校准水动力流中弹簧网络单元模型的新方法

IF 2.2 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Aravind Anandan, Mehdi Maleki, Céline Thomann, Axelle Perraud, Robin Chatelin, Avigaël Ohayon, Christophe Marquette, Edwin-Joffrey Courtial
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引用次数: 0

摘要

在挤压生物打印过程中遇到的主要挑战之一是管理打印机喷嘴内的机械应力。这些压力最终对打印结构内细胞的健康和功能产生影响。生物打印中的统计模型预测细胞损伤,但是经验性的,忽略了关键的相互作用,缺乏单细胞预测。我们的最终目标是建立一个有效的计算模型,模拟挤出生物打印中人类真皮成纤维细胞的可变形性,考虑所有重要的相互作用。弹簧网络模型在模拟细胞变形方面显示出前景。然而,它的广泛采用和效率依赖于准确校准模型系数的重大挑战。由于缺乏针对悬浮在流体动力学流动中的真核细胞量身定制的手动方法,该校准过程很复杂。在这项研究中,我们描述了一种人工校准人真皮成纤维细胞模型系数的新方法。为了实现这种校准,使用了人真皮成纤维细胞通过狭窄微流体收缩的实验数据。校准过程通过使用与红细胞相关的系数开始,随后通过将模型的行为与实验数据进行比较来调整。对弹性系数进行了校准,以接近实验中观察到的进入时间,误差范围为5%。然而,在模拟和实验之间,细胞变形行为仍然存在显着差异。此外,添加膜粘度对瞬态细胞变形的影响小于10%,且不影响稳态变形。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Method to Calibrate Spring-Network Cell Model in Hydrodynamic Flow

One of the primary challenges encountered during the extrusion bioprinting process involves managing mechanical stresses within the printer nozzle. These stresses ultimately have an impact on the health and functionality of the cells within the printed structure. Statistical models in bioprinting predict cell damage but are empirical, disregard key interactions, and lack single-cell prediction. Our ultimate objective is to develop an efficient validated computational model simulating human dermal fibroblast deformability in extrusion bioprinting, considering all important interactions. The spring-network model shows promise in simulating cellular deformation. However, its widespread adoption and efficiency rely on a significant challenge of accurately calibrating model coefficients. This calibration process is complex due to the lack of a manual method tailored for eukaryotic cells suspended in hydrodynamic flow. In this study, we described a new method to calibrate the model coefficients manually for human dermal fibroblasts. To achieve this calibration, experimental data of human dermal fibroblasts passing through narrow microfluidics constriction was used. The calibration process was initiated by using coefficients associated with red blood cells and subsequently adjusted by comparing the model's behavior with experimental data. The elastic coefficients were calibrated to closely replicate the entry time observed in the experiments with a 5% error margin. However, notable differences persisted in the cell deformation behavior between simulation and experiment. Moreover, adding membrane viscosity minimally reduced transient cell deformation by less than 10% without affecting steady-state deformation.

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来源期刊
International Journal for Numerical Methods in Biomedical Engineering
International Journal for Numerical Methods in Biomedical Engineering ENGINEERING, BIOMEDICAL-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
4.50
自引率
9.50%
发文量
103
审稿时长
3 months
期刊介绍: All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.
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