DNA蜈蚣纳米线驱动细胞和血清中快速小摩尔microRNA检测。

IF 10.5 1区 生物学 Q1 BIOPHYSICS
Zhixiong Dong, Yangyang Liu, Zhiwei Zhu, Xianghan Song, Huo Xu, Wei Cui, Fanggui Shao
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引用次数: 0

摘要

准确、快速地检测microRNA (miRNA)对于临床诊断和分子生物学至关重要。在这里,我们报道了一种基于DNA蜈蚣纳米探针(DCNP)的局部催化发夹组装(LCHA)策略,用于超灵敏检测细胞和血清中的miR-21。在该系统中,DNA纳米线在空间上限制了两个活性发夹(HP1和HP2),以提高局部浓度并加速杂交动力学,从而使灵敏度比游离cha提高了5倍。DCNP能够在40分钟内快速检测,检测极限低至100 pM,并且在不需要转染试剂的情况下,在复杂的生物流体中提供强大的性能。对同源和突变mirna具有高特异性。MCF-7细胞内miR-21成像显示强烈的荧光信号,与qRT-PCR一致。结肠癌患者和健康献血者的临床血清样本得到了明确的区分,得到了AUC为1.00的接受者工作特征曲线。该LCHA系统具有高灵敏度,快速反应和可靠的细胞内递送,使其成为早期癌症诊断和点护理应用的有希望的候选者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DNA centipede nanowires drive rapid picomolar microRNA detection in cells and serum.

Accurate and rapid detection of microRNA (miRNA) is essential for clinical diagnostics and molecular biology. Here, we report a DNA centipede nanoprobe (DCNP)-based localized catalytic hairpin assembly (LCHA) strategy for ultrasensitive detection of miR-21 in cells and serum. In this system, DNA nanowires spatially confine two reactive hairpins (HP1 and HP2) to enhance local concentration and accelerate hybridization kinetics, leading to a fivefold sensitivity improvement over free-CHA. The DCNP enables rapid detection within 40 min, with a limit of detection down to 100 pM, and offers robust performance in complex biological fluids without the need for transfection reagents. High specificity is achieved against homologous and mutant miRNAs. Intracellular imaging of miR-21 in MCF-7 cells displays strong fluorescence signals, consistent with qRT-PCR. Clinical serum samples from colon cancer patients and healthy donors are clearly distinguished, yielding a receiver operating characteristic curve with an AUC of 1.00. This LCHA system demonstrates high sensitivity, rapid response, and reliable intracellular delivery, making it a promising candidate for early cancer diagnostics and point-of-care applications.

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来源期刊
Biosensors and Bioelectronics
Biosensors and Bioelectronics 工程技术-电化学
CiteScore
20.80
自引率
7.10%
发文量
1006
审稿时长
29 days
期刊介绍: Biosensors & Bioelectronics, along with its open access companion journal Biosensors & Bioelectronics: X, is the leading international publication in the field of biosensors and bioelectronics. It covers research, design, development, and application of biosensors, which are analytical devices incorporating biological materials with physicochemical transducers. These devices, including sensors, DNA chips, electronic noses, and lab-on-a-chip, produce digital signals proportional to specific analytes. Examples include immunosensors and enzyme-based biosensors, applied in various fields such as medicine, environmental monitoring, and food industry. The journal also focuses on molecular and supramolecular structures for enhancing device performance.
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