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首页> 外文期刊>RSC Advances >Label-free single-molecule identification of telomere G-quadruplexes with a solid-state nanopore sensor
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Label-free single-molecule identification of telomere G-quadruplexes with a solid-state nanopore sensor

机译:使用固态纳米孔传感器的Telomete G-Quadruplees的无标记单分子鉴定

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摘要

Telomere sequences can spontaneously form G-quadruplexes (G4) in the presence of some cations. In view of their relevance to genetic processes and potential as therapeutic-targets, hitherto, a wealth of conventional techniques have been reported for interrogation of G4 conformation diversity and corresponding folding kinetics, most of which are limited in precision and sensitivity. This work introduces a label-free solid-state nanopore (SSN) approach for the determination of inter-, intra- and tandem molecular G4 with distinct base permutation in various cation buffers with a tailored aperture and meanwhile captures the single-molecule G4 folding process. SSN translocation properties elucidated that both inter- and intramolecular G4 generated higher current blockage with longer duration than flexible homopolymer nucleotide, and intramolecular G4 are structurally more stable with higher event frequency and longer blockage time than intermolecular ones; base arrangement played weak role in translocation behaviors; the same sequences with one, two and three G4 skeletons displayed an increase in current blockage and a gradual extension in dwell time with the increase of molecule size recorded in the same nanopore. We observed the conformation change of single-molecule G4 which indicated the existence of folding/unfolding equilibration in nanopore, and real-time test suggested a gradual formation of G4 with time. Our results could provide a continued and improved understanding of the underlying relevance of structural stability and G4 folding process by utilizing SSN platform which exhibits strategic potential advances over the other methods with high spatial and temporal resolution.
机译:端粒序列可以自发地形成在一些阳离子存在G-四(G4)。鉴于它们的相关性的遗传过程和潜在的作为治疗的目标的,迄今为止,丰富的现有技术已报道了G4构象多样性的询问及相应的折叠动力学,其中大部分在精度和灵敏度的限制。这项工作介绍用于与各种阳离子缓冲器截然不同的基本置换间,分子内和分子串联G4的判定用定制孔的无标记固态纳米孔(SSN)的方法,同时捕获的单分子G4折叠过程。 SSN易位性质阐明了两者间和分子内G4产生较高的电流阻塞以比柔性的均聚物核苷酸持续时间长,和分子内G4在结构上更稳定的更高的事件的发生频率和更长的阻断时间超过分子间那些;基座布置起到了易位行为微弱的作用;具有一个,两个和三个G4骨架相同的序列显示在当前阻塞的增加,并且在停留时间的逐渐扩展与记录在相同的纳米孔分子尺寸的增加。我们观察到这表明折叠的存在/纳米孔中展开平衡单分子G4的构象变化,和实时测试建议G4随时间的逐渐形成。我们的研究结果可以通过使用SSN平台其表现出在具有高空间和时间分辨率的其它方法战略潜在进步提供了结构稳定性和G4折叠过程的基本相关性的持续的和改进的理解。

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  • 来源
    《RSC Advances》 |2020年第45期|共10页
  • 作者单位

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Univ Chinese Acad Sci Chongqing Sch Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

    Chinese Acad Sci Chongqing Inst Green &

    Intelligent Technol Chongqing Key Lab Multiscale Mfg Technol Chongqing 400714 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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