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Asymmetric Preorganization of Inverted Pair Residues in the Sodium-Calcium Exchanger
M. Giladi, L. Almagor, L. van Dijk, R. Hiller, P. Man, E. Forest, D. Khananshvili,
Language English Country England, Great Britain
Document type Journal Article, Research Support, Non-U.S. Gov't, Research Support, U.S. Gov't, Non-P.H.S.
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PubMed
26876271
DOI
10.1038/srep20753
Knihovny.cz E-resources
- MeSH
- Archaeal Proteins chemistry genetics metabolism MeSH
- Escherichia coli genetics metabolism MeSH
- Gene Expression MeSH
- Mass Spectrometry MeSH
- Protein Interaction Domains and Motifs MeSH
- Ion Transport MeSH
- Catalytic Domain MeSH
- Hydrogen-Ion Concentration MeSH
- Methanocaldococcus chemistry genetics metabolism MeSH
- Models, Molecular MeSH
- Sodium-Calcium Exchanger chemistry genetics metabolism MeSH
- Recombinant Proteins chemistry genetics metabolism MeSH
- Protein Folding MeSH
- Protein Structure, Secondary MeSH
- Amino Acid Sequence MeSH
- Sodium chemistry metabolism MeSH
- Calcium chemistry metabolism MeSH
- Protein Binding MeSH
- Deuterium Exchange Measurement MeSH
- Structure-Activity Relationship MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Research Support, U.S. Gov't, Non-P.H.S. MeSH
In analogy with many other proteins, Na(+)/Ca(2+) exchangers (NCX) adapt an inverted twofold symmetry of repeated structural elements, while exhibiting a functional asymmetry by stabilizing an outward-facing conformation. Here, structure-based mutant analyses of the Methanococcus jannaschii Na(+)/Ca(2+) exchanger (NCX_Mj) were performed in conjunction with HDX-MS (hydrogen/deuterium exchange mass spectrometry) to identify the structure-dynamic determinants of functional asymmetry. HDX-MS identified hallmark differences in backbone dynamics at ion-coordinating residues of apo-NCX_Mj, whereas Na(+)or Ca(2+) binding to the respective sites induced relatively small, but specific, changes in backbone dynamics. Mutant analysis identified ion-coordinating residues affecting the catalytic capacity (kcat/Km), but not the stability of the outward-facing conformation. In contrast, distinct "noncatalytic" residues (adjacent to the ion-coordinating residues) control the stability of the outward-facing conformation, but not the catalytic capacity. The helix-breaking signature sequences (GTSLPE) on the α1 and α2 repeats (at the ion-binding core) differ in their folding/unfolding dynamics, while providing asymmetric contributions to transport activities. The present data strongly support the idea that asymmetric preorganization of the ligand-free ion-pocket predefines catalytic reorganization of ion-bound residues, where secondary interactions with adjacent residues couple the alternating access. These findings provide a structure-dynamic basis for ion-coupled alternating access in NCX and similar proteins.
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