用于大动脉血管细胞研究的个性化支架的增材制造:镰状细胞病患者颈动脉案例研究

Q3 Medicine
Saskia Eckert , Christian Kassasseya , Weiqiang Liu , Eliott Benichou , Irène Vignon-Clementel , Smaïne Kouidri , Kim-Anh Nguyen-Peyre , Pablo Bartolucci , Frédéric Segonds
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引用次数: 0

摘要

患者特异性模型在医疗和研究领域的重要性日益凸显。在血液动力学研究中,计算流体动力学是一种极具创新性且前景广阔的方法。我们建议利用个性化支架和血管细胞实验,在个性化动脉几何结构中进行基于细胞的实验,以增强这些计算研究。先前的研究表明,镰状细胞病(SCD)相关血管病变的发展取决于颈动脉的个性化几何形状和流动特性。由于无法复制个性化的几何形状,传统的动物实验无法深入了解患者的细胞信号传导。这些个性化的细胞信号动态可能会进一步影响疾病的进展,但目前仍不清楚。本文介绍了创建个性化大动脉支架的六步方法,重点是建立高精度模型,以产生可从生物学角度解释的患者特异性结果。该方法概述了通过快速成型制造技术创建个性化大动脉模型,以支持细胞培养和其他细胞实验。此外,它还讨论了如何利用不同的计算机辅助设计(CAD)构建模式来获得高精度的个性化模型,同时简化模型的重新配置并促进对一般设计的调整,如与生物反应器、流体系统和可视化工具的系统连接。此外,还提出了质量控制措施建议,以确保结果的几何一致性和生物学相关性。这种创新的跨学科方法似乎很有希望获得针对病人的病理生理学见解,突出了个性化医学对理解复杂疾病的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Additive manufacturing of personalized scaffolds for vascular cell studies in large arteries: A case study on carotid arteries in sickle cell disease patients
Patient-specific models have increasingly gained significance in medical and research domains. In the context of hemodynamic studies, computational fluid dynamics emerges as a highly innovative and promising approach. We propose to augment these computational studies with cell-based experiments in individualized artery geometries using personalized scaffolds and vascular cell experiments. Previous research has demonstrated that the development of Sickle Cell Disease (SCD)-Related Vasculopathy is dependent on personal geometries and flow characteristics of the carotid artery. This fact leaves conventional animal experiments unsuitable for gaining patient-specific insights into cellular signaling, as they cannot replicate the personalized geometry. These personalized dynamics of cellular signaling may further impact disease progression, yet remains unclear. This paper presents a six-step methodology for creating personalized large artery scaffolds, focusing on high-precision models that yield biologically interpretable patient-specific results. The methodology outlines the creation of personalized large artery models via Additive Manufacturing suitably for supporting cell culture and other cellular experiments. Additionally, it discusses how different Computer-Aided-Design (CAD) construction modes can be used to obtain high-precision personalized models, while simplifying model reconfigurations and facilitating adjustments to general designs such as system connections to bioreactors, fluidic systems and visualization tools. A proposal for quality control measures to ensure geometric congruence for biological relevance of the results is added. This innovative, interdisciplinary approach appears promising for gaining patient-specific insights into pathophysiology, highlighting the importance of personalized medicine for understanding complex diseases.
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来源期刊
Annals of 3D printed medicine
Annals of 3D printed medicine Medicine and Dentistry (General), Materials Science (General)
CiteScore
4.70
自引率
0.00%
发文量
0
审稿时长
131 days
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