Conformational free-energy landscapes of a Na<sup>+</sup>/Ca<sup>2+</sup> exchanger explain its alternating-access mechanism and functional specificity.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 38588414.
- Also identified by DOI 10.1073/pnas.2318009121 and PMC identifier 11032461.
- 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
Secondary-active transporters catalyze the movement of myriad substances across all cellular membranes, typically against opposing concentration gradients, and without consuming any ATP. To do so, these proteins employ an intriguing structural mechanism evolved to be activated only upon recognition or release of the transported species. We examine this self-regulated mechanism using a homolog of the cardiac Na<sup>+</sup>/Ca<sup>2+</sup> exchanger as a model system. Using advanced computer simulations, we map out the complete functional cycle of this transporter, including unknown conformations that we validate against existing experimental data. Calculated free-energy landscapes reveal why this transporter functions as an antiporter rather than a symporter, why it specifically exchanges Na<sup>+</sup> and Ca<sup>2+</sup>, and why the stoichiometry of this exchange is exactly 3:1. We also rationalize why the protein does not exchange H<sup>+</sup> for either Ca<sup>2+</sup> or Na<sup>+</sup>, despite being able to bind H<sup>+</sup> and its high similarity with H<sup>+</sup>/Ca<sup>2+</sup> exchangers. Interestingly, the nature of this transporter is not explained by its primary structural states, known as inward- and outward-open conformations; instead, the defining factor is the feasibility of conformational intermediates between those states, wherein access pathways leading to the substrate binding sites become simultaneously occluded from both sides of the membrane. This analysis offers a physically coherent, broadly transferable route to understand the emergence of function from structure among secondary-active membrane transporters.
Medical subject headings
- Sodium-Calcium Exchanger
- Antiporters