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用于慢性肺病表型分析的肺部成像生物标志物流程的开发

Development of a pulmonary imaging biomarker pipeline for phenotyping of chronic lung disease.

作者信息

Guo Fumin, Capaldi Dante, Kirby Miranda, Sheikh Khadija, Svenningsen Sarah, McCormack David G, Fenster Aaron, Parraga Grace

机构信息

University of Western Ontario, Robarts Research Institute, London, Ontario, Canada.

University of Western Ontario, Graduate Program in Biomedical Engineering, London, Ontario, Canada.

出版信息

J Med Imaging (Bellingham). 2018 Apr;5(2):026002. doi: 10.1117/1.JMI.5.2.026002. Epub 2018 Jun 28.

Abstract

We designed and generated pulmonary imaging biomarker pipelines to facilitate high-throughput research and point-of-care use in patients with chronic lung disease. Image processing modules and algorithm pipelines were embedded within a graphical user interface (based on the .NET framework) for pulmonary magnetic resonance imaging (MRI) and x-ray computed-tomography (CT) datasets. The software pipelines were generated using C++ and included: (1) inhaled ventilation and apparent diffusion coefficients, (2) CT-MRI coregistration for lobar and segmental ventilation and perfusion measurements, (3) ultrashort echo-time proton density measurements, (4) free-breathing Fourier-decomposition ventilation/perfusion and free-breathing specific ventilation, (5) multivolume CT and MRI parametric response maps, and (6) MRI and CT texture analysis and radiomics. The image analysis framework was implemented on a desktop workstation/tablet to generate biomarkers of regional lung structure and function related to ventilation, perfusion, lung tissue texture, and integrity as well as multiparametric measures of gas trapping and airspace enlargement. All biomarkers were generated within 10 min with measurement reproducibility consistent with clinical and research requirements. The resultant pulmonary imaging biomarker pipeline provides real-time and automated lung imaging measurements for point-of-care and high-throughput research.

摘要

我们设计并生成了肺部成像生物标志物流程,以促进慢性肺病患者的高通量研究和即时医疗应用。图像处理模块和算法流程被嵌入到一个基于.NET框架的图形用户界面中,用于处理肺部磁共振成像(MRI)和X线计算机断层扫描(CT)数据集。软件流程是用C++生成的,包括:(1)吸入通气和表观扩散系数,(2)用于叶和段通气及灌注测量的CT-MRI配准,(3)超短回波时间质子密度测量,(4)自由呼吸傅里叶分解通气/灌注和自由呼吸比通气,(5)多容积CT和MRI参数响应图,以及(6)MRI和CT纹理分析及放射组学。图像分析框架在台式工作站/平板电脑上实现,以生成与通气、灌注、肺组织纹理和完整性相关的区域肺结构和功能生物标志物,以及气体潴留和肺泡扩大的多参数测量值。所有生物标志物在10分钟内生成,测量重现性符合临床和研究要求。由此产生的肺部成像生物标志物流程为即时医疗和高通量研究提供了实时和自动化的肺部成像测量。

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本文引用的文献

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Free-breathing Pulmonary MR Imaging to Quantify Regional Ventilation.自由呼吸肺部磁共振成像定量区域性通气。
Radiology. 2018 May;287(2):693-704. doi: 10.1148/radiol.2018171993. Epub 2018 Feb 22.
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Ultrashort echo time MRI biomarkers of asthma.哮喘的超短回波时间磁共振成像生物标志物。
J Magn Reson Imaging. 2017 Apr;45(4):1204-1215. doi: 10.1002/jmri.25503. Epub 2016 Oct 12.
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Is ventilation heterogeneity related to asthma control?通气异质性与哮喘控制有关吗?
Eur Respir J. 2016 Aug;48(2):370-9. doi: 10.1183/13993003.00393-2016. Epub 2016 May 12.

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