Exploring the Impact of Curcumin and Carbon Nanotubes on BetaAmyloid Peptide Dimer: Insights from Molecular Dynamics Simulation and Density Functional Theory Methods.

IF 2.2 4区 医学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Elham Mohammadhassani, Mohammad Reza Bozorgmehr
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引用次数: 0

Abstract

Aim: At the molecular level, the accumulation of beta-amyloid peptide is one of the important mechanisms in the formation of amyloid plaques. These plaques, in turn, are considered one of the important factors in the development of Alzheimer's disease. Therefore, it is important to study the factors affecting beta-amyloid peptides. This study aimed to investigate the impact of curcumin on the structure of beta-amyloid peptide dimers and how carbon nanotubes influence this interaction. The research focused on understanding the molecular dynamics and structural changes induced by curcumin to reduce beta-amyloid toxicity.

Background: Curcumin, a phenolic compound, is known for its ability to prevent the aggregation of beta-amyloid peptides, which are associated with neurodegenerative diseases. On the other hand, due to the hydrophobic nature of curcumin, its solubility in aqueous media is limited. To overcome this, a carrier is used. Carbon nanotubes are among the carriers of curcumin. Nanotubes are popular candidates for the delivery of effective pharmaceutical compounds due to their unique surface properties and biocompatibility. The use of a carrier affects the study of the mechanism of interaction of curcumin with the peptide, which in turn makes it difficult to study this mechanism. Thus, despite its recognized inhibitory action on beta-amyloid aggregation, there is limited understanding of its precise effects on the peptide's structure. This study addresses this gap by employing molecular dynamics simulations and density functional theory methods.

Objective: The objective of this study was to elucidate the structural effects of curcumin on betaamyloid peptide dimers and assess the modifying role of carbon nanotubes using computational methods.

Method: The effect of curcumin on beta-amyloid peptide dimers was studied using molecular dynamics simulations and density functional theory. The simulations were conducted both in the presence and absence of carbon nanotubes to assess their influence on curcumin's activity and the structural stability of the peptide.

Results: The presence of curcumin and carbon nanotubes induced relative instability in betaamyloid dimers. Curcumin exhibited stronger interactions with the N-terminal and C-terminal regions of the peptide than with the middle section. It also reduced the toxicity of the peptide by particularly affecting the salt bridge and the arrangement of Phe19, Ile31, and Leu34 residues. Carbon nanotubes mitigated curcumin's effects on the peptide, altering curcumin's behavior by reducing its activity, but increasing its solvation energy.

Conclusion: Curcumin plays a significant role in destabilizing beta-amyloid dimers and reducing their toxicity, with its effect being modulated by the presence of carbon nanotubes. This dual influence highlights the potential of using curcumin, alongside nanomaterials, in therapeutic strategies for neurodegenerative diseases. This study provided valuable insights into the molecular interactions among curcumin, beta-amyloid peptides, and carbon nanotubes. These findings can contribute to the development of more effective treatments targeting amyloid-related toxicity in neurodegenerative conditions.

探索姜黄素和碳纳米管对β淀粉样肽二聚体的影响:来自分子动力学模拟和密度泛函理论方法的见解。
目的:在分子水平上,β -淀粉样肽的积累是淀粉样斑块形成的重要机制之一。反过来,这些斑块被认为是阿尔茨海默病发展的重要因素之一。因此,研究β -淀粉样肽的影响因素具有重要意义。本研究旨在探讨姜黄素对β -淀粉样肽二聚体结构的影响,以及碳纳米管如何影响这种相互作用。研究的重点是了解姜黄素引起的分子动力学和结构变化,以减少β -淀粉样蛋白的毒性。背景:姜黄素是一种酚类化合物,以其防止与神经退行性疾病相关的β -淀粉样肽聚集的能力而闻名。另一方面,由于姜黄素的疏水性,其在水介质中的溶解度受到限制。为了克服这个问题,需要使用载体。碳纳米管是姜黄素的载体之一。纳米管由于其独特的表面特性和生物相容性而成为有效药物化合物输送的热门候选材料。载体的使用影响了姜黄素与肽相互作用机理的研究,从而给姜黄素与肽相互作用机理的研究带来了困难。因此,尽管它对β -淀粉样蛋白聚集有公认的抑制作用,但对其对肽结构的确切影响的了解有限。本研究采用分子动力学模拟和密度泛函理论方法解决了这一差距。目的:研究姜黄素对β淀粉样肽二聚体的结构影响,并利用计算方法评估碳纳米管的修饰作用。方法:采用分子动力学模拟和密度泛函理论研究姜黄素对β -淀粉样肽二聚体的影响。在存在和不存在碳纳米管的情况下进行了模拟,以评估它们对姜黄素活性和肽结构稳定性的影响。结果:姜黄素和碳纳米管的存在诱导了β淀粉样蛋白二聚体的相对不稳定性。姜黄素与肽的n端和c端区域的相互作用强于与中间部分的相互作用。它还通过特别影响盐桥和Phe19、Ile31和Leu34残基的排列来降低肽的毒性。碳纳米管减轻了姜黄素对肽的影响,通过降低姜黄素的活性改变了姜黄素的行为,但增加了姜黄素的溶剂化能。结论:姜黄素在稳定β -淀粉样蛋白二聚体和降低其毒性中起重要作用,其作用受碳纳米管的调节。这种双重影响突出了姜黄素与纳米材料一起用于神经退行性疾病治疗策略的潜力。这项研究为姜黄素、β -淀粉样肽和碳纳米管之间的分子相互作用提供了有价值的见解。这些发现有助于开发针对神经退行性疾病中淀粉样蛋白相关毒性的更有效治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Current pharmaceutical biotechnology
Current pharmaceutical biotechnology 医学-生化与分子生物学
CiteScore
5.60
自引率
3.60%
发文量
203
审稿时长
6 months
期刊介绍: Current Pharmaceutical Biotechnology aims to cover all the latest and outstanding developments in Pharmaceutical Biotechnology. Each issue of the journal includes timely in-depth reviews, original research articles and letters written by leaders in the field, covering a range of current topics in scientific areas of Pharmaceutical Biotechnology. Invited and unsolicited review articles are welcome. The journal encourages contributions describing research at the interface of drug discovery and pharmacological applications, involving in vitro investigations and pre-clinical or clinical studies. Scientific areas within the scope of the journal include pharmaceutical chemistry, biochemistry and genetics, molecular and cellular biology, and polymer and materials sciences as they relate to pharmaceutical science and biotechnology. In addition, the journal also considers comprehensive studies and research advances pertaining food chemistry with pharmaceutical implication. Areas of interest include: DNA/protein engineering and processing Synthetic biotechnology Omics (genomics, proteomics, metabolomics and systems biology) Therapeutic biotechnology (gene therapy, peptide inhibitors, enzymes) Drug delivery and targeting Nanobiotechnology Molecular pharmaceutics and molecular pharmacology Analytical biotechnology (biosensing, advanced technology for detection of bioanalytes) Pharmacokinetics and pharmacodynamics Applied Microbiology Bioinformatics (computational biopharmaceutics and modeling) Environmental biotechnology Regenerative medicine (stem cells, tissue engineering and biomaterials) Translational immunology (cell therapies, antibody engineering, xenotransplantation) Industrial bioprocesses for drug production and development Biosafety Biotech ethics Special Issues devoted to crucial topics, providing the latest comprehensive information on cutting-edge areas of research and technological advances, are welcome. Current Pharmaceutical Biotechnology is an essential journal for academic, clinical, government and pharmaceutical scientists who wish to be kept informed and up-to-date with the latest and most important developments.
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