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首页> 外文期刊>Journal of the American Chemical Society >Small-Molecule Inhibition of c-MYC:MAX Leucine Zipper Formation Is Revealed by Ion Mobility Mass Spectrometry
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Small-Molecule Inhibition of c-MYC:MAX Leucine Zipper Formation Is Revealed by Ion Mobility Mass Spectrometry

机译:离子迁移质谱法揭示了c-MYC:MAX亮氨酸拉链形成的小分子抑制作用

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摘要

The leucine zipper interaction between MAX and c-MYC has been studied using mass spectrometry and drift time ion mobility mass spectrometry (DT IM-MS) in addition to circular dichroism spectroscopy. Peptides comprising the leucine zipper sequence with (c-MYC-Zip residues 402-434) and without a postulated small-molecule binding region (c-MYC-ZipADT residues 406—434) have been synthesized, along with the corresponding MAX leucine zipper (MAX-Zip residues 74-102). c-MYC-Zip:MAX-Zip complexes are observed both in the absence and in the presence of the reported small-molecule inhibitor 10058-F4 for both forms of c-MYC-Zip. DT IM-MS, in combination with molecular dynamics (MD), shows that the c-MYC-Zip:MAX-Zip complex [M +5H]~(S+) exists in two conformations, one extended with a collision cross section (CCS) of 1164 ± 9.3 A~2 and one compact with a CCS of 982 ± 6.6 A~2; similar values are observed for the two forms of c-MYC-Zip ADT:MAX-Zip. Candidate geometries for the complexes have been evaluated with MD simulations. The helical leucine zipper structure previously determined from NMR measurements (Lavigne, P.; et al. J. Mol. Biol. 1998, 281, 165), altered to include the DT region and subjected to a gas-phase minimization, yields a CCS of 1247 A2, which agrees with the extended conformation we observe experimentally. More extensive MD simulations provide compact complexes which are found to be highly disordered, with CCSs that correspond to the compact form from experiment. In the presence of the ligand, the leucine zipper conformation is completely inhibited and only the more disordered species is observed, providing a novel method to study the effect of interactions of disordered systems and subsequent inhibition of the formation of an ordered helical complex.
机译:除了使用圆二色谱法,还使用质谱和漂移时间离子迁移质谱(DT IM-MS)研究了MAX与c-MYC之间的亮氨酸拉链相互作用。已经合成了包含亮氨酸拉链序列的肽,该肽具有(c-MYC-Zip残基402-434)并且没有假定的小分子结合区(c-MYC-ZipADT残基406-434),以及相应的MAX亮氨酸拉链( MAX-Zip残基74-102)。在不存在和存在两种形式的c-MYC-Zip的报道的小分子抑制剂10058-F4的情况下均观察到c-MYC-Zip:MAX-Zip复合物。 DT IM-MS与分子动力学(MD)结合显示,c-MYC-Zip:MAX-Zip复合物[M + 5H]〜(S +)存在两种构象,一种构象具有碰撞截面(CCS) )1164±9.3 A〜2和一个紧凑型,CCS为982±6.6 A〜2;对于c-MYC-Zip ADT:MAX-Zip的两种形式,观察到相似的值。配合物的候选几何形状已通过MD模拟进行了评估。先前通过NMR测量确定的螺旋亮氨酸拉链结构(Lavigne,P .; et al.J.Mol.Biol.1998,281,165),已更改为包括DT区并进行了气相最小化,产生了CCS 1247 A2的结构,与我们实验观察到的扩展构象一致。更广泛的MD模拟提供了高度复杂的紧密复合物,CCS与实验中的紧密形式相对应。在配体存在下,亮氨酸拉链构象被完全抑制,仅观察到更多无序的物种,提供了一种研究无序系统相互作用和随后抑制有序螺旋复合物形成的新方法。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第47期|19384-19392|共9页
  • 作者单位

    EastChem School of Chemistry, University of Edinburgh, Edinburgh EH9 3JJ, U.K.;

    School of Physics and Astronomy, University of Edinburgh, Edinburgh EH9 3JJ, U.K.;

    EastChem School of Chemistry, University of Edinburgh, Edinburgh EH9 3JJ, U.K.;

    The School of Chemistry, University College London, London WC1H OAJ, U.K.;

    Centre for Advanced Cancer Therapies, Microbiology, Tumour and Cell Biology Department, Karolinska Institutet, Nobelsvaeg 16,171 77 Stockholm, Sweden;

    EastChem School of Chemistry, University of Edinburgh, Edinburgh EH9 3JJ, U.K.;

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