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首页> 外文期刊>Journal of the American Chemical Society >Accurate Distance Determination of Nucleic Acids via Forster Resonance Energy Transfer: Implications of Dye Linker Length and Rigidity
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Accurate Distance Determination of Nucleic Acids via Forster Resonance Energy Transfer: Implications of Dye Linker Length and Rigidity

机译:通过福斯特共振能量转移精确测定核酸的距离:染料接头长度和刚性的含义

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摘要

In Foerster resonance energy transfer (FRET) experiments, the donor (D) and acceptor (A) fluorophores are usually attached to the macro molecule of interest via long flexible linkers of up to 15 A in length. This causes significant uncertainties in quantitative distance measurements and prevents experiments with short distances between the attachment points of the dyes due to possible dye-dye interactions. We present two approaches to overcome the above problems as demonstrated by FRET measurements for a series of dsDNA and dsRNA internally labeled with Alexa488 and Cy5 as D and A dye, respectively. First, we characterize the influence of linker length and flexibility on FRET for different dye linker types (long, intermediate, short) by analyzing fluorescence lifetime and anisotropy decays. For long linkers, we describe a straightforward procedure that allows for very high accuracy of FRET-based structure determination through proper consideration of the position distribution of the dye and of linker dynamics. The position distribution can be quickly calculated with geometric accessible volume (AV) simulations, provided that the local structure of RNA or DNA in the proximity of the dye is known and that the dye diffuses freely in the sterically allowed space. The AV approach provides results similar to molecular dynamics simulations (MD) and is fully consistent with experimental FRET data. In a benchmark study for ds A-RNA, an rmsd value of 1.3 A is achieved. Considering the case of undefined dye environments or very short DA distances, we introduce short linkers with a propargyl or alkenyl unit for internal labeling of nucleic acids to minimize position uncertainties. Studies by ensemble time correlated single photon counting and single-molecule detection show that the nature of the linker strongly affects the radius of the dye's accessible volume (6-16 A). For short propargyl linkers, heterogeneous dye environments are observed on the millisecond time scale. A detailed analysis of possible orientation effects (k~2 problem) indicates that, for short linkers and unknown local environments, additional K -related uncertainties are clearly outweighed by better defined dye positions.
机译:在Foerster共振能量转移(FRET)实验中,供体(D)和受体(A)荧光团通常通过长达15 A的长挠性接头与感兴趣的大分子连接。这在定量距离测量中造成了很大的不确定性,并且由于可能的染料与染料的相互作用,阻止了在染料附着点之间的短距离进行实验。我们提出了两种克服上述问题的方法,这是通过FRET测量对一系列内部标记有Alexa488和Cy5作为D和A染料的dsDNA和dsRNA进行证明的。首先,我们通过分析荧光寿命和各向异性衰减来表征接头长度和柔性对不同染料接头类型(长,中,短)的FRET的影响。对于长的连接子,我们描述了一种简单的方法,该过程可通过适当考虑染料的位置分布和连接子动力学来实现基于FRET的结构测定的非常高的准确性。只要知道染料附近的RNA或DNA的局部结构并且染料在空间允许的空间内自由扩散,就可以使用几何可及体积(AV)模拟快速计算位置分布。 AV方法提供的结果类似于分子动力学模拟(MD),并且与实验FRET数据完全一致。在ds A-RNA的基准研究中,均方根值达到1.3A。考虑到不确定的染料环境或非常短的DA距离,我们引入了带有炔丙基或烯基单元的短连接子,用于核酸的内部标记,以最大程度地减少位置不确定性。通过集成时间相关的单光子计数和单分子检测的研究表明,连接基的性质强烈影响染料可及体积的半径(6-16 A)。对于短的炔丙基连接基,可以在毫秒级观察到异质染料环境。对可能的取向效应(k〜2问题)的详细分析表明,对于短连接子和未知的局部环境,更好地定义染料位置显然会超过其他与K有关的不确定性。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2011年第8期|p.2463-2480|共18页
  • 作者单位

    Institut fuer Physikalische Chemie, Lehrstuhl fuer Molekulare Physikalische Chemie, Heinrich-Heine-Universitat, Universitatsstrasse 1,Geb 26.32, 40225 Duesseldorf, Germany,These authors contributed equally;

    Institut fuer Physikalische Chemie, Lehrstuhl fuer Molekulare Physikalische Chemie, Heinrich-Heine-Universitat, Universitatsstrasse 1,Geb 26.32, 40225 Duesseldorf, Germany,These authors contributed equally;

    Institut fuer Biochemie, Bioorganische Chemie, Ernst-Moritz-Arndt-Universitaet Greifswald, Felix-HausdorfF-Strasse 4, 17487,Greifswald, Germany;

    Fakultaet fuer Chemie und Biochemie, Albert-Ludwigs Universitaet Freiburg, AK Bannwarth, Albertstrasse 21, 79104, Freiburg, Germany;

    Fakultaet fuer Chemie und Biochemie, Albert-Ludwigs Universitaet Freiburg, AK Bannwarth, Albertstrasse 21, 79104, Freiburg, Germany;

    Fakultaet fuer Chemie und Biochemie, Albert-Ludwigs Universitaet Freiburg, AK Bannwarth, Albertstrasse 21, 79104, Freiburg, Germany;

    Institut fuer Biochemie, Bioorganische Chemie, Ernst-Moritz-Arndt-Universitaet Greifswald, Felix-HausdorfF-Strasse 4, 17487,Greifswald, Germany;

    Institut fuer Biochemie, Bioorganische Chemie, Ernst-Moritz-Arndt-Universitaet Greifswald, Felix-HausdorfF-Strasse 4, 17487,Greifswald, Germany;

    Institut fuer Physikalische Chemie, Lehrstuhl fuer Molekulare Physikalische Chemie, Heinrich-Heine-Universitat, Universitatsstrasse 1,Geb 26.32, 40225 Duesseldorf, Germany;

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