Daab, Andrew, Li, Yan, Marden, Jennifer J., Song, Jinmei, Sauer, David B., Wang, Da-Neng, Mulligan, Christopher (2026) Functional role of a structural water in the elevator domain of dicarboxylate transporter VcINDY. PNAS Nexus, . E-ISSN 2752-6542. (doi:10.1093/pnasnexus/pgag242) (KAR id:115762)
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| Official URL: https://doi.org/10.1093/pnasnexus%2Fpgag242 |
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Abstract
The divalent anion sodium symporter (DASS) family mediates the uptake of Krebs cycle intermediates and sulfate, and influences adiposity, insulin resistance, and metabolism in mammals. While Na+:substrate stoichiometry is known for several DASS transporters, the location of key Na+ binding sites remains elusive; important information for understanding the mechanism. In VcINDY, a bacterial DASS protein, we visualized a non-protein cryo-EM density in the middle of the transport domain. Its size and coordination suggest it may represent either a third Na+ ion or a structural water molecule. Using a combination of in vitro binding and transport assays, cryo-EM structural determination and molecular dynamic simulations, we show that the density is not a Na+ ion. Instead, the data indicate that the density likely represents a structural water molecule critical for transport domain integrity. Sequence and structural similarities suggest this feature may be conserved across human DASS transporters such as NaCT and NaDC3.
| Item Type: | Article |
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| DOI/Identification number: | 10.1093/pnasnexus/pgag242 |
| Subjects: | Q Science > QP Physiology (Living systems) > QP517 Biochemistry |
| Institutional Unit: | Schools > School of Natural Sciences > Biosciences |
| Former Institutional Unit: |
There are no former institutional units.
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| Funders: | University of Kent (https://ror.org/00xkeyj56) |
| Depositing User: | Christopher Mulligan |
| Date Deposited: | 16 Jul 2026 10:31 UTC |
| Last Modified: | 17 Jul 2026 08:21 UTC |
| Resource URI: | https://kar.kent.ac.uk/id/eprint/115762 (The current URI for this page, for reference purposes) |
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https://orcid.org/0009-0006-9320-7378
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