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基于共价 DNA 锚的近红外荧光生物传感器。

Near-Infrared Fluorescent Biosensors Based on Covalent DNA Anchors.

机构信息

Department of Chemistry, Ruhr-University Bochum, 44801 Bochum, Germany.

Biomedical Nanosensors, Fraunhofer Institute for Microelectronic Circuits and Systems, 47057 Duisburg, Germany.

出版信息

J Am Chem Soc. 2023 Jul 12;145(27):14776-14783. doi: 10.1021/jacs.3c03336. Epub 2023 Jun 27.

Abstract

Semiconducting single-walled carbon nanotubes (SWCNTs) are versatile near-infrared (NIR) fluorophores. They are noncovalently modified to create sensors that change their fluorescence when interacting with biomolecules. However, noncovalent chemistry has several limitations and prevents a consistent way to molecular recognition and reliable signal transduction. Here, we introduce a widely applicable covalent approach to create molecular sensors without impairing the fluorescence in the NIR (>1000 nm). For this purpose, we attach single-stranded DNA (ssDNA) via guanine quantum defects as anchors to the SWCNT surface. A connected sequence without guanines acts as flexible capture probe allowing hybridization with complementary nucleic acids. Hybridization modulates the SWCNT fluorescence and the magnitude increases with the length of the capture sequence (20 > 10 ≫ 6 bases). The incorporation of additional recognition units this sequence enables a generic route to NIR fluorescent biosensors with improved stability. To demonstrate the potential, we design sensors for bacterial siderophores and the SARS CoV-2 spike protein. In summary, we introduce covalent guanine quantum defect chemistry as rational design concept for biosensors.

摘要

半导体单壁碳纳米管(SWCNT)是一种用途广泛的近红外(NIR)荧光团。它们通过非共价修饰来创建传感器,当与生物分子相互作用时,这些传感器会改变其荧光。然而,非共价化学有几个局限性,无法实现一致的分子识别和可靠的信号转导。在这里,我们引入了一种广泛适用的共价方法来创建分子传感器,而不会损害 NIR(>1000nm)中的荧光。为此,我们通过鸟嘌呤量子缺陷将单链 DNA(ssDNA)作为附着物连接到 SWCNT 表面。没有鸟嘌呤的连接序列作为柔性捕获探针,允许与互补核酸进行杂交。杂交会调节 SWCNT 的荧光,并且随着捕获序列长度的增加(20 > 10 ≫ 6 个碱基),荧光强度会增加。在该序列中加入额外的识别单元可以为具有更好稳定性的 NIR 荧光生物传感器提供一种通用途径。为了展示其潜力,我们设计了用于细菌铁载体和 SARS CoV-2 刺突蛋白的传感器。总之,我们引入了共价鸟嘌呤量子缺陷化学作为生物传感器的合理设计概念。

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