首页> 美国卫生研究院文献>Acta Crystallographica Section F: Structural Biology and Crystallization Communications >Structure of human farnesyl pyrophosphate synthase in complex with an aminopyridine bisphosphonate and two molecules of inorganic phosphate
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Structure of human farnesyl pyrophosphate synthase in complex with an aminopyridine bisphosphonate and two molecules of inorganic phosphate

机译:人法呢基焦磷酸合酶与氨基吡啶双膦酸酯和两个无机磷酸酯分子复合的结构

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摘要

Human farnesyl pyrophosphate synthase (hFPPS) produces farnesyl pyrophos­phate, an isoprenoid essential for a variety of cellular processes. The enzyme has been well established as the molecular target of the nitrogen-containing bisphosphonates (N-BPs), which are best known for their antiresorptive effects in bone but are also known for their anticancer properties. Crystal structures of hFPPS in ternary complexes with a novel bisphosphonate, YS0470, and the secondary ligands inorganic phosphate (Pi), inorganic pyrophosphate (PPi) and isopentenyl pyrophosphate (IPP) have recently been reported. Only the co-binding of the bisphosphonate with either PPi or IPP resulted in the full closure of the C-­terminal tail of the enzyme, a conformational change that is required for catalysis and that is also responsible for the potent in vivo efficacy of N-BPs. In the present communication, a co-crystal structure of hFPPS in complex with YS0470 and two molecules of Pi is reported. The unusually close proximity between these ligands, which was confirmed by anomalous diffraction data, suggests that they interact with one another, with their anionic charges neutralized in their bound state. The structure also showed the tail of the enzyme to be fully disordered, indicating that simultaneous binding of two Pi molecules with a bisphosphonate cannot induce the tail-closing conformational change in hFPPS. Examination of homologous FPPSs suggested that this ligand-dependent tail closure is only conserved in the mammalian proteins. The prevalence of Pi-bound hFPPS structures in the PDB raises a question regarding the in vivo relevance of Pi binding to the function of the enzyme.
机译:人法呢基焦磷酸合成酶(hFPPS)产生法呢基焦磷酸酯,这是多种细胞过程必不可少的类异戊二烯。该酶已被广泛确立为含氮双膦酸酯(N-BPs)的分子靶标,这些双膦酸酯以其在骨骼中的抗吸收作用而闻名,但也以其抗癌特性而闻名。最近已经报道了hFPPS与新型双膦酸酯YS0470和二级配体无机磷酸盐(Pi),无机焦磷酸盐(PPi)和异戊烯基焦磷酸盐(IPP)的三元配合物中的晶体结构。仅双膦酸酯与PPi或IPP的共结合会导致酶C末端的尾部完全闭合,这是催化所需的构象变化,也是N-的有效体内功效的原因BP。在本通报中,报道了hFPPS与YS0470和两个Pi分子复合的共晶体结构。这些配体之间异常接近,这已通过异常衍射数据得到证实,这表明它们彼此相互作用,且阴离子电荷在结合状态下被中和。该结构还显示该酶的尾巴完全无序,表明两个Pi分子与双膦酸酯的同时结合不能诱导hFPPS的尾巴关闭构象变化。同源FPPS的检查表明,这种依赖配体的尾巴闭合仅在哺乳动物蛋白中保守。 PDB中Pi结合的hFPPS结构的普遍性引起了关于Pi结合在体内与酶功能的相关性的问题。

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