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Pilot Study: Detection of Gastric Cancer From Exhaled Air Analyzed With an Electronic Nose in Chinese Patients

机译:初步研究:用电子鼻分析从呼气中检测出胃癌

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摘要

The aim of this pilot study is to investigate the ability of an electronic nose (e-nose) to distinguish malignant gastric histology from healthy controls in exhaled breath. In a period of 3 weeks, all preoperative gastric carcinoma (GC) patients (n = 16) in the Beijing Oncology Hospital were asked to participate in the study. The control group (n = 28) consisted of family members screened by endoscopy and healthy volunteers. The e-nose consists of 3 sensors with which volatile organic compounds in the exhaled air react. Real-time analysis takes place within the e-nose, and binary data are exported and interpreted by an artificial neuronal network. This is a self-learning computational system. The inclusion rate of the study was 100%. Baseline characteristics differed significantly only for age: the average age of the patient group was 57 years and that of the healthy control group 37 years (P value = .000). Weight loss was the only significant different symptom (P value = .040). A total of 16 patients and 28 controls were included; 13 proved to be true positive and 20 proved to be true negative. The receiver operating characteristic curve showed a sensitivity of 81% and a specificity of 71%, with an accuracy of 75%. These results give a positive predictive value of 62% and a negative predictive value of 87%. This pilot study shows that the e-nose has the capability of diagnosing GC based on exhaled air, with promising predictive values for a screening purpose.
机译:这项初步研究的目的是研究呼气中电子鼻(e-nose)将恶性胃组织学与健康对照区分开的能力。在3周的时间内,要求北京肿瘤医院的所有术前胃癌(GC)患者(n = 16)参加该研究。对照组(n = 28)由经内窥镜检查筛查的家庭成员和健康志愿者组成。电子鼻由3个传感器组成,与呼出空气中的挥发性有机化合物发生反应。实时分析在电子鼻内进行,二进制数据通过人工神经元网络导出和解释。这是一个自学计算系统。该研究的纳入率为100%。基线特征仅在年龄方面存在显着差异:患者组的平均年龄为57岁,健康对照组的平均年龄为37岁(P值= .000)。体重减轻是唯一显着的不同症状(P值= .040)。总共包括16名患者和28名对照。 13个被证明是真正的积极,而20个被证明是真正的负面。接收器工作特性曲线显示灵敏度为81%,特异性为71%,准确度为75%。这些结果给出了62%的正预测值和87%的负预测值。这项初步研究表明,电子鼻具有基于呼出空气诊断GC的能力,具有用于筛查目的的有希望的预测价值。

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