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合成及具有口服活性的抗锥虫药物的生物评价。

Synthesis and biological evaluation of orally active anti-Trypanosoma agents.

机构信息

Department of Chemistry, Center for Gene Regulation in Health and Disease, College of Arts and Sciences, Cleveland State University, 2121 Euclid Ave., Cleveland, OH 44115, USA.

Department of Chemistry, Center for Gene Regulation in Health and Disease, College of Arts and Sciences, Cleveland State University, 2121 Euclid Ave., Cleveland, OH 44115, USA; Genomic Medicine Institute, Cleveland Clinic Genome Center, Lerner Research Institute, Cleveland Clinic, Cleveland, OH 44195, USA.

出版信息

Bioorg Med Chem. 2024 Jun 1;107:117751. doi: 10.1016/j.bmc.2024.117751. Epub 2024 May 8.

Abstract

In previous studies, we developed anti-trypanosome tubulin inhibitors with promising in vitro selectivity and activity against Human African Trypanosomiasis (HAT). However, for such agents, oral activity is crucial. This study focused on further optimizing these compounds to enhance their ligand efficiency, aiming to reduce bulkiness and hydrophobicity, which should improve solubility and, consequently, oral bioavailability. Using Trypanosoma brucei brucei cells as the parasite model and human normal kidney cells and mouse macrophage cells as the host model, we evaluated 30 new analogs synthesized through combinatorial chemistry. These analogs have fewer aromatic moieties and lower molecular weights than their predecessors. Several new analogs demonstrated ICs in the low micromolar range, effectively inhibiting trypanosome cell growth without harming mammalian cells at the same concentration. We conducted a detailed structure-activity relationship (SAR) analysis and a docking study to assess the compounds' binding affinity to trypanosome tubulin homolog. The results revealed a correlation between binding energy and anti-Trypanosoma activity. Importantly, compound 7 displayed significant oral activity, effectively inhibiting trypanosome cell proliferation in mice.

摘要

在之前的研究中,我们开发了具有抗锥虫微管蛋白抑制剂,对人体非洲锥虫病(HAT)具有良好的体外选择性和活性。然而,对于此类药物,口服活性至关重要。本研究旨在进一步优化这些化合物,以提高其配体效率,旨在降低其体积和疏水性,这应该会提高其溶解度,从而提高口服生物利用度。我们使用布氏锥虫布鲁氏菌细胞作为寄生虫模型,用人正常肾细胞和小鼠巨噬细胞作为宿主模型,评估了通过组合化学合成的 30 种新类似物。这些类似物的芳香族部分较少,分子量也低于其前身。一些新的类似物在低微摩尔范围内表现出 IC,在相同浓度下有效抑制锥虫细胞生长而不伤害哺乳动物细胞。我们进行了详细的结构-活性关系(SAR)分析和对接研究,以评估化合物与锥虫微管蛋白同系物的结合亲和力。结果表明结合能与抗锥虫活性之间存在相关性。重要的是,化合物 7 表现出显著的口服活性,有效抑制了小鼠体内锥虫细胞的增殖。

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