AI Article Synopsis

  • - CLC transporters facilitate the exchange of chloride (Cl(-)) ions for protons (H(+)) by undergoing conformational changes, but previous understanding was limited to small structural shifts observed via crystallography.
  • - Researchers used (13)C-methyl NMR to study how binding H(+) influences larger conformational changes in the CLC proteins, focusing on specific methyl labels on methionine, lysine, and engineered cysteine residues.
  • - The study found that the conformational changes connected to H(+) binding mainly occur in Helix R, which plays a critical role in regulating the chloride ion pathway, suggesting a mechanism where H(+) binding helps close the access route for Cl(-).

Article Abstract

CLC transporters catalyze the exchange of Cl(-) for H(+) across cellular membranes. To do so, they must couple Cl(-) and H(+) binding and unbinding to protein conformational change. However, the sole conformational changes distinguished crystallographically are small movements of a glutamate side chain that locally gates the ion-transport pathways. Therefore, our understanding of whether and how global protein dynamics contribute to the exchange mechanism has been severely limited. To overcome the limitations of crystallography, we used solution-state (13)C-methyl NMR with labels on methionine, lysine, and engineered cysteine residues to investigate substrate (H(+)) dependent conformational change outside the restraints of crystallization. We show that methyl labels in several regions report H(+)-dependent spectral changes. We identify one of these regions as Helix R, a helix that extends from the center of the protein, where it forms the part of the inner gate to the Cl(-)-permeation pathway, to the extracellular solution. The H(+)-dependent spectral change does not occur when a label is positioned just beyond Helix R, on the unstructured C-terminus of the protein. Together, the results suggest that H(+) binding is mechanistically coupled to closing of the intracellular access-pathway for Cl(-).

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4398623PMC
http://dx.doi.org/10.1007/s10858-015-9898-7DOI Listing

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