Biosilica source converted into mesoporous bioactive glass implanted for tendon‐bone healing

Author:

Lin Hsiu‐Mei1ORCID,Chen Chih‐Hwa2345,Hsu Fu‐Yin1,Wu Zhi‐Yuan1,Wong Pei‐Chun26ORCID

Affiliation:

1. Department of Bioscience and Biotechnology National Taiwan Ocean University Keelung City Taiwan

2. School of Biomedical Engineering College of Biomedical Engineering, Taipei Medical University Taipei Taiwan

3. Department of Orthopedics Taipei Medical University, Shuang Ho Hospital, School of Medicine, College of Medicine, Research Center of Biomedical Device, Taipei Medical University Taipei Taiwan

4. School of Medicine College of Medicine, Taipei Medical University Taipei Taiwan

5. Research Center of Biomedical Device Taipei Medical University Taipei Taiwan

6. Graduate Institute of Biomedical Optomechatronics, College of Biomedical Engineering, Taipei Medical University Taipei Taiwan

Abstract

AbstractIn this study, mesoporous bioactive glass (MBG) has been synthesized using a natural material, diatom. Then, the surface morphology, such as pore size and dimension, was observed by transmission electron microscope. The physical properties of MBG were quantitatively analyzed by X‐ray diffraction. Thermal properties were analyzed by thermogravimetric analysis. The cytotoxicity test was carried out by the MTT (3‐[4,5‐dimethylthaizol‐2‐yl]‐2,5‐diphenyltetrazolium bromide) assay to ensure biocompatibility. After that, MBG was mixed with gelatin to synthesize nanofiber matrix by an electrospinning process. The growth factors of platelet‐rich plasma have been activated by ethyl(dimethylaminopropyl) carbodiimide/N‐hydroxysuccinimide grafting on the surface of nanofiber matrix. Nanofiber structure of MBG has been observed by scanning electron microscope. In vivo biocompatibility and the situation of bone healing were analyzed by animal experiment; the histology result was observation by H&E and Masson's trichrome staining. The results show that the MBG has no residue of organic matter, pore size was around 10 nm. MBG nanofiber matrix can significantly improve the bone healing compared with control group (without MBG nanofiber matrix). In general, MBG nanofiber matrix can significantly enhance bone‐tendon healing and has great potential to be applied in the orthopedic field.

Funder

National Science Council

National Taiwan Ocean University

Publisher

Wiley

Subject

General Chemistry

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