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Dephosphorylation and ion binding in prokaryotic calcium transport
Architecture et Fonction des Macromolécules Biologiques (AFMB), Aix-Marseille Université, Marseille, France.ORCID iD: 0000-0001-7133-6933
Umeå University, Faculty of Science and Technology, Department of Chemistry.ORCID iD: 0000-0002-0706-7414
Umeå University, Faculty of Science and Technology, Department of Chemistry.
ESRF, The European Synchrotron CS40220, Grenoble, France.
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2024 (English)In: Science Advances, E-ISSN 2375-2548, Vol. 10, article id eadp2916Article in journal (Refereed) Published
Abstract [en]

Calcium (Ca2+) signaling is fundamental to cellular processes in both eukaryotic and prokaryotic organisms. While the mechanisms underlying eukaryotic Ca2+ transport are well documented, an understanding of prokaryotic transport remains nascent. LMCA1, a Ca2+ adenosine triphosphatase (ATPase) from Listeria monocytogenes, has emerged as a prototype for elucidating structure and dynamics in prokaryotic Ca2+ 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 Ca2+-bound E1 state showed ion coordination by Asp720, Asn716, and Glu292. 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 Ca2+ ATPase transport systems and positions LMCA1 as a promising drug target for developing antimicrobial strategies.

Place, publisher, year, edition, pages
American Association for the Advancement of Science (AAAS), 2024. Vol. 10, article id eadp2916
National Category
Biochemistry Molecular Biology Physical Chemistry
Identifiers
URN: urn:nbn:se:umu:diva-231318DOI: 10.1126/sciadv.adp2916ISI: 001354405400007Scopus ID: 2-s2.0-85207066103OAI: oai:DiVA.org:umu-231318DiVA, id: diva2:1910298
Funder
The Kempe Foundations, JCK-1918Swedish Research Council, 2020-03840
Note

Chemical Biology Consortium Sweden (CBCS) Umeå

Available from: 2024-11-04 Created: 2024-11-04 Last updated: 2026-03-30Bibliographically approved
In thesis
1. Characterizing ATP-dependent protein structural dynamics in solution
Open this publication in new window or tab >>Characterizing ATP-dependent protein structural dynamics in solution
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Alternative title[sv]
Karaktärisering av ATP-beroende strukturell proteindynamik i lösning
Abstract [en]

Proteins are dynamic molecules whose function depends on structural changes that occur over a broad range of timescales. Protein motions can be linked to important functionalities such as ligand binding, catalysis, transport and regulation. To understand such processes, it is necessary to go beyond determination of static structures and follow protein conformational changes in time. The work presented in this thesis focuses on ATP-dependent protein dynamics in solution using time-resolved X-ray solution scattering (TR-XSS), combined with molecular dynamics-based structural refinement and ensemble analysis. 

A detector readout-based TR-XSS setup was established using adenylate kinase (AdK) as a model system (Paper I). AdK is a soluble protein that carries out the interconversion of ATP, AMP and ADP, helping the cell balance adenine nucleotide levels. Using laser-induced release of caged-ATP, we collected time-resolved scattering data at a general-purpose synchrotron beamline, and the radiation damage, and data quality was evaluated. Although the temporal resolution was lower than what can be achieved at dedicated time-resolved beamlines, the setup enabled detection of structural changes on the millisecond timescale and provided a promising and accessible workflow for TR-XSS measurements.

Then we proceeded to investigate conformational heterogeneity and ATP-induced domain motions in AdK (Paper III). Ensemble based refinement was applied to time-resolved difference scattering data, showing that AdK exists as a heterogeneous conformational ensemble in solution. This ensemble shifts towards catalytically active conformations after ATP release. In later work (Paper IV), an application of an improved ATP releasing strategy, combined with TR-XSS and metadynamics-derived structure pools enabled us to resolve conformational changes in the microsecond range. These results showed that the substrate binding domains of AdK do not close simultaneously but follow a defined sequence of events and reach the closed state of the enzyme on a sub-millisecond timescale.

The final part of the work focused on a bacterial Ca2+ ATPase (LMCA1). We used TR-XSS combined with targeted molecular dynamics to investigate ATP-dependent structural changes in LMCA1 (Paper II). The results identified that phosphorylation is the rate-limiting step of the Ca2+ transport cycle.

Overall, this thesis demonstrates that TR-XSS, when combined with simulation-based structural refinement, is a powerful methodology for the study of structural dynamics in solution and makes a contribution to the characterization of ATP-driven protein function.

Place, publisher, year, edition, pages
Umeå: Umeå University, 2026. p. 76
National Category
Biophysics
Research subject
Physical Chemistry
Identifiers
urn:nbn:se:umu:diva-251554 (URN)978-91-8070-975-0 (ISBN)978-91-8070-976-7 (ISBN)
Public defence
2026-04-24, Aula Biologica, Linnaeus väg 7, 907 36 Umeå, Umeå, 09:00 (English)
Opponent
Supervisors
Available from: 2026-04-02 Created: 2026-03-30 Last updated: 2026-04-02Bibliographically approved

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Prabudiansyah, IrfanOrädd, FredrikMagkakis, KonstantinosAndersson, Magnus

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