• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

3D 生物打印模拟:预测纳米纤维墨水的生物打印性能。

Simulations of 3D bioprinting: predicting bioprintability of nanofibrillar inks.

机构信息

Fraunhofer-Chalmers Centre, Chalmers Science Park, Gothenburg, Sweden.

出版信息

Biofabrication. 2018 Jun 18;10(3):034105. doi: 10.1088/1758-5090/aac872.

DOI:10.1088/1758-5090/aac872
PMID:29809162
Abstract

3D bioprinting with cell containing bioinks show great promise in the biofabrication of patient specific tissue constructs. To fulfil the multiple requirements of a bioink, a wide range of materials and bioink composition are being developed and evaluated with regard to cell viability, mechanical performance and printability. It is essential that the printability and printing fidelity is not neglected since failure in printing the targeted architecture may be catastrophic for the survival of the cells and consequently the function of the printed tissue. However, experimental evaluation of bioinks printability is time-consuming and must be kept at a minimum, especially when 3D bioprinting with cells that are valuable and costly. This paper demonstrates how experimental evaluation could be complemented with computer based simulations to evaluate newly developed bioinks. Here, a computational fluid dynamics simulation tool was used to study the influence of different printing parameters and evaluate the predictability of the printing process. Based on data from oscillation frequency measurements of the evaluated bioinks, a full stress rheology model was used, where the viscoelastic behaviour of the material was captured. Simulation of the 3D bioprinting process is a powerful tool and will help in reducing the time and cost in the development and evaluation of bioinks. Moreover, it gives the opportunity to isolate parameters such as printing speed, nozzle height, flow rate and printing path to study their influence on the printing fidelity and the viscoelastic stresses within the bioink. The ability to study these features more extensively by simulating the printing process will result in a better understanding of what influences the viability of cells in 3D bioprinted tissue constructs.

摘要

3D 生物打印技术与细胞共培养的生物墨水在个体化组织构建方面展现出巨大的潜力。为了满足生物墨水的多种需求,正在开发和评估广泛的材料和生物墨水组成部分,以评估细胞活力、机械性能和可打印性。至关重要的是,不能忽视可打印性和打印保真度,因为未能打印出目标结构可能对细胞的存活以及随后打印组织的功能造成灾难性影响。然而,生物墨水可打印性的实验评估既耗时又必须保持在最低限度,尤其是在使用有价值且昂贵的细胞进行 3D 生物打印时。本文展示了如何通过计算机模拟来补充实验评估,以评估新开发的生物墨水。这里使用了计算流体动力学模拟工具来研究不同打印参数的影响,并评估打印过程的可预测性。基于评估生物墨水的振荡频率测量数据,使用全应变成形流变模型来捕获材料的粘弹性行为。3D 生物打印过程的模拟是一种强大的工具,将有助于减少开发和评估生物墨水的时间和成本。此外,它还可以隔离打印速度、喷嘴高度、流速和打印路径等参数,以研究它们对打印保真度和生物墨水中粘弹性应力的影响。通过模拟打印过程更广泛地研究这些特征,将有助于更好地理解哪些因素会影响 3D 生物打印组织构建中的细胞活力。

相似文献

1
Simulations of 3D bioprinting: predicting bioprintability of nanofibrillar inks.3D 生物打印模拟:预测纳米纤维墨水的生物打印性能。
Biofabrication. 2018 Jun 18;10(3):034105. doi: 10.1088/1758-5090/aac872.
2
The influence of printing parameters on cell survival rate and printability in microextrusion-based 3D cell printing technology.基于微挤压的3D细胞打印技术中打印参数对细胞存活率和可打印性的影响。
Biofabrication. 2015 Nov 2;7(4):045002. doi: 10.1088/1758-5090/7/4/045002.
3
Proposal to assess printability of bioinks for extrusion-based bioprinting and evaluation of rheological properties governing bioprintability.评估基于挤出式生物打印的生物墨水可印刷性的提案和评估控制生物打印性的流变学性质的评价。
Biofabrication. 2017 Nov 14;9(4):044107. doi: 10.1088/1758-5090/aa8dd8.
4
Effect of bioink properties on printability and cell viability for 3D bioplotting of embryonic stem cells.生物墨水特性对胚胎干细胞3D生物打印的可打印性和细胞活力的影响。
Biofabrication. 2016 Sep 16;8(3):035020. doi: 10.1088/1758-5090/8/3/035020.
5
Exploitation of Cationic Silica Nanoparticles for Bioprinting of Large-Scale Constructs with High Printing Fidelity.阳离子二氧化硅纳米颗粒在高打印保真度的大规模构建物生物打印中的应用。
ACS Appl Mater Interfaces. 2018 Nov 7;10(44):37820-37828. doi: 10.1021/acsami.8b13166. Epub 2018 Oct 26.
6
High-Fidelity Extrusion Bioprinting of Low-Printability Polymers Using Carbopol as a Rheology Modifier.使用 Carbopol 作为流变改性剂进行低可打印性聚合物的高保真度挤出生物打印。
ACS Appl Mater Interfaces. 2023 Nov 29;15(47):54234-54248. doi: 10.1021/acsami.3c10092. Epub 2023 Nov 14.
7
Assessing bioink shape fidelity to aid material development in 3D bioprinting.评估生物墨水的形状保真度,以辅助 3D 生物打印中的材料开发。
Biofabrication. 2017 Nov 30;10(1):014102. doi: 10.1088/1758-5090/aa90e2.
8
Advancing bioinks for 3D bioprinting using reactive fillers: A review.使用反应性填料推进用于3D生物打印的生物墨水:综述。
Acta Biomater. 2020 Sep 1;113:1-22. doi: 10.1016/j.actbio.2020.06.040. Epub 2020 Jul 2.
9
A bioink blend for rotary 3D bioprinting tissue engineered small-diameter vascular constructs.一种用于旋转 3D 生物打印组织工程小直径血管构建体的生物墨水混合物。
Acta Biomater. 2019 Sep 1;95:152-164. doi: 10.1016/j.actbio.2019.06.052. Epub 2019 Jul 2.
10
Engineering considerations on extrusion-based bioprinting: interactions of material behavior, mechanical forces and cells in the printing needle.基于挤出的生物打印工程学考量:打印针中材料行为、机械力和细胞的相互作用。
Biofabrication. 2020 Mar 11;12(2):025022. doi: 10.1088/1758-5090/ab7553.

引用本文的文献

1
Enhancing 3D Printing of Gelatin/Siloxane-Based Cellular Scaffolds Using a Computational Model.使用计算模型增强基于明胶/硅氧烷的细胞支架的3D打印
Polymers (Basel). 2025 Jun 30;17(13):1838. doi: 10.3390/polym17131838.
2
Numerical Prediction and Experimental Validation of Deposited Filaments in Direct Ink Writing: Deposition Status and Profile Dimension.直接墨水书写中沉积细丝的数值预测与实验验证:沉积状态与轮廓尺寸
Polymers (Basel). 2025 Feb 21;17(5):573. doi: 10.3390/polym17050573.
3
The Impact of the Methacrylation Process on the Usefulness of Chitosan as a Biomaterial Component for 3D Printing.
甲基丙烯酸酯化过程对壳聚糖作为3D打印生物材料成分的适用性的影响。
J Funct Biomater. 2024 Aug 30;15(9):251. doi: 10.3390/jfb15090251.
4
Optimising Bioprinting Nozzles through Computational Modelling and Design of Experiments.通过计算建模和实验设计优化生物打印喷嘴
Biomimetics (Basel). 2024 Jul 29;9(8):460. doi: 10.3390/biomimetics9080460.
5
Advanced optical assessment and modeling of extrusion bioprinting.挤出式生物打印的先进光学评估和建模。
Sci Rep. 2024 Jun 17;14(1):13972. doi: 10.1038/s41598-024-64039-y.
6
Human mesenchymal stromal cells-laden crosslinked hyaluronic acid-alginate bioink for 3D bioprinting applications in tissue engineering.用于组织工程中3D生物打印应用的负载人骨髓间充质干细胞的交联透明质酸-海藻酸盐生物墨水
Drug Deliv Transl Res. 2025 Jan;15(1):291-311. doi: 10.1007/s13346-024-01596-9. Epub 2024 Apr 25.
7
DeepFreeze 3D-biofabrication for Bioengineering and Storage of Stem Cells in Thick and Large-Scale Human Tissue Analogs.深度冷冻 3D 生物制造用于生物工程和厚型及大规模人体组织类似物中的干细胞储存。
Adv Sci (Weinh). 2024 Mar;11(11):e2306683. doi: 10.1002/advs.202306683. Epub 2024 Jan 6.
8
Adipose-Derived Stromal Cells Preserve Pancreatic Islet Function in a Transplantable 3D Bioprinted Scaffold.脂肪来源的基质细胞在可移植的 3D 生物打印支架中维持胰岛功能。
Adv Healthc Mater. 2023 Dec;12(32):e2300640. doi: 10.1002/adhm.202300640. Epub 2023 Oct 13.
9
Modeling and Simulation of 3D Food Printing Systems-Scope, Advances, and Challenges.3D食品打印系统的建模与仿真——范围、进展与挑战
Foods. 2023 Sep 13;12(18):3412. doi: 10.3390/foods12183412.
10
Computational simulation-based comparative analysis of standard 3D printing and conical nozzles for pneumatic and piston-driven bioprinting.基于计算模拟的标准3D打印与用于气动和活塞驱动生物打印的锥形喷嘴的对比分析。
Int J Bioprint. 2023 Apr 10;9(4):730. doi: 10.18063/ijb.730. eCollection 2023.