Journal of Inorganic Materials, Volume. 38, Issue 7, 830(2023)

In vitro Study of Biphasic Calcium Magnesium Phosphate Microspheres for Angiogenesis and Bone Formation

Wei WU1,2, Shahd BAKHET2, Naomi Addai ASANTE2, Shefiu KAREEM2, Omar Ramadhan KOMBO3, Binbin LI2, and Honglian DAI1,2、*
Author Affiliations
  • 11. Shenzhen Institute of Wuhan University of Technology, Shenzhen 518000, China
  • 22. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Biomedical Materials and Engineering Research Center of Hubei Province, Wuhan University of Technology, Wuhan 430070, China
  • 33. Department of Medical Science and Technology, Mbeya University of Science and Technology, Mbeya, Tanzania
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    References(43)

    [2] M CHUTHATHIP, M N AHMAD-FAUZI, B I YANNY-MARLIANA et al. Effect of magnesium oxide on physical and biological properties in β-tricalcium phosphate ceramic. Journal of Physics Conference Series, 012026(2018).

    [5] K MAJI, S DASGUPTA. Effect of β-tricalcium phosphate nanoparticles additions on the properties of gelatin-chitosan scaffolds. Bioceramics Development & Applications, 1000103(2017).

    [7] Z Z FANG. Sintering of advanced materials, 85.

    [8] I KAUR, L J ELLIS, I ROMER et al. Dispersion of nanomaterials in aqueous media: towards protocol optimization. Journal of Visualized Experiments, e56074(2017).

    [15] M OLSSON. Chemical stability of grain boundariesinβ-tricalcium phosphate ceramics: β-TCP as bone substitute material. Department of Chemistry-Ångström, 42586904(2012).

    [16] VM SGLAVO, M FRASNELLI. Effect of Mg2+ doping on beta- alpha phase transition in tricalcium phosphate (TCP) bioceramics. Acta Biomaterialia, 283(2016).

    [18] M GALLO, B L G SANTONI, T DOUILLARD et al. Effect of grain orientation and magnesium doping on β-tricalcium phosphate resorption behavior. Acta Biomaterialia, 391(2019).

    [27] Z YUAN, P WEI, Y HUANG et al. Injectable PLGA microspheres with tunable magnesium ion release for promoting bone regeneration. Acta Biomaterialia., 294(2019).

    [28] J WANG, J XU, C HOPKINS et al. Biodegradable magnesium ased implants in orthopedics: a general review and perspectives. Advanced Science, 201902443(2020).

    [30] C PAN, X SUN, G XU et al. The effects of β-TCP on mechanical properties, corrosion behavior and biocompatibility of beta- TCP/Zn-Mg composites. Materials Science & Engineering C, 110397(2020).

    [33] X LIN, J GE, D WEI et al. Surface degradation-enabled osseointegrative, angiogenic and antiinfective properties of magnesium- modified acrylic bone cement. Journal of Orthopaedic Translation., 121(2019).

    [35] V H HO, G TRIPATHI, J GWON et al. Novel TOCNF reinforced injectable alginate/β-tricalcium phosphate microspheres for bone regeneration. Materials & Design, 108892(2020).

    [41] M PRZYBYLSKI. A review of the current research on the role of bFGF and VEGF in angiogenesis. Journal of Wound Care, 516(2009).

    [42] Y CHEN, Y OU, J DONG et al. Osteopontin promotes collagen I synthesis in hepatic stellate cells by miRNA-129-5p inhibition. Experimental Cell Research, 343(2017).

    [43] B BHASKAR, R OWEN, H BAHMAEE et al. Composite porous scaffold of PEG/PLA support improved bone matrix deposition in vitro compared to PLA-only scaffolds. Journal of Biomedical Research Part A, 1334(2018).

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    Wei WU, Shahd BAKHET, Naomi Addai ASANTE, Shefiu KAREEM, Omar Ramadhan KOMBO, Binbin LI, Honglian DAI. In vitro Study of Biphasic Calcium Magnesium Phosphate Microspheres for Angiogenesis and Bone Formation [J]. Journal of Inorganic Materials, 2023, 38(7): 830

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    Paper Information

    Category:

    Received: Nov. 5, 2022

    Accepted: --

    Published Online: Dec. 28, 2023

    The Author Email: DAI Honglian (daihonglian@whut.edu.cn)

    DOI:10.15541/jim20220662

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