探索荷叶莲中氯碘碱和荷叶莲碱治疗肾纤维化的潜力:一项计算机分析。

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Rushendran Rapuru, Rukaiah Fatma Begum, S Ankul Singh, Chitra Vellapandian, Nemat Ali, Abdullah F AlAsmari, Bhupendra G Prajapati
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引用次数: 0

摘要

慢性肾脏疾病的一个主要问题是肾纤维化。本研究探讨荷花(Nelumbo nucifera,莲花)中化合物的治疗潜力。综合筛选确定了这些化合物,它们与肾纤维化相关的关键靶点表现出有希望的结合亲和力。Leriodenine和Nuciferine通过调节关键靶点(如PTGS2、JUN、EGFR、STAT3、mTOR和AKT1)显示出巨大的潜力。已确定的生物分子-靶标-通路网络强调了莲子化合物在肾纤维化治疗作用背后的复杂相互作用。通过分子对接研究表明,它们与PTGS2-PDBID:5F19, Leriodenine -8.99 kcal/mol和Nuciferine -9.33 kcal/mol以及JUN-PDBID:1S9K, Leriodenine -7.95 kcal/mol和Nuciferine -7.05 kcal/mol具有很强的结合亲和力,表明它们具有作为纤维过程抑制剂的潜力。在10 ns的分子对接模拟中,这些化合物在蛋白质的活性位点显示出强大的氢键连接,导致配体结合位点的构象可能发生改变。该研究为未来的实验验证,临床试验奠定了基础,以弥合翻译差距。该研究结合了靶标预测、蛋白-蛋白相互作用研究和生物分子筛选来阐明肾纤维化背后的分子途径。我们还进行了Insilico分子对接,并对鉴定出的最佳化合物进行了分子动力学模拟,以获得更精确的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the therapeutic potential of leriodenine and nuciferine from Nelumbo nucifera for renal fibrosis: an In-silico analysis.

A major problem in chronic kidney illnesses is renal fibrosis. This research investigates the therapeutic potential of compounds derived from Nelumbo nucifera (Lotus). Comprehensive screening identified these compounds, which exhibit promising binding affinities with key targets associated with renal fibrosis. Leriodenine and Nuciferine demonstrate substantial potential by modulating critical targets such as PTGS2, JUN, EGFR, STAT3, mTOR, and AKT1. The identified biomolecule-target-pathway network highlights the intricate interactions underlying the therapeutic effects of lotus seed compounds in renal fibrosis. Strong binding affinities with PTGS2-PDBID:5F19, Leriodenine -8.99 kcal/mol and Nuciferine -9.33 kcal/mol, and JUN-PDBID:1S9K, Leriodenine -7.95 kcal/mol and Nuciferine -7.05 kcal/mol are shown by molecular docking investigations, indicating their potential as fibrotic process inhibitors. During 10 ns of molecular docking simulations, these compounds demonstrated robust hydrogen-bonding connections within the protein's active site, leading to a possible alteration in the conformation of the ligand-binding site. The research establishes the foundation for future experimental validation, clinical trials, to bridge the translational gap. The research combines target prediction, protein-protein interaction studies, and biomolecular screening to clarify the molecular pathways behind renal fibrosis. We also carried out Insilico molecular docking and carried out molecular dynamics simulation of the best compound identified to obtain more precise results.

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来源期刊
CiteScore
4.10
自引率
5.00%
发文量
55
期刊介绍: A Journal of Biosciences: Zeitschrift für Naturforschung C (ZNC) is an international scientific journal and a community resource for the emerging field of natural and natural-like products. The journal publishes original research on the isolation (including structure elucidation), bio-chemical synthesis and bioactivities of natural products, their biochemistry, pharmacology, biotechnology, and their biological activity and innovative developed computational methods for predicting the structure and/or function of natural products. A Journal of Biosciences: Zeitschrift für Naturforschung C (ZNC) welcomes research papers in fields on the chemistry-biology boundary which address scientific ideas and approaches to generate and understand natural compounds on a molecular level and/or use them to stimulate and manipulate biological processes.
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