Carbon nanomaterial-based aptasensors for rapid detection of foodborne pathogenic bacteria

IF 2.6 4区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS Analytical biochemistry Pub Date : 2024-08-08 DOI:10.1016/j.ab.2024.115639
Kiyana Fatemi , Sie Yon Lau , Kehinde Shola Obayomi , Siaw Fui Kiew , Ranil Coorey , Lip Yong Chung , Reza Fatemi , Zoheir Heshmatipour , K.S.D. Premarathna
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Abstract

Each year, millions of people suffer from foodborne illness due to the consumption of food contaminated with pathogenic bacteria, which severely challenges global health. Therefore, it is essential to recognize foodborne pathogens swiftly and correctly. However, conventional detection techniques for bacterial pathogens are labor-intensive, low selectivity, and time-consuming, highlighting a notable knowledge gap. A novel approach, aptamer-based biosensors (aptasensors) linked to carbon nanomaterials (CNs), has shown the potential to overcome these limitations and provide a more reliable method for detecting bacterial pathogens. Aptamers, short single-stranded DNA (ssDNA)/RNA molecules, serve as bio-recognition elements (BRE) due to their exceptionally high affinity and specificity in identifying foodborne pathogens such as Salmonella spp., Escherichia coli (E. coli), Listeria monocytogenes, Campylobacter jejuni, and other relevant pathogens commonly associated with foodborne illnesses. Carbon nanomaterials' high surface area-to-volume ratio contributes unique characteristics crucial for bacterial sensing, as it improves the binding capacity and signal amplification in the design of aptasensors. Furthermore, aptamers can bind to CNs and create aptasensors with improved signal specificity and sensitivity. Hence, this review intends to critically review the current literature on developing aptamer functionalized CN-based biosensors by transducer optical and electrochemical for detecting foodborne pathogens and explore the advantages and challenges associated with these biosensors. Aptasensors conjugated with CNs offers an efficient tool for identifying foodborne pathogenic bacteria that is both precise and sensitive to potentially replacing complex current techniques that are time-consuming.

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基于碳纳米材料的快速检测食源性致病菌的灵敏传感器。
每年都有数百万人因食用被致病菌污染的食物而患上食源性疾病,这对全球健康构成了严重挑战。因此,迅速、正确地识别食源性病原体至关重要。然而,传统的细菌病原体检测技术耗费大量人力、选择性低、耗时长,这凸显了一个显著的知识鸿沟。一种新方法,即与碳纳米材料(CN)相连的基于适配体的生物传感器(aptasensors),已显示出克服这些局限性的潜力,并为检测细菌病原体提供了一种更可靠的方法。肽聚体是短单链 DNA (ssDNA) / RNA 分子,可作为生物识别元件 (BRE),因为它们具有极高的亲和力和特异性,可以识别食源性病原体,如沙门氏菌属、大肠埃希氏菌(大肠杆菌)、单核细胞增生李斯特氏菌、空肠弯曲杆菌和其他与食源性疾病相关的病原体。碳纳米材料的高表面积与体积比为细菌传感提供了独特的关键特性,因为它提高了设计适配体传感器时的结合能力和信号放大能力。此外,适配体还能与碳纳米材料结合,制造出信号特异性更强、灵敏度更高的适配传感器。因此,本综述旨在批判性地综述目前有关通过光学和电化学传感器开发基于 CN 的适配体功能化生物传感器的文献,以检测食源性病原体,并探讨这些生物传感器的优势和挑战。与氯化萘共轭的适配体传感器为识别食源性致病菌提供了一种既精确又灵敏的有效工具,有可能取代目前耗时的复杂技术。
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来源期刊
Analytical biochemistry
Analytical biochemistry 生物-分析化学
CiteScore
5.70
自引率
0.00%
发文量
283
审稿时长
44 days
期刊介绍: The journal''s title Analytical Biochemistry: Methods in the Biological Sciences declares its broad scope: methods for the basic biological sciences that include biochemistry, molecular genetics, cell biology, proteomics, immunology, bioinformatics and wherever the frontiers of research take the field. The emphasis is on methods from the strictly analytical to the more preparative that would include novel approaches to protein purification as well as improvements in cell and organ culture. The actual techniques are equally inclusive ranging from aptamers to zymology. The journal has been particularly active in: -Analytical techniques for biological molecules- Aptamer selection and utilization- Biosensors- Chromatography- Cloning, sequencing and mutagenesis- Electrochemical methods- Electrophoresis- Enzyme characterization methods- Immunological approaches- Mass spectrometry of proteins and nucleic acids- Metabolomics- Nano level techniques- Optical spectroscopy in all its forms. The journal is reluctant to include most drug and strictly clinical studies as there are more suitable publication platforms for these types of papers.
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