School of Pharmacy, Faculty of Health Sciences, University of Eastern Finland, Kuopio, Finland.
Biochem Biophys Res Commun. 2011 Apr 22;407(4):663-7. doi: 10.1016/j.bbrc.2011.03.070. Epub 2011 Mar 21.
A class of drugs successfully used for treatment of metabolic bone diseases is the nitrogen-containing bisphosphonates (N-BPs), which act by inhibiting the vital enzyme, farnesyl pyrophosphate synthase (FPPS), of the mevalonate pathway. Inhibition of FPPS by N-BPs results in the intracellular accumulation of isopentenyl pyrophosphate (IPP) and consequently induces the biosynthesis of a cytotoxic ATP analog (ApppI). Previous cell-free data has reported that N-BPs inhibit FPPS by time-dependent manner as a result of the conformational change. This associated conformational change can be measured as an isomerization constant (K(isom)) and reflects the binding differences of the N-BPs to FPPS. In the present study, we tested the biological relevance of the calculated K(isom) values of zoledronic acid, risedronate and five experimental N-BP analogs in the cell culture model. We used IPP/ApppI formation as a surrogate marker for blocking of FPPS in the mevalonate pathway. As a result, a correlation between the time-dependent inhibition of FPPS and IPP/ApppI formation by N-BPs was observed. This outcome indicates that the time-dependent inhibition of FPPS enzyme is a biologically significant mechanism and further supports the use of the K(isom) calculations for evaluation of the overall potency of the novel FPPS inhibitors. Additionally, data illustrates that IPP/ApppI analysis is a useful method to monitor the intracellular action of drugs and drug candidates based on FPPS inhibition.
一类成功用于治疗代谢性骨疾病的药物是含氮双膦酸盐(N-BPs),它通过抑制法呢基焦磷酸合酶(FPPS)的关键酶,即甲羟戊酸途径来发挥作用。N-BPs 对 FPPS 的抑制导致异戊烯焦磷酸(IPP)在细胞内积累,进而诱导细胞毒性 ATP 类似物(ApppI)的生物合成。以前的无细胞数据报告称,N-BPs 通过构象变化以时间依赖性方式抑制 FPPS。这种相关的构象变化可以测量为异构化常数(K(isom)),并反映 N-BPs 与 FPPS 的结合差异。在本研究中,我们在细胞培养模型中测试了唑来膦酸、利塞膦酸和五种实验性 N-BP 类似物的计算 K(isom)值的生物学相关性。我们使用 IPP/ApppI 形成作为甲羟戊酸途径中 FPPS 阻断的替代标志物。结果观察到 N-BPs 对 FPPS 的时间依赖性抑制与 IPP/ApppI 形成之间存在相关性。这一结果表明,FPPS 酶的时间依赖性抑制是一种具有生物学意义的机制,并进一步支持使用 K(isom)计算来评估新型 FPPS 抑制剂的总体效力。此外,数据表明,IPP/ApppI 分析是一种基于 FPPS 抑制监测药物和候选药物细胞内作用的有用方法。