Structure and ion-release mechanism of P<sub>IB-4</sub>-type ATPases.

Grønberg, Christina; Hu, Qiaoxia; Mahato, Dhani Ram; Longhin, Elena; Salustros, Nina; Duelli, Annette; Lyu, Pin; Bågenholm, Viktoria et al. · Elife · 2021

basic_science · Level V

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Abstract

Transition metals, such as zinc, are essential micronutrients in all organisms, but also highly toxic in excessive amounts. Heavy-metal transporting P-type (P<sub>IB</sub>) ATPases are crucial for homeostasis, conferring cellular detoxification and redistribution through transport of these ions across cellular membranes. No structural information is available for the P<sub>IB-4</sub>-ATPases, the subclass with the broadest cargo scope, and hence even their topology remains elusive. Here, we present structures and complementary functional analyses of an archetypal P<sub>IB-4</sub>-ATPase, sCoaT from <i>Sulfitobacter</i> sp. NAS14-1. The data disclose the architecture, devoid of classical so-called heavy-metal-binding domains (HMBDs), and provide fundamentally new insights into the mechanism and diversity of heavy-metal transporters. We reveal several novel P-type ATPase features, including a dual role in heavy-metal release and as an internal counter ion of an invariant histidine. We also establish that the turnover of P<sub>IB</sub>-ATPases is potassium independent, contrasting to many other P-type ATPases. Combined with new inhibitory compounds, our results open up for efforts in for example drug discovery, since P<sub>IB-4</sub>-ATPases function as virulence factors in many pathogens.

Medical subject headings