Intraoperative Real-Time IDH Diagnosis for Glioma Based on Automatic Analysis of Contrast-Enhanced Ultrasound Video

IF 2.4 3区 医学 Q2 ACOUSTICS
Yuanxin Xie , Chengqian Zhao , Xiandi Zhang , Chao Shen , Zengxin Qi , Qisheng Tang , Wei Guo , Zhifeng Shi , Hong Ding , Bojie Yang , Jinhua Yu
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引用次数: 0

Abstract

Objective

Isocitrate dehydrogenase (IDH) is the most important molecular marker of glioma and is highly correlated to the diagnosis, treatment, and prognosis of patients. We proposed a real-time diagnosis method for IDH status differentiation based on automatic analysis of intraoperative contrast-enhanced ultrasound (CEUS) video.

Methods

Inspired by the Time Intensity Curve (TIC) analysis of CEUS utilized in clinical practice, this paper proposed an automatic CEUS video analysis method called ATAN (Automatic TIC Analysis Network). Based on tumor identification, ATAN automatically selected ROIs (region of interest) inside and outside glioma. ATAN ensures the integrity of dynamic features of perfusion changes at critical locations, resulting in optimal diagnostic performance. The transfer learning mechanism was also introduced by using two auxiliary CEUS datasets to solve the small sample problem of intraoperative glioma data.

Results

Through pretraining on 258 patients on two auxiliary cohorts, ATAN produced the IDH diagnosis with accuracy and AUC of 0.9 and 0.91 respectively on the main cohort of 60 glioma patients (mean age, 50 years ± 14, 28 men) Compared with other existing IDH status differentiation methods, ATAN is a real-time IDH diagnosis method without the need of tumor samples.

Conclusion

ATAN is an effective automatic analysis model of CEUS, with the help of this model, real-time intraoperative diagnosis of IDH with high accuracy can be achieved. Compared with other state-of-the-art deep learning methods, the accuracy of the ATAN model is 15% higher on average.
基于对比增强超声视频自动分析的胶质瘤术中实时 IDH 诊断。
目的:异柠檬酸脱氢酶(IDH)是胶质瘤最重要的分子标志物,与胶质瘤患者的诊断、治疗及预后高度相关。我们提出了一种基于术中超声造影(CEUS)视频自动分析的IDH状态实时诊断方法。方法:受临床应用的超声造影时间强度曲线(TIC)分析方法的启发,提出了一种自动超声造影视频分析方法ATAN (automatic TIC analysis Network)。基于肿瘤识别,ATAN自动选择胶质瘤内外的roi(兴趣区域)。ATAN可确保关键部位灌注变化动态特征的完整性,从而实现最佳诊断性能。引入迁移学习机制,利用两个辅助CEUS数据集解决术中胶质瘤数据的小样本问题。结果:通过对2个辅助队列258例患者的预训练,ATAN对主要队列60例胶质瘤患者(平均年龄50岁±14岁,男性28例)的IDH诊断准确率和AUC分别为0.9和0.91,与其他现有IDH状态鉴别方法相比,ATAN是一种无需肿瘤样本即可实时诊断IDH的方法。结论:ATAN是一种有效的超声造影自动分析模型,利用该模型可实现术中IDH的实时、高精度诊断。与其他最先进的深度学习方法相比,ATAN模型的准确率平均高出15%。
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来源期刊
CiteScore
6.20
自引率
6.90%
发文量
325
审稿时长
70 days
期刊介绍: Ultrasound in Medicine and Biology is the official journal of the World Federation for Ultrasound in Medicine and Biology. The journal publishes original contributions that demonstrate a novel application of an existing ultrasound technology in clinical diagnostic, interventional and therapeutic applications, new and improved clinical techniques, the physics, engineering and technology of ultrasound in medicine and biology, and the interactions between ultrasound and biological systems, including bioeffects. Papers that simply utilize standard diagnostic ultrasound as a measuring tool will be considered out of scope. Extended critical reviews of subjects of contemporary interest in the field are also published, in addition to occasional editorial articles, clinical and technical notes, book reviews, letters to the editor and a calendar of forthcoming meetings. It is the aim of the journal fully to meet the information and publication requirements of the clinicians, scientists, engineers and other professionals who constitute the biomedical ultrasonic community.
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