Dephosphorylation and ion binding in prokaryotic calcium transport.

Prabudiansyah, Irfan; Orädd, Fredrik; Magkakis, Konstantinos; Pounot, Kevin; Levantino, Matteo; Andersson, Magnus · Sci Adv · 2024

basic_science · Level V

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Abstract

Calcium (Ca<sup>2+</sup>) signaling is fundamental to cellular processes in both eukaryotic and prokaryotic organisms. While the mechanisms underlying eukaryotic Ca<sup>2+</sup> transport are well documented, an understanding of prokaryotic transport remains nascent. LMCA1, a Ca<sup>2+</sup> adenosine triphosphatase (ATPase) from <i>Listeria monocytogenes</i>, has emerged as a prototype for elucidating structure and dynamics in prokaryotic Ca<sup>2+</sup> transport. Here, we used a multidisciplinary approach integrating kinetics, structure, and dynamics to unravel the intricacies of LMCA1 function. A cryo-electron microscopy (cryo-EM) structure of a Ca<sup>2+</sup>-bound E1 state showed ion coordination by Asp<sup>720</sup>, Asn<sup>716</sup>, and Glu<sup>292</sup>. Time-resolved x-ray solution scattering experiments identified phosphorylation as the rate-determining step. A cryo-EM E2P state structure exhibited remarkable similarities to a SERCA1a E2-P* state, which highlights the essential role of the unique P-A domain interface in enhancing dephosphorylation rates and reconciles earlier proposed mechanisms. Our study underscores the distinctiveness between eukaryotic and prokaryotic Ca<sup>2+</sup> ATPase transport systems and positions LMCA1 as a promising drug target for developing antimicrobial strategies.

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