Divergent Cl<sup>-</sup> and H<sup>+</sup> pathways underlie transport coupling and gating in CLC exchangers and channels.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 32343228.
- Also identified by DOI 10.7554/eLife.51224 and PMC identifier 7274781.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The CLC family comprises H<sup>+</sup>-coupled exchangers and Cl<sup>-</sup> channels, and mutations causing their dysfunction lead to genetic disorders. The CLC exchangers, unlike canonical 'ping-pong' antiporters, simultaneously bind and translocate substrates through partially congruent pathways. How ions of opposite charge bypass each other while moving through a shared pathway remains unknown. Here, we use MD simulations, biochemical and electrophysiological measurements to identify two conserved phenylalanine residues that form an aromatic pathway whose dynamic rearrangements enable H<sup>+</sup> movement outside the Cl<sup>-</sup> pore. These residues are important for H<sup>+</sup> transport and voltage-dependent gating in the CLC exchangers. The aromatic pathway residues are evolutionarily conserved in CLC channels where their electrostatic properties and conformational flexibility determine gating. We propose that Cl<sup>-</sup> and H<sup>+</sup> move through physically distinct and evolutionarily conserved routes through the CLC channels and transporters and suggest a unifying mechanism that describes the gating mechanism of both CLC subtypes.
Medical subject headings
- Antiporters
- Chloride Channels
- Chlorides
- Ion Channel Gating
- Ion Transport