阳离子预处理使多巴胺近红外传感器在生理盐水中的稳定性得以实现。

IF 3.8 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
ACS Bio & Med Chem Au Pub Date : 2025-01-27 eCollection Date: 2025-02-19 DOI:10.1021/acsbiomedchemau.4c00094
Xuewen Liu, Jing Chen, Hanxuan Wang, Benjamin Lambert, Ardemis A Boghossian
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引用次数: 0

摘要

单壁碳纳米管(SWCNTs)包裹单链DNA (ssDNA)创建近红外(NIR-II)荧光传感器用于不同的分析物。然而,带负电荷的ssDNA主链与生物盐水中的阳离子之间的相互作用不可预测地改变了荧光。这种敏感性限制了这些传感器在生物介质中的应用。为了解决这一局限性,本研究开发了一种阳离子预处理策略,该策略可淬灭ssDNA-SWCNTs的基线荧光,以实现由盐水中分析物选择性触发的开启反应。对凝胶封装(AT)15-SWCNTs的Na+、K+、Mg2+、Ca2+和Al3+预处理的初步筛选表明,Al3+预处理可诱导荧光稳定猝灭,且仅在Al3+螯合或沉淀时可逆。我们将这种Al3+预处理用于开发一种具有盐弹性的近红外多巴胺传感器。Al3+处理(AT)15-SWCNTs在1 nM和10 μM多巴胺的动态范围内表现出浓度和手性依赖的荧光响应,与未处理(AT)15-SWCNTs相比,对缓冲盐水中10 mM多巴胺的开启响应增加了110倍。对pH和不同盐对多巴胺反应影响的进一步研究表明,其机制依赖于竞争的三价阳离子和负的DNA磷酸盐相互作用。这些相互作用为盐弹性光学传感器奠定了框架,该传感器利用DNA作为带电致动器来调节激子动力学和控制swcnts荧光。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cation Pretreatment Enables the Saline Stability of a Near-Infrared Sensor for Dopamine.

Single-walled carbon nanotubes (SWCNTs) are wrapped with single-stranded DNA (ssDNA) to create near-infrared (NIR-II) fluorescent sensors for diverse analytes. However, the interaction between the negatively charged backbone of ssDNA and cations in biological saline alters fluorescence unpredictably. This susceptibility limits the application of these sensors in biological media. To address this limitation, this study develops a cation-pretreatment strategy that quenches the baseline fluorescence of ssDNA-SWCNTs to enable turn-on responses that are selectively triggered by analytes in saline. An initial screening of Na+, K+, Mg2+, Ca2+, and Al3+ pretreatments of gel-encapsulated (AT)15-SWCNTs reveals that Al3+ pretreatment induces a stable quenching of fluorescence that is reversible only on Al3+ chelation or precipitation. We apply this Al3+ pretreatment to develop a saline-resilient, near-infrared sensor for dopamine. The Al3+-treated (AT)15-SWCNTs show a concentration- and chirality-dependent fluorescence response over a dynamic range of 1 nM and 10 μM dopamine, achieving a 110-fold increase in the turn-on response to 10 mM dopamine in buffered saline compared with the untreated (AT)15-SWCNTs. Further study of the effects of pH and different salts on the dopamine response suggests a mechanism that relies on competing trivalent cations and negative DNA phosphate interactions. These interactions lay the framework for saline-resilient optical sensors that exploit DNA as a charged-based actuator for modulating the exciton dynamics and controlling the SWCNT fluorescence.

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来源期刊
ACS Bio & Med Chem Au
ACS Bio & Med Chem Au 药物、生物、化学-
CiteScore
4.10
自引率
0.00%
发文量
0
期刊介绍: ACS Bio & Med Chem Au is a broad scope open access journal which publishes short letters comprehensive articles reviews and perspectives in all aspects of biological and medicinal chemistry. Studies providing fundamental insights or describing novel syntheses as well as clinical or other applications-based work are welcomed.This broad scope includes experimental and theoretical studies on the chemical physical mechanistic and/or structural basis of biological or cell function in all domains of life. It encompasses the fields of chemical biology synthetic biology disease biology cell biology agriculture and food natural products research nucleic acid biology neuroscience structural biology and biophysics.The journal publishes studies that pertain to a broad range of medicinal chemistry including compound design and optimization biological evaluation molecular mechanistic understanding of drug delivery and drug delivery systems imaging agents and pharmacology and translational science of both small and large bioactive molecules. Novel computational cheminformatics and structural studies for the identification (or structure-activity relationship analysis) of bioactive molecules ligands and their targets are also welcome. The journal will consider computational studies applying established computational methods but only in combination with novel and original experimental data (e.g. in cases where new compounds have been designed and tested).Also included in the scope of the journal are articles relating to infectious diseases research on pathogens host-pathogen interactions therapeutics diagnostics vaccines drug-delivery systems and other biomedical technology development pertaining to infectious diseases.
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