3D Bioprinting of Vessel-like Structures with Multilevel Fluidic Channels

被引:186
作者
Gao, Qing [1 ,2 ]
Liu, Zhenjie [3 ]
Lin, Zhiwei [1 ]
Qiu, Jingjiang [2 ]
Liu, Yu [2 ]
Liu, An [4 ]
Wang, Yidong [5 ]
Xiang, Meixiang [5 ]
Chen, Bing [3 ]
Fu, Jianzhong [1 ]
He, Yong [2 ]
机构
[1] Zhejiang Univ, Sch Mech Engn, State Key Lab Fluid Power & Mechatron Syst, Hangzhou 310027, Zhejiang, Peoples R China
[2] Zhejiang Univ, Sch Mech Engn, Key Lab Printing Proc & Equipment Zhejiang Prov 3, Hangzhou 310027, Zhejiang, Peoples R China
[3] Zhejiang Univ, Sch Med, Dept Vasc Surg, Affiliated Hosp 2, Hangzhou 310009, Zhejiang, Peoples R China
[4] Zhejiang Univ, Sch Med, Dept Orthopaed Surg, Affiliated Hosp 2, Hangzhou 310009, Zhejiang, Peoples R China
[5] Zhejiang Univ, Sch Med, Dept Cardiol, Affiliated Hosp 2, Hangzhou 310009, Zhejiang, Peoples R China
来源
ACS BIOMATERIALS SCIENCE & ENGINEERING | 2017年 / 3卷 / 03期
基金
中国国家自然科学基金;
关键词
3D bioprinting; vascularization; multilevel fluidic channels; 3D cell culture; tissue engineering; ON-A-CHIP; CARDIOVASCULAR-DISEASES; TISSUE; CELL; CONSTRUCTS; ATHEROSCLEROSIS; MICROFIBERS; NETWORKS; VASCULATURE; FABRICATION;
D O I
10.1021/acsbiomaterials.6b00643
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
In this study, 3D hydrogel-based vascular structures with multilevel fluidic channels (macro-channel for mechanical stimulation and microchannel for nutrient delivery and chemical stimulation) were fabricated by extrusion-based three-dimensional (3D) bioprinting, which could be integrated into organ-on-chip devices that would better simulate the microenvironment of blood vessels. In this approach, partially cross-linked hollow alginate filaments loading fibroblasts and smooth muscle cells were extruded through a coaxial nozzle and then printed along a rotated rod template, and endothelial cells were seeded into the inner wall. Because of the fusion of adjacent hollow filaments, two-level fluidic channels, including a macro-channel in the middle formed from the cylindrical template and a microchannel around the wall resulted from the hollow filaments were formed. By this method, different shapes of vessellike structures of millimeter diameter were printed. The structures printed using 4% alginate exhibited ultimate strength of 0.184 MPa, and L929 mouse fibroblasts encapsulated in the structures showed over 90% survival within 1 week. As a proof of concept, an envisioned load system of both mechanical and chemical stimulation was demonstrated. In addition, a vascular circulation flow system, a cerebral artery surgery simulator, and a cell coculture model were fabricated to demonstrate potential tissue engineering applications of these printed structures.
引用
收藏
页码:399 / 408
页数:10
相关论文
共 48 条
  • [1] Hydrogel bioprinted microchannel networks for vascularization of tissue engineering constructs
    Bertassoni, Luiz E.
    Cecconi, Martina
    Manoharan, Vijayan
    Nikkhah, Mehdi
    Hjortnaes, Jesper
    Cristino, Ana Luiza
    Barabaschi, Giada
    Demarchi, Danilo
    Dokmeci, Mehmet R.
    Yang, Yunzhi
    Khademhosseini, Ali
    [J]. LAB ON A CHIP, 2014, 14 (13) : 2202 - 2211
  • [2] Direct-write bioprinting of cell-laden methacrylated gelatin hydrogels
    Bertassoni, Luiz E.
    Cardoso, Juliana C.
    Manoharan, Vijayan
    Cristino, Ana L.
    Bhise, Nupura S.
    Araujo, Wesleyan A.
    Zorlutuna, Pinar
    Vrana, Nihal E.
    Ghaemmaghami, Amir M.
    Dokmeci, Mehmet R.
    Khademhosseini, Ali
    [J]. BIOFABRICATION, 2014, 6 (02)
  • [3] Writing in the granular gel medium
    Bhattacharjee, Tapomoy
    Zehnder, Steven M.
    Rowe, Kyle G.
    Jain, Suhani
    Nixon, Ryan M.
    Sawyer, W. Gregory
    Angelini, Thomas E.
    [J]. SCIENCE ADVANCES, 2015, 1 (08):
  • [4] Bioinspired Multicompartmental Microfibers from Microfluidics
    Cheng, Yao
    Zheng, Fuyin
    Lu, Jie
    Shang, Luoran
    Xie, Zhuoying
    Zhao, Yuanjin
    Chen, Yongping
    Gu, Zhongze
    [J]. ADVANCED MATERIALS, 2014, 26 (30) : 5184 - 5190
  • [5] Freeform Inkjet Printing of Cellular Structures with Bifurcations
    Christensen, Kyle
    Xu, Changxue
    Chai, Wenxuan
    Zhang, Zhengyi
    Fu, Jianzhong
    Huang, Yong
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2015, 112 (05) : 1047 - 1055
  • [6] Microfl uidic Bioprinting of Heterogeneous 3D Tissue Constructs Using Low-Viscosity Bioink
    Colosi, Cristina
    Shin, Su Ryon
    Manoharan, Vijayan
    Massa, Solange
    Costantini, Marco
    Barbetta, Andrea
    Dokmeci, Mehmet Remzi
    Dentini, Mariella
    Khademhosseini, Ali
    [J]. ADVANCED MATERIALS, 2016, 28 (04) : 677 - 684
  • [7] Late-life depression and risk of vascular dementia and Alzheimer's disease: systematic review and meta-analysis of community-based cohort studies
    Diniz, Breno S.
    Butters, Meryl A.
    Albert, Steven M.
    Dew, Mary Amanda
    Reynolds, Charles F., III
    [J]. BRITISH JOURNAL OF PSYCHIATRY, 2013, 202 (05) : 329 - 335
  • [8] Coaxial nozzle-assisted 3D bioprinting with built-in microchannels for nutrients delivery
    Gao, Qing
    He, Yong
    Fu, Jian-zhong
    Liu, An
    Ma, Liang
    [J]. BIOMATERIALS, 2015, 61 : 203 - 215
  • [9] A microfluidic platform for probing small artery structure and function
    Guenther, Axel
    Yasotharan, Sanjesh
    Vagaon, Andrei
    Lochovsky, Conrad
    Pinto, Sascha
    Yang, Jingli
    Lau, Calvin
    Voigtlaender-Bolz, Julia
    Bolz, Steffen-Sebastian
    [J]. LAB ON A CHIP, 2010, 10 (18) : 2341 - 2349
  • [10] Fabrication of low cost soft tissue prostheses with the desktop 3D printer
    He, Yong
    Xue, Guang-huai
    Fu, Jian-zhong
    [J]. SCIENTIFIC REPORTS, 2014, 4