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1.
功能性纳米材料在电化学免疫传感器中的应用   总被引:1,自引:0,他引:1  
新型功能性纳米材料以其诸多优良性质在构建电化学免疫传感器中备受关注,为电化学免疫传感器的开发和研究开辟了一片广阔天地。纳米材料在电化学免疫传感器方面的应用主要是将纳米材料作为传感器界面的修饰材料、生物分子的固载基质以及信号标记物等。本文就常见的功能性纳米材料在电化学免疫传感器中的应用做一综述。  相似文献   

2.
本文介绍了近年来纳米材料电化学与生物传感器在有机微污染物检测中的研究现状,分析了这些传感器中纳米材料修饰电极的特点,重点阐述了纳米材料在有机微污染物检测中的重要作用,列举了一些纳米材料电化学与生物传感器在有机微污染物检测中的应用。最后对纳米材料电化学与生物传感器用于有机微污染物的检测研究进行了简要评述和展望。  相似文献   

3.
致病微生物是影响人类健康的一类重要微生物。基于纳米材料的电化学免疫生物传感器在致病微生物检测方面具有检测速度快,灵敏度高,检测下限低,成本低等优点。本文综述了几种纳米材料电化学免疫生物传感器的构建和实验研究,分析了各种纳米材料如何改善电化学传感器性能,并具体比较分析了不同纳米电化学生物传感器对各种病原微生物的检测研究,最后,对未来的发展趋势进行了展望。  相似文献   

4.
设计和研制具有超灵敏、高精度、选择性好的免疫传感器对于疾病的早期诊断和筛查以及疾病治疗过程的监测具有十分重要的意义。其中,电化学免疫分析法和电化学发光(ECL)免疫分析法,由于具有稳定性好、灵敏度高、线性范围宽、可控性好等优点而备受关注,已成为当前的研究热点之一。金属有机框架(MOFs)作为一类新型的多孔晶体材料,由于其具有比表面积大、化学稳定性好、孔径和纳米级骨架结构可调节等优点,在电化学和ECL免疫传感器的制备中得到了广泛的应用。MOFs不仅可以作为固定生物识别分子的敏感平台,还可以用于富集痕量分析物和信号分子来放大分析信号,提高电化学或ECL免疫分析的灵敏度。目前,科研人员已合成各种各样具有不同性能和形貌的MOFs纳米材料,并用于开发高性能的电化学免疫传感器和ECL免疫传感器。本文综述了不同类型的基于MOFs纳米材料的电化学/ECL免疫传感器的制备及其在免疫分析中的检测应用。研究表明,MOFs不仅可以作为电极表面修饰的基底、信号探针(包括电活性标记分子和电化学发光发光标记探针)、催化活性标记物,还可以作为负载各种生物分子、纳米材料的载体,最终可用于灵敏的电化学和ECL检测。此外,...  相似文献   

5.
即时检测(POCT)是在病人旁边或现场进行的检测,因其简单、快速、便携且不受场所限制已成为目前体外分子诊断技术发展的一支风向标。而生物传感器以其快速、灵敏、高效、便携及易于自动化、微型化等优点在发展现场即时检测技术中具有非常大的潜力。近年来,随着生物传感技术、互联网技术的发展及各种新技术、新方法的兴起和融合,POCT技术和方法得到了实质性发展。本文简要介绍了生物传感器的分类和生物传感器在POCT中的应用现状,综述了近年来各类生物传感器在面向POCT检测应用的研究进展。生物传感器根据类型主要分为基于微流控芯片的生物传感器、基于纸的生物传感器、基于纳米材料的生物传感器、基于手机检测平台的生物传感器及集成的生物传感器等,并对这些传感器平台在POCT检测方面的应用做了阐述,最后对生物传感器在POCT应用中存在的问题进行了讨论,并对其发展趋势及前景做了展望。  相似文献   

6.
构建新型纳米材料修饰的电化学传感器,提升电极的电催化性能,已成为电化学分析中的研究热点。本文归纳了各种纳米修饰材料的特性,及近年来不同类型纳米材料修饰电极在中药活性成分分析领域的应用。对纳米材料修饰电极存在的问题进行了概述,并展望了其发展前景,为中药有效成分的快速灵敏检测提供理论依据。  相似文献   

7.
无酶电化学生物传感器具有环境适用性强、稳定性高、材料简单易得、灵敏度高、检测限低等特点,近年来受到研究者广泛关注。纳米材料有类酶活性,表现出类似天然酶的酶促反应动力学和催化机理,且能够增强界面吸附性能,增加电催化活性,并促进电子转移动力学,从而广泛应用于无酶电化学生物传感器。本文探索了具有电催化活性的纳米材料及其修饰电极的制备方法,介绍了无酶电化学传感器在医疗诊断、食品检测、环境检测以及其他领域中的应用,讨论了开发基于纳米材料的电化学传感器的未来机遇和挑战。  相似文献   

8.
人体生理指标是衡量健康与否的重要标准。传统的检测方法通常要求单独的实验室、复杂的操作流程且耗费较长的检测时间,难以满足快速诊断和居家健康监测的需求,因此亟需开发便携、快速和精准的现场检测技术。即时检测(Point-of-care testing, POCT)区别于传统实验室检测的主要特征是不需要实验室繁杂的分析过程即可实现生物分子的快速原位检测。智能手机作为日常生活广泛使用的通讯工具,具有独立的操作系统,内置存储功能,还配备高清摄像头,在POCT可视化检测方面有巨大的应用潜力。将各种生物传感技术与智能手机相结合已经发展成为POCT领域的一个新方向。本文对近年来基于智能手机的可视化生物传感器在POCT中的研究进展进行了评述,包括比色传感器、荧光传感器、化学发光传感器和电化学发光传感器等,总结了目前基于智能手机可视化生物传感器在POCT应用中面临的问题,并对其未来发展前景进行了展望。  相似文献   

9.
综述了电化学传感技术在氯酚检测中应用的研究进展,主要对氯酚化合物电化学传感检测中电极修饰材料(贵金属纳米材料、碳纳米材料、吸附材料以及金属氧化物材料等)和电化学传感分析检测氯酚的方法进行了介绍,并对电化学传感器在复杂环境试样中氯酚的检测应用的发展方向进行了展望(引用文献49篇)。  相似文献   

10.
人体血清中甲胎蛋白(AFP)含量已作为肝癌检测的重要指标,快速而准确地检测血清中的AFP含量对肝癌的早期诊断和预后都有极为重要的作用。传统的酶联免疫法存在分析时间长、前处理繁琐等不利因素。利用免疫技术与电化学检测技术结合起来的电化学免疫传感器,由于具有操作简单、灵敏度高、特异性强及成本低等特点,而得到广泛关注。本文将根据所采用的不同检测方式及修饰材料等方面对近年来电化学免疫传感器检测AFP的研究与应用进行评述,并对其发展趋势进行了展望。  相似文献   

11.
Point-of-care testing (POCT) devices have evolved to provide beneficial information about an individual's health whenever needed. Enzyme-based analytical devices have facilitated the highly selective detection of numerous biological molecules and ions. Enzymes are commonly used as the tags of recognition components, such as antibodies, to generate and amplify detection signals. Particularly, alkaline phosphatase (ALP) is one of the most widely used enzymes because of its high turnover number and low cost. Rapid response time and the incorporation of many sensors fabricated by micro/nano processing technologies are the advantages in using electrochemical devices as analytical tools. Therefore, ALP-based electrochemical devices have potential applications for more practical POCT platforms. This review summarizes recent research progress of ALP-based electrochemical devices for POCT. In addition to ALP substrates, the application of ALP-based immunosensors, aptasensors, and DNAzyme sensors are discussed.  相似文献   

12.
《Electroanalysis》2017,29(3):662-675
An efficient electrochemical immunosensor can offer the potential for the detection of protein cancer biomarkers due to its high sensitivity, low cost and possible integration in compact analytical devices. In the last several years, researchers have developed various electrochemical immunoassay methods for the detection of protein cancer biomarkers. Significant progresses have been made in the study of electrochemical immunosensor that based on CNTs, especially in the fields of clinical screening and diagnosis of cancer field. This is because CNTs possess unique structural, mechanical and electronic properties that can decrease over‐potential and improve the sensitivity of electrochemical immunosensor. This paper reviews recent advances in the different modified strategies of constructing electrochemical immunosensor based on CNTs for detecting protein cancer biomarkers. CNTs or CNTs hybrid nanomaterials modified electrodes have been firstly introduced as the sensing platforms for the detection of protein cancer biomarkers. On the other hand, CNTs or functional CNTs used as labels in sandwich‐type electrochemical immunosensors have been systematically summarized. These novel strategies and the general principles could increase the sensitivity of the immunosensor, thereby overcoming the limitations of its application in the biosensing field.  相似文献   

13.
Point-of-care testing (POCT) is a fast developing area in clinical diagnostics that is considered to be one of the main driving forces for the future in vitro diagnostic market. POCT means decentralized testing at the site of patient care. The most important POCT devices are handheld blood glucose sensors. In some of these sensors, after the application of less than 1 μl whole blood, the results are displayed in less than 10 s. For protein determination, the most commonly used devices are based on lateral flow technology. Although these devices are convenient to use, the results are often only qualitative or semiquantitative. The review will illuminate some of the current methods employed in POCT for proteins and will discuss the outlook for techniques (e.g., electrochemical immunosensors) that could have a great impact on future POCT of proteins.  相似文献   

14.
Most of the current analytical methods depend largely on laboratory-based analytical techniques that require expensive and bullky equipment,potentially incur costly testing,and involve lengthy detection processes.With increasing requirements for point-of-care testing(POCT),more attention has been paid to miniaturized analytical devices.Miniaturized electrochemical(MEC)sensors,including different material-based MEC sensors(such as DNA-,paper-,and screen electrode-based),have been in strong demand in analytical science due to their easy operation,portability,high sensitivity,as well as their short analysis time.They have been applied for the detection of trace amounts of target through measuring changes in electrochemical signal,such as current,voltage,potential,or impedance,due to the oxidation/reduction of chemical/biological molecules with the help of electrodes and electrochemical units.MEC sensors present great potential for the detection of targets including small organic molecules,metal ions,and biomolecules.In recent years,MEC sensors have been broadly applied to POCT in various fields,including health care,food safety,and environmental monitoring,owing to the excellent advantages of electrochemical(EC)technologies.This review summarized the state-of-the-art advancements on various types of MEC sensors and their applications in POCT.Furthermore,the future perspectives,opportunities,and challenges in this field are also discussed.  相似文献   

15.
纳米材料因其具有独特的性质,广泛应用于发展具有超高灵敏度、超高选择性的电化学免疫分析方法.纳米材料的免疫标记技术是免疫分析方面研究的一个重要领域,对于提高分析方法的灵敏度与准确性至关重要.本文总结了近年来国内外纳米标记物在电化学免疫分析技术中的应用和进展情况,并对该领域的发展前景做出了展望.  相似文献   

16.
In the field of environmental analysis there is still great potential for development and application of immunoanalytical techniques (IT). Heterogeneous and homogeneous immunoassays (IA), flow-injection immunoanalysis (FIIA) and immunosensors (IS) with different detection principles have been developed. In this review we focus on fluorescence methods for pesticide monitoring published since 1992. These techniques offer a high degree of selectivity and, in principle, sensitivity. Restrictions on the limits of detection (LOD) due to background signals are minimized by development of solid-phase separation systems, new fluorescent probes, and new instrumentation.  相似文献   

17.
In the field of environmental analysis there is still great potential for development and application of immunoanalytical techniques (IT). Heterogeneous and homogeneous immunoassays (IA), flow-injection immunoanalysis (FIIA) and immunosensors (IS) with different detection principles have been developed. In this review we focus on fluorescence methods for pesticide monitoring published since 1992. These techniques offer a high degree of selectivity and, in principle, sensitivity. Restrictions on the limits of detection (LOD) due to background signals are minimized by development of solid-phase separation systems, new fluorescent probes, and new instrumentation.  相似文献   

18.
《Electroanalysis》2017,29(8):1994-2000
Liver cancer is one of the most widely spread cancers in the world. Cancer stem cells (CSCs) are a small subpopulation of liver cancer cells that are thought to be responsible for relapse of cancer and the resistance to chemotherapy. Detection of CSCs is highly demanded for screening patients who are at high risk for developing metastatic cancers. However, the current methodologies for CSCs detection are sophisticated, expensive and not reliable. Here, we report the development of a label‐free impedance immunosensors for liver CSC quantification using four established CSC surface biomarkers (CD44, CD90, CD133/2 and OV‐6). The immunosensors were simply fabricated by the covalent attachment of four biomarkers specific antibodies on gold electrodes using cysteamine/phenylene isothiocyanate linker. Electrochemical impedance spectroscopy was employed to detect the binding of the cells to the immunosensors. The binding of the CSCs to the gold electrode surface retards the access of ferri‐ferrocyanide redox molecules to the electrode leading to enhancement in the charge transfer resistance (Rct) which represents the basis of the detection signal. The developed electrochemical immunosensors showed high sensitivity and selectivity for CSC detection with a wide linear range from 1 × 101 to 1× 104 cells/mL with a limit of detection of 1 cell/ml. This work represents a new, accurate, simple and low cost method for the detection of liver CSC that might help in the early diagnosis of metastatic disease and cancer relapse.  相似文献   

19.
It is known that environmental pollution, which is the result of human-induced industrial, domestic, and agricultural practices, poses a threat to our planet. The increasing human population caused several problems such as water and air pollution, which have reached levels threatening human health. There are many different hazardous chemical and biological environmental pollutants in soil, air, and wastewater. It is extremely important to evaluate these health risks and detect these pollutants. The use of electrochemical methods for the detection of environmental pollutants comes to the forefront recently with advantages such as sensitivity, fast response, low cost, and practical use by miniaturization. The molecular imprinting technique is a popular method used for substance analysis by creating a cavity specific to the substance to be analyzed with the polymer used. The use of molecularly imprinted polymer in electrochemical methods and its modification with various nanomaterials bring advantages such as high selectivity, robustness, and sensitivity to electrochemical sensors. Here, the sensitive determination of environmental pollutants with different nanomaterial-modified molecularly imprinted polymer-based electrochemical sensors, the use of different polymerization techniques, and nano-sized modification agents in sensors are evaluated by reviewing recent studies in the literature.  相似文献   

20.
蒋文  袁若 《分析测试学报》2011,30(11):1200-1206
纳米尺度上的生物分析化学是当今国际生物分析领域研究的前沿和热点.该文阐述了纳米粒子在电化学免疫传感器及电化学DNA传感器领域的应用,着重介绍了以纳米材料为载体设计新型的具有生物分子识别和电信号增强作用的纳米标记粒子在构建高灵敏电化学生物传感器以及多组分同时检测中的应用.  相似文献   

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