通过分子对接和动力学模拟对靶向 RNA CAG 重复序列的潜在抑制剂进行硅学预测:药物发现方法。

IF 3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Surbhi Singh, Suchitra Singh, Deepika Joshi, Chhandamayee Mohanty, Royana Singh
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引用次数: 0

摘要

脊髓小脑共济失调症(SCA)是一种罕见的显性遗传神经系统疾病,可导致严重损伤和过早死亡。虽然每种罕见疾病都可能不常影响个人,但它们共同构成了重大的医疗挑战。这种疾病主要是由于 RNA 三重(CAG)重复序列的扩增所致,但也可能诱发错义突变或点突变。遗憾的是,目前尚无根治方法,只能对症治疗。迄今为止,SCA 约有 48 种亚型,其中最常见的是具有 CAG 重复序列的 SCA 1、2、3、6、7、12 和 17 型。本研究利用分子对接和分子动力学(MD)模拟,试图研究针对CAG重复序列的有效天然草本神经保护化合物,这对治疗SCA具有重要意义。首先,通过虚拟筛选和分子对接来估算神经保护性天然化合物与 CAG 重复序列的结合亲和力。然后,选择了结合亲和力最高的化合物索母芬进行 MD 模拟。通过 MD 模拟研究了 CAG 重复序列和索母芬碱的结构稳定性、相互作用机制和构象动力学。MD 研究显示,在模拟期间,CAG 重复序列与索米法宁之间的相互作用趋于稳定,并导致较少的构象变化。这项硅学研究表明,索密非因可用作治疗 SCA 中 RNA CAG 重复序列的药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In Silico Prediction of Potential Inhibitors for Targeting RNA CAG Repeats via Molecular Docking and Dynamics Simulation: A Drug Discovery Approach

Spinocerebellar ataxia (SCA) is a rare neurological illness inherited dominantly that causes severe impairment and premature mortality. While each rare disease may affect individuals infrequently, collectively they pose a significant healthcare challenge. It is mainly carried out due to the expansion of RNA triplet (CAG) repeats, although missense or point mutations can also be induced. Unfortunately, there is no cure; only symptomatic treatments are available. To date, SCA has about 48 subtypes, the most common of these being SCA 1, 2, 3, 6, 7, 12, and 17 having CAG repeats. Using molecular docking and molecular dynamics (MD) simulation, this study seeks to investigate effective natural herbal neuroprotective compounds against CAG repeats, which are therapeutically significant in treating SCA. Initially, virtual screening followed by molecular docking was used to estimate the binding affinity of neuroprotective natural compounds toward CAG repeats. The compound with the highest binding affinity, somniferine, was then chosen for MD simulation. The structural stability, interaction mechanism, and conformational dynamics of CAG repeats and somniferine were investigated via MD simulation. The MD study revealed that during the simulation period, the interaction between CAG repeats and somniferine stabilizes and results in fewer conformational variations. This in silico study suggests that Somniferine can be used as a therapeutic medication against RNA CAG repeats in SCA.

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来源期刊
Journal of cellular biochemistry
Journal of cellular biochemistry 生物-生化与分子生物学
CiteScore
9.90
自引率
0.00%
发文量
164
审稿时长
1 months
期刊介绍: The Journal of Cellular Biochemistry publishes descriptions of original research in which complex cellular, pathogenic, clinical, or animal model systems are studied by biochemical, molecular, genetic, epigenetic or quantitative ultrastructural approaches. Submission of papers reporting genomic, proteomic, bioinformatics and systems biology approaches to identify and characterize parameters of biological control in a cellular context are encouraged. The areas covered include, but are not restricted to, conditions, agents, regulatory networks, or differentiation states that influence structure, cell cycle & growth control, structure-function relationships.
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