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一种多功能的消逝波生物传感器,用于 SARS-CoV-2 变体的通用检测和冠状病毒刺突蛋白-hACE2 相互作用的亲和力分析。

A multifunctional evanescent wave biosensor for the universal assay of SARS-CoV-2 variants and affinity analysis of coronavirus spike protein-hACE2 interactions.

机构信息

Department of Toxicology and Sanitary Chemistry, School of Public Health, Capital Medical University, Beijing, China; Beijing Key Laboratory of Environmental Toxicology, Capital Medical University, Beijing, China.

Chinese PLA Center for Disease Control and Prevention, Beijing, China.

出版信息

Biosens Bioelectron. 2024 Sep 15;260:116426. doi: 10.1016/j.bios.2024.116426. Epub 2024 May 25.

Abstract

The conventional detection model of passive adaptation to pathogen mutations, i.e., developing assays using corresponding antibodies or nucleic acid probes, is difficult to address frequent outbreaks of emerging infectious diseases. In particular, adaptive mutations observed in coronaviruses, which increase the affinity of the spike protein with the human cellular receptor hACE2, play pivotal roles in the transmission and immune evasion of coronaviruses. Herein, we developed a multifunctional optical fiber evanescent wave biosensor for the universal assay of coronavirus and affinity analysis of the spike protein interacting with hACE2, namely, My-SPACE. By competitively binding with Cy5.5-hACE2 between coronavirus spike proteins in mobile buffer and that modified on optical fibers from the SARS-CoV-2 wild type, My-SPACE could automatically detect SARS-CoV-2 and its variants within 10 min. My-SPACE demonstrated greater sensitivity and faster results than ELISA for SARS-CoV-2 variants, achieving 100% specificity and 94.10% sensitivity in detecting the Omicron variant in 18 clinical samples. Moreover, the interaction between hACE2 and the coronavirus spike protein was accurately characterized across SARS-CoV-2 mutants, SARS-CoV and hCoV-NL63. The accuracy of the affinity determined by My-SPACE was verified by SPR. This approach enables preliminary assessment of the transmissibility and hazards of emerging coronaviruses. The sensor fibers of My-SPACE can be reused more than 40 times, and the device is compact and easy to use; moreover, it is available as a rapid and cost-effective on-site detection tool adapted to coronavirus variability and as an effective assessment platform for early warning of coronavirus transmission risk.

摘要

传统的病原体突变被动适应检测模型,即使用相应的抗体或核酸探针开发检测方法,难以应对新发传染病的频繁爆发。特别是冠状病毒中观察到的适应性突变,增加了刺突蛋白与人细胞受体 hACE2 的亲和力,在冠状病毒的传播和免疫逃逸中发挥着关键作用。在此,我们开发了一种多功能光纤倏逝波生物传感器,用于冠状病毒的通用检测和与 hACE2 相互作用的刺突蛋白亲和力分析,即 My-SPACE。通过在流动缓冲液中冠状病毒刺突蛋白与修饰在光纤上的 Cy5.5-hACE2 之间竞争结合,My-SPACE 可以在 10 分钟内自动检测 SARS-CoV-2 及其变体。My-SPACE 对 SARS-CoV-2 变体的检测灵敏度和结果比 ELISA 更快,在 18 个临床样本中对奥密克戎变体的特异性为 100%,灵敏度为 94.10%。此外,还准确地描述了 hACE2 与冠状病毒刺突蛋白之间的相互作用跨越 SARS-CoV-2 突变体、SARS-CoV 和 hCoV-NL63。My-SPACE 确定的亲和力准确性通过 SPR 得到了验证。该方法可用于初步评估新发冠状病毒的传播力和危害性。My-SPACE 的传感器光纤可重复使用 40 多次,且该设备结构紧凑,易于使用;此外,它可作为一种快速且具有成本效益的现场检测工具,适用于冠状病毒的变异性,并作为冠状病毒传播风险预警的有效评估平台。

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