Direct extrusion of individually encapsulated endothelial and smooth muscle cells mimicking blood vessel structures and vascular native cell alignment

被引:26
作者
Bosch-Rue, E. [1 ]
Delgado, Luis M. [1 ]
Gil, F. Javier [1 ]
Perez, Roman A. [1 ]
机构
[1] Univ Int Catalunya UIC, Bioengn Inst Technol BIT, Sant Cugat Del Valles, Spain
关键词
blood vessel; tissue engineering; coaxial extrusion; vascular construct; cell-laden hydrogels; TISSUE; FABRICATION; DIAMETER;
D O I
10.1088/1758-5090/abbd27
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Cardiovascular diseases (CVDs) are considered the principal cause of worldwide death, being atherosclerosis the main etiology. Up to now, the predominant treatment for CVDs has been bypass surgery from autologous source. However, due to previous harvest or the type of disease, this is not always an option. For this reason, tissue engineered blood vessels (TEBV) emerged as an alternative graft source for blood vessel replacement. In order to develop a TEBV, it should mimic the architecture of a native blood vessel encapsulating the specific vascular cells in their respective layers with native alignment, and with appropriate mechanical stability. Here, we propose the extrusion of two different cell encapsulating hydrogels, mainly alginate and collagen, and a sacrificial polymer, through a triple coaxial nozzle, which in contact with a crosslinking solution allows the formation of bilayered hollow fibers, mimicking the architecture of native blood vessels. Prior to extrusion, the innermost cell encapsulating hydrogel was loaded with human umbilical vein endothelial cells (HUVECs), whereas the outer hydrogel was loaded with human aortic smooth muscle cells (HASMCs). The size of the TEVB could be controlled by changing the injection speed, presenting homogeneity between the constructs. The obtained structures were robust, allowing its manipulation as well as the perfusion of liquids. Both cell types presented high rates of survival after the extrusion process as well as after 20 d in culture (over 90%). Additionally, a high percentage of HASMC and HUVEC were aligned perpendicular and parallel to the TEBV, respectively, in their own layers, resembling the physiological arrangement foundin vivo. Our approach enables the rapid formation of TEBV-like structures presenting high cell viability and allowing proliferation and natural alignment of vascular cells.
引用
收藏
页数:15
相关论文
共 43 条
  • [31] The three-dimensional micro- and nanostructure of the aortic medial lamellar unit measured using 3D confocal and electron microscopy imaging
    O'Connell, Mary K.
    Murthy, Sushila
    Phan, Samson
    Xu, Chengpei
    Buchanan, JoAnn
    Spilker, Ryan
    Dalman, Ronald L.
    Zarins, Christopher K.
    Denk, Winfried
    Taylor, Charles A.
    [J]. MATRIX BIOLOGY, 2008, 27 (03) : 171 - 181
  • [32] Oikonomou E, 2017, CORONARY ARTERY DIS, P3
  • [33] Onoe H, 2013, NAT MATER, V12, P584, DOI [10.1038/nmat3606, 10.1038/NMAT3606]
  • [34] Paszkowiak Jacek J, 2003, Vasc Endovascular Surg, V37, P47, DOI 10.1177/153857440303700107
  • [35] Perez RA, 2014, TISSUE ENG PT A, V20, P103, DOI [10.1089/ten.tea.2013.0198, 10.1089/ten.TEA.2013.0198]
  • [36] Effect of mechanical factors on the function of engineered human blood microvessels in microfluidic collagen gels
    Price, Gavrielle M.
    Wong, Keith H. K.
    Truslow, James G.
    Leung, Alexander D.
    Acharya, Chitrangada
    Tien, Joe
    [J]. BIOMATERIALS, 2010, 31 (24) : 6182 - 6189
  • [37] Biomechanical regulation of vascular smooth muscle cell functions: from in vitro to in vivo understanding
    Qiu, Juhui
    Zheng, Yiming
    Hu, Jianjun
    Liao, Donghua
    Gregersen, Hans
    Deng, Xiaoyan
    Fan, Yubo
    Wang, Guixue
    [J]. JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2014, 11 (90)
  • [38] Human immune-cell response towards diverse xenogeneic and allogeneic decellularized biomaterials
    Rieder, Erwin
    Steinacher-Nigisch, Anneliese
    Weigel, Guenter
    [J]. INTERNATIONAL JOURNAL OF SURGERY, 2016, 36 : 347 - 351
  • [39] Understanding Saphenous Vein Graft Patency
    Sabik, Joseph F., III
    [J]. CIRCULATION, 2011, 124 (03) : 273 - 275
  • [40] Truskey George A, 2010, Int J High Throughput Screen, V2010, P171