Assessment of the Biocompatibility Ability and Differentiation Capacity of Mesenchymal Stem Cells on Biopolymer/Gold Nanocomposites

Author:

Hung Huey-Shan12ORCID,Shen Chiung-Chyi3,Wu Jyun-Ting1,Yueh Chun-Yu4ORCID,Yang Meng-Yin3ORCID,Yang Yi-Chin3ORCID,Cheng Wen-Yu3567

Affiliation:

1. Graduate Institute of Biomedical Science, China Medical University, Taichung 404328, Taiwan

2. Translational Medicine Research, China Medical University Hospital, Taichung 404327, Taiwan

3. Department of Minimally Invasive Skull Base Neurosurgery, Neurological Institute, Taichung Veterans General Hospital, Taichung 407204, Taiwan

4. School of Medicine, China Medical University, Taichung 404333, Taiwan

5. Department of Post-Baccalaureate Medicine, College of Medicine, National Chung Hsing University, Taichung 402202, Taiwan

6. Institute of Biomedical Sciences, National Chung Hsing University, Taichung 402202, Taiwan

7. Taiwan Department of Physical Therapy, Hung Kuang University, Taichung 433304, Taiwan

Abstract

This study assessed the biocompatibility of two types of nanogold composites: fibronectin-gold (FN-Au) and collagen-gold (Col-Au). It consisted of three main parts: surface characterization, in vitro biocompatibility assessments, and animal models. To determine the structural and functional differences between the materials used in this study, atomic force microscopy, Fourier-transform infrared spectroscopy, and ultraviolet-visible spectrophotometry were used to investigate their surface topography and functional groups. The F-actin staining, proliferation, migration, reactive oxygen species generation, platelet activation, and monocyte activation of mesenchymal stem cells (MSCs) cultured on the FN-Au and Col-Au nanocomposites were investigated to determine their biological and cellular behaviors. Additionally, animal biocompatibility experiments measured capsule formation and collagen deposition in female Sprague–Dawley rats. The results showed that MSCs responded better on the FN-Au and Col-AU nanocomposites than on the control (tissue culture polystyrene) or pure substances, attributed to their incorporation of an optimal Au concentration (12.2 ppm), which induced significant surface morphological changes, nano topography cues, and better biocompatibility. Moreover, neuronal, endothelial, bone, and adipose tissues demonstrated better differentiation ability on the FN-Au and Col-Au nanocomposites. Nanocomposites have a crucial role in tissue engineering and even vascular grafts. Finally, MSCs were demonstrated to effectively enhance the stability of the endothelial structure, indicating that they can be applied as promising alternatives to clinics in the future.

Funder

Ministry of Science and Technology, Taiwan

China Medical University

Research and Development Center for Immunology Center, China Medical University

Blood Bank, Taichung Veteran Hospital, Taiwan

Publisher

MDPI AG

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