不同纳米粒子在检测基孔肯雅病毒的各种生物传感器中的作用的最新进展。

IF 2.4 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Molecular Biotechnology Pub Date : 2025-01-01 Epub Date: 2024-02-23 DOI:10.1007/s12033-024-01052-6
Seyed Abbas Shahrtash, Zahraa Sabah Ghnim, Mohammad Ghaheri, Javid Adabi, Mohammad Amir Hassanzadeh, Saman Yasamineh, Hamed Afkhami, Amir Hossein Kheirkhah, Omid Gholizadeh, Hesam Zendehdel Moghadam
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引用次数: 0

摘要

人类感染基孔肯雅病毒(CHIKV)是一种由蚊子传播的α病毒,会引起急性和慢性肌肉骨骼不适和发烧。自 2004 年以来,印度洋地区已有数百万例基孔肯雅病毒感染病例,此后病毒又蔓延到欧洲、中东和太平洋地区。近来,CHIKV呈指数级扩散,这凸显了实施预防措施和探索潜在控制策略的重要性。在症状出现后六天内采集的血清样本中,诊断感染的主要实验室检测方法是检测 CHIKV 或病毒 RNA。虽然市面上有两种实时反转录聚合酶链反应产品,但有关其有效性的数据有限。因此,特别是在发展中国家,绝对需要一种快速、灵敏、特异且成本效益高的诊断仪器。生物传感器在病原体检测领域已显示出相当大的潜力。多种类型的生物传感器,包括亲和性纳米生物传感器、石墨烯亲和生物传感器、光学纳米生物传感器、基于表面等离子共振的光学纳米生物传感器和电化学纳米生物传感器的开发,促进了病毒的快速和灵敏检测。此外,利用纳米材料(包括但不限于金纳米粒子、银纳米粒子、量子点和氧化铁纳米粒子)进行信号扩展,提高了生物传感器的精度和灵敏度。所开发的创新诊断方法具有省时、精确和经济的特点,可作为护理点设备使用。该技术可用于诊断实验室和医院,以识别感染 CHIKV 的病人。在本文中,我们研究了多种 CHIKV 纳米生物传感器及其各自的特性。在讨论了用于生物传感器的代表性纳米技术后,本文总结了许多由 NPs 辅助的 CHIKV 纳米生物传感器。因此,我们预计本综述将为推动创新型 CHIKV 纳米生物传感器的发展奠定重要基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent Advances in the Role of Different Nanoparticles in the Various Biosensors for the Detection of the Chikungunya Virus.

Recent Advances in the Role of Different Nanoparticles in the Various Biosensors for the Detection of the Chikungunya Virus.

Humans contract the Chikungunya virus (CHIKV), an alphavirus transmitted by mosquitoes that induces acute and chronic musculoskeletal discomfort and fever. Millions of cases of the disease have been attributed to CHIKV in the Indian Ocean region since 2004, and the virus has since spread to Europe, the Middle East, and the Pacific. The exponential proliferation of CHIKV in recent times underscores the critical nature of implementing preventative measures and exploring potential control strategies. The principal laboratory test employed to diagnose infection in serum samples collected over six days after the onset of symptoms is the detection of CHIKV or viral RNA. Although two commercially available real-time reverse transcription-polymerase chain reaction products exist, data on their validity are limited. A diagnostic instrument that is rapid, sensitive, specific, and cost-effective is, therefore an absolute necessity, particularly in developing nations. Biosensors have demonstrated considerable potential in the realm of pathogen detection. The rapid and sensitive detection of viruses has been facilitated by the development of numerous types of biosensors, including affinity-based nano-biosensors, graphene affinity-based biosensors, optical nano-biosensors, surface Plasmon Resonance-based optical nano-biosensors, and electrochemical nano-biosensors. Furthermore, the utilization of nanomaterials for signal extension, including but not limited to gold and silver nanoparticles, quantum dots, and iron oxide NPs, has enhanced the precision and sensitivity of biosensors. The developed innovative diagnostic method is time-efficient, precise, and economical; it can be implemented as a point-of-care device. The technique may be implemented in diagnostic laboratories and hospitals to identify patients infected with CHIKV. Throughout this article, we have examined a multitude of CHIKV nano-biosensors and their respective properties. Following a discussion of representative nanotechnologies for biosensors, numerous NPs-assisted CHIKV nano-biosensors are summarized in this article. As a result, we anticipate that this review will furnish a significant foundation for advancing innovative CHIKV nano-biosensors.

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来源期刊
Molecular Biotechnology
Molecular Biotechnology 医学-生化与分子生物学
CiteScore
4.10
自引率
3.80%
发文量
165
审稿时长
6 months
期刊介绍: Molecular Biotechnology publishes original research papers on the application of molecular biology to both basic and applied research in the field of biotechnology. Particular areas of interest include the following: stability and expression of cloned gene products, cell transformation, gene cloning systems and the production of recombinant proteins, protein purification and analysis, transgenic species, developmental biology, mutation analysis, the applications of DNA fingerprinting, RNA interference, and PCR technology, microarray technology, proteomics, mass spectrometry, bioinformatics, plant molecular biology, microbial genetics, gene probes and the diagnosis of disease, pharmaceutical and health care products, therapeutic agents, vaccines, gene targeting, gene therapy, stem cell technology and tissue engineering, antisense technology, protein engineering and enzyme technology, monoclonal antibodies, glycobiology and glycomics, and agricultural biotechnology.
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