Sensitive Detection of BVDV Using Gold Nanoparticle-Modified Few-Layer Black Phosphorus with Affinity Peptide-Based Electrochemical Sensor

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Min Woo Kim, Dae Yeon Lee, Chae Hwan Cho, Chan Yeong Park, Subhadeep Ghosh, Moon Seop Hyun, Ping Xu, Jong Pil Park* and Tae Jung Park*, 
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Abstract

The lethality of the bovine viral diarrhea virus (BVDV) in cattle involves inapparent infection and various, typically subclinical, syndromes. Cattle of all ages are vulnerable to infection with the virus. It also causes considerable economic losses, primarily due to reduced reproductive performance. In the absence of treatment that can completely cure infected animals, detection of BVDV relies on highly sensitive and selective diagnosis methods. In this study, an electrochemical detection system was developed as a useful and sensitive system for the detection of BVDV to suggest the direction of diagnostic technology through the development of conductive nanoparticle synthesis. As a countermeasure, a more sensitive and rapid BVDV detection system was developed using the synthesis of electroconductive nanomaterials black phosphorus (BP) and gold nanoparticle (AuNP). To increase the conductivity effect, AuNP was synthesized on the BP surface, and the stability of BP was improved by using dopamine self-polymerization. Moreover, its characterizations, electrical conductivity, selectivity, and sensitivity toward BVDV also have been investigated. The BP@AuNP-peptide-based BVDV electrochemical sensor exhibited a low detection limit of 0.59 copies mL–1 with high selectivity and long-term stability (retaining 95% of its initial performance over 30 days).

Abstract Image

基于亲和肽基电化学传感器的金纳米粒子修饰少层黑磷灵敏检测BVDV
牛病毒性腹泻病毒(BVDV)在牛中的致命性包括隐性感染和各种典型的亚临床综合征。所有年龄的牛都容易感染这种病毒。它还造成相当大的经济损失,主要是由于生殖能力下降。在没有完全治愈感染动物的治疗方法的情况下,BVDV的检测依赖于高度敏感和选择性的诊断方法。本研究开发了一种电化学检测系统,作为一种有用且灵敏的BVDV检测系统,通过导电纳米颗粒合成的发展为诊断技术指明了方向。为此,利用合成导电纳米材料黑磷(BP)和纳米金(AuNP),研制了一种灵敏度更高、速度更快的BVDV检测系统。为了提高导电效果,在BP表面合成AuNP,并通过多巴胺自聚合提高BP的稳定性。此外,还研究了它的表征、电导率、选择性和对BVDV的灵敏度。BP@AuNP-peptide-based BVDV电化学传感器具有0.59拷贝mL-1的低检出限,高选择性和长期稳定性(30天内保持95%的初始性能)。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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