Quantifying Experimental Variability in Shear-Induced Hemolysis to Support Uncertainty-Aware Hemolysis Models.

IF 3 2区 医学 Q3 ENGINEERING, BIOMEDICAL
Christopher Blum, Markus Mous, Ulrich Steinseifer, Johanna C Clauser, Michael Neidlin
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引用次数: 0

Abstract

Purpose: Numerical hemolysis models rely on experimental data to fit parameters and predict hemolysis under various conditions. However, existing experiments often use few replicates per condition, leaving inherent variability largely unaddressed. This can lead to oversimplified models that fail to capture the true nature of hemolysis. Here, we quantify intra- and inter-donor variability at a single, well-defined shear stress and exposure time and examine how sample size affects measurement precision METHODS: Human blood from five healthy donors was subjected to a fixed shear stress and exposure time condition. For each donor, 20 independent measurements were performed to calculate a hemolysis index (HI). Intra-donor variability (variation within a single donor's measurements) and inter-donor variability (variation between donor means) were compared. Additionally, bootstrap analyses were used to explore the effect of the sample size on the confidence intervals of the mean HI.

Results: Intra-donor variability was approximately four times higher than inter-donor variability, indicating that most of the uncertainty originated from within a single donor's set of samples rather than between donors. Increasing the sample size from 2 to 20 replicates substantially narrowed the confidence intervals of the mean hemolysis estimate, suggesting that commonly used small sample sizes may underrepresent the true variability in hemolysis measurements.

Conclusion: Intra-donor variability is a significant driver of uncertainty in hemolysis measurements at a fixed shear stress and exposure time condition, surpassing differences among donors. Obtaining robust and reliable hemolysis estimates requires increasing the number of replicate measurements to reduce uncertainty. Integrating these insights into future experimental designs and uncertainty-aware hemolysis models will improve the reliability of in silico predictions and inform safer, more effective blood-contacting medical device designs.

量化剪切诱导溶血的实验变异性以支持不确定性感知溶血模型。
目的:溶血数值模型依靠实验数据拟合参数,预测不同条件下的溶血情况。然而,现有的实验通常在每个条件下使用很少的重复,使得固有的变异性在很大程度上没有得到解决。这可能导致模型过于简化,无法捕捉溶血的真实本质。在这里,我们在单一的、明确定义的剪切应力和暴露时间下量化供者内部和供者之间的变异性,并检查样本量如何影响测量精度。方法:来自5名健康供者的人类血液受到固定的剪切应力和暴露时间条件。对每个供体进行20次独立测量以计算溶血指数(HI)。比较了供者内变异(单个供者测量值内的变异)和供者间变异(供者平均值之间的变异)。此外,采用自举分析来探讨样本大小对平均HI置信区间的影响。结果:供体内部的变异性比供体之间的变异性大约高出四倍,这表明大多数不确定性来自单个供体的一组样本,而不是供体之间。将样本量从2个重复增加到20个重复,大大缩小了平均溶血估计的置信区间,这表明通常使用的小样本量可能不足以代表溶血测量的真实变异性。结论:在固定剪切应力和暴露时间条件下,供体内部的差异是溶血测量不确定性的重要驱动因素,超过了供体之间的差异。获得稳健和可靠的溶血估计需要增加重复测量的数量,以减少不确定性。将这些见解整合到未来的实验设计和不确定性溶血模型中,将提高计算机预测的可靠性,并为更安全、更有效的血液接触医疗设备设计提供信息。
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
Annals of Biomedical Engineering
Annals of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
7.50
自引率
15.80%
发文量
212
审稿时长
3 months
期刊介绍: Annals of Biomedical Engineering is an official journal of the Biomedical Engineering Society, publishing original articles in the major fields of bioengineering and biomedical engineering. The Annals is an interdisciplinary and international journal with the aim to highlight integrated approaches to the solutions of biological and biomedical problems.
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