3D-Bioprinted GelMA Scaffold with ASCs and HUVECs for Engineering Vascularized Adipose Tissue

被引:0
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作者
Cheng, Ming-Huei [2 ,3 ]
Chang, Chien-Wen [4 ]
Wang, Jerry [3 ]
Bupphathong, Sasinan [1 ,5 ]
Huang, Wei [6 ]
Lin, Chih-Hsin [1 ]
机构
[1] Graduate Institute of Nanomedicine and Medical Engineering, College of Biomedical Engineering, Taipei Medical University, Taipei,11031, Taiwan
[2] Center of Lymphedema Microsurgery, Department of Plastic and Reconstructive Surgery, Chang Gung Memorial Hospital, College of Medicine, Chang Gung University, Taoyuan,33305, Taiwan
[3] Center for Tissue Engineering, Chang Gung Memorial Hospital, Taoyuan,33305, Taiwan
[4] Department of Biomedical Engineering and Environmental Sciences, National Tsing Hua University, Hsinchu,30013, Taiwan
[5] Highvalue Biomaterials Research and Commercialization Center, National Taipei University of Technology, Taipei,10608, Taiwan
[6] Department of Orthodontics, Rutgers School of Dental Medicine, Newark,NJ,07103, United States
关键词
Blood - Cytology - Endothelial cells - Hydrogels - Mammals - Scaffolds (biology) - Self assembly - Tissue;
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学科分类号
摘要
The purpose of tissue engineering is to reconstruct parts of injured tissues and to resolve the shortage of organ donations. However, the main concern is the limited size of engineered tissue due to insufficient oxygen and nutrition distribution in large three-dimensional (3D) tissue constructs. To provide better support for cells inside the scaffolds, the vascularization of blood vessels within the scaffold could be a solution. This study compared the effects of different culturing systems using human adipose tissue-derived stem/stromal cells (ASCs), human umbilical vein endothelial cells (HUVECs), and coculture of ASCs and HUVECs in 3D-bioprinted gelatin methacrylate (GelMA) hydrogel constructs. The in vitro results showed that the number of live cells was highest in the coculture of ASCs and HUVECs in the GelMA hydrogel after culturing for 21 days. Additionally, the tubular structure was the most abundant in the GelMA hydrogel, containing both ASCs and HUVECs. In the in vivo test, blood vessels were present in both the HUVECs and the coculture of ASCs and HUVECs hydrogels implanted in mice. However, the blood vessel density was the highest in the HUVEC and ASC coculture groups. These findings indicate that the 3D-bioprinted GelMA hydrogel coculture system could be a promising biomaterial for large tissue engineering applications. © 2023 American Chemical Society.
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页码:406 / 415
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