Structural and functional insights into a Zn2+-transporting P-type ATPase

Abstract Zinc is essential for life yet toxic in excess, rendering homeostatic control vital for all organisms. Transition metal transporting P-type (P IB -) ATPase proteins are critical for this balance but remain poorly understood at the molecular level. Here, we present the inward-open structure of a dimeric zinc-transporting P IB -type ATPase, resolved at 3.6 Å resolution. Biochemical analyses and molecular dynamics simulations suggest that the N-terminal tail, harboring two so-called metal binding domains (MBDs), auto-inhibits the ATPase core and serves as a metal-sensitive sensor, releasing inhibition when intracellular metal levels rise. Contrary to the prevailing uptake models, the structure reveals an electronegatively charged uptake region that directly exposes a metal-binding cysteine of the invariant CPC-motif. We propose that a histidine-rich segment, positioned after the MBD closest to the core, donates ions to the CPC site. Consequently, an intricate interplay between the regulatory and ion-providing N-terminus and the ATPase core is present, safeguarding against zinc toxicity. Collectively, our findings shed light on the regulation and transport mechanism of P IB -ATPases, with implications for fundamental biology and the potential to inform future biotechnological and translational applications.

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Publication Details

Journal
Nature Communications
Published
2026-09-16
DOI
https://doi.org/10.1038/s41467-026-77558-1
Primary Topic
Trace Elements in Health
Type
article
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article

Structural and functional insights into a Zn2+-transporting P-type ATPase

Pin Lyu, Gabriele Meloni, Tristan I. Croll, Viktoria Bågenholm et al.
Nature Communications
Trace Elements in Health
article

Structural and functional insights into a Zn2+-transporting P-type ATPase

Pin Lyu, Gabriele Meloni, Tristan I. Croll, Viktoria Bågenholm, Elena Longhin, Hajira Ahmed Hotiana, Magnus Andersson, Fernando Videgaray Ortega, Eva Ramos Becares, Kaituo Wang, Tamim Al-Jubair, Pontus Gourdon, Fatemeh Sabzian‐Molaei, Ping Li, Annette Duelli
article en

Abstract

Abstract Zinc is essential for life yet toxic in excess, rendering homeostatic control vital for all organisms. Transition metal transporting P-type (P IB -) ATPase proteins are critical for this balance but remain poorly understood at the molecular level. Here, we present the inward-open structure of a dimeric zinc-transporting P IB -type ATPase, resolved at 3.6 Å resolution. Biochemical analyses and molecular dynamics simulations suggest that the N-terminal tail, harboring two so-called metal binding domains (MBDs), auto-inhibits the ATPase core and serves as a metal-sensitive sensor, releasing inhibition when intracellular metal levels rise. Contrary to the prevailing uptake models, the structure reveals an electronegatively charged uptake region that directly exposes a metal-binding cysteine of the invariant CPC-motif. We propose that a histidine-rich segment, positioned after the MBD closest to the core, donates ions to the CPC site. Consequently, an intricate interplay between the regulatory and ion-providing N-terminus and the ATPase core is present, safeguarding against zinc toxicity. Collectively, our findings shed light on the regulation and transport mechanism of P IB -ATPases, with implications for fundamental biology and the potential to inform future biotechnological and translational applications.

Nature Communications
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Trace Elements in Health
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