Marine fungal diversity unlocks potent antivirals against monkeypox through methyltransferase inhibition revealed by molecular dynamics and free energy landscape

IF 4.3 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY BMC Chemistry Pub Date : 2024-07-30 DOI:10.1186/s13065-024-01251-x
Azzah S. Alharbi, Sarah A. Altwaim, Mai M. El-Daly, Ahmed M. Hassan, Ibrahim A. AL-Zahrani, Leena H. Bajrai, Isra M. Alsaady, Vivek Dhar Dwivedi, Esam I. Azhar
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Abstract

The escalating threat posed by the Monkeypox virus (MPXV) to global health necessitates the urgent discovery of effective antiviral agents, as there are currently no specific drugs available for its treatment, and existing inhibitors are hindered by toxicity and poor pharmacokinetic profiles. This study aimed to identify potent MPXV inhibitors by screening a diverse library of small molecule compounds derived from marine fungi, focusing on the viral protein VP39, a key methyltransferase involved in viral replication. An extensive virtual screening process identified four promising compounds—CMNPD15724, CMNPD28811, CMNPD30883, and CMNPD18569—alongside a control molecule. Rigorous evaluations, including re-docking, molecular dynamics (MD) simulations, and hydrogen bond analysis, were conducted to assess their inhibitory potential against MPXV VP39. CMNPD15724 and CMNPD30883, in particular, demonstrated a superior binding affinity and stable interactions within the target protein's active site throughout the MD simulations, suggesting a capacity to overcome the limitations associated with sinefungin. The stability of these VP39-compound complexes, corroborated by MD simulations, provided crucial insights into the dynamic behavior of these interactions. Furthermore, Principal Component Analysis (PCA) based free energy landscape assessments offered a detailed understanding of the dynamic conformational changes and energetic profiles underlying these compounds' functional disruption of VP39. These findings establish CMNPD15724, CMNPD28811, CMNPD30883, and CMNPD18569 as promising MPXV inhibitors and highlight marine fungi as a valuable source of novel antiviral agents. These compounds represent potential candidates for further experimental validation, advancing the development of safer and more effective therapeutic options to combat this emerging viral infection.

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分子动力学和自由能谱揭示的海洋真菌多样性通过甲基转移酶抑制作用释放出抗猴痘的强效抗病毒药物。
猴痘病毒(MPXV)对全球健康的威胁不断升级,迫切需要发现有效的抗病毒药物,因为目前还没有治疗猴痘病毒的特效药物,现有的抑制剂也因毒性和药代动力学特征不佳而受到阻碍。本研究旨在通过筛选从海洋真菌中提取的多种小分子化合物库,找出强效的 MPXV 抑制剂,重点是病毒蛋白 VP39,这是一种参与病毒复制的关键甲基转移酶。通过广泛的虚拟筛选过程,发现了四种有前景的化合物--CMNPD15724、CMNPD28811、CMNPD30883 和 CMNPD18569,以及一种对照分子。我们进行了严格的评估,包括重新对接、分子动力学(MD)模拟和氢键分析,以评估它们对 MPXV VP39 的抑制潜力。在整个 MD 模拟过程中,CMNPD15724 和 CMNPD30883 尤其表现出了卓越的结合亲和力以及在目标蛋白质活性位点内稳定的相互作用,这表明它们有能力克服与正鱼腥苷相关的限制。MD 模拟证实了这些 VP39-化合物复合物的稳定性,为了解这些相互作用的动态行为提供了重要依据。此外,基于主成分分析(PCA)的自由能谱评估详细了解了这些化合物对 VP39 的功能性破坏背后的动态构象变化和能谱。这些发现确立了 CMNPD15724、CMNPD28811、CMNPD30883 和 CMNPD18569 作为有前景的 MPXV 抑制剂的地位,并强调海洋真菌是新型抗病毒药物的宝贵来源。这些化合物是进一步进行实验验证的潜在候选物质,有助于开发更安全、更有效的治疗方案来对抗这种新出现的病毒感染。
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来源期刊
BMC Chemistry
BMC Chemistry Chemistry-General Chemistry
CiteScore
5.30
自引率
2.20%
发文量
92
审稿时长
27 weeks
期刊介绍: BMC Chemistry, formerly known as Chemistry Central Journal, is now part of the BMC series journals family. Chemistry Central Journal has served the chemistry community as a trusted open access resource for more than 10 years – and we are delighted to announce the next step on its journey. In January 2019 the journal has been renamed BMC Chemistry and now strengthens the BMC series footprint in the physical sciences by publishing quality articles and by pushing the boundaries of open chemistry.
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