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丙酮酸激酶的核苷酸选择性的结构基础。

Structural Basis of Nucleotide Selectivity in Pyruvate Kinase.

机构信息

SANKEN, Osaka University, Ibaraki, Osaka 567-0047, Japan; Graduate School of Pharmaceutical Sciences, Osaka University, Suita, Osaka 565-0871, Japan.

SANKEN, Osaka University, Ibaraki, Osaka 567-0047, Japan.

出版信息

J Mol Biol. 2024 Sep 15;436(18):168708. doi: 10.1016/j.jmb.2024.168708. Epub 2024 Jul 14.

Abstract

Nucleoside triphosphates are indispensable in numerous biological processes, with enzymes involved in their biogenesis playing pivotal roles in cell proliferation. Pyruvate kinase (PYK), commonly regarded as the terminal glycolytic enzyme that generates ATP in tandem with pyruvate, is also capable of synthesizing a wide range of nucleoside triphosphates from their diphosphate precursors. Despite their substrate promiscuity, some PYKs show preference towards specific nucleotides, suggesting an underlying mechanism for differentiating nucleotide bases. However, the thorough characterization of this mechanism has been hindered by the paucity of nucleotide-bound PYK structures. Here, we present crystal structures of Streptococcus pneumoniae PYK in complex with four different nucleotides. These structures facilitate direct comparison of the protein-nucleotide interactions and offer structural insights into its pronounced selectivity for GTP synthesis. Notably, this selectivity is dependent on a sequence motif in the nucleotide recognition site that is widely present among prokaryotic PYKs, particularly in Firmicutes species. We show that pneumococcal cell growth is significantly impaired when expressing a PYK variant with compromised GTP and UTP synthesis activity, underscoring the importance of PYK in maintaining nucleotide homeostasis. Our findings collectively advance our understanding of PYK biochemistry and prokaryotic metabolism.

摘要

核苷三磷酸在许多生物过程中不可或缺,参与其生物发生的酶在细胞增殖中起着关键作用。丙酮酸激酶(PYK)通常被认为是一种末端糖酵解酶,与丙酮酸一起生成 ATP,它也能够从它们的二磷酸前体合成广泛的核苷三磷酸。尽管它们的底物具有混杂性,但一些 PYK 对特定的核苷酸表现出偏好,这表明存在一种潜在的机制来区分核苷酸碱基。然而,由于核苷酸结合的 PYK 结构稀缺,对该机制的全面表征受到了阻碍。在这里,我们展示了肺炎链球菌 PYK 与四种不同核苷酸结合的晶体结构。这些结构促进了蛋白质-核苷酸相互作用的直接比较,并提供了其对 GTP 合成的显著选择性的结构见解。值得注意的是,这种选择性依赖于核苷酸识别位点中的一个序列基序,该基序广泛存在于原核 PYK 中,特别是在 Firmicutes 物种中。我们表明,当表达一种 GTP 和 UTP 合成活性受损的 PYK 变体时,肺炎球菌细胞的生长受到显著抑制,这强调了 PYK 在维持核苷酸动态平衡中的重要性。我们的研究结果综合提高了我们对 PYK 生物化学和原核代谢的理解。

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