3D printed β-tricalcium phosphate versus synthetic bone mineral scaffolds: A comparative in vitro study of biocompatibility

被引:1
|
作者
Slavin, Blaire V. [1 ]
Mirsky, Nicholas A. [1 ]
Stauber, Zachary M. [1 ]
Nayak, Vasudev Vivekanand [2 ]
Smay, James E. [3 ]
Rivera, Cristobal F. [4 ]
Mijares, Dindo Q. [5 ]
Coelho, Paulo G. [1 ,6 ]
Cronstein, Bruce N. [7 ]
Tovar, Nick [8 ,9 ]
Witek, Lukasz [5 ,10 ,11 ]
机构
[1] Univ Miami, Miller Sch Med, Miami, FL USA
[2] Univ Miami, Miller Sch Med, Dept Biochem & Mol Biol, Miami, FL USA
[3] Oklahoma State Univ, Sch Mat Sci & Engn, Tulsa, OK USA
[4] New York Univ, Dept Surg & Cell Biol, Langone Med Ctr, Div Vasc & Endovasc Surg, New York, NY USA
[5] NYU Coll Dent, Biomat Div, New York, NY USA
[6] Univ Miami, Miller Sch Med, Div Plast Surg, DeWitt Daughtry Family Dept Surg, Miami, FL USA
[7] NYU Grossman Sch Med, Dept Med, New York, NY USA
[8] New York Univ, Dept Oral & Maxillofacial Surg, Langone Med Ctr, New York, NY USA
[9] New York Univ, Bellevue Hosp Ctr, New York, NY USA
[10] NYU Tandon Sch Engn, Dept Biomed Engn, Brooklyn, NY USA
[11] NYU Grossman Sch Med, Hansjorg Wyss Dept Plast Surg, New York, NY USA
关键词
3D printing; direct inkjet writing; bone regeneration; bioceramics; synthetic bone mineral; BIOACTIVE CERAMIC SCAFFOLDS; BIOCERAMIC SCAFFOLDS; DIPYRIDAMOLE; DEFECTS; REPAIR; BIOMATERIALS; REGENERATION; DEGRADATION; DEFICIENCY; THERAPY;
D O I
10.3233/BME-230214
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
BACKGROUND: beta-tricalcium phosphate (beta-TCP) has been successfully utilized as a 3D printed ceramic scaffold in the repair of non-healing bone defects; however, it requires the addition of growth factors to augment its regenerative capacity. Synthetic bone mineral (SBM) is a novel and extrudable carbonate hydroxyapatite with ionic substitutions known to facilitate bone healing. However, its efficacy as a 3D printed scaffold for hard tissue defect repair has not been explored. OBJECTIVE: To evaluate the biocompatibility and cell viability of human osteoprecursor (hOP) cells seeded on 3D printed SBM scaffolds via in vitro analysis. METHODS: SBM and beta-TCP scaffolds were fabricated via 3D printing and sintered at various temperatures. Scaffolds were then subject to qualitative cytotoxicity testing and cell proliferation experiments utilizing (hOP) cells. RESULTS: SBM scaffolds sintered at lower temperatures (600 degrees C and 700 degrees C) induced greater levels of acute cellular stress. At higher sintering temperatures (1100 degrees C), SBM scaffolds showed inferior cellular viability relative to beta-TCP scaffolds sintered to the same temperature (1100 degrees C). However, qualitative analysis suggested that beta-TCP presented no evidence of morphological change, while SBM 1100 degrees C showed few instances of acute cellular stress. CONCLUSION: Results demonstrate SBM may be a promising alternative to beta-TCP for potential applications in bone tissue engineering.
引用
收藏
页码:365 / 375
页数:11
相关论文
共 50 条
  • [41] Immunopolarization-regulated 3D printed-electrospun fibrous scaffolds for bone regeneration
    Liu, Xingzhi
    Chen, Mimi
    Luo, Junchao
    Zhao, Huan
    Zhou, Xichao
    Gu, Qiaoli
    Yang, Huilin
    Zhu, Xuesong
    Cui, Wenguo
    Shi, Qin
    BIOMATERIALS, 2021, 276
  • [42] 3D printed bone tissue regenerative PLA/HA scaffolds with comprehensive performance optimizations
    Zhang, Boqing
    Wang, Ling
    Song, Ping
    Pei, Xuan
    Sun, Huan
    Wu, Lina
    Zhou, Changchun
    Wang, Kefeng
    Fan, Yujiang
    Zhang, Xingdong
    MATERIALS & DESIGN, 2021, 201
  • [43] Poly(Dopamine) Coating on 3D-Printed Poly-Lactic-Co-Glycolic Acid/β-Tricalcium Phosphate Scaffolds for Bone Tissue Engineering
    Xu, Zhimin
    Wang, Ningning
    Liu, Peng
    Sun, Yidan
    Wang, Yumeng
    Fei, Fan
    Zhang, Shichen
    Zheng, Jianying
    Han, Bing
    MOLECULES, 2019, 24 (23):
  • [44] Comparison of 3D-Printed Poly-ε-Caprolactone Scaffolds Functionalized with Tricalcium Phosphate, Hydroxyapatite, Bio-Oss, or Decellularized Bone Matrix
    Nyberg, Ethan
    Rindone, Alexandra
    Dorafshar, Amir
    Grayson, Warren L.
    TISSUE ENGINEERING PART A, 2017, 23 (11-12) : 503 - +
  • [45] Biocompatibility of ceramic scaffolds for bone replacement made by 3D printing
    Leukers, B
    Gülkan, H
    Irsen, SH
    Milz, S
    Tille, C
    Seitz, H
    Schieker, M
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2005, 36 (12) : 781 - 787
  • [46] Cell-Laden 3D Printed Scaffolds for Bone Tissue Engineering
    Piard C.M.
    Chen Y.
    Fisher J.P.
    Clinical Reviews in Bone and Mineral Metabolism, 2015, 13 (4): : 245 - 255
  • [47] Comparative study on in vitro biocompatibility of synthetic octacalcium phosphate and calcium phosphate ceramics used clinically
    Morimoto, Shinji
    Anada, Takahisa
    Honda, Yoshitomo
    Suzuki, Osamu
    BIOMEDICAL MATERIALS, 2012, 7 (04)
  • [48] 3D Printed scaffolds with bactericidal activity aimed for bone tissue regeneration
    Correia, Tiago R.
    Figueira, Daniela R.
    de Sa, Kevin D.
    Miguel, Sonia P.
    Fradique, Ricardo G.
    Mendonca, Antonio G.
    Correia, Ilidio J.
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2016, 93 : 1432 - 1445
  • [49] Custom Repair of Mandibular Bone Defects with 3D Printed Bioceramic Scaffolds
    Shao, H.
    Sun, M.
    Zhang, F.
    Liu, A.
    He, Y.
    Fu, J.
    Yang, X.
    Wang, H.
    Gou, Z.
    JOURNAL OF DENTAL RESEARCH, 2018, 97 (01) : 68 - 76
  • [50] In vitro and in vivo biocompatibility of calcium-phosphate scaffolds three-dimensional printed by stereolithography for bone regeneration
    Le Guehennec, Laurent
    Dorien, Van Hede
    Plougonven, Erwan
    Nolens, Gregory
    Verlee, Bruno
    De Pauw, Marie-Claire
    Lambert, France
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2020, 108 (03) : 412 - 425