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QM/MM studies of structural and energetic properties of the far-red fluorescent protein HcRed

机译:QM / MM对远红荧光蛋白的结构和能量特性的研究

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摘要

The far-red fluorescent protein HcRed was investigated using molecular dynamics (MD) and combined quantum mechanics/molecular mechanics (QM/MM) calculations. Three models of HcRed (anionic chromophore) were considered, differing in the protonation states of nearby Glu residues (A: Glu214 and Glul46 both protonated; B: Glu214 protonated and Glul46 deprotonated; C: Glu214 and Glul46 both deprotonated). SCC-DFTB/MM MD simulations of model B yield good agreement with the available crystallographic data at ambient pH. Bond lengths in the QM region are well reproduced, with a root mean square (rms) deviation between experimental and average MD data of 0.079 A; the chromophore is almost co-planar, which is consistent with experimental observation; and the five hydrogen bonds involving the chromophore are conserved. QM/MM geometry optimizations were performed on representative snapshot structures from the MD simulations for each model. They confirm the structural features observed in the MD simulations. According to the DFT(B3LYP)/MM results, the cis-conformation of the chromophore is more stable than the trans-form by 9.1-12.9 kcal mol~(-1) in model B, and by 12.4-19.9 kcal mol~(-1) in model C, consistent with the experimental preference for the cis-isomer. However, in model A when both Glu214 and Glu 146 are protonated, the stability is inverted with the trans-form being favored. The different protonation states of the titratable active-site residues Glu214 and Glu 146 thus critically influence the manner in which the relative stability and degree of planarity of the cis- and trans-conformers vary with pH. Coupled with the known correlation of chromophore conformation with fluorescence efficiency, this work provides a detailed structural basis for the observed phenomenon that red fluorescent proteins such as HcRed, mKate and Rtms5 show bright fluorescence at high pH.
机译:使用分子动力学(MD)和组合量子力学/分子机械(QM / MM)计算来研究远红荧光蛋白。考虑了三种含量的HCRED(阴离子发色团),在附近GLU残留物的质子化状态下不同(A:Glu214和Glul46都是质子化的; B:Glu214质子化和Glul46质子化; C:Glu214和Glul46都反驳)。 SCC-DFTB / MM MD模拟B模型B产生与环境pH值的可用晶体数据的良好一致性。 QM区域中的键长再现,具有0.079A的实验性和平均MD数据之间的均方根(RMS)偏差;发色团几乎是共同平面的,这与实验观察一致;和涉及发色团的五种氢键被保守。对来自每个模型的MD仿真的代表快照结构执行QM / mm几何优化。它们确认了MD模拟中观察到的结构特征。根据DFT(B3LYP)/ MM结果中,该发色团的顺式构象在模型B中比反式 - 形式更稳定由9.1-12.9千卡摩尔〜(-1),和由12.4-19.9千卡摩尔〜( -1)在模型C中,与CIS-ISOMER的实验偏好一致。然而,在模型A中,当质子化Glu214和Glu 146时,稳定性被逆变倒置。因此,可滴定的活性位点残留物Glu214和Glu 146的不同质子化状态致附于CIS-和反式构造剂的相对稳定性和平坦性的平坦度随pH的方式影响的方式。再加上发色团构象与荧光效率的相关性,该作品为观察到的现象提供了一种详细的结构基础,即红色荧光蛋白如HcRed,Mkate和RTMS5在高pH下显示出明亮的荧光。

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  • 作者

    Qiao Sun; Markus Doerr; Zhen Li;

  • 作者单位

    Centre for Computational Molecular Science Australian Institute for Bioengineering and Nanotechnology The University of Queensland Qld 4072 Brisbane Australia.;

    Max-Planck-Institut fur Kohlenforschung Kaiser-Wilhelm-Platz 1 D-45470 Miilheim an der Ruhr Germany.;

    Centre for Computational Molecular Science Australian Institute for Bioengineering and Nanotechnology The University of Queensland Qld 4072 Brisbane Australia.;

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  • 正文语种 eng
  • 中图分类 物理学;
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