3D Bioprinting Using Universal Fugitive Network Bioinks

被引:0
|
作者
Arslan, Hakan [1 ,2 ]
Davuluri, Aneela [1 ]
Nguyen, Hiep H. [3 ]
So, Byung Ran [3 ]
Lee, Juhyun [4 ]
Jeon, Junha [3 ]
Yum, Kyungsuk [1 ]
机构
[1] Univ Texas Arlington, Dept Mat Sci & Engn, Arlington, TX 76019 USA
[2] Univ Texas Arlington, Dept Mech & Aerosp Engn, Arlington, TX 76019 USA
[3] Univ Texas Arlington, Dept Chem & Biochem, Arlington, TX 76019 USA
[4] Univ Texas Arlington, Dept Bioengn, Arlington, TX 76019 USA
来源
ACS APPLIED BIO MATERIALS | 2024年 / 7卷 / 10期
基金
美国国家科学基金会;
关键词
3D bioprinting; 4D printing; hydrogels; bioinks; fugitive inks; 3D cell culture; STEM-CELL FATE; HYALURONIC-ACID; HYDROGELS; GELATIN; CONSTRUCTS; BIOMATERIALS; DEGRADATION; DESIGN;
D O I
10.1021/acsabm.4c01220
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Three-dimensional (3D) bioprinting has emerged with potential for creating functional 3D tissues with customized geometries. However, the limited availability of bioinks capable of printing 3D structures with both high-shape fidelity and desired biological environments for encapsulated cells remains a key challenge. Here, we present a 3D bioprinting approach that uses universal fugitive network bioinks prepared by loading cells and hydrogel precursors (bioink base materials) into a 3D printable fugitive carrier. This approach constructs 3D structures of cell-encapsulated hydrogels by printing 3D structures using fugitive network bioinks, followed by cross-linking printed structures and removing the carrier from them. The use of the fugitive carrier decouples the 3D printability of bioinks from the material properties of bioink base materials, making this approach readily applicable to a range of hydrogel systems. The decoupling also enables the design of bioinks for the biological functionality of the final printed constructs without compromising the 3D printability. We demonstrate the generalizable 3D printability by printing self-supporting 3D structures of various hydrogels, including conventionally non-3D printable hydrogels and those with a low polymer content. We conduct preprinting screening of bioink base materials through 3D cell culture to select bioinks with high cell compatibility. The selected bioinks produce 3D constructs of cell-encapsulated hydrogels with both high-shape fidelity and high cell viability and proliferation. The universal fugitive network bioink platform could significantly expand 3D printable bioinks with customizable biological functionalities and the adoption of 3D bioprinting in diverse research and applied settings.
引用
收藏
页码:7040 / 7050
页数:11
相关论文
共 50 条
  • [1] 3D Bioprinting using UNIversal Orthogonal Network (UNION) Bioinks
    Hull, Sarah M.
    Lindsay, Christopher D.
    Brunel, Lucia G.
    Shiwarski, Daniel J.
    Tashman, Joshua W.
    Roth, Julien G.
    Myung, David
    Feinberg, Adam W.
    Heilshorn, Sarah C.
    ADVANCED FUNCTIONAL MATERIALS, 2021, 31 (07)
  • [2] Expanding and optimizing 3D bioprinting capabilities using complementary network bioinks
    Ouyang, Liliang
    Armstrong, James P. K.
    Lin, Yiyang
    Wojciechowski, Jonathan P.
    Lee-Reeves, Charlotte
    Hachim, Daniel
    Zhou, Kun
    Burdick, Jason A.
    Stevens, Molly M.
    SCIENCE ADVANCES, 2020, 6 (38)
  • [3] Engineering bioinks for 3D bioprinting
    Decante, Guy
    Costa, Joao B.
    Silva-Correia, Joana
    Collins, Maurice N.
    Reis, Rui L.
    Oliveira, J. Miguel
    BIOFABRICATION, 2021, 13 (03)
  • [4] Bioinks for 3D bioprinting: an overview
    Gungor-Ozkerim, P. Selcan
    Inci, Ilyas
    Zhang, Yu Shrike
    Khademhosseini, Ali
    Dokmeci, Mehmet Remzi
    BIOMATERIALS SCIENCE, 2018, 6 (05) : 915 - 946
  • [5] Collagen Bioinks for 3D Bioprinting
    Bagley, B.
    TISSUE ENGINEERING PART A, 2017, 23 : S57 - S57
  • [6] Nanocomposite bioinks for 3D bioprinting
    Cai, Yanli
    Chang, Soon Yee
    Gan, Soo Wah
    Ma, Sha
    Lu, Wen Feng
    Yen, Ching-Chiuan
    Acta Biomaterialia, 2022, 151 : 45 - 69
  • [7] Nanocomposite bioinks for 3D bioprinting
    Cai, Yanli
    Chang, Soon Yee
    Gan, Soo Wah
    Ma, Sha
    Lu, Wen Feng
    Yen, Ching-Chiuan
    ACTA BIOMATERIALIA, 2022, 151 : 45 - 69
  • [8] Functionalizing bioinks for 3D bioprinting applications
    Parak, Azraa
    Pradeep, Priyamvada
    du Toit, Lisa C.
    Kumar, Pradeep
    Choonara, Yahya E.
    Pillay, Viness
    DRUG DISCOVERY TODAY, 2019, 24 (01) : 198 - 205
  • [9] Natural and Synthetic Bioinks for 3D Bioprinting
    Khoeini, Roghayeh
    Nosrati, Hamed
    Akbarzadeh, Abolfazl
    Eftekhari, Aziz
    Kavetskyy, Taras
    Khalilov, Rovshan
    Ahmadian, Elham
    Nasibova, Aygun
    Datta, Pallab
    Roshangar, Leila
    Deluca, Dante C.
    Davaran, Soodabeh
    Cucchiarini, Magali
    Ozbolat, Ibrahim T.
    ADVANCED NANOBIOMED RESEARCH, 2021, 1 (08):
  • [10] Nanocellulosic materials as bioinks for 3D bioprinting
    Piras, Carmen C.
    Fernandez-Prieto, Susana
    De Borggraeve, Wim M.
    BIOMATERIALS SCIENCE, 2017, 5 (10) : 1988 - 1992