Institute of Molecular Biochemistry, Medical University of Innsbruck, Innrain 80/82, 6020 Innsbruck, Austria.
Department of General, Inorganic and Theoretical Chemistry, University of Innsbruck, Innrain 80/82, 6020 Innsbruck, Austria.
Int J Mol Sci. 2024 Sep 10;25(18):9768. doi: 10.3390/ijms25189768.
Nucleoside diphosphate kinases (NDPKs) are encoded by genes and exist in various isoforms. Based on interactions with other proteins, they are involved in signal transduction, development and pathological processes such as tumorigenesis, metastasis and heart failure. In this study, we report a 1.25 Å resolution structure of human homohexameric NDPK-C bound to ADP and describe the yet unknown complexes formed with GDP, UDP and cAMP, all obtained at a high resolution via X-ray crystallography. Each nucleotide represents a distinct group of mono- or diphosphate purine or pyrimidine bases. We analyzed different NDPK-C nucleotide complexes in the presence and absence of Mg and explain how this ion plays an essential role in NDPKs' phosphotransferase activity. By analyzing a nucleotide-depleted NDPK-C structure, we detected conformational changes upon substrate binding and identify flexible regions in the substrate binding site. A comparison of NDPK-C with other human isoforms revealed a strong similarity in the overall composition with regard to the 3D structure, but significant differences in the charge and hydrophobicity of the isoforms' surfaces. This may play a role in isoform-specific NDPK interactions with ligands and/or important complex partners like other NDPK isoforms, as well as monomeric and heterotrimeric G proteins. Considering the recently discovered role of NDPK-C in different pathologies, these high-resolution structures thus might provide a basis for interaction studies with other proteins or small ligands, like activators or inhibitors.
核苷二磷酸激酶(NDPKs)由 个基因编码,存在多种同工型。基于与其他蛋白质的相互作用,它们参与信号转导、发育和病理过程,如肿瘤发生、转移和心力衰竭。在这项研究中,我们报告了人源同六聚体 NDPK-C 与 ADP 结合的 1.25 Å 分辨率结构,并描述了通过 X 射线晶体学以高分辨率获得的与 GDP、UDP 和 cAMP 形成的未知复合物。每个核苷酸代表嘌呤或嘧啶碱基的单或二磷酸化的不同基团。我们分析了 NDPK-C 核苷酸复合物在有或没有 Mg 的情况下的不同状态,并解释了该离子如何在 NDPKs 的磷酸转移酶活性中发挥重要作用。通过分析核苷酸耗尽的 NDPK-C 结构,我们在底物结合时检测到构象变化,并确定底物结合位点的柔性区域。与其他人类同工型的比较表明,尽管在整体组成上与 3D 结构具有很强的相似性,但同工型表面的电荷和疏水性存在显著差异。这可能在同工型特异性 NDPK 与配体和/或其他 NDPK 同工型、单体和异三聚体 G 蛋白等重要复合物伙伴的相互作用中发挥作用。考虑到 NDPK-C 在不同病理中的新发现作用,这些高分辨率结构因此可能为与其他蛋白质或小分子配体(如激活剂或抑制剂)的相互作用研究提供基础。