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表观扩散系数直方图指标在小儿后颅窝肿瘤鉴别诊断中的应用:一项大型回顾性研究及文献简要综述

Application of Apparent Diffusion Coefficient Histogram Metrics for Differentiation of Pediatric Posterior Fossa Tumors : A Large Retrospective Study and Brief Review of Literature.

作者信息

Gonçalves Fabrício Guimarães, Zandifar Alireza, Ub Kim Jorge Du, Tierradentro-García Luis Octavio, Ghosh Adarsh, Khrichenko Dmitry, Andronikou Savvas, Vossough Arastoo

机构信息

Department of Radiology, Division of Neuroradiology, The Children's Hospital of Philadelphia, Philadelphia, PA, USA.

Department of Radiology, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, USA.

出版信息

Clin Neuroradiol. 2022 Dec;32(4):1097-1108. doi: 10.1007/s00062-022-01179-6. Epub 2022 Jun 8.

Abstract

PURPOSE

This study aimed to evaluate the application of apparent diffusion coefficient (ADC) histogram analysis to differentiate posterior fossa tumors (PFTs) in children.

METHODS

A total of 175 pediatric patients with PFT, including 75 pilocytic astrocytomas (PA), 59 medulloblastomas, 16 ependymomas, and 13 atypical teratoid rhabdoid tumors (ATRT), were analyzed. Tumors were visually assessed using DWI trace and conventional MRI images and manually segmented and post-processed using parametric software (pMRI). Furthermore, tumor ADC values were normalized to the thalamus and cerebellar cortex. The following histogram metrics were obtained: entropy, minimum, 10th, and 90th percentiles, maximum, mean, median, skewness, and kurtosis to distinguish the different types of tumors. Kruskal Wallis and Mann-Whitney U tests were used to evaluate the differences. Finally, receiver operating characteristic (ROC) curves were utilized to determine the optimal cut-off values for differentiating the various PFTs.

RESULTS

Most ADC histogram metrics showed significant differences between PFTs (p < 0.001) except for entropy, skewness, and kurtosis. There were significant pairwise differences in ADC metrics for PA versus medulloblastoma, PA versus ependymoma, PA versus ATRT, medulloblastoma versus ependymoma, and ependymoma versus ATRT (all p < 0.05). Our results showed no significant differences between medulloblastoma and ATRT. Normalized ADC data showed similar results to the absolute ADC value analysis. ROC curve analysis for normalized ADC values to thalamus showed 94.9% sensitivity (95% CI: 85-100%) and 93.3% specificity (95% CI: 87-100%) for differentiating medulloblastoma from ependymoma.

CONCLUSION

ADC histogram metrics can be applied to differentiate most types of posterior fossa tumors in children.

摘要

目的

本研究旨在评估表观扩散系数(ADC)直方图分析在鉴别儿童后颅窝肿瘤(PFT)中的应用。

方法

对175例患有PFT的儿科患者进行分析,其中包括75例毛细胞型星形细胞瘤(PA)、59例髓母细胞瘤、16例室管膜瘤和13例非典型畸胎样横纹肌样肿瘤(ATRT)。使用扩散加权成像(DWI)追踪图像和传统磁共振成像(MRI)图像对肿瘤进行视觉评估,并使用参数软件(pMRI)进行手动分割和后处理。此外,将肿瘤的ADC值标准化为丘脑和小脑皮质的ADC值。获得以下直方图指标:熵、最小值、第10百分位数、第90百分位数、最大值、均值、中位数、偏度和峰度,以区分不同类型的肿瘤。采用Kruskal Wallis检验和Mann-Whitney U检验评估差异。最后,利用受试者操作特征(ROC)曲线确定区分各种PFT的最佳临界值。

结果

除熵、偏度和峰度外,大多数ADC直方图指标在不同类型的PFT之间存在显著差异(p<0.001)。PA与髓母细胞瘤、PA与室管膜瘤、PA与ATRT、髓母细胞瘤与室管膜瘤以及室管膜瘤与ATRT的ADC指标存在显著的两两差异(均p<0.05)。结果显示髓母细胞瘤与ATRT之间无显著差异。标准化ADC数据显示出与绝对ADC值分析相似的结果。将ADC值标准化为丘脑的ROC曲线分析显示,区分髓母细胞瘤与室管膜瘤的灵敏度为94.9%(95%CI:85-100%),特异度为93.3%(95%CI:87-100%)。

结论

ADC直方图指标可用于鉴别儿童大多数类型的后颅窝肿瘤。

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