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首页> 外文期刊>ACS nano >Sequence-specific recognition of DNA oligomer using peptide nucleic acid (PNA)-modified synthetic ion channels: PNA/DNA hybridization in nanoconfined environment
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Sequence-specific recognition of DNA oligomer using peptide nucleic acid (PNA)-modified synthetic ion channels: PNA/DNA hybridization in nanoconfined environment

机译:使用肽核酸(PNA)修饰的合成离子通道对DNA低聚物进行序列特异性识别:纳米受限环境中的PNA / DNA杂交

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摘要

Here we demonstrate the design and construction of a simple, highly sensitive and selective nanofluidic sensing device, based on a single synthetic conical nanochannel for the sequence specific detection of single-stranded DNA oligonucleotides. The biosensing performance of the device depends sensitively on the surface charge and chemical groups incorporated on the inner channel wall that act as binding sites for different analytes. Uncharged peptide nucleic acid (PNA) probes are covalently immobilized on the channel surface through carbodiimide coupling chemistry. This diminishes the channel surface charge, leading to a significant decrease in the rectified ion current flowing through the channel. The PNA-modified channel acts as a highly specific and selective device for the detection of a complementary single-stranded DNA sequence. Upon PNA/DNA hybridization, the channel surface charge density increased due to the presence of the negatively charged DNA strand. The changes in the surface charge-dependent current-voltage (I-V) curves and rectification ratio of the channel confirm the success of immobilization and PNA/DNA hybridization within a confined space at the nanoscale. In addition, a control experiment indicated that the biosensor exhibits remarkable specificity toward a cDNA strand and also has the ability to discriminate single-base mismatch DNA sequences on the basis of rectified ion flux through the nanochannel. In this context, we envision that the single conical nanochannels functionalized with a PNA probe will provide a biosensing platform for the detection and discrimination of short single-stranded DNA oligomer of unknown sequence.
机译:在这里,我们演示了基于单个合成锥形纳米通道的,用于单链DNA寡核苷酸序列特异性检测的简单,高度灵敏和选择性的纳米流体传感设备的设计和构建。设备的生物传感性能敏感地取决于内部通道壁上结合的表面电荷和化学基团,这些化学基团充当不同分析物的结合位点。通过碳二亚胺偶联化学将不带电的肽核酸(PNA)探针共价固定在通道表面上。这减少了通道表面电荷,导致流经通道的整流离子电流显着降低。 PNA修饰的通道充当检测互补单链DNA序列的高度特异性和选择性的设备。在PNA / DNA杂交后,由于存在带负电荷的DNA链,通道表面电荷密度增加。表面电荷依赖性电流-电压(I-V)曲线和通道的整流比的变化证实了在纳米级密闭空间内固定化和PNA / DNA杂交的成功。另外,对照实验表明,该生物传感器对cDNA链显示出显着的特异性,并且还具有基于经过纳米通道的整流离子通量区分单碱基错配DNA序列的能力。在这种情况下,我们设想用PNA探针功能化的单个圆锥形纳米通道将为检测和识别未知序列的短单链DNA寡聚体提供生物传感平台。

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