3D printing of strontium-enriched biphasic calcium phosphate scaffolds for bone regeneration

被引:1
作者
Oliveira, Rodrigo L. M. S. [1 ]
Ferraz, Marcos C. [1 ]
Cardoso, Lais Medeiros [2 ,3 ]
Li, Zhongrui [4 ]
Albers, Ana Paula F. [1 ]
Bottino, Marco C. [3 ,4 ]
Triches, Eliandra S. [1 ,3 ,4 ]
机构
[1] Univ Fed Sao Paulo UNIFESP, Bioceram Lab, Inst Ciencia & Tecnol, BR-12231280 Sao Jose Dos Campos, SP, Brazil
[2] Sao Paulo State Univ UNESP, Araraquara Sch Dent, Dept Dent Mat & Prosthodont, BR-14801385 Araraquara, SP, Brazil
[3] Univ Michigan, Sch Dent, Dept Cariol Restorat Sci & Endodont, Ann Arbor, MI 48109 USA
[4] Univ Michigan, Coll Engn, Dept Biomed Engn, Ann Arbor, MI 48109 USA
基金
巴西圣保罗研究基金会;
关键词
(3-TCP; Strontium; Scaffolds; 3D-printing; Bone tissue engineering; BETA-TRICALCIUM PHOSPHATE;
D O I
10.1016/j.jmbbm.2024.106717
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Calcium phosphate (CaP) scaffolds doping with therapeutic ions are one of the focuses of recent bone tissue engineering research. Among the therapeutic ions, strontium stands out for its role in bone remodeling. This work reports a simple method to produce Sr-doped 3D-printed CaP scaffolds, using Sr-doping to induce partial phase transformation from (3-tricalcium phosphate ((3-TCP) to hydroxyapatite (HA), resulting in a doped biphasic calcium phosphate (BCP) scaffold. Strontium carbonate (SrCO3) was incorporated in the formulation of the 3Dprinting ink, studying (3-TCP:SrO mass ratios of 100:0, 95:5, and 90:10 (named as (3-TCP, (3-TCP/5-Sr, and (3-TCP/ 10-Sr, respectively). Adding SrCO3 in the 3D-printing ink led to a slight increase in viscosity but did not affect its printability, resulting in scaffolds with a high printing fidelity compared to the computational design. Interestingly, Sr was incorporated into the lattice structure of the scaffolds, forming hydroxyapatite (HA). No residual SrO or SrCO3 were observed in the XRD patterns of any composition, and HA was the majority phase of the (3-TCP/10-Sr scaffolds. The addition of Sr increased the compression strength of the scaffolds, with both (3-TCP/5Sr and (3-TCP/10-Sr performing better than the (3-TCP. Overall, (3-TCP/5-Sr presented higher mineralized nodules and mechanical strength, while (3-TCP scaffolds presented superior cell viability. The incorporation of SrCO3 in the ink formulation is a viable method to obtain Sr-BCP scaffolds. Thus, this approach could be explored with other CaP scaffolds aiming to optimize their performance and the addition of alternative therapeutic ions.
引用
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页数:10
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[21]   Fabrication of strontium-substituted hydroxyapatite scaffolds using 3D printing for enhanced bone regeneration [J].
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[22]   Recent Advances of Biphasic Calcium Phosphate Bioceramics for Bone Tissue Regeneration [J].
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[23]   The Influence of Strontium on Bone Tissue Metabolism and Its Application in Osteoporosis Treatment [J].
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[24]  
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[25]   Elevated extracellular calcium ions promote proliferation and migration of mesenchymal stem cells via increasing osteopontin expression [J].
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[26]   3D printing of strontium-doped hydroxyapatite based composite scaffolds for repairing critical-sized rabbit calvarial defects [J].
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BIOMEDICAL MATERIALS, 2018, 13 (06)
[27]   The effect of calcium ion concentration on osteoblast viability, proliferation and differentiation in monolayer and 3D culture [J].
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Niki, Y ;
Matsumoto, H ;
Morioka, H ;
Yatabe, T ;
Funayama, A ;
Toyama, Y ;
Taguchi, T ;
Tanaka, J .
BIOMATERIALS, 2005, 26 (23) :4847-4855
[28]   Nanoscale β-TCP-Laden GelMA/PCL Composite Membrane for Guided Bone Regeneration [J].
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Kaigler, Darnell ;
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Malda, Jos ;
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ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (27) :32121-32135
[29]   Biphasic calcium phosphate scaffolds fabricated by direct write assembly: Mechanical, anti-microbial and osteoblastic properties [J].
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Ferreira, Sonia ;
Vieira, Sandra I. ;
Olhero, Susana ;
Miranda, Pedro ;
Ferreira, Jose M. F. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2017, 37 (01) :359-368
[30]   Standardization and Safety of Alveolar Bone-derived Stem Cell Isolation [J].
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Tarle, S. A. ;
Osibin, W. ;
Kinfu, Y. ;
Kaigler, D. .
JOURNAL OF DENTAL RESEARCH, 2014, 93 (01) :55-61