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Solvation Thermodynamics of Oligoglycine with Respect to Chain Length and Flexibility

机译:寡核苷酸的溶剂化热力学相对于链条长度和灵活性

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摘要

Oligoglycine is a backbone mimic for all proteins and is prevalent in the sequences of intrinsically disordered proteins. We have computed the absolute chemical potential of glycine oligomers at infinite dilution by simulation with the CHARMM36 and Amber ff12SB force fields. We performed a thermodynamic decomposition of the solvation free energy (Delta G(sol)) of Gly(2-5) into enthalpic (Delta H-sol) and entropic (Delta S-sol) components as well as their van der Waals and electrostatic contributions. Gly(2-5) was either constrained to a rigid/extended conformation or allowed to be completely flexible during simulations to assess the effects of flexibility on these thermodynamic quantities. For both rigid and flexible oligoglycine models, the decrease in Delta G(sol) with chain length is enthalpically driven with only weak entropic compensation. However, the apparent rates of decrease of Delta G(sol), Delta H-sol, Delta S-sol, and their elec and vdw components differ for the rigid and flexible models. Thus, we find solvation entropy does not drive aggregation for this system and may not explain the collapse of long oligoglycines. Additionally, both force fields yield very similar thermodynamic scaling relationships with respect to chain length despite both force fields generating different conformational ensembles of various oligoglycine chains.
机译:寡糖苷是所有蛋白质模拟的骨干,在本质无序蛋白质的序列中普遍存在。通过用Charmm36和琥珀色FF12SB力领域模拟,在无限稀释中计算甘氨酸低聚物的绝对化学电位。我们对Gly(2-5)的溶剂化自由能(Delta G(溶胶))进行了热力学分解,进入焓(Delta H-溶胶)和熵(Delta S-Sol)组分以及van der WaaS和静电贡献。 GLY(2-5)被约束为刚性/延伸构象或在模拟期间完全柔韧,以评估灵活性对这些热力学量的影响。对于刚性和柔性的寡糖模型,仅具有较弱的熵补偿,具有链长的Delta G(溶胶)的降低。然而,Delta G(Sol),Delta H-Sol,Delta S-Sol及其ELEC和VDW组件减少的表观速率对于刚性和柔性型号而异。因此,我们发现溶剂化熵不会驱动该系统的聚集,并且可能无法解释长期寡糖的崩溃。另外,尽管两种力场产生各种寡糖链的不同构象整合,但是两者的力场都会产生非常相似的热力学缩放关系。

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  • 来源
    《Biophysical Journal》 |2016年第4期|共12页
  • 作者单位

    Univ Texas Med Branch Sealy Ctr Struct Biol &

    Mol Biophys Dept Biochem &

    Mol Biol Galveston TX;

    Temple Univ Dept Chem Philadelphia PA 19122 USA;

    Univ Texas Med Branch Sealy Ctr Struct Biol &

    Mol Biophys Dept Biochem &

    Mol Biol Galveston TX;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学;
  • 关键词

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