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首页> 外文期刊>Biomacromolecules >Effect of Peptide Sequence on the LCST-Like Transition of Elastin-Like Peptides and Elastin-Like Peptide-Collagen-Like Peptide Conjugates: Simulations and Experiments
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Effect of Peptide Sequence on the LCST-Like Transition of Elastin-Like Peptides and Elastin-Like Peptide-Collagen-Like Peptide Conjugates: Simulations and Experiments

机译:肽序列对弹性蛋白样肽和弹性蛋白样肽 - 胶原状肽缀合物的LCST型转变的影响:仿真和实验

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摘要

Elastin-like polypeptides (ELPs) are thermoresponsive biopolymers that undergo an LCST-like phase transition in aqueous solutions. The temperature of this LCST-like transition, T-t can be tuned by varying the number of repeat units in the ELP, sequence and composition of the repeat units, the solution conditions, and via conjugation to other biomacromolecules. In this study, we show how and why the choice of guest (X) residue in the VPGXG pentad repeat tunes the T-t of short ELPs, (VPGXG)(4), in the free state and when conjugated to collagen-like peptides (CLPs). In experiments, the (VPGWG)(4) chain (in short, WWWW) has a T-t < 278 K, while (VPGFG)(4) or FFFF has a T-t > 353 K in both free ELP and ELP CLP systems. The T-t for the FWWF ELP sequence decreases from being >353 K for free ELP to <278 K for the corresponding ELP CLP system. The decrease in T-t upon conjugation to CLP has been shown to be due to the crowding of ELP chains that decreases the entropic loss upon ELP aggregation. Even though the net hydrophobicity of ELP has been reasoned to drive the T-t, the origins of lower T-t of WWWW compared to FFFF are unclear, as there is disagreement in hydrophobicity scales in how phenylalanine (F) compares to tryptophan (W). Motivated by these experimental observations, we use a combination of atomistic and coarse-grained (CG) molecular dynamics simulations. Atomistic simulations of free and tethered ELPs show that WWWW are more prone to acquire beta-turn structures than FFFF at lower temperatures. Also, the atomistically informed CG simulations show that the increased local stiffness in W than F due to the bulkier side chain in W compared to F, alone does not cause the shift in the transition of WWWW versus FFFF. The experimentally observed lower T-t of WWWW than FFFF is achieved in CG simulations only when the CG model incorporates both the atomistically informed local stiffness and stronger effective attractions localized at the W position versus the F position. The effective interactions localized at the guest residue in the CG model is guided by our atomistically observed increased propensity for beta-turn structure in WWWW versus FFFF and by past experimental work of Urry et al. quantifying hydrophobic differences through enthalpy of association for W versus F.
机译:elastin多肽(ELP)是热响应的生物聚合物,其在水溶液中经历LCST样相转变。通过改变重复单元,溶液条件的ELP,序列和组成中的重复单元的数量,溶液条件,并通过缀合到其他生物致摩托,可以通过改变该LCST样转变的温度T-T。在这项研究中,我们展示了如何以及为何选择VPGXG PENTAD中的客户(X)残留物的选择重复调整短ELP(VPGXG)(4)的TT,在自由状态和与胶原蛋白肽缀合时(CLPS )。在实验中,(VPGWG)(4)链(简称,WWWW)具有T-T <278k,而(VPGFG)(4)或FFFF在游离ELP和ELP CLP系统中具有T-T> 353k。 FWWF ELP序列的T-T从IS> 353K的游离ELP的T-T降低至相应的ELP CLP系统的<278K。已经显示出在CLP缀合时T-T的降低是由于ELP链的拥挤,这降低了ELP聚集的熵损失。尽管ELP的净疏水性被推出推动T-T,但与FFFF相比,WWWW的降低T-T的起源尚不清楚,因为苯丙氨酸(F)如何比较色氨酸(W)中的疏水性尺度存在分歧。通过这些实验观察结果,我们使用原子和粗粒(CG)分子动力学模拟的组合。自由和系绳ELP的原子模拟表明,WWWW更容易获得比在较低温度下的FFFF的β-转弯结构。此外,原子上通知的CG模拟表明,与F相比,W的宽度侧链的局部链增加了F的局部刚度增加,单独不会导致WWWW的转变与FFFF的转变。仅当CG模型将原子通知的本地刚度和更强的有效景点与F位置置于F位置时,仅在CG仿真中实现了与FFFF的基于FFFF的下部T-T。在CG模型中本地化在CG模型中本地化的有效相互作用是指我们的原子地观察到在WWWW与FFFF中的β-转型结构的增加倾向,并通过Urry等人的实验工作。通过对W与F的关联焓量化疏水差异。

著录项

  • 来源
    《Biomacromolecules》 |2019年第3期|共12页
  • 作者单位

    Univ Delaware Dept Chem &

    Biomol Engn Colburn Lab 150 Acad St Newark DE 19716 USA;

    Univ Delaware Dept Chem &

    Biomol Engn Colburn Lab 150 Acad St Newark DE 19716 USA;

    Univ Delaware Dept Mat Sci &

    Engn 150 Acad St Newark DE 19716 USA;

    Univ Delaware Dept Mat Sci &

    Engn 150 Acad St Newark DE 19716 USA;

    Univ Delaware Dept Chem &

    Biomol Engn Colburn Lab 150 Acad St Newark DE 19716 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
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