Mechano-regulation of vascular network formation without branches in 3D bioprinted cell-laden hydrogel constructs

被引:15
|
作者
Zhang, Guangliang [1 ,2 ]
Wang, Zhan [3 ]
Han, Fengxuan [2 ]
Jin, Guangzhe [1 ]
Xu, Lei [1 ]
Xu, Hao [2 ]
Su, Hao [1 ]
Wang, Huan [2 ]
Le, Yingying [4 ]
Fu, Yi [5 ]
Ju, Jihui [1 ]
Li, Bin [2 ]
Hou, Ruixing [1 ]
机构
[1] Soochow Univ, Dept Hand Surg, Ruihua Affiliated Hosp, 5 Tayun Rd, Suzhou 215104, Jiangsu, Peoples R China
[2] Soochow Univ, Inst Orthopaed, Dept Orthopaed Surg, Suzhou, Jiangsu, Peoples R China
[3] Wake Forest Sch Med, Sect Mol Med, Dept Internal Med, Winston Salem, NC 27101 USA
[4] Chinese Acad Sci, Univ Chinese Acad Sci, Shanghai Inst Nutr & Hlth, CAS Key Lab Nutr Metab & Food Safety, Shanghai, Peoples R China
[5] Soochow Univ, Sch Biol & Basic Med Sci, Coll Med, Dept Human Anat Histol & Embryol, Suzhou, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
3D bioprinting; contractile forces; endothelial cells; vascular; STEM-CELLS; ENDOTHELIAL-CELLS; SKIN SUBSTITUTE; UPPER EXTREMITY; YAP; YAP/TAZ; ANGIOGENESIS; MODEL; RECONSTRUCTION; TRANSCRIPTION;
D O I
10.1002/bit.27854
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Restoration of a wound is a common surgical procedure in clinic. Currently, the skin required for clinical use is taken from the patient's own body. However, it can be difficult to obtain enough skin sources for large-sized wounds and thus surgeons have started using commercial skin substitutes. The current commercial skin, which includes epidermis substitute, dermis substitute, and bilateral skin substitute, has been popularized in clinic. However, the application is limited by the occurrence of ischemia necrosis after transplantation. Recent studies suggest the use of pre-vascularized skin substitutes for wound healing is a promising area in the research field of skin tissue engineering. Pre-vascularization can be induced by changes in cultivation periods, exertion of mechanical stimuli, or coculture with endothelial cells and various factors. However, few methods could control the formation of vascular branches in engineering tissue in a self-assembly way. In this study, we use three-dimensional (3D) printing technology to confirm that a mechanical force can control the growth of blood vessels in the direction of mechanical stimulation with no branches, and that Yes-associated protein activity is involved in the regulatory progress. In vivo experiments verified that the blood vessels successfully function for blood circulation, and maintain the same direction. Results provide a theoretical basis for products of pre-vascularized skin tissues and other organs created by 3D bioprinting.
引用
收藏
页码:3787 / 3798
页数:12
相关论文
共 50 条
  • [31] 3D bioprinted hyaluronic acid-based cell-laden scaffold for brain microenvironment simulation
    Liang Ma
    Yuting Li
    Yutong Wu
    Mengfei Yu
    Abdellah Aazmi
    Lei Gao
    Qian Xue
    Yichen Luo
    Hongzhao Zhou
    Bin Zhang
    Huayong Yang
    Bio-Design and Manufacturing, 2020, 3 : 164 - 174
  • [32] Gelatin Methacrylamide Hydrogel with Graphene Nanoplatelets for Neural Cell-laden 3D Bioprinting
    Zhu, Wei
    Harris, Brent T.
    Zhang, Lijie Grace
    2016 38TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2016, : 4185 - 4188
  • [33] Inhibited astrocytic differentiation in neural stem cell-laden 3D bioprinted conductive composite hydrogel scaffolds for repair of spinal cord injury
    Song, Shaoshuai
    Li, Yuxuan
    Huang, Jie
    Cheng, Shengnan
    Zhang, Zhijun
    BIOMATERIALS ADVANCES, 2023, 148
  • [34] HIGH RESOLUTION LIGHT-BASED 3D PRINTING OF CELL-LADEN BIO CONSTRUCTS
    Madrid-Wolff, Jorge
    Boniface, Antoine
    Loterie, Damien
    Delrot, Paul
    Moser, Christophe
    TISSUE ENGINEERING PART A, 2023, 29 (11-12) : 188 - 188
  • [35] Coaxial nozzle-assisted electrohydrodynamic printing for microscale 3D cell-laden constructs
    Liang, Hongtao
    He, Jiankang
    Chang, Jinke
    Zhang, Bing
    Li, Dichen
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2018, 4 (01)
  • [36] 3D printing of HEK 293FT cell-laden hydrogel into macroporous constructs with high cell viability and normal biological functions
    Ouyang, Liliang
    Yao, Rui
    Chen, Xi
    Na, Jie
    Sun, Wei
    BIOFABRICATION, 2015, 7 (01)
  • [37] Development of 3D bioprinted corneal constructs using a biomimetic hydrogel
    Joshi, Vineet
    Singh, Vivek
    Chameettachal, Shibu
    Sahoo, Abhishek
    Prasad, Deeksha
    Singh, Vijay
    Ghosh, Anwesha
    Bokara, Kiran
    Pati, Falguni
    Basu, Sayan
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2023, 64 (08)
  • [38] Synchronous 3D Bioprinting of Large-Scale Cell-Laden Constructs with Nutrient Networks
    Shao, Lei
    Gao, Qing
    Xie, Chaoqi
    Fu, Jianzhong
    Xiang, Meixiang
    He, Yong
    ADVANCED HEALTHCARE MATERIALS, 2020, 9 (15)
  • [39] Perfusion directed 3D mineral formation within cell-laden hydrogels
    Sawyer, Stephen W.
    Shridhar, Shivkumar Vishnempet
    Zhang, Kairui
    Albrecht, Lucas D.
    Filip, Alex B.
    Horton, Jason A.
    Soman, Pranav
    BIOFABRICATION, 2018, 10 (03)
  • [40] Design and optimization of 3D-bioprinted cell-laden scaffolds in dynamic culture
    Li, Jing
    Chen, Feng
    Wang, Meixia
    Zhu, Xiaolong
    He, Ning
    Li, Na
    Zhu, Haotian
    Han, Xiaoxiao
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2024, 10 (03) : 277 - 299