Structure based design, stability study and synthesis of the dinitrophenylhydrazone derivative of the oxidation product of lanosterol as a potential P. falciparum transketolase inhibitor and in-vivo antimalarial study.

In Silico Pharmacology Pub Date : 2021-06-18 eCollection Date: 2021-01-01 DOI:10.1007/s40203-021-00097-8
Olatomide A Fadare, Nusrat O Omisore, Oluwaseun B Adegbite, Oladoja A Awofisayo, Frank A Ogundolie, Julius K Adesanwo, Craig A Obafemi
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Abstract

The growing resistance to the current antimalarial drugs in the absence of a vaccine can be effectively tackled by identifying new metabolic pathways that are essential to the survival of the malaria parasite and developing new drugs against them. Triterpenes and steroids are the most abundant group of natural products with a great variety of biological activities. However, lanosterol is not known to possess any significant biological activity. In this study the binding and interactions of a dinitrophenyl hydrazine (DNP) derivative of lanosterol, LAN (a derivative that incorporates a substantially polar moiety into the steroid) with P. falciparum transketolase was studied by molecular docking and MD simulation with the view to exploit the DNP derivative as a lead in antimalarial chemotherapy development considering that the P. falciparum transketolase (PfTk) is a novel target in antimalarial chemotherapy. The enzyme catalyses the production of ribose sugars needed for nucleic acid synthesis; it lacks a three-dimensional (3D) structure necessary for docking because it is difficult to obtain a crystalline form. A homology model of PfTk was constructed using Saccharomyces cerevisiae transketolase (protein data bank ID of 1TRK) as the template. The compound was observed to have Free Energy of Binding higher than that of the cofactor of the protein (Thiamine Pyrophosphate, TPP) and a synthetic analog (SUBTPP) used as reference compounds after MD Simulation. The compound was synthesized in a two-step, one-pot reaction, utilizing a non-acidic and mild oxidant to oxidize the lanosterol in order to avoid the rearrangement that accompanies the oxidation of sterols using acidic oxidants. The LAN was characterized using IR spectroscopy and NMR experiments and tested in-vivo for its antimalarial chemo suppression using a murine model with Chloroquine as a standard. The LAN at a concentration of 25 mg/kg was found to have a comparable activity with Chloroquine at 10 mg/kg and no mortality was observed among the test animals 24 days post drug administration showing that the compound indeed has potential as an antimalarial agent and a likely inhibitor of PfTk considering that there is a strong agreement between the in-silico results and biological study.

Supplementary information: The online version contains supplementary material available at 10.1007/s40203-021-00097-8.

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羊毛甾醇氧化产物的二硝基苯腙衍生物作为潜在恶性疟原虫转酮酶抑制剂的结构设计、稳定性研究和合成以及体内抗疟研究。
在没有疫苗的情况下,现有抗疟药物的抗药性越来越强,要有效解决这一问题,就必须找出疟原虫生存所必需的新的代谢途径,并开发出针对这些途径的新药。三萜类和类固醇是天然产品中含量最丰富的一类,具有多种生物活性。然而,目前还不知道羊毛甾醇具有任何显著的生物活性。考虑到恶性疟原虫转酮酶(PfTk)是抗疟化疗的新靶点,本研究通过分子对接和 MD 模拟研究了羊毛甾醇的二硝基苯肼(DNP)衍生物 LAN(一种在类固醇中加入极性分子的衍生物)与恶性疟原虫转酮酶的结合和相互作用,以期利用 DNP 衍生物作为抗疟化疗的先导药物。该酶催化核酸合成所需的核糖的生成;由于难以获得晶体形式,它缺乏对接所需的三维(3D)结构。我们以酿酒酵母转酮酶(蛋白数据库 ID:1TRK)为模板,构建了 PfTk 的同源模型。经 MD 模拟观察,该化合物的结合自由能高于蛋白质的辅助因子(焦磷酸硫胺素,TPP)和用作参考化合物的合成类似物(SUBTPP)。该化合物采用两步一步法合成,使用非酸性温和氧化剂氧化羊毛甾醇,以避免使用酸性氧化剂氧化甾醇时发生重排。使用红外光谱和核磁共振实验对 LAN 进行了表征,并以氯喹为标准,使用小鼠模型对其抗疟化疗抑制作用进行了体内测试。结果发现,浓度为 25 毫克/千克的 LAN 与浓度为 10 毫克/千克的氯喹具有相当的活性,而且在给药后 24 天内没有观察到试验动物死亡,这表明该化合物确实具有作为抗疟药物和 PfTk 抑制剂的潜力,因为其分子内结果与生物学研究结果非常吻合:在线版本包含补充材料,可查阅 10.1007/s40203-021-00097-8。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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