考虑CD81受体量子隧道和分子链的不同amyrin亚基在阻碍HCV在人细胞内内流机制中的靶特异性:一项硅和体内联合研究

Anika Jabin, Mohammad Fahim Uddin, Salauddin Al Azad, Ashfaque Rahman, Fawzia Tabassum, Pritthy Sarker, A K M Helal Morshed, Samiur Rahman, Fatima Fairuz Raisa, Musfiqur Rahman Sakib, Abeer Hasan Olive, Tabassum Islam, Ramisha Tahsin, Shahlaa Zernaz Ahmed, Partha Biswas, Mst Umme Habiba, Mahbuba Siddiquy, Maryam Jafary
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引用次数: 7

摘要

HCV是一种嗜肝性RNA病毒,因其常见的毒力和致死率在世界范围内得到认可。尽管许多疫苗开发项目正在进行中,研究人员仍在寻求天然生物活性化合物,因为它们具有抗病毒感染的多价效率,考虑到目前的研究旨在找出α, β和δ amyrin亚基的靶标特异性和治疗潜力,作为对抗HCV内流机制的新型生物活性成分。最初,从203个药效团中进行了amyrin亚基的新颖性研究,比较了它们的计算机药代动力学和药效学特征。此外,利用量子隧道算法确定了CD81的最佳活性位点。按照分子对接步骤进行100 ns的分子动力学模拟,得到参数RMSD (Å);Cα;RMSF(一个);MolSA (A2);Rg (nm);PSA(一个);SASA (Å2)和MM-GBSA dG结合评分。此外,CD81的分子链以及共表达基因被分类为HCV感染期间负责编码CD81介导的蛋白簇,从而导致淀粉蛋白有可能成为HCV感染的靶向预防药物。最后,在dmn诱导小鼠模型中对氧化应激标志物、肝脏特异性酶和抗氧化标志物进行体内分析,其中β-amyrin在各方面得分最高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Target-specificity of different amyrin subunits in impeding HCV influx mechanism inside the human cells considering the quantum tunnel profiles and molecular strings of the CD81 receptor: a combined in silico and in vivo study.

Target-specificity of different amyrin subunits in impeding HCV influx mechanism inside the human cells considering the quantum tunnel profiles and molecular strings of the CD81 receptor: a combined in silico and in vivo study.

Target-specificity of different amyrin subunits in impeding HCV influx mechanism inside the human cells considering the quantum tunnel profiles and molecular strings of the CD81 receptor: a combined in silico and in vivo study.

Target-specificity of different amyrin subunits in impeding HCV influx mechanism inside the human cells considering the quantum tunnel profiles and molecular strings of the CD81 receptor: a combined in silico and in vivo study.

HCV is a hepatotropic RNA virus recognized for its frequent virulence and fatality worldwide. Despite many vaccine development programs underway, researchers are on a quest for natural bioactive compounds due to their multivalent efficiencies against viral infections, considering which the current research aimed to figure out the target-specificity and therapeutic potentiality of α, β, and δ subunits of amyrin, as novel bioactive components against the HCV influx mechanism. Initially, the novelty of amyrin subunits was conducted from 203 pharmacophores, comparing their in-silico pharmacokinetic and pharmacodynamic profiles. Besides, the best active site of CD81 was determined following the quantum tunneling algorithm. The molecular dynamic simulation was conducted (100 ns) following the molecular docking steps to reveal the parameters- RMSD (Å); Cα; RMSF (Å); MolSA (Å2); Rg (nm); PSA (Å); SASA (Å2), and the MM-GBSA dG binding scores. Besides, molecular strings of CD81, along with the co-expressed genes, were classified, as responsible for encoding CD81-mediated protein clusters during HCV infection, resulting in the potentiality of amyrins as targeted prophylactics in HCV infection. Finally, in vivo profiling of the oxidative stress marker, liver-specific enzymes, and antioxidant markers was conducted in the DMN-induced mice model, where β-amyrin scored the most significant values in all aspects.

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