Three-dimensional photopatterning of hydrogels containing living cells

被引:308
|
作者
Liu, VA
Bhatia, SN
机构
[1] Univ Calif San Diego, Dept Bioengn, La Jolla, CA 92093 USA
[2] Univ Calif San Diego, Dept Med, La Jolla, CA 92093 USA
基金
美国国家卫生研究院; 美国国家航空航天局; 美国国家科学基金会;
关键词
photopolymerization; hydrogels; patterning; poly(ethylene glycol);
D O I
10.1023/A:1020932105236
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Recent advances in tissue engineering have leveraged progress in both polymer chemistry and cell biology. For example, photopolymerizable biomaterials have been developed that can be used to photoencapsulate cells in peptide-derivatized hydrogel networks. While these materials have been useful in bone, cartilage and vascular tissue engineering, they have limited applicability to more complex tissues that are characterized by precise cell and tissue organization (e.g. liver, kidney). Typically, the tissue shape has been defined solely by the container used for photopolymerization. In this paper, we describe the use of photolithographic techniques to broaden the capability of photopolymerizable PEG-based biomaterials by inclusion of structural features within the cell/hydrogel network. Specifically, we describe the development of a photopatterning technique that allows localized photoencapsulation of live mammalian cells to control the tissue architecture. In this study, we optimized the effect of ultraviolet (UV) exposure and photoinitiator concentration on both photopatterning resolution and cell viability. With regard to photopatterning resolution, we found that increased UV exposure broadens feature size, while photoinitiator concentration had no significant effect on patterning resolution. Cell viability was characterized using HepG2 cells, a human hepatoma cell line. We observed that UV exposure itself did not cause cell death over the doses and time scale studied, while the photoinitiator 2,2-dimethoxy-2-phenyl-acetophenone was itself cytotoxic in a dose-dependent manner. Furthermore, the combination of UV and photoinitiator was the least biocompatible condition presumable due to formation of toxic free radicals. The utility of this method was demonstrated by photopatterning hydrogels containing live cells in various single layer structures, patterns of multiple cellular domains in a single "hybrid" hydrogel layer, and patterns of multiple cell types in multiple layers simulating use in a tissue engineering application. The combination of microfabrication approaches with photopolymerizable biomaterials will have implication sin tissue engineering, elucidating fundamental structure-function relationships of tissues, and formation of immobilized cell arrays for biotechnological applications.
引用
收藏
页码:257 / 266
页数:10
相关论文
共 50 条
  • [31] Three-dimensional cell culture of human mesenchymal stem cells in nanofibrillar cellulose hydrogels
    Ioannis Azoidis
    Joel Metcalfe
    James Reynolds
    Shirley Keeton
    Sema S. Hakki
    Jonathan Sheard
    Darius Widera
    MRS Communications, 2017, 7 : 458 - 465
  • [32] Three-dimensional cell culture of human mesenchymal stem cells in nanofibrillar cellulose hydrogels
    Azoidis, Ioannis
    Metcalfe, Joel
    Reynolds, James
    Keeton, Shirley
    Hakki, Sema S.
    Sheard, Jonathan
    Widera, Darius
    MRS COMMUNICATIONS, 2017, 7 (03) : 458 - 465
  • [33] Three-dimensional quartics containing a plane
    Grinenko, M. M.
    SBORNIK MATHEMATICS, 2011, 202 (02) : 207 - 241
  • [34] Dynamic Hydrogels and Polymers as Inks for Three-Dimensional Printing
    Heidarian, Pejman
    Kouzani, Abbas Z.
    Kaynak, Akif
    Paulino, Mariana
    Nasri-Nasrabadi, Bijan
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2019, 5 (06): : 2688 - 2707
  • [35] Assembly of Viral Hydrogels for Three-Dimensional Conducting Nanocomposites
    Chen, Po-Yen
    Hyder, Md Nasim
    Mackanic, David
    Courchesne, Noemie-Manuelle Dorval
    Qi, Jifa
    Klug, Matthew T.
    Belcher, Angela M.
    Hammond, Paula T.
    ADVANCED MATERIALS, 2014, 26 (30) : 5101 - 5107
  • [36] Convenient Three-Dimensional Cell Culture in Supermolecular Hydrogels
    Li, Ping
    Yin, Zongqi
    Dou, Xiao-Qiu
    Zhou, Guangdong
    Feng, Chuan-Liang
    ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (10) : 7948 - 7952
  • [37] Hydrogels for Three-Dimensional Ionizing-Radiation Dosimetry
    Marrale, Maurizio
    d'Errico, Francesco
    GELS, 2021, 7 (02)
  • [38] Engineering three-dimensional cell mechanical microenvironment with hydrogels
    Huang, Guoyou
    Wang, Lin
    Wang, ShuQi
    Han, Yulong
    Wu, Jinhui
    Zhang, Qiancheng
    Xu, Feng
    Lu, Tian Jian
    BIOFABRICATION, 2012, 4 (04)
  • [39] Engineering Hydrogels for the Development of Three-Dimensional In Vitro Models
    Maji, Somnath
    Lee, Hyungseok
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (05)
  • [40] Three-Dimensional Printing of Hydrogels for Flexible Sensors: A Review
    Khan, Suhail Ayoub
    Ahmad, Hamza
    Zhu, Guoyin
    Pang, Huan
    Zhang, Yizhou
    GELS, 2024, 10 (03)