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一种基于酵母的实验性靶向平台,用于筛选间日疟原虫脱氧hypusine合酶抑制剂。

An experimental target-based platform in yeast for screening Plasmodium vivax deoxyhypusine synthase inhibitors.

作者信息

Fernandes Silva Suélen, Hollunder Klippel Angélica, Sigurdardóttir Sunniva, Mahdizadeh Sayyed Jalil, Tiukova Ievgeniia, Bourgard Catarina, Salazar-Alvarez Luis Carlos, do Amaral Prado Heloísa Monteiro, de Araujo Renan Vinicius, Costa Fabio Trindade Maranhão, Bilsland Elizabeth, King Ross D, Brauer Massirer Katlin, Eriksson Leif A, Bengtson Mário Henrique, Zanelli Cleslei Fernando, Sunnerhagen Per

机构信息

Department of Chemistry and Molecular Biology, University of Gothenburg, Göteborg, Sweden.

Chemistry Institute, São Paulo State University - UNESP, Araraquara, São Paulo, Brazil.

出版信息

PLoS Negl Trop Dis. 2024 Dec 2;18(12):e0012690. doi: 10.1371/journal.pntd.0012690. eCollection 2024 Dec.

Abstract

The enzyme deoxyhypusine synthase (DHS) catalyzes the first step in the post-translational modification of the eukaryotic translation factor 5A (eIF5A). This is the only protein known to contain the amino acid hypusine, which results from this modification. Both eIF5A and DHS are essential for cell viability in eukaryotes, and inhibiting DHS is a promising strategy to develop new therapeutic alternatives. DHS proteins from many are sufficiently different from their human orthologs for selective targeting against infectious diseases; however, no DHS inhibitor selective for parasite orthologs has previously been reported. Here, we established a yeast surrogate genetics platform to identify inhibitors of DHS from Plasmodium vivax, one of the major causative agents of malaria. We constructed genetically modified Saccharomyces cerevisiae strains expressing DHS genes from Homo sapiens (HsDHS) or P. vivax (PvDHS) in place of the endogenous DHS gene from S. cerevisiae. Compared with a HsDHS complemented strain with a different genetic background that we previously generated, this new strain background was ~60-fold more sensitive to an inhibitor of human DHS. Initially, a virtual screen using the ChEMBL-NTD database was performed. Candidate ligands were tested in growth assays using the newly generated yeast strains expressing heterologous DHS genes. Among these, two showed promise by preferentially reducing the growth of the PvDHS-expressing strain. Further, in a robotized assay, we screened 400 compounds from the Pathogen Box library using the same S. cerevisiae strains, and one compound preferentially reduced the growth of the PvDHS-expressing yeast strain. Western blot revealed that these compounds significantly reduced eIF5A hypusination in yeast. The compounds showed antiplasmodial activity in the asexual erythrocyte stage; EC50 in high nM to low μM range, and low cytotoxicity. Our study demonstrates that this yeast-based platform is suitable for identifying and verifying candidate small molecule DHS inhibitors, selective for the parasite over the human ortholog.

摘要

脱氧hypusine合酶(DHS)催化真核生物翻译起始因子5A(eIF5A)翻译后修饰的第一步。这是已知唯一一种含有因该修饰产生的hypusine氨基酸的蛋白质。eIF5A和DHS对真核生物的细胞活力均至关重要,抑制DHS是开发新治疗方法的一种有前景的策略。许多物种的DHS蛋白与其人类直系同源物有足够差异,可用于针对传染病的选择性靶向;然而,此前尚未报道过对寄生虫直系同源物具有选择性的DHS抑制剂。在此,我们建立了一个酵母替代遗传学平台,以鉴定间日疟原虫(疟疾的主要病原体之一)的DHS抑制剂。我们构建了基因改造的酿酒酵母菌株,用来自智人的DHS基因(HsDHS)或间日疟原虫的DHS基因(PvDHS)取代酿酒酵母的内源性DHS基因。与我们之前构建的具有不同遗传背景的HsDHS互补菌株相比,这种新的菌株背景对人类DHS抑制剂的敏感性高约60倍。最初,使用ChEMBL-NTD数据库进行了虚拟筛选。在使用新生成的表达异源DHS基因的酵母菌株进行的生长试验中对候选配体进行了测试。其中,有两种化合物通过优先降低表达PvDHS的菌株的生长而显示出前景。此外,在一项自动化试验中,我们使用相同的酿酒酵母菌株从Pathogen Box文库中筛选了400种化合物,有一种化合物优先降低了表达PvDHS的酵母菌株的生长。蛋白质免疫印迹显示,这些化合物显著降低了酵母中eIF5A的hypusination修饰。这些化合物在无性红细胞期显示出抗疟原虫活性;半数有效浓度(EC50)在高纳摩尔到低微摩尔范围内,且细胞毒性低。我们的研究表明,这个基于酵母的平台适用于鉴定和验证对寄生虫直系同源物比对人类直系同源物具有选择性的候选小分子DHS抑制剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e0d/11637365/a5eaa935c359/pntd.0012690.g001.jpg

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