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使用基于喷嘴喷射印刷的金纳米粒子@碳化钛MXene的电化学传感器对羟甲基化DNA进行快速无标记检测。

A fast and label-free detection of hydroxymethylated DNA using a nozzle-jet printed AuNPs@TiC MXene-based electrochemical sensor.

作者信息

Bhat Kiesar Sideeq, Byun Seongjun, Alam Asrar, Ko Myunggon, An Jungeun, Lim Sooman

机构信息

Department of Flexible and Printable Electronics, LANL-JBNU Engineering Institute, Jeonbuk National University, Jeonju, 54896, Republic of Korea; Department of Bioresources, University of Kashmir, Hazratbal, Srinagar, 190006, India.

Department of Biological Sciences, Ulsan National Institute of Science and Technology, Ulsan, 44919, Republic of Korea.

出版信息

Talanta. 2022 Jul 1;244:123421. doi: 10.1016/j.talanta.2022.123421. Epub 2022 Apr 2.

Abstract

5-hydroxymethylcytosine (5hmC) is a key epigenetic mark in the mammalian genome that has been proposed as a promising cancer biomarker with diagnostic and prognostic potentials. A new type of two-dimensional (2D) material called MXene includes transition metal carbides and nitrides and possesses unique physico-chemical properties suitable for diverse applications, including electrochemical sensors. Here, we report a new nozzle-jet printed electrochemical sensor using gold nanoparticles (AuNPs)@TiC MXene nanocomposite for the real-time and label-free detection of 5hmC in the genome. We utilized TiC MXene as a platform to immobilize AuNPs, which have been shown to exhibit different affinity interactions toward 5-methylcytosine (5 mC) and 5hmC, and thus produce distinct electrochemical responses. To fabricate the electrode, a highly conductive and adhesive silver ink was prepared to generate a silver line onto polyethylene terephthalate (PET) substrate using nozzle-jet printing, followed by deposition of AuNPs@TiC MXene ink at one end via dropcasting. Analyses of morphology and chemical composition showed that all steps of the sensor fabrication were successful. The fabricated sensor coupled with cyclic voltammetry showed excellent performance in distinguishing 5 mC- or 5hmC-enriched cellular genomic DNAs. As a proof-of-concept investigation, we confirmed that our sensor readily and consistently detected 5hmC diminution in multiple tumors, compared to the paired normal tissues. Thus, our simple and cost-effective sensing strategy using printable AuNPs@TiC MXene ink holds promise for a wide range of practical applications in epigenetic studies as well as clinical settings.

摘要

5-羟甲基胞嘧啶(5hmC)是哺乳动物基因组中的一种关键表观遗传标记,已被提议作为一种具有诊断和预后潜力的有前景的癌症生物标志物。一种新型的二维(2D)材料,称为MXene,包括过渡金属碳化物和氮化物,并具有适用于多种应用(包括电化学传感器)的独特物理化学性质。在此,我们报告了一种使用金纳米颗粒(AuNPs)@TiC MXene纳米复合材料的新型喷嘴喷射印刷电化学传感器,用于实时、无标记检测基因组中的5hmC。我们利用TiC MXene作为平台固定AuNPs,已证明AuNPs对5-甲基胞嘧啶(5mC)和5hmC表现出不同的亲和相互作用,从而产生不同的电化学响应。为了制造电极,制备了一种高导电性和粘性的银墨水,通过喷嘴喷射印刷在聚对苯二甲酸乙二醇酯(PET)基板上生成银线,然后通过滴铸在一端沉积AuNPs@TiC MXene墨水。形态和化学成分分析表明,传感器制造的所有步骤都是成功的。所制造的传感器与循环伏安法相结合,在区分富含5mC或5hmC的细胞基因组DNA方面表现出优异的性能。作为概念验证研究,我们证实,与配对的正常组织相比,我们的传感器能够轻松且一致地检测多种肿瘤中5hmC的减少。因此,我们使用可印刷的AuNPs@TiC MXene墨水的简单且经济高效的传感策略在表观遗传学研究以及临床环境中的广泛实际应用中具有前景。

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