传递p型atp酶的过渡金属:末端金属结合域作为自抑制尾部的传感器。

Qiaoxia Hu, Oleg Sitsel, Viktoria Bågenholm, Christina Grønberg, Pin Lyu, Anna Sigrid Pii Svane, Kasper Røjkjær Andersen, Nick Stub Laursen, Gabriele Meloni, Poul Nissen, Dennis W Juhl, Jakob Toudahl Nielsen, Niels Chr Nielsen, Pontus Gourdon
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引用次数: 0

摘要

铜是一种必需的微量营养素,但浓度过高时对细胞有很高的毒性。p1b - atp酶蛋白对这种调节至关重要,提供跨细胞膜的主动挤压。与其他p型atp酶相比,p1b - atp酶的一个独特分子适应性是在细胞质末端存在金属结合结构域(MBDs),但其机制作用尚不清楚。在这里,我们展示了无金属和金属结合形式的原型Cu+特异性p1b - atp酶LpCopA的MBD结构,使用核磁共振测定。MBD由一个柔性的尾部和一个结构核心组成,核心上有一个由三个硫原子定义的金属离子结合位点,其中一个与所谓的CXXC基序有关。此外,我们证明MBD不是参与离子传递,而是发挥调节作用,这取决于经典的p型atp酶E1-E2转运机制。具体来说,柔性尾部似乎负责自抑制,而金属结合核心用于铜感应。该模型被构象敏感和靶向mbd的纳米体验证,该纳米体可以在结构和功能上取代柔性尾巴。我们提出在低铜条件下,通过MBD介导的对atp酶核心可溶性结构域的干扰,Cu+- atp酶发生自抑制,而当铜水平升高时,通过金属诱导的MBD解离,金属运输得以实现。这使得p1b - atp酶“真空吸尘器”可以调整自己的活动,平衡细胞中关键微量营养素的水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transition metal transporting P-type ATPases: terminal metal-binding domains serve as sensors for autoinhibitory tails.

Copper is an essential micronutrient and yet is highly toxic to cells at elevated concentrations. P1B-ATPase proteins are critical for this regulation, providing active extrusion across cellular membranes. One unique molecular adaptation of P1B-ATPases compared to other P-type ATPases is the presence of metal-binding domains (MBDs) at the cytosolic termini, which however are poorly characterized with an elusive mechanistic role. Here we present the MBD architecture in metal-free and metal-bound forms of the archetype Cu+-specific P1B-ATPase LpCopA, determined using NMR. The MBD is composed of a flexible tail and a structured core with a metal ion binding site defined by three sulfur atoms, one of which is pertinent to the so-called CXXC motif. Furthermore, we demonstrate that the MBD rather than being involved in ion delivery likely serves a regulatory role, which is dependent on the classical P-type ATPase E1-E2 transport mechanism. Specifically, the flexible tail appears responsible for autoinhibition while the metal-binding core is used for copper sensing. This model is validated by a conformation-sensitive and MBD-targeting nanobody that can structurally and functionally replace the flexible tail. We propose that autoinhibition of Cu+-ATPases occurs at low copper conditions via MBD-mediated interference with the soluble domains of the ATPase core and that metal transport is enabled when copper levels rise, through metal-induced dissociation of the MBD. This allows P1B-ATPase 'vacuum cleaners' to tune their own activity, balancing the levels of critical micronutrients in the cells.

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