Department of Biomedical Sciences, Copenhagen University, Maersk Tower 7-9, Nørre Allé 14, DK-2200, Copenhagen, Denmark.
Department of Chemistry and Biochemistry, The University of Texas at Dallas, 800W Campbell Rd., Richardson, TX, 75080, USA.
Nat Commun. 2022 Aug 31;13(1):5121. doi: 10.1038/s41467-022-32751-w.
Copper is essential for living cells, yet toxic at elevated concentrations. Class 1B P-type (P-) ATPases are present in all kingdoms of life, facilitating cellular export of transition metals including copper. P-type ATPases follow an alternating access mechanism, with inward-facing E1 and outward-facing E2 conformations. Nevertheless, no structural information on E1 states is available for P-ATPases, hampering mechanistic understanding. Here, we present structures that reach 2.7 Å resolution of a copper-specific P-ATPase in an E1 conformation, with complementing data and analyses. Our efforts reveal a domain arrangement that generates space for interaction with ion donating chaperones, and suggest a direct Cu transfer to the transmembrane core. A methionine serves a key role by assisting the release of the chaperone-bound ion and forming a cargo entry site together with the cysteines of the CPC signature motif. Collectively, the findings provide insights into P-mediated transport, likely applicable also to human P-members.
铜对于活细胞是必需的,但在浓度升高时会产生毒性。1B 类 P 型(P-)ATP 酶存在于所有生命领域,促进包括铜在内的过渡金属的细胞输出。P 型 ATP 酶遵循交替访问机制,具有内向 E1 和外向 E2 构象。然而,对于 P-ATP 酶,没有关于 E1 态的结构信息,这阻碍了对其机制的理解。在这里,我们提出了一个结构,其分辨率达到了 2.7Å,该结构为 E1 构象的铜特异性 P-ATP 酶,同时还提供了补充的数据和分析。我们的努力揭示了一种结构排列,它为与供能伴侣蛋白的相互作用创造了空间,并提出了一种直接将铜转移到跨膜核心的方法。一个蛋氨酸通过协助释放伴侣蛋白结合的离子并与 CPC 特征模体的半胱氨酸一起形成货物进入位点,起到了关键作用。总的来说,这些发现为 P 介导的运输提供了深入的了解,可能也适用于人类 P 成员。