Predicting and elucidating the post-printing behavior of 3D printed cancer cells in hydrogel structures by integrating in-vitro and in-silico experiments

被引:0
|
作者
Dorsa Mohammadrezaei
Nafiseh Moghimi
Shadi Vandvajdi
Gibin Powathil
Sara Hamis
Mohammad Kohandel
机构
[1] University of Waterloo,Department of Applied Mathematics
[2] Swansea University,Department of Mathematics, Faculty of Science and Engineering
[3] University of St Andrews,School of Mathematics and Statistics
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
A key feature distinguishing 3D bioprinting from other 3D cell culture techniques is its precise control over created structures. This property allows for the high-resolution fabrication of biomimetic structures with controlled structural and mechanical properties such as porosity, permeability, and stiffness. However, analyzing post-printing cellular dynamics and optimizing their functions within the 3D fabricated environment is only possible through trial and error and replicating several experiments. This issue motivated the development of a cellular automata model for the first time to simulate post-printing cell behaviour within the 3D bioprinted construct. To improve our model, we bioprinted a 3D construct using MDA-MB-231 cell-laden hydrogel and evaluated cellular functions, including viability and proliferation in 11 days. The results showed that our model successfully simulated the 3D bioprinted structure and captured in-vitro observations. We demonstrated that in-silico model could predict and elucidate post-printing biological functions for different initial cell numbers in bioink and different bioink formulations with gelatine and alginate, without replicating several costly and time-consuming in-vitro measurements. We believe such a computational framework will substantially impact 3D bioprinting's future application. We hope this study inspires researchers to further realize how an in-silico model might be utilized to advance in-vitro 3D bioprinting research.
引用
收藏
相关论文
共 3 条
  • [1] Predicting and elucidating the post-printing behavior of 3D printed cancer cells in hydrogel structures by integrating in-vitro and in-silico experiments
    Mohammadrezaei, Dorsa
    Moghimi, Nafiseh
    Vandvajdi, Shadi
    Powathil, Gibin
    Hamis, Sara
    Kohandel, Mohammad
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [2] Quantifying the Morphology and Mechanisms of Cancer Progression in 3D In-Vitro Environments: Integrating Experiments and Multiscale Models
    Dimitriou, Nikolaos M. M.
    Flores-Torres, Salvador
    Kinsella, Joseph Matthew
    Mitsis, Georgios D. D.
    IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2023, 70 (04) : 1318 - 1329
  • [3] A COMBINED APPROACH OF NUMERICAL SIMULATION AND ADDITIVE MANIFACTURING TECHNIQUE FOR IN-SILICO AND IN-VITRO TESTING OF A 3D PRINTING-BASED AORTIC POLYMERIC HEART VALVE
    Gasparotti, E.
    Cella, U.
    Vignali, E.
    Costa, E.
    Soldani, G.
    Cavallo, A.
    Losi, P.
    Biancolini, M. E.
    Celi, S.
    SECOND INTERNATIONAL CONFERENCE ON SIMULATION FOR ADDITIVE MANUFACTURING (SIM-AM 2019), 2019, : 19 - 30