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Nitrile Probes of Electric Field Agree with Independently Measured Fields in Green Fluorescent Protein Even in the Presence of Hydrogen Bonding

机译:即使存在氢键,电场的腈探针也与绿色荧光蛋白中的独立测量场一致

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摘要

There is growing interest in using the nitrile vibrational oscillation as a site-specific probe of local environment to study dynamics, folding, and electrostatics in biological molecules such as proteins. Nitrile probes have been used extensively as reporters of electric field using vibrational Stark effect spectroscopy. However, the analysis of frequencies in terms of electric fields is potentially complicated by the large ground state dipole moment of the nitrile, which may irrevocably perturb the protein under investigation, and the ability of nitriles to accept hydrogen bonds, which causes frequency shifts that are not described by the Stark effect. The consequence of this is that vibrational spectroscopy of nitriles in biomolecules could be predominately sensitive to their local hydration status, not electrostatic environment, and have the potential to be particularly destabilizing to the protein. Here, we introduce green fluorescent protein (GFP) as a model system for addressing these concerns using biosynthetically incorporated p-cyanophenylalanine (pCNF) residues in the interior of GFP and measuring absorption energies of both the intrinsic GFP fluorophore and pCNF residues in response to a series of amino acid mutations. We show that observed changes in emission energy of GFP due to the mutations strongly correlate with changes in electric field experienced by both the nitrile probes and the intrinsic fluorophore. Additionally, we show that changes in electric field measured from the intrinsic fluorophore due to amino acid mutations are unperturbed by the addition of pCNF residues inserted nearby. Finally, we show that changes in electric field experienced by the vibrational probes trend monotonically with changes in field experienced by the native fluorophore even though the nitrile probe is engaged in moderate hydrogen bonding to nearby water molecules, indicated by the temperature dependence of the nitrile's absorption energy. Together these results demonstrate that even in the presence of hydrogen bonding it is possible to relate nitrile absorption frequencies to electrostatic environment by comparing highly similar environments. GFP's intrinsic linear sensitivity to electric fields makes it a convenient model system for studying electrostatics in proteins that offers lessons for proteins without this visible fluorophore.
机译:使用腈振动振荡作为局部环境的特定位置探针来研究诸如蛋白质之类的生物分子中的动力学,折叠和静电的兴趣日益浓厚。使用振动斯塔克效应光谱,丁腈探针已被广泛用作电场的报告者。但是,由于腈的基态偶极矩大(可能不可逆转地干扰所研究的蛋白质)以及腈接受氢键的能力(导致频率发生频移),以电场为单位的频率分析可能会变得复杂。斯塔克效应未对此进行描述。其结果是,生物分子中腈的振动光谱可能主要对它们的局部水合作用状态敏感,而不是对静电环境敏感,并且可能对蛋白质特别不稳定。在这里,我们介绍绿色荧光蛋白(GFP)作为模型系统,以使用在GFP内部生物合成并入的对氰基苯丙氨酸(pCNF)残基来解决这些问题,并测量固有GFP荧光团和pCNF残基的吸收能,以应对系列氨基酸突变。我们表明观察到的绿色荧光蛋白由于突变的发射能量的变化与腈探针和固有荧光团所经历的电场变化强烈相关。此外,我们显示,由于插入了附近的pCNF残基,从内部荧光团测量的由于氨基酸突变而导致的电场变化不受干扰。最后,我们表明,即使腈探针与附近的水分子进行适度的氢键结合,振动探针所经历的电场变化也随天然荧光团经历的电场变化而单调趋势,这由腈吸收的温度依赖性表明能源。这些结果加在一起表明,即使存在氢键,也可以通过比较高度相似的环境将腈吸收频率与静电环境联系起来。 GFP对电场的固有线性敏感度使其成为研究蛋白质中静电的便捷模型系统,可为没有这种可见荧光团的蛋白质提供课程。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2016年第20期|6561-6570|共10页
  • 作者单位

    Department of Chemistry, Center for Nano and Molecular Science and Technology, and Institute for Cell and Molecular Biology, The University of Texas at Austin, 105 E 24th Street STOP AS300, Austin, Texas 78712-1224, United States;

    Department of Chemistry, Center for Nano and Molecular Science and Technology, and Institute for Cell and Molecular Biology, The University of Texas at Austin, 105 E 24th Street STOP AS300, Austin, Texas 78712-1224, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 03:08:45

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