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Olefin Isomers of a Triazole Bisphosphonate Synergistically Inhibit Geranylgeranyl Diphosphate Synthase

机译:三唑双膦酸酯的烯烃异构体可协同抑制香叶基香叶基二磷酸合酶

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摘要

The isoprenoid donor for protein geranylgeranylation reactions, geranylgeranyl diphosphate (GGDP), is the product of the enzyme GGDP synthase (GGDPS) that condenses farnesyl diphosphate (FDP) and isopentenyl pyrophosphate. GGDPS inhibition is of interest from a therapeutic perspective for multiple myeloma because we have shown that targeting Rab GTPase geranylgeranylation impairs monoclonal protein trafficking, leading to endoplasmic reticulum stress and apoptosis. We reported a series of triazole bisphosphonate GGDPS inhibitors, of which the most potent was a 3:1 mixture of homogeranyl (HG) and homoneryl (HN) isomers. Here we determined the activity of the individual olefin isomers. Enzymatic and cellular assays revealed that although HN is approximately threefold more potent than HG, HN is not more potent than the original mixture. Studies in which cells were treated with varying concentrations of each isomer alone and in different combinations revealed that the two isomers potentiate the induced-inhibition of protein geranylgeranylation when used in a 3:1 HG:HN combination. A synergistic interaction was observed between the two isomers in the GGDPS enzyme assay. These results suggested that the two isomers bind simultaneously to the enzyme but within different domains. Computational modeling studies revealed that HN is preferred at the FDP site, that HG is preferred at the GGDP site, and that both isomers may bind to the enzyme simultaneously. These studies are the first to report a set of olefin isomers that synergistically inhibit GGDPS, thus establishing a new paradigm for the future development of GGDPS inhibitors.
机译:用于蛋白质香叶基香叶基酰化反应的类异戊二烯供体,即香叶基香叶基二磷酸(GGDP)是GGDP合酶(GGDPS)的产物,该酶缩合法呢基二磷酸(FDP)和焦磷酸异戊烯基。从多发性骨髓瘤的治疗角度来看,GGDPS抑制是令人感兴趣的,因为我们已经表明,靶向Rab GTPase香叶基香叶基化会削弱单克隆蛋白的运输,从而导致内质网应激和凋亡。我们报道了一系列的三唑双膦酸酯GGDPS抑制剂,其中最有效的是高香叶烷基(HG)和高香烷基(HN)异构体的3:1混合物。在这里,我们确定了各个烯烃异构体的活性。酶和细胞分析表明,尽管HN的效力比HG高约三倍,但HN的效力并不比原始混合物强。用不同浓度的每种异构体单独和以不同组合处理细胞的研究表明,当以3:1 HG:HN组合使用时,两种异构体可增强对蛋白香叶基香叶基化的抑制作用。在GGDPS酶分析中观察到两个异构体之间存在协同作用。这些结果表明,两种异构体同时与酶结合,但是在不同的域内。计算模型研究表明,在FDP位点优选HN,在GGDP位点优选HG,并且两种异构体可能同时与酶结合。这些研究首次报道了一组协同抑制GGDPS的烯烃异构体,从而为GGDPS抑制剂的未来发展建立了新的范例。

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