Multimodal Three-Dimensional Printing for Micro-Modulation of Scaffold Stiffness Through Machine Learning

被引:0
作者
Kiratitanaporn, Wisarut [1 ]
Guan, Jiaao [2 ]
Berry, David B. [3 ]
Lao, Alison [4 ]
Chen, Shaochen [1 ,2 ,4 ]
机构
[1] Univ Calif San Diego, Dept Bioengn, 9500 Gilman Dr, La Jolla, CA 92093 USA
[2] Univ Calif San Diego, Dept Elect & Comp Engn, La Jolla, CA 92093 USA
[3] Univ Calif San Diego, Dept Orthoped Surg, La Jolla, CA 92093 USA
[4] Univ Calif San Diego, Dept NanoEngn, La Jolla, CA 92093 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
3D printing; two-photon polymerization; digital light processing; machine learning; stiffness; SKELETAL-MUSCLE; MECHANICAL-PROPERTIES; EXTRACELLULAR-MATRIX; IN-VITRO; 3D; CONSTRUCTS; MODEL;
D O I
10.1089/ten.tea.2023.0193
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The ability to precisely control a scaffold's microstructure and geometry with light-based three-dimensional (3D) printing has been widely demonstrated. However, the modulation of scaffold's mechanical properties through prescribed printing parameters is still underexplored. This study demonstrates a novel 3D-printing workflow to create a complex, elastomeric scaffold with precision-engineered stiffness control by utilizing machine learning. Various printing parameters, including the exposure time, light intensity, printing infill, laser pump current, and printing speed were modulated to print poly (glycerol sebacate) acrylate (PGSA) scaffolds with mechanical properties ranging from 49.3 +/- 3.3 kPa to 2.8 +/- 0.3 MPa. This enables flexibility in spatial stiffness modulation in addition to high-resolution scaffold fabrication. Then, a neural network-based machine learning model was developed and validated to optimize printing parameters to yield scaffolds with user-defined stiffness modulation for two different vat photopolymerization methods: a digital light processing (DLP)-based 3D printer was utilized to rapidly fabricate stiffness-modulated scaffolds with features on the hundreds of micron scale and a two-photon polymerization (2PP) 3D printer was utilized to print fine structures on the submicron scale. A novel 3D-printing workflow was designed to utilize both DLP-based and 2PP 3D printers to create multiscale scaffolds with precision-tuned stiffness control over both gross and fine geometric features. The described workflow can be used to fabricate scaffolds for a variety of tissue engineering applications, specifically for interfacial tissue engineering for which adjacent tissues possess heterogeneous mechanical properties (e.g., muscle-tendon). Impact statement Fabricating three-dimensional (3D) printed scaffolds with complex stiffness gradients poses a fabrication challenge in light-based 3D printing. In this study, we demonstrate a novel 3D printing workflow that allows for a precise spatial stiffness control over both the macro- and microstructures of 3D printed scaffolds in addition to fine geometrical control over 3D printed scaffold's macroarchitecture. The proposed 3D printing workflow is promising for various applications, including the fabrication of interfacial scaffolds for tissue engineering.
引用
收藏
页码:280 / 292
页数:13
相关论文
共 73 条
  • [1] Biodegradable microgrooved polymeric surfaces obtained by photolithography for skeletal muscle cell orientation and myotube development
    Altomare, L.
    Gadegaard, N.
    Visai, L.
    Tanzi, M. C.
    Fare, S.
    [J]. ACTA BIOMATERIALIA, 2010, 6 (06) : 1948 - 1957
  • [2] Bioprinted Osteogenic and Vasculogenic Patterns for Engineering 3D Bone Tissue
    Byambaa, Batzaya
    Annabi, Nasim
    Yue, Kan
    Trujillo-de Santiago, Grissel
    Moises Alvarez, Mario
    Jia, Weitao
    Kazemzadeh-Narbat, Mehdi
    Shin, Su Ryon
    Tamayol, Ali
    Khademhosseini, Ali
    [J]. ADVANCED HEALTHCARE MATERIALS, 2017, 6 (16)
  • [3] Geometric control of cell life and death
    Chen, CS
    Mrksich, M
    Huang, S
    Whitesides, GM
    Ingber, DE
    [J]. SCIENCE, 1997, 276 (5317) : 1425 - 1428
  • [4] Characterisation of a soft elastomer poly(glycerol sebacate) designed to match the mechanical properties of myocardial tissue
    Chen, Qi-Zhi
    Bismarck, Alexander
    Hansen, Ulrich
    Junaid, Sarah
    Tran, Michael Q.
    Harding, Sian E.
    Ali, Nadire N.
    Boccaccini, Aldo R.
    [J]. BIOMATERIALS, 2008, 29 (01) : 47 - 57
  • [5] An elastomeric patch derived from poly(glycerol sebacate) for delivery of embryonic stem cells to the heart
    Chen, Qi-Zhi
    Ishii, Hikaru
    Thouas, George A.
    Lyon, Alexander R.
    Wright, Jamie S.
    Blaker, Jonny J.
    Chrzanowski, Wojciech
    Boccaccini, Aldo R.
    Ali, Nadire N.
    Knowles, Jonathan C.
    Harding, Sian E.
    [J]. BIOMATERIALS, 2010, 31 (14) : 3885 - 3893
  • [6] 3D bioprinting of functional human skin: production and in vivo analysis
    Cubo, Nieves
    Garcia, Marta
    del Canizo, Juan F.
    Velasco, Diego
    Jorcano, Jose L.
    [J]. BIOFABRICATION, 2017, 9 (01)
  • [7] Kinetic study and new applications of UV radiation curing
    Decker, C
    [J]. MACROMOLECULAR RAPID COMMUNICATIONS, 2002, 23 (18) : 1067 - 1093
  • [8] Matrix elasticity directs stem cell lineage specification
    Engler, Adam J.
    Sen, Shamik
    Sweeney, H. Lee
    Discher, Dennis E.
    [J]. CELL, 2006, 126 (04) : 677 - 689
  • [9] 3D-printed oxygen-releasing scaffolds improve bone regeneration in mice
    Farris, Ashley L.
    Lambrechts, Dennis
    Zhou, Yuxiao
    Zhang, Nicholas Y.
    Sarkar, Naboneeta
    Moorer, Megan C.
    Rindone, Alexandra N.
    Nyberg, Ethan L.
    Perdomo-Pantoja, Alexander
    Burris, S. J.
    Free, Kendall
    Witham, Timothy F.
    Riddle, Ryan C.
    Grayson, Warren L.
    [J]. BIOMATERIALS, 2022, 280
  • [10] A novel extrusion-based 3D bioprinting system for skeletal muscle tissue engineering
    Fornetti, E.
    De Paolis, F.
    Fuoco, C.
    Bernardini, S.
    Giannitelli, S. M.
    Rainer, A.
    Seliktar, D.
    Magdinier, F.
    Baldi, J.
    Biagini, R.
    Cannata, S.
    Testa, S.
    Gargioli, C.
    [J]. BIOFABRICATION, 2023, 15 (02)