M. ;
Bigi, A. .
ACTA BIOMATERIALIA, 2010, 6 (06) :1882-1894
[9]
Compositional changes of a dicalcium phosphate dihydrate cement after implantation in sheep [J].
Bohner, M ;
Theiss, F ;
Apelt, D ;
Hirsiger, W ;
Houriet, R ;
Rizzoli, G ;
Gnos, E ;
Frei, C ;
Auer, JA ;
von Rechenberg, B .
BIOMATERIALS, 2003, 24 (20) :3463-3474
[10]
Understanding of dopant-induced osteogenesis and angiogenesis in calcium phosphate ceramics [J].
Bose, Susmita ;
Fielding, Gary ;
Tarafder, Solaiman ;
Bandyopadhyay, Amit .
TRENDS IN BIOTECHNOLOGY, 2013, 31 (10) :594-605