High-precision Helicobacter pylori infection diagnosis using a dual-element multimodal gas sensor array†

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL Analyst Pub Date : 2024-06-11 DOI:10.1039/D4AN00520A
Jiaying Wu, Shiyuan Xu, Xuemei Liu, Jingwen Zhao, Zhengfu He, Aiwu Pan and Jianmin Wu
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Abstract

Helicobacter pylori (H. pylori) is a globally widespread bacterial infection. Early diagnosis of this infection is vital for public and individual health. Prevalent diagnosis methods like the isotope 13C or 14C labelled urea breath test (UBT) are not convenient and may do harm to the human body. The use of cross-response gas sensor arrays (GSAs) is an alternative way for label-free detection of metabolite changes in exhaled breath (EB). However, conventional GSAs are complex to prepare, lack reliability, and fail to discriminate subtle changes in EB due to the use of numerous sensing elements and single dimensional signal. This work presents a dual-element multimodal GSA empowered with multimodal sensing signals including conductance (G), capacitance (C), and dissipation factor (DF) to improve the ability for gas recognition and H. pylori-infection diagnosis. Sensitized by poly(diallyldimethylammonium chloride) (PDDA) and the metal–organic framework material NH2-UiO66, the dual-element graphene oxide (GO)-composite GSAs exhibited a high specific surface area and abundant adsorption sites, resulting in high sensitivity, repeatability, and fast response/recovery speed in all three signals. The multimodal sensing signals with rich sensing features allowed the GSA to detect various physicochemical properties of gas analytes, such as charge transfer and polarization ability, enhancing the sensing capabilities for gas discrimination. The dual-element GSA could differentiate different typical standard gases and non-dehumidified EB samples, demonstrating the advantages in EB analysis. In a case–control clinical study on 52 clinical EB samples, the diagnosis model based on the multimodal GSA achieved an accuracy of 94.1%, a sensitivity of 100%, and a specificity of 90.9% for diagnosing H. pylori infection, offering a promising strategy for developing an accurate, non-invasive and label-free method for disease diagnosis.

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利用双元件多模态气体传感器阵列高精度诊断幽门螺旋杆菌感染。
幽门螺杆菌(H. pylori)是一种全球普遍存在的细菌感染。这种感染的早期诊断对公众和个人健康至关重要。流行的诊断方法,如同位素 13C 或 14C 标记的尿素呼气试验(UBT)既不方便,又可能对人体造成伤害。使用交叉反应气体传感器阵列(GSA)是一种无标记检测呼出气体(EB)中代谢物变化的替代方法。然而,传统的气体传感器阵列制备复杂、缺乏可靠性,而且由于使用了大量传感元件和单维度信号,无法分辨呼出气体中的细微变化。本研究提出了一种双元件多模态 GSA,它具有多模态传感信号,包括电导(G)、电容(C)和耗散因子(DF),从而提高了气体识别和幽门螺杆菌感染诊断的能力。在聚(二烯丙基二甲基氯化铵)(PDDA)和金属有机框架材料 NH2-UiO66 的敏化下,双元素氧化石墨烯(GO)复合 GSA 具有高比表面积和丰富的吸附位点,因此在所有三种信号中都具有高灵敏度、可重复性和快速响应/恢复速度。多模态传感信号具有丰富的传感特性,使 GSA 能够检测气体分析物的各种理化性质,如电荷转移和极化能力,从而增强了气体分辨的传感能力。双元素 GSA 可以区分不同的典型标准气体和未除湿的 EB 样品,显示了其在 EB 分析中的优势。在一项针对 52 份临床 EB 样本的病例对照临床研究中,基于多模态 GSA 的诊断模型在诊断幽门螺杆菌感染方面达到了 94.1%的准确率、100% 的灵敏度和 90.9% 的特异性,为开发一种准确、无创和无标记的疾病诊断方法提供了一种可行的策略。
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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: The home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences
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