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

IF 3.5 3区 医学 Q3 CELL & TISSUE ENGINEERING
Tissue Engineering Part A Pub Date : 2024-06-01 Epub Date: 2023-10-26 DOI:10.1089/ten.TEA.2023.0193
Wisarut Kiratitanaporn, Jiaao Guan, David B Berry, Alison Lao, Shaochen Chen
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引用次数: 0

Abstract

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).

通过机器学习对脚手架刚度进行微观调节的多模式3D打印。
利用基于光的3D打印精确控制支架微观结构和几何形状的能力已得到广泛证明。然而,通过规定的印刷参数来调节支架的机械性能仍然没有得到充分的探索。本研究展示了一种新颖的3D打印工作流程,通过利用机器学习创建具有精确工程刚度控制的复杂弹性支架。通过调节曝光时间、光强、印刷填充物、激光泵浦电流和印刷速度等印刷参数,印刷出力学性能在49.3±3.3 kPa至2.78±0.3 MPa之间的聚癸二酸甘油酯丙烯酸酯(PGSA)支架。这使得除了高分辨率支架制造之外,还能够实现空间刚度调制的灵活性。然后开发并验证了一个基于神经网络的机器学习模型,以优化打印参数,为两种不同的vat光聚合方法生产具有用户定义的刚度调制的支架:利用基于数字光处理(DLP)的3D打印机快速制备具有数百微米尺度和双光子特征的刚度调节支架聚合(2PP)3D打印机用于打印亚微米级的精细结构。设计了一种新颖的3D打印工作流程,利用基于DLP和2PP的3D打印机创建多尺度支架,并对粗略和精细几何特征进行精确的刚度控制。所描述的工作流程可用于制造用于各种组织工程应用的支架,特别是用于相邻组织具有异质机械性能(例如肌腱)的界面组织工程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tissue Engineering Part A
Tissue Engineering Part A Chemical Engineering-Bioengineering
CiteScore
9.20
自引率
2.40%
发文量
163
审稿时长
3 months
期刊介绍: Tissue Engineering is the preeminent, biomedical journal advancing the field with cutting-edge research and applications that repair or regenerate portions or whole tissues. This multidisciplinary journal brings together the principles of engineering and life sciences in the creation of artificial tissues and regenerative medicine. Tissue Engineering is divided into three parts, providing a central forum for groundbreaking scientific research and developments of clinical applications from leading experts in the field that will enable the functional replacement of tissues.
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