One-step and wash-free multiplexed immunoassay platform based on bioinspired photonic barcodes

Q1 Medicine Engineered regeneration Pub Date : 2023-09-01 DOI:10.1016/j.engreg.2023.03.007
Dagan Zhang , Yuze Wang , Junqi Zhao , Xueqin Li , Yuanyang Zhou , Sen Wang
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引用次数: 1

Abstract

Multiplex, rapid and accurate virus quantification plays a great value in biomedical detection. Here, a novel one step, wash-free immunoassay platform based bioinspired PhC barcodes for multiplexed virus quantification was explored. PhC barcodes were decorated with PDA by self-polymerization of DA, thus this nanocomposite hybridized PhC barcodes facilitated the adsorption of FITC labelled antibodies and quenched itself photoluminescent, allowing a fast responsive composite platform. In the presence of target analyte, the FITC-labelled detection antibody was released from the surface of PDA decorated microcarrier to specifically bind to the target analyte, thus recovered the photoluminescence. In addition, the PhC microcarrier was enabled to carry out various color barcode for different targets detection though tuning internal periodic structures. Based on these excellent performances of the nanocomposite barcode, this method can not only capture H1N1, H5N1, SARS-CoV-2 simultaneously with rapid, accuracy but also accomplish multiplex quantification detection with high-sensitivity. Furthermore, our developed platform was also achieved with high-sensitivity and high-specificity through the verification of clinical samples, thus laying out a new avenue for multiplex virus detection in clinical diagnosis.

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基于仿生光子条形码的一步免清洗多重免疫分析平台
多重、快速、准确的病毒定量在生物医学检测中具有重要价值。在这里,我们探索了一种新的一步,免洗免疫分析平台,基于生物启发的PhC条形码,用于多路病毒定量。通过DA自聚合修饰PDA修饰PhC条形码,使得该纳米复合杂化PhC条形码能够吸附FITC标记的抗体并淬灭自身光致发光,从而实现了快速响应的复合平台。在目标分析物存在的情况下,fitc标记的检测抗体从PDA修饰的微载体表面释放,特异性结合目标分析物,从而恢复光致发光。此外,通过调整内部周期结构,使PhC微载体能够进行不同颜色的条形码,用于不同的目标检测。基于纳米复合条形码的这些优良性能,该方法不仅可以快速、准确地同时捕获H1N1、H5N1、SARS-CoV-2,而且可以实现高灵敏度的多重定量检测。此外,通过临床样本的验证,我们开发的平台也实现了高灵敏度和高特异性,从而为临床诊断中的多重病毒检测开辟了新的途径。
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来源期刊
Engineered regeneration
Engineered regeneration Biomaterials, Medicine and Dentistry (General), Biotechnology, Biomedical Engineering
CiteScore
22.90
自引率
0.00%
发文量
0
审稿时长
33 days
期刊最新文献
Asymmetric porous composite hydrogel patch for microenvironment-adapted repair of contaminated abdominal wall defects Novel injectable composite incorporating denosumab promotes bone regeneration via bone homeostasis regulation Bone improvement in osteoporotic rabbits using CoCrMo implants Polyphenol-based photothermal nanoparticles with sprayable capability for self-regulation of microenvironment to accelerate diabetic wound healing Corrigendum to “The Artificial Disc Nucleus and Other Strategies for Replacement of the Nucleus Pulposus: Past, Present and Future Designs for an Emerging Surgical Solution” [Engineered Regeneration 5(2024), 269-281]
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