首页> 外文OA文献 >A resonance Rayleigh scattering sensor for sensitive differentiation of telomere DNA length and monitoring special motifs (G-quadruplex and i-motif) based on the Ag nanoclusters and NAND logic gate responding to chemical input signals
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A resonance Rayleigh scattering sensor for sensitive differentiation of telomere DNA length and monitoring special motifs (G-quadruplex and i-motif) based on the Ag nanoclusters and NAND logic gate responding to chemical input signals

机译:一种共振瑞利散射传感器,用于基于AG纳米能器和NAND逻辑栅极响应化学输入信号的AG纳米单元和NAND逻辑栅极(G-Quadruple和I​​-MOTIF)敏感分化的共振瑞利散射传感器

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摘要

Abstract Background Differentiation of telomere length is of vital importance because telomere length is closely related with several deadly diseases such as cancer. Additionally, G-quadruplex and i-motif formation in telomeric DNA have been shown to act as a negative regulator of telomere elongation by telomerase in vivo and are considered as an attractive drug target for cancer chemotherapy. Results In this assay, Ag nanoclusters templated by hyperbranched polyethyleneimine (PEI–Ag NCs) are designed as a new novel resonance Rayleigh scattering (RRS) probe for sensitive differentiation of telomere length and monitoring special motifs (G-quadruplex and i-motif). In this assay, free PEI–Ag NC probe or DNA sequence alone emits low intensities of RRS, while the formation of PEI–Ag NCs/DNA complexes yields greatly enhanced RRS signals; however, when PEI–Ag NCs react with G-quadruplex or i-motif, the intensities of RRS exhibit slight changes. At the same concentration, the enhancement of RRS signal is directly proportional to the length of telomere, and the sensitivity of 64 bases is the highest with the linear range of 0.3–50 nM (limit of detection 0.12 nM). On the other hand, due to the conversion of telomere DNA molecules among multiple surrounding conditions, a DNA logic gate is developed on the basis of two chemical input signals (K+ and H+) and a change in RRS intensity as the output signal. Conclusion Our results indicate that PEI–Ag NCs can serve as a novel RRS probe to identify DNA length and monitor G-quadruplex/i-motif through the different increasing degrees of RRS intensity. Meanwhile, the novel attributes of the nanoprobe stand superior to those involving dyes or labeled DNA because of no chemical modification, low cost, green, and high efficiency.
机译:摘要端粒长度的背景分化至关重要,因为端粒长度与癌症等几种致命疾病密切相关。另外,已经证明了直接DNA中的G-Quadreplex和I-MOTIF形成,以体内端粒酶作为端粒酶的负调节剂作用,被认为是癌症化疗的有吸引力的药物靶标。结果在该测定中,由超支化聚乙烯亚胺(PEI-AG NCS)模板构成的Ag纳米能器被设计为一种新的新型共振瑞利散射(RRS)探针,用于端粒长度和监测特殊图案的敏感分化(G-QuadRuple和I​​-Motif)。在该测定中,单独的PEI-AG NC探针或DNA序列仅发出低强度,而PEI-AG NCS / DNA复合物的形成产生大大增强的RRS信号;然而,当PEI-AG NCS与G-QuadRuple或I-MOTIF反应时,RRS的强度表现出轻微的变化。在相同的浓度下,RRS信号的增强与端粒长度成比例,64个碱基的灵敏度是最高的,线性范围为0.3-50nm(检测限度为0.12nm)。另一方面,由于在多个周围条件中的端粒DNA分子转化,基于两个化学输入信号(K +和H +)开发了DNA逻辑门,并且RRS强度的变化为输出信号。结论我们的结果表明,PEI-AG NCS可以用作新的RRS探针,以通过不同的RRS强度鉴定DNA长度和监测G-QuadRuple / I-MOTIF。同时,由于无化学改性,成本低,绿色和高效率,纳米骨孔的新颖性能优于涉及染料或标记的DNA的那些。

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