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滚环扩增在等离子体生物传感器中的应用:从集合体到单分子检测。

Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection.

机构信息

Biosensor Technologies, AIT-Austrian Institute of Technology GmbH, Konrad-Lorenz-Straße 24, 3430 Tulln an der Donau, Austria.

CEST Competence Center for Electrochemical Surface Technologies, 3430 Tulln an der Donau, Austria.

出版信息

ACS Appl Mater Interfaces. 2022 Dec 14;14(49):55017-55027. doi: 10.1021/acsami.2c14500. Epub 2022 Nov 29.

Abstract

We report on the tailoring of rolling circle amplification (RCA) for affinity biosensors relying on the optical probing of their surface with confined surface plasmon field. Affinity capture of the target analyte at the metallic sensor surface (, by using immunoassays) is followed by the RCA step for subsequent readout based on increased refractive index (surface plasmon resonance, SPR) or RCA-incorporated high number of fluorophores (in surface plasmon-enhanced fluorescence, PEF). By combining SPR and PEF methods, this work investigates the impact of the conformation of long RCA-generated single-stranded DNA (ssDNA) chains to the plasmonic sensor response enhancement. In order to confine the RCA reaction within the evanescent surface plasmon field and hence maximize the sensor response, an interface carrying analyte-capturing molecules and additional guiding ssDNA strands (complementary to the repeating segments of RCA-generated chains) is developed. When using the circular padlock probe as a model target analyte, the PEF readout shows that the reported RCA implementation improves the limit of detection (LOD) from 13 pM to high femtomolar concentration when compared to direct labeling. The respective enhancement factor is of about 2 orders of magnitude, which agrees with the maximum number of fluorophore emitters attached to the RCA chain that is folded in the evanescent surface plasmon field by the developed biointerface. Moreover, the RCA allows facile visualizing of individual binding events by fluorescence microscopy, which enables direct counting of captured molecules. This approach offers a versatile route toward a fast digital readout format of single-molecule detection with further reduced LOD.

摘要

我们报告了滚环扩增(RCA)的定制,该方法依赖于受限的表面等离激元场对其表面进行光学探测,用于基于增加的折射率(表面等离子体共振,SPR)或包含大量荧光团的 RCA(表面等离子体增强荧光,PEF)进行后续读出的亲和生物传感器。通过结合 SPR 和 PEF 方法,本工作研究了长 RCA 产生的单链 DNA(ssDNA)链的构象对等离子体传感器响应增强的影响。为了将 RCA 反应限制在渐逝表面等离激元场中,从而最大限度地提高传感器响应,开发了一种带有分析物捕获分子和额外导向 ssDNA 链(与 RCA 产生的链的重复片段互补)的界面。当使用圆形锁式探针作为模型靶标时,PEF 读出表明,与直接标记相比,所报道的 RCA 实现将检测限(LOD)从 13 pM 提高到高飞摩尔浓度。相应的增强因子约为 2 个数量级,这与通过开发的生物界面在渐逝表面等离激元场中折叠的 RCA 链上附着的最大荧光团发射体数量相吻合。此外,RCA 允许通过荧光显微镜轻松可视化单个结合事件,从而能够直接计数捕获的分子。这种方法为具有进一步降低 LOD 的单分子检测的快速数字读出格式提供了一种通用途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3466/9756284/5347ca111817/am2c14500_0002.jpg

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