MEASURING MINERALISED TISSUE FORMATION AND RESORPTION IN A HUMAN 3D OSTEOBLAST-OSTEOCLAST CO-CULTURE MODEL

被引:11
|
作者
Remmers, S.
Mayer, D.
Melke, J.
Ito, K.
Hofmann, S.
机构
[1] Eindhoven Univ Technol, Dept Biomed Engn, Orthopaed Biomech, Eindhoven, Netherlands
[2] Eindhoven Univ Technol, Inst Complex Mol Syst, Eindhoven, Netherlands
基金
欧洲研究理事会;
关键词
Osteoclasts; osteoblasts; co-culture; scaffolds; mineralisation; bioresorption; bioreactors; bone; RESISTANT ACID-PHOSPHATASE; MESENCHYMAL STEM-CELLS; BONE-MARROW; M-CSF; OSTEOPROTEGERIN; CULTURE; MACROPHAGES; PROGENITOR; MIGRATION; RADIATION;
D O I
10.22203/eCM.v040a12
中图分类号
Q813 [细胞工程];
学科分类号
摘要
In vitro tissue engineered bone constructs have been developed, but models which mimic both formation and resorption in parallel are still lacking. To be used as a model for the bone remodeling process, the formation and resorption of mineralised tissue volume over time needs to be visualised, localised and quantified. The goal of this study was to develop a human 3D osteoblast-osteoclast co-culture in which 1) osteoblasts deposit mineralised matrix, 2) monocytes differentiate into resorbing osteoclasts, and 3) the formation and resorption of mineralised matrix could be quantified over time using micro-computed tomography ( mu CT). Mesenchymal stromal cells were seeded on silk fibroin scaffolds and differentiated towards osteoblasts to create mineralised constructs. Thereafter, monocytes were added and differentiated towards osteodasts. The presence of osteoblasts and osteoclasts was confirmed using immunohistochemistry. Osteoclastic activity was confirmed by measuring the increased release of osteoclast marker tartrate resistant acid phosphatase (TRAP), suggesting that osteoclasts were actively resorbing mineralised tissue. Resorption pits were visualised using scanning electron microscopy. Mineralised matrix formation and resorption were quantified using mu CT and subsequent scans were registered to visualise remodelling. Both formation and resorption occurred in parallel in the co-culture. The resorbed tissue volume exceeded the formed tissue volume after day 12. In conclusion, the current model was able to visualise, localise and quantify mineralised matrix formation and resorption. Such a model could be used to facilitate fundamental research on bone remodeling, facilitate drug testing and may have clinical implications in personalised medicine by allowing the use of patient cells.
引用
收藏
页码:189 / 202
页数:14
相关论文
共 50 条
  • [1] Tuning the resorption-formation balance in an in vitro 3D osteoblast-osteoclast co-culture model of bone
    Remmers, Stefan J. A.
    van der Heijden, Freek C.
    de Wildt, Bregje W. M.
    Ito, Keita
    Hofmann, Sandra
    BONE REPORTS, 2023, 18
  • [2] Tuning the resorption-formation balance in an in vitro 3D osteoblast-osteoclast co-culture model of bone
    Remmers, Stefan J. A.
    van der Heijden, Freek C.
    de Wildt, Bregje W. M.
    Ito, Keita
    Hofmann, Sandra
    BONE REPORTS, 2023, 18
  • [3] Effects of photobiomodulation on bone remodeling in an osteoblast-osteoclast co-culture system
    Hong, Ji-Un
    Kwon, Jin-Ju
    Heo, Soon Chul
    Shin, Sang-Hun
    Kim, Hyung Joon
    Lee, Jae-Yeol
    LASERS IN MEDICAL SCIENCE, 2022, 37 (02) : 1049 - 1059
  • [4] Adipose-Derived Stromal Cell Conditioned Medium on Bone Remodeling: Insights from a 3D Osteoblast-Osteoclast Co-Culture Model
    Della Morte, Elena
    Notarangelo, Maria Pina
    Niada, Stefania
    Giannasi, Chiara
    Fortuna, Federica
    Cadelano, Francesca
    Lambertini, Elisabetta
    Piva, Roberta
    Brini, Anna Teresa
    Penolazzi, Letizia
    CALCIFIED TISSUE INTERNATIONAL, 2025, 116 (01)
  • [5] IL-23 promotes osteoclastogenesis in osteoblast-osteoclast co-culture system
    Kang, Y. K.
    Zhang, M. C.
    GENETICS AND MOLECULAR RESEARCH, 2014, 13 (02): : 4673 - 4679
  • [6] Optimization of the Static Human Osteoblast/Osteoclast Co-culture System
    Jolly, James Jam
    Chin, Kok-Yong
    Farhana, Mohd Fozi Nur
    Alias, Ekram
    Chua, Kien Hui
    Hasan, Wan Nuraini Wan
    Ima-Nirwana, Soelaiman
    IRANIAN JOURNAL OF MEDICAL SCIENCES, 2018, 43 (02) : 208 - 213
  • [7] Bone in vitro 3D osteoblast-osteocyte co-culture model
    Vazquez, M.
    Evans, B. A. J.
    Ralphs, J.
    Riccardi, D.
    Mason, D. J.
    INTERNATIONAL JOURNAL OF EXPERIMENTAL PATHOLOGY, 2011, 92 (06) : A18 - A18
  • [8] A functional human liver tissue model: 3D bioprinted co-culture discoids
    Subramaniam, Vignesh
    Abrahan, Carolina
    Higgins, Brett R.
    Chisolm, Steven J.
    Sweeney, Baleigh
    Duraivel, Senthilkumar
    Balzano-Nogueira, Leandro
    Monjure, Tia
    Wang, Chih-Yi
    Palmer, Glyn D.
    Angelini, Thomas E.
    BIOMATERIALS ADVANCES, 2025, 173
  • [9] Quantitative characterization of mineralized silk film remodeling during long-term osteoblast-osteoclast co-culture
    Hayden, Rebecca S.
    Quinn, Kyle P.
    Alonzo, Carlo A.
    Georgakoudi, Irene
    Kaplan, David L.
    BIOMATERIALS, 2014, 35 (12) : 3794 - 3802
  • [10] IN VITRO 3D OSTEOBLAST-OSTEOCYTE CO-CULTURE MECHANICAL LOADING MODEL
    Vazquez, Marisol
    Evans, Bronwen A. J.
    Evans, Sam
    Ralphs, Jim R.
    Riccardi, Daniela
    Mason, Deborah J.
    OSTEOPOROSIS INTERNATIONAL, 2012, 23 : S560 - S561