Development of a cerebral CT perfusion phantom: A structured approach

IF 2.7 3区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Physica Medica-European Journal of Medical Physics Pub Date : 2025-03-01 Epub Date: 2025-02-21 DOI:10.1016/j.ejmp.2025.104944
Liselot C. Goris , Abdallah H.A. Zaid Al-Kaylani , Richte C.L. Schuurmann , Marcel J.W. Greuter , Reinoud P.H. Bokkers , Srirang Manohar
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Abstract

Introduction

Computed tomography perfusion (CTP) imaging is crucial in diagnosing and managing vascular diseases, e.g, stroke. Differences in scanners and protocols may lead to different results, affecting clinical decision-making. Objective validation and evaluation of CTP imaging are therefore important. Perfusion phantoms are essential test objects to facilitate the validation and evaluation of perfusion imaging. Therefore, this study aimed to develop, validate and evaluate a brain perfusion phantom for the evaluation of cerebral CTP.

Methods

A cerebral perfusion phantom was developed to evaluate CTP imaging of the brain using a workflow based on the Design Science Research Methodology. The reliability and repeatability of the phantom’s perfusion parameters derived from the time-density curves (TDCs) in CTP were evaluated.

Results

A 3D-printed modular perfusion phantom was developed, filled with sodium alginate beads, and connected to a pumping system to mimic microvasculature and flow dynamics. The phantom consisted of three compartments that simulated different states of perfusion. The phantom showed reliable TDCs, with a relative standard deviation of <6.6 % for peak intensity and time-to-peak (TTP) over two sets of five repeated experiments for all compartments, and repeatable TTP and mean transit time values with a repeatability coefficient of <2.3 s compared to the mean.

Conclusions

The developed perfusion phantom demonstrated high reliability and could be employed for investigating CTP imaging under various flow speeds. The presented workflow promotes transparency in the development, validation, and application of CTP phantoms, and facilitates cross-study comparisons through structured iterative development and unified evaluation metrics.
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脑CT灌注影的发展:一种结构化的方法
计算机断层扫描灌注成像(CTP)在诊断和治疗血管疾病(如中风)中至关重要。不同的扫描仪和方案可能导致不同的结果,影响临床决策。因此,CTP成像的客观验证和评价非常重要。灌注影是促进灌注成像验证和评价的重要测试对象。因此,本研究旨在开发、验证和评估脑灌注模体,以评估脑CTP。方法采用基于设计科学研究方法的工作流程,开发脑灌注模体来评估脑CTP成像。通过CTP时间-密度曲线(TDCs)获得幻肢灌注参数的可靠性和可重复性。结果开发了3d打印模块化灌注模体,填充海藻酸钠微珠,连接泵送系统模拟微血管和血流动力学。模型由三个模拟不同灌注状态的隔室组成。幻影显示可靠的tdc,在所有隔间的两组5次重复实验中,峰值强度和峰值时间(TTP)的相对标准偏差为<; 6.6%,可重复的TTP和平均传递时间值与平均值相比具有<;2.3 s的可重复系数。结论所建立的灌注模具有较高的可靠性,可用于研究不同流速下的CTP成像。所呈现的工作流程促进了CTP模型的开发、验证和应用的透明性,并通过结构化迭代开发和统一评估度量促进了交叉研究的比较。
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
CiteScore
6.80
自引率
14.70%
发文量
493
审稿时长
78 days
期刊介绍: Physica Medica, European Journal of Medical Physics, publishing with Elsevier from 2007, provides an international forum for research and reviews on the following main topics: Medical Imaging Radiation Therapy Radiation Protection Measuring Systems and Signal Processing Education and training in Medical Physics Professional issues in Medical Physics.
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