Deciphering ion transport and ATPase coupling in the intersubunit tunnel of KdpFABC

KdpFABC, a high-affinity K + pump, combines the ion channel KdpA and the P-type ATPase KdpB to secure survival at K + limitation. Here, we apply a combination of cryo-EM, biochemical assays, and MD simulations to illuminate the mechanisms underlying transport and the coupling to ATP hydrolysis. We s...

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Veröffentlicht in:Nature communications 2021-08, Vol.12 (1), p.5098-5098, Article 5098
Hauptverfasser: Silberberg, Jakob M., Corey, Robin A., Hielkema, Lisa, Stock, Charlott, Stansfeld, Phillip J., Paulino, Cristina, Hänelt, Inga
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Sprache:eng
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Zusammenfassung:KdpFABC, a high-affinity K + pump, combines the ion channel KdpA and the P-type ATPase KdpB to secure survival at K + limitation. Here, we apply a combination of cryo-EM, biochemical assays, and MD simulations to illuminate the mechanisms underlying transport and the coupling to ATP hydrolysis. We show that ions are transported via an intersubunit tunnel through KdpA and KdpB. At the subunit interface, the tunnel is constricted by a phenylalanine, which, by polarized cation-π stacking, controls K + entry into the canonical substrate binding site (CBS) of KdpB. Within the CBS, ATPase coupling is mediated by the charge distribution between an aspartate and a lysine. Interestingly, individual elements of the ion translocation mechanism of KdpFABC identified here are conserved among a wide variety of P-type ATPases from different families. This leads us to the hypothesis that KdpB might represent an early descendant of a common ancestor of cation pumps. KdpFABC is a high-affinity bacterial K + pump which combines the ion channel-like KdpA and the P-type ATPase KdpB. Here, the authors elucidate the mechanisms underlying transport and the coupling to ATP hydrolysis, and provide evidence that ions are transported via an intersubunit tunnel through KdpA and KdpB.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-021-25242-x