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本文引用的文献

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Explicit solvent molecular dynamics simulations of Aβ peptide interacting with ibuprofen ligands.与布洛芬配体相互作用的 Aβ 肽的显溶剂分子动力学模拟。
J Phys Chem B. 2012 Nov 1;116(43):12922-32. doi: 10.1021/jp306208n. Epub 2012 Oct 18.
2
Small amphipathic molecules modulate secondary structure and amyloid fibril-forming kinetics of Alzheimer disease peptide Aβ(1-42).小两亲分子调节阿尔茨海默病肽 Aβ(1-42)的二级结构和淀粉样纤维形成动力学。
J Biol Chem. 2012 May 11;287(20):16947-54. doi: 10.1074/jbc.M111.321778. Epub 2012 Mar 29.
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Structures of Aβ17-42 trimers in isolation and with five small-molecule drugs using a hierarchical computational procedure.使用分层计算程序研究单体 Aβ17-42 三聚体及其与五种小分子药物结合的结构。
J Phys Chem B. 2012 Jul 26;116(29):8412-22. doi: 10.1021/jp2118778. Epub 2012 Feb 10.
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The merits of FDDNP-PET imaging in Alzheimer's disease.FDDNP-PET 成像在阿尔茨海默病中的优点。
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Disordered binding of small molecules to Aβ(12-28).小分子与 Aβ(12-28)的无序结合。
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6
Replica exchange molecular dynamics of the thermodynamics of fibril growth of Alzheimer's Aβ42 peptide.阿尔茨海默病 Aβ42 肽原纤维生长热力学的 replica 交换分子动力学。
J Chem Phys. 2011 Aug 14;135(6):065101. doi: 10.1063/1.3617250.
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Towards a pharmacophore for amyloid.针对淀粉样蛋白的药效基团。
PLoS Biol. 2011 Jun;9(6):e1001080. doi: 10.1371/journal.pbio.1001080. Epub 2011 Jun 14.
8
Naproxen interferes with the assembly of Aβ oligomers implicated in Alzheimer's disease.萘普生干扰了阿尔茨海默病中涉及的淀粉样β寡聚物的组装。
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On the origin of the stronger binding of PIB over thioflavin T to protofibrils of the Alzheimer amyloid-β peptide: a molecular dynamics study.PIB 与阿尔茨海默病淀粉样 β 肽原纤维的更强结合源于何处:分子动力学研究。
Biophys J. 2011 Mar 2;100(5):1316-24. doi: 10.1016/j.bpj.2011.01.058.
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Small molecule microarrays enable the discovery of compounds that bind the Alzheimer's Aβ peptide and reduce its cytotoxicity.小分子微阵列可用于发现与阿尔茨海默病 Aβ 肽结合并降低其细胞毒性的化合物。
J Am Chem Soc. 2010 Dec 1;132(47):17015-22. doi: 10.1021/ja107552s. Epub 2010 Nov 9.

阿尔茨海默病生物标志物 FDDNP 与 Aβ 肽的分子相互作用。

Molecular interactions of Alzheimer's biomarker FDDNP with Aβ peptide.

机构信息

School of Systems Biology, George Mason University, Manassas, VA, USA.

出版信息

Biophys J. 2012 Dec 5;103(11):2341-51. doi: 10.1016/j.bpj.2012.10.003.

DOI:10.1016/j.bpj.2012.10.003
PMID:23283233
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3514529/
Abstract

All-atom explicit solvent model and replica exchange molecular dynamics were used to investigate binding of Alzheimer's biomarker FDDNP to the Aβ(10-40) monomer. At low and high concentrations, FDDNP binds with high affinity to two sites in the Aβ(10-40) monomer located near the central hydrophobic cluster and in the C-terminal. Analysis of ligand- Aβ(10-40) interactions at both concentrations identifies hydrophobic effect as a main binding factor. However, with the increase in ligand concentration the interactions between FDDNP molecules also become important due to strong FDDNP self-aggregation propensity and few specific binding locations. As a result, FDDNP ligands partially penetrate the core of the Aβ(10-40) monomer, forming large self-aggregated clusters. Ligand self-aggregation does not affect hydrophobic interactions as a main binding factor or the location of binding sites in Aβ(10-40). Using the Aβ(10-40) conformational ensemble in ligand-free water as reference, we show that FDDNP induces minor changes in the Aβ(10-40) secondary structure at two ligand concentrations studied. At the same time, FDDNP significantly alters the peptide tertiary fold in a concentration-dependent manner by redistributing long-range, side-chain interactions. We argue that because FDDNP does not change Aβ(10-40) secondary structure, its antiaggregation effect is likely to be weak. Our study raises the possibility that FDDNP may serve as a biomarker of not only Aβ fibril species, but of monomers as well.

摘要

采用全原子显式溶剂模型和复制交换分子动力学方法研究了阿尔茨海默病生物标志物 FDDNP 与 Aβ(10-40)单体的结合。在低浓度和高浓度下,FDDNP 与 Aβ(10-40)单体中靠近中心疏水区和 C 末端的两个位置具有高亲和力。在两种浓度下分析配体与 Aβ(10-40)的相互作用,确定疏水性是主要的结合因素。然而,随着配体浓度的增加,由于 FDDNP 强烈的自聚集倾向和较少的特定结合位置,FDDNP 分子之间的相互作用也变得重要。结果,FDDNP 配体部分渗透到 Aβ(10-40)单体的核心,形成大的自聚集簇。配体自聚集不影响疏水性相互作用作为主要结合因素或 Aβ(10-40)中结合位点的位置。使用配体自由水的 Aβ(10-40)构象集合作为参考,我们表明 FDDNP 在两种研究浓度下诱导 Aβ(10-40)二级结构的微小变化。同时,FDDNP 通过重新分配长程侧链相互作用,以浓度依赖的方式显著改变肽的三级折叠。我们认为,由于 FDDNP 不会改变 Aβ(10-40)的二级结构,其抗聚集作用可能较弱。我们的研究提出了这样一种可能性,即 FDDNP 不仅可以作为 Aβ 纤维物种的生物标志物,也可以作为单体的生物标志物。