School of Pharmacy, University of Eastern Finland, Biocenter Kuopio, Yliopistonranta 1B, FI-70210 Kuopio, Finland.
School of Pharmacy, University of Eastern Finland, Biocenter Kuopio, Yliopistonranta 1B, FI-70210 Kuopio, Finland
Biochem J. 2018 Feb 14;475(3):663-676. doi: 10.1042/BCJ20170887.
Replacing protium with deuterium is an efficient method to modulate drug metabolism. -alkylated polyamine analogues are polyamine antimetabolites with proven anticancer efficacy. We have characterized earlier the preferred metabolic routes of ,-diethylspermine (DESpm), -benzyl--ethylspermine (BnEtSpm) and ,-dibenzylspermine (DBSpm) by human recombinant spermine oxidase (SMOX) and acetylpolyamine oxidase (APAO). Here, we studied the above analogues, their variably deuterated counterparts and their metabolites as substrates and inhibitors of APAO, SMOX, semicarbazide-sensitive amine oxidase (SSAO), diamine oxidase (DAO) and monoamine oxidases. We found that targeted deuteration efficiently redirected the preferable cleavage site and suppressed reaction rate by APAO and SMOX We found a three- to six-fold decline in with moderate variable effect on when deuterium was located at the preferred hydrogen abstraction site of the analogue. We also found some of the metabolites to be potent inhibitors of DAO and SSAO. Surprisingly, analogue deuteration did not markedly alter the anti-proliferative efficacy of the drugs in DU145 prostate cancer cells, while in mouse embryonic fibroblasts, which had higher basal APAO and SMOX activities, moderate effect was observed. Interestingly, the anti-proliferative efficacy of the analogues did not correlate with their ability to suppress polyamine biosynthetic enzymes, induce spermidine/spermine--acetyltransferase or deplete intracellular polyamine levels, but correlated with their ability to induce SMOX. Our data show that selective deuteration of -alkyl polyamine analogues enables metabolic switching, offering the means for selective generation of bioactive metabolites inhibiting, e.g. SSAO and DAO, thus setting a novel basis for studies of this class of analogues.
用氘取代氕是调节药物代谢的有效方法。- 烷基聚胺类似物是具有已证实抗癌功效的聚胺抗代谢物。我们之前已经通过人重组精脒氧化酶 (SMOX) 和乙酰多胺氧化酶 (APAO) 对 ,- 二乙基精脒 (DESpm)、- 苄基 - - 乙基精脒 (BnEtSpm) 和 ,- 二苄基精脒 (DBSpm) 的首选代谢途径进行了表征。在这里,我们研究了上述类似物及其可变氘取代物及其代谢物作为 APAO、SMOX、脒基脒基化酶 (SSAO)、二胺氧化酶 (DAO) 和单胺氧化酶的底物和抑制剂。我们发现,靶向氘化有效地改变了 APAO 和 SMOX 的首选裂解位点,并抑制了反应速率。我们发现,当氘位于类似物首选氢提取位置时, 与 相比, 下降了三到六倍,而对 的影响则适中。我们还发现一些代谢物是 DAO 和 SSAO 的有效抑制剂。令人惊讶的是,类似物氘化并未显著改变药物在 DU145 前列腺癌细胞中的抗增殖功效,而在具有更高基础 APAO 和 SMOX 活性的小鼠胚胎成纤维细胞中,观察到中等效应。有趣的是,类似物的抗增殖功效与它们抑制多胺生物合成酶的能力、诱导精脒/精脒-N1-乙酰转移酶或耗尽细胞内多胺水平的能力无关,但与它们诱导 SMOX 的能力相关。我们的数据表明,- 烷基聚胺类似物的选择性氘化可实现代谢转换,为选择性生成抑制 SSAO 和 DAO 等生物活性代谢物提供了手段,从而为该类类似物的研究奠定了新的基础。