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Characterization of Intracellular Crowding Environments with Topology-Based DNA Quadruplex Sensors

机译:基于拓扑基DNA四分布传感器的细胞内拥挤环境的特征

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摘要

Molecular crowding creates a unique environment in cells and imposes physical constraints such as the excluded volume effect, water activity, and dielectric constant that can affect the structure and function of biomolecules. It is therefore important to develop a method for quantifying the effects of molecular crowding in cells. In this study, we developed a Forster resonance energy transfer (FRET) probe based on a guanine-quadruplex (G4) DNA motif that shows distinct FRET signals in response to crowding conditions in the presence of salt and poly(ethylene glycol). FRET efficiencies varied in different solutions, reflecting the dependence of G4 stability and topology on salt concentration and water activity. In living cells, FRET signals in the nucleus were higher than those in the cytosol; the signals in membraneless nuclear compartments (i.e., nucleolus) were especially high, suggesting that a decrease in water activity is important for the crowding effect in the nucleus. Thus, the use of DNA sensors with variable structures can elucidate the local effects of molecular crowding in cells.
机译:分子挤在细胞中产生独特的环境,并施加物理限制,例如排除的体积效应,水活性和介电常数,其可以影响生物分子的结构和功能。因此,要制定一种用于量化细胞中分子挤在细胞中的效果的方法。在这项研究中,我们开发了一种基于鸟嘌呤 - 四反常(G4)DNA基序的Forster共振能量转移(FRET)探针,其响应于存在盐和聚(乙二醇)存在的拥挤条件下显示不同的褶皱信号。不同的解决方案中变化的姿态效率,反映了G4稳定性和拓扑对盐浓度和水活性的依赖性。在活细胞中,核中的褶皱信号高于细胞溶胶中的褶皱信号;膜核隔室(即核仁)中的信号尤为高,表明水活性的降低对于核中的挤出效应是重要的。因此,使用具有可变结构的DNA传感器可以阐明分子挤在细胞中的局部效应。

著录项

  • 来源
    《Analytical chemistry》 |2019年第4期|共5页
  • 作者单位

    Konan Univ FIBER Chuo Ku 7-1-20 Minatojima Minamimachi Kobe Hyogo 6500047 Japan;

    Natl Inst Adv Ind Sci &

    Technol Biomed Res Inst 1-1-1 Higashi Tsukuba Ibaraki 3058566 Japan;

    Hokkaido Univ Fac Adv Life Sci Lab Mol Cell Dynam Sapporo Hokkaido 0010021 Japan;

    Hokkaido Univ Fac Adv Life Sci Lab Mol Cell Dynam Sapporo Hokkaido 0010021 Japan;

    Konan Univ FIBER Chuo Ku 7-1-20 Minatojima Minamimachi Kobe Hyogo 6500047 Japan;

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

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