基于 Kirigami 三角架的电极,用于开发高度可伸展的登革热灵敏传感器。

IF 3 4区 医学 Q3 ENGINEERING, BIOMEDICAL Biomedical Microdevices Pub Date : 2024-04-01 DOI:10.1007/s10544-024-00704-3
Mohd. Rahil Hasan, Saumitra Singh, Pradakshina Sharma, Zaira Azmi, Agampreet Singh Dadial, Jagriti Narang
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引用次数: 0

摘要

叽里格纸是有趣的纸艺形式之一,也是折纸的改良子类。风车纸艺术被广泛应用于各种领域,由于其突出的优势,目前正被用于生物传感器。本研究首次将基于纸鸢的适配传感器用于登革热病毒(DENV)抗原检测。本研究利用叽里格米方法开发了一种可拉伸、可移动和灵活的传感器。构建的可拉伸叽里格米电极有助于在实验过程中调整电极的连接,而不会干扰电化学电池区。为了提高这种生物传感器的灵敏度,我们通过化学方法合成了 Ag-NPs(银纳米粒子),并借助 TEM 和紫外可见光谱对其进行了表征。我们使用了不同的电化学方法来验证传感器的响应,即 CV(循环伏安法)和 LSV(线性扫描伏安法),结果表明该传感器对登革热病毒的检测能力很强,检测范围为 0.1 µg/ml 至 1000 µg/ml,检测限为 0.1 µg/ml,对基孔肯雅病毒抗原无反应,因此对登革热病毒抗原更具特异性。血清(健康人)也被成功应用于验证所构建的灵敏传感器的结果。叽里呱啦方法与利用 3-E 设置(三电极设置)的电化学灵敏度传感器的整合形式被称为三脚架,统称为基于叽里呱啦-三脚架的灵敏度传感器。因此,所开发的集成平台提高了传感器在成本效益、高伸展性和灵敏度方面的能力。
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Kirigami tripod-based electrode for the development of highly stretchable dengue aptasensor

Kirigami is one of the interesting paper art forms and the modified sub-class of origami. Kirigami paper art is widely employed in a variety of applications, and it is currently being used in biosensors because of its outstanding advantages. This is the first study on the use of a Kirigami-based aptasensor for DENV (Dengue virus)-antigen detection. In this study, the kirigami approach has been utilized to develop a stretchable, movable, and flexible sensor. The constructed stretchable-kirigami electrode helps in adjusting the connection of electrodes without disturbing the electrochemical cell zone during the experiment. To increase the sensitivity of this biosensor we have synthesized Ag-NPs (Silver nanoparticles) via chemical methods and characterized their results with the help of TEM & UV-Vis Spectroscopy. Different electrochemical approaches were used to validate the sensor response i.e., CV (Cyclic voltammetry) and LSV (Linear sweep voltammetry), which exhibited great detection capability towards dengue virus with the range of 0.1 µg/ml to 1000 µg/ml along with a detection limit of 0.1 µg/ml and showing no reactivity to the chikungunya virus antigen, making it more specific to the DENV antigen. Serum (healthy-human) was also successfully applied to validate the results of the constructed aptasensor. Integration of the Kirigami approach form with the electrochemical aptasensor that utilizes a 3-E setup (three-electrode setup) which is referred to as a tripod and collectively called Kirigami-tripod-based aptasensor. Thus, the developed integrated platform improves the sensors capabilities in terms of cost efficiency, high stretchability, and sensitivity.

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来源期刊
Biomedical Microdevices
Biomedical Microdevices 工程技术-工程:生物医学
CiteScore
6.90
自引率
3.60%
发文量
32
审稿时长
6 months
期刊介绍: Biomedical Microdevices: BioMEMS and Biomedical Nanotechnology is an interdisciplinary periodical devoted to all aspects of research in the medical diagnostic and therapeutic applications of Micro-Electro-Mechanical Systems (BioMEMS) and nanotechnology for medicine and biology. General subjects of interest include the design, characterization, testing, modeling and clinical validation of microfabricated systems, and their integration on-chip and in larger functional units. The specific interests of the Journal include systems for neural stimulation and recording, bioseparation technologies such as nanofilters and electrophoretic equipment, miniaturized analytic and DNA identification systems, biosensors, and micro/nanotechnologies for cell and tissue research, tissue engineering, cell transplantation, and the controlled release of drugs and biological molecules. Contributions reporting on fundamental and applied investigations of the material science, biochemistry, and physics of biomedical microdevices and nanotechnology are encouraged. A non-exhaustive list of fields of interest includes: nanoparticle synthesis, characterization, and validation of therapeutic or imaging efficacy in animal models; biocompatibility; biochemical modification of microfabricated devices, with reference to non-specific protein adsorption, and the active immobilization and patterning of proteins on micro/nanofabricated surfaces; the dynamics of fluids in micro-and-nano-fabricated channels; the electromechanical and structural response of micro/nanofabricated systems; the interactions of microdevices with cells and tissues, including biocompatibility and biodegradation studies; variations in the characteristics of the systems as a function of the micro/nanofabrication parameters.
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