Ganganboina Akhilesh Babu, Chowdhury Ankan Dutta, Khoris Indra Memdi, Doong Ruey-An, Li Tian-Cheng, Hara Toshimi, Abe Fuyuki, Suzuki Tetsuro, Park Enoch Y
Research Institute of Green Science and Technology, Shizuoka University, 836 Ohya Suruga-ku, Shizuoka, 422-8529, Japan.
Department of Bioscience, Graduate School of Science and Technology, Shizuoka University, 836 Ohya Suruga-ku, Shizuoka, 422-8529, Japan.
Biosens Bioelectron. 2020 Dec 15;170:112680. doi: 10.1016/j.bios.2020.112680. Epub 2020 Oct 2.
Combination of magnetic nanomaterials with multifunctionality is an emerging class of materials that exhibit tremendous potential in advanced applications. Synthesizing such novel nanocomposites without compromising magnetic behavior and introducing added functional properties is proven challenging. In this study, an optically active quantum dot (QD) (core) encapsulated inside iron oxide (hollow shell) is prepared as the first electrochemical/fluorescence dual-modality probe. Presence of magnetic layer on the surface enables excellent magnetic property and the encapsulating of QDs on the hollow shell structure maintains the fluorescence with minimal quenching effect, endowing for potential application with fluorescence modality readout. We successfully demonstrate dual-modality sensing utilizing of QD-encapsulated magnetic hollow sphere nanoparticles (QD@MHS NPs) with magnetic separation ability and highly integrated multimodal sensing for the detection of various viruses including hepatitis E virus (HEV), HEV-like particles (HEV-LPs), norovirus-like particles (NoV-LPs), and norovirus (NoV) from clinical specimens. Most importantly, fecal samples of HEV-infected monkey are successfully diagnosed with sensitivity similar to gold standard real-time quantitative reverse transcription-polymerase chain reaction (RT-qPCR). This well-defined QD@MHS NPs-based nanoplatform intelligently integrates dual-modality sensing and magnetic bio-separation, which open a gateway to provide an efficient point-of care testing for virus diagnostics.
具有多功能性的磁性纳米材料组合是一类新兴材料,在先进应用中展现出巨大潜力。合成这种新型纳米复合材料而不损害磁性能并引入附加功能特性已被证明具有挑战性。在本研究中,制备了一种封装在氧化铁(中空壳)内的光学活性量子点(QD)(核心)作为首个电化学/荧光双模态探针。表面磁性层的存在赋予了优异的磁性能,而量子点在中空壳结构上的封装以最小的猝灭效应维持了荧光,为荧光模态读出的潜在应用提供了条件。我们成功展示了利用量子点封装的磁性空心球纳米颗粒(QD@MHS NPs)进行双模态传感,其具有磁分离能力以及用于检测临床标本中包括戊型肝炎病毒(HEV)、戊型肝炎病毒样颗粒(HEV-LPs)、诺如病毒样颗粒(NoV-LPs)和诺如病毒(NoV)在内的各种病毒的高度集成多模态传感。最重要的是,戊型肝炎病毒感染猴的粪便样本被成功诊断,其灵敏度与金标准实时定量逆转录聚合酶链反应(RT-qPCR)相似。这种定义明确的基于QD@MHS NPs的纳米平台智能地集成了双模态传感和磁性生物分离,为病毒诊断提供高效即时检测开辟了一条途径。