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核苷二磷酸激酶的结构、折叠和稳定性。

Structure, Folding and Stability of Nucleoside Diphosphate Kinases.

机构信息

Department of Chemistry and Chemical Biology, Northeastern University, Boston, MA 02115, USA.

Department of Neurology, Massachusetts General Hospital and Harvard Medical School, Charlestown, MA 02129, USA.

出版信息

Int J Mol Sci. 2020 Sep 16;21(18):6779. doi: 10.3390/ijms21186779.

Abstract

Nucleoside diphosphate kinases (NDPK) are oligomeric proteins involved in the synthesis of nucleoside triphosphates. Their tridimensional structure has been solved by X-ray crystallography and shows that individual subunits present a conserved ferredoxin fold of about 140 residues in prokaryotes, archaea, eukaryotes and viruses. Monomers are functionally independent from each other inside NDPK complexes and the nucleoside kinase catalytic mechanism involves transient phosphorylation of the conserved catalytic histidine. To be active, monomers must assemble into conserved head to tail dimers, which further assemble into hexamers or tetramers. The interfaces between these oligomeric states are very different but, surprisingly, the assembly structure barely affects the catalytic efficiency of the enzyme. While it has been shown that assembly into hexamers induces full formation of the catalytic site and stabilizes the complex, it is unclear why assembly into tetramers is required for function. Several additional activities have been revealed for NDPK, especially in metastasis spreading, cytoskeleton dynamics, DNA binding and membrane remodeling. However, we still lack the high resolution structural data of NDPK in complex with different partners, which is necessary for deciphering the mechanism of these diverse functions. In this review we discuss advances in the structure, folding and stability of NDPKs.

摘要

核苷二磷酸激酶(NDPK)是参与核苷三磷酸合成的寡聚蛋白。它们的三维结构已通过 X 射线晶体学解决,表明单体在原核生物、古菌、真核生物和病毒中具有约 140 个残基的保守铁氧还蛋白折叠。单体在 NDPK 复合物中彼此独立发挥功能,核苷激酶的催化机制涉及保守催化组氨酸的瞬时磷酸化。为了具有活性,单体必须组装成保守的头对头二聚体,然后进一步组装成六聚体或四聚体。这些寡聚态之间的界面非常不同,但令人惊讶的是,组装结构几乎不影响酶的催化效率。虽然已经表明组装成六聚体诱导完全形成催化位点并稳定复合物,但不清楚为什么组装成四聚体是功能所必需的。已经揭示了 NDPK 的几种其他活性,特别是在转移扩散、细胞骨架动力学、DNA 结合和膜重塑方面。然而,我们仍然缺乏与不同伴侣结合的 NDPK 的高分辨率结构数据,这对于破译这些多样化功能的机制是必要的。在这篇综述中,我们讨论了 NDPK 的结构、折叠和稳定性的进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/109a/7554756/6f79634c0bbf/ijms-21-06779-g002.jpg

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