从恶性疟原虫食物液泡中提取的含有热狗结构域的假想蛋白的计算特性揭示了抗疟药潜在的变构调节作用。

IF 2.4 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Pooja Gupta, Naveen Kumar Kaushik, Cheryl Sachdeva, Kartavya Mathur, Somnath S Pai, Biswajit Saha, Sunny Dhir, Anil Sharma
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引用次数: 0

摘要

恶性疟原虫(Plasmodium falciparum)是最致命形式的人类疟疾的病原体,它含有许多未表征的蛋白质,其功能尚未被探索,但可能是其生存和致病性的核心。食物液泡在其特殊的细胞器中,在血红蛋白分解代谢、血红素解毒、营养吸收和药效学相互作用中起着关键作用,是重要的治疗靶点。然而,许多食物液泡相关蛋白仍未被表征。在这项研究中,采用多种生物信息学工具全面表征了一种假设的食物液泡相关蛋白PF11_0364(命名为PfHDDCP)。保守结构域分析发现了HotDog折叠,这是酰基辅酶a硫酯酶的标志,表明它可能在脂质代谢中起作用。采用I-TASSER软件建立PfHDDCP的三维结构模型,并用PROCHECK和ProSA软件进行评价。超过90%的残基位于Ramachandran地块的有利区域,ProSA Z-score落在天然蛋白结构的典型范围内,表明模型质量较好。通过NCBI-CDD进行结构域分析,确定了PfHDDCP中两个假定的配体结合位点。利用HDOCK和AutoDock进行分子对接预测,硫酯酶的典型底物乙酰辅酶a和酰基载体蛋白在与预测的催化位点对应的结合位点1结合。相比之下,抗疟药化合物被预测在binding - site 2结合,这是一个明显的次级口袋,表明可能的变构位点可能干扰底物的结合。Desmond进行的分子动力学模拟表明,pfhddcp -配体复合物稳定,配体诱导构象变化,支持配体介导的功能调节模型。尽管这些结果为PfHDDCP的结构、功能和药物性提供了初步的计算见解,但它们仍然具有预测性,需要实验验证来确认所提出的酶活性和治疗相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational characterization of a HotDog domain-containing hypothetical protein from the food vacuole of Plasmodium falciparum reveals potential allosteric regulation by antimalarials.

Plasmodium falciparum, the causative agent of the most lethal form of human malaria, harbors numerous uncharacterized proteins whose functions remain unexplored yet may be central to its survival and pathogenicity. Among its specialized organelles, food vacuole plays pivotal role in hemoglobin-catabolism, heme-detoxification, nutrient-assimilation and pharmacodynamic-interactions, thereby representing critical therapeutic target. However, numerous food vacuole-associated proteins remain uncharacterized. In this study, multiple bioinformatics tools were employed to comprehensively characterize a hypothetical food vacuole-associated protein, PF11_0364 (designated PfHDDCP). Conserved domain analysis identified HotDog fold, hallmark of acyl-CoA thioesterases, suggesting its possible role in lipid metabolism. 3D structural model of PfHDDCP was generated using I-TASSER and evaluated with PROCHECK and ProSA. Over 90% of residues were located in favored regions of Ramachandran plot, and ProSA Z-score fell within the range typical of native protein structures, indicating good model quality. Domain analysis via NCBI-CDD identified two putative ligand-binding sites in PfHDDCP. Molecular docking using HDOCK and AutoDock predicted that Acetyl-CoA and Acyl Carrier Protein, canonical substrates of thioesterases, bind at Binding-Site 1, which corresponds to the predicted catalytic site. In contrast, antimalarial compounds were predicted to bind at Binding-Site 2, distinct secondary pocket, suggesting possible allosteric site that may interfere with substrate binding. Molecular dynamics simulations performed with Desmond indicated stable PfHDDCP-ligand complexes and ligand-induced conformational changes, supporting model of ligand-mediated functional modulation. Although these results offer preliminary computational insights into structure, function, and druggability of PfHDDCP, they remain predictive and require experimental validation to confirm the proposed enzymatic activity and therapeutic relevance.

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来源期刊
Journal of Biomolecular Structure & Dynamics
Journal of Biomolecular Structure & Dynamics 生物-生化与分子生物学
CiteScore
8.90
自引率
9.10%
发文量
597
审稿时长
2 months
期刊介绍: The Journal of Biomolecular Structure and Dynamics welcomes manuscripts on biological structure, dynamics, interactions and expression. The Journal is one of the leading publications in high end computational science, atomic structural biology, bioinformatics, virtual drug design, genomics and biological networks.
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