High Throughput Bioprinting Using Decellularized Adipose Tissue-Based Hydrogels for 3D Breast Cancer Modeling

被引:2
|
作者
Shukla, Priyanshu [1 ]
Bera, Ashis Kumar [1 ]
Yeleswarapu, Sriya [1 ]
Pati, Falguni [1 ]
机构
[1] Indian Inst Technol Hyderabad, Dept Biomed Engn, Sangareddy 502284, Telangana, India
关键词
3D bioprinting; adipose tissue; breast cancer; decellularized extracellular matrix hydrogel; high throughput; EXTRACELLULAR-MATRIX; BONE REGENERATION; STEM-CELLS; IN-VITRO; SCAFFOLD; DIFFERENTIATION; EXPRESSION; PHENOTYPES; GROWTH;
D O I
10.1002/mabi.202400035
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
3D bioprinting allows rapid automated fabrication and can be applied for high throughput generation of biomimetic constructs for in vitro drug screening. Decellularized extracellular matrix (dECM) hydrogel is a popular biomaterial choice for tissue engineering and studying carcinogenesis as a tumor microenvironmental mimetic. This study proposes a method for high throughput bioprinting with decellularized adipose tissue (DAT) based hydrogels for 3D breast cancer modeling. A comparative analysis of decellularization protocol using detergent-based and detergent-free decellularization methods for caprine-origin adipose tissue is performed, and the efficacy of dECM hydrogel for 3D cancer modeling is assessed. Histological, biochemical, morphological, and biological characterization and analysis showcase the cytocompatibility of DAT hydrogel. The rheological property of DAT hydrogel and printing process optimization is assessed to select a bioprinting window to attain 3D breast cancer models. The bioprinted tissues are characterized for cellular viability and tumor cell-matrix interactions. Additionally, an approach for breast cancer modeling is shown by performing rapid high throughput bioprinting in a 96-well plate format, and in vitro drug screening using 5-fluorouracil is performed on 3D bioprinted microtumors. The results of this study suggest that high throughput bioprinting of cancer models can potentially have downstream clinical applications like multi-drug screening platforms and personalized disease models. Non-detergent-based adipose tissue decellularization is performed, and derived hydrogel is used as bioink without any viscosity modifiers to bioprint breast cancer models. Bioprinting approach is adapted for high throughput fabrication in 96-well plate format. 3D microtumors are bioprinted in less than 7 minutes with minimal usage of bioink and reagents required for cell culture and drug screening application. image
引用
收藏
页数:18
相关论文
共 50 条
  • [41] High-throughput Screening of Brain Cancer-ECM Interactions in 3D using Gradient Hydrogels
    Zhu, D.
    Trinh, P.
    Yang, F.
    TISSUE ENGINEERING PART A, 2017, 23 : S59 - S60
  • [42] Current progresses of 3D bioprinting based tissue engineering
    Zeyu Zhang
    XiuJie Wang
    Quantitative Biology, 2017, 5 (02) : 136 - 142
  • [43] Tunable Human Myocardium Derived Decellularized Extracellular Matrix for 3D Bioprinting and Cardiac Tissue Engineering
    Basara, Gozde
    Ozcebe, S. Gulberk
    Ellis, Bradley W.
    Zorlutuna, Pinar
    GELS, 2021, 7 (02)
  • [44] Emerging frontiers in 3D bioprinting: Harnessing decellularized matrix bioink for advancements in musculoskeletal tissue engineering
    Li, Peilin
    Li, Xixin
    Tang, Guosheng
    Zhou, Zongke
    Luo, Zeyu
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2024, 10 (05) : 68 - 96
  • [45] Recent advancements in 3D bioprinting technology of carboxymethyl cellulose-based hydrogels: Utilization in tissue engineering
    Mallakpour, Shadpour
    Tukhani, Maryam
    Hussain, Chaudhery Mustansar
    ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2021, 292
  • [46] Astrocyte 3D culture and bioprinting using peptide functionalized hyaluronan hydrogels
    Matthiesen, Isabelle
    Jury, Michael
    Rasti Boroojeni, Fatemeh
    Ludwig, Saskia L.
    Holzreuter, Muriel
    Buchmann, Sebastian
    Aman Trager, Andrea
    Selegard, Robert
    Winkler, Thomas E.
    Aili, Daniel
    Herland, Anna
    SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2023, 24 (01)
  • [47] 3D bioprinting for high-throughput screening: Drug screening, disease modeling, and precision medicine applications
    Mazzocchi, Andrea
    Soker, Shay
    Skardal, Aleksander
    APPLIED PHYSICS REVIEWS, 2019, 6 (01):
  • [48] Anatomical proximity between ganglionated plexi and epicardial adipose tissue in the left atrium: implication for 3D reconstructed epicardial adipose tissue-based ablation
    Takahashi, Keiko
    Okumura, Yasuo
    Watanabe, Ichiro
    Nagashima, Koichi
    Sonoda, Kazumasa
    Sasaki, Naoko
    Kogawa, Rikitake
    Iso, Kazuki
    Kurokawa, Sayaka
    Ohkubo, Kimie
    Nakai, Toshiko
    Nakahara, Shiro
    Hori, Yuichi
    Nikaido, Mizuki
    Hirayama, Atsushi
    JOURNAL OF INTERVENTIONAL CARDIAC ELECTROPHYSIOLOGY, 2016, 47 (02) : 203 - 212
  • [49] Anatomical proximity between ganglionated plexi and epicardial adipose tissue in the left atrium: implication for 3D reconstructed epicardial adipose tissue-based ablation
    Keiko Takahashi
    Yasuo Okumura
    Ichiro Watanabe
    Koichi Nagashima
    Kazumasa Sonoda
    Naoko Sasaki
    Rikitake Kogawa
    Kazuki Iso
    Sayaka Kurokawa
    Kimie Ohkubo
    Toshiko Nakai
    Shiro Nakahara
    Yuichi Hori
    Mizuki Nikaido
    Atsushi Hirayama
    Journal of Interventional Cardiac Electrophysiology, 2016, 47 : 203 - 212
  • [50] Modeling the Mechanobiology of Cancer Cell Migration Using 3D Biomimetic Hydrogels
    Morales, Xabier
    Cortes-Dominguez, Ivan
    Ortiz-de-Solorzano, Carlos
    GELS, 2021, 7 (01) : 1 - 35