Acidic residues involved in cation and substrate interactions in the Na+/dicarboxylate cotransporter, NaDC-1
1Department of Physiology and Biophysics, University of Texas Medical Branch, Galveston 77555-0641, USA.
Abstract:
The role of acidic amino acid residues in cation recognition and selectivity by the Na+/dicarboxylate cotransporter, NaDC-1, was investigated by site-directed mutagenesis and expression in Xenopus oocytes. Four of the residues tested, Asp-52, Glu-74, Glu-101, and Glu-332, were found to be unimportant for transport activity. However, substitutions of Asp-373 and Glu-475, conserved residues found in transmembrane domains M8 and M9, respectively, altered transport kinetics. Replacements of Asp-373 with Ala, Glu, Asn, and Gln resulted in changes in sodium affinity and cation selectivity in NaDC-1, indicating that the carbonyl oxygen at this position may play a role in the topological organization of the cation-binding site. In contrast, substitutions of Glu-475 led to dramatic reductions in transport activity and changes in transport kinetics. Substitution with Gln led to a transporter with increased substrate and sodium affinity, while the E475D mutant was inactive. The E475A mutant appeared to have poor sodium binding. Substrate-induced currents in the E475A mutant exhibited a strong voltage dependence, and a reversal of the current was seen at -30 mV. The results suggest that Glu-475 may play a role in cation binding and possibly also in mediating anion channel activity. Remarkably, mutations of both Asp-373 and Glu-475 affected the Km for succinate in NaDC-1, suggesting dual roles for these residues in determining the affinity for substrate and cations. We propose that at least one of the cation-binding sites and the substrate-binding site are close together in the carboxy-terminal portion of NaDC-1, and thus transmembrane domains M8 and M9 are candidate structures for the formation of the translocation pathway.
Insights
Acidic residues Asp-373 and Glu-475 are crucial for NaDC-1 function, impacting sodium binding, substrate affinity, and transport kinetics. Mutations reveal their roles in cation recognition and the transporter
Area of Science:
- Biochemistry
- Molecular Biology
- Membrane Transport
Background:
- The Na+/dicarboxylate cotransporter (NaDC-1) is vital for cellular nutrient uptake.
- Understanding the molecular mechanisms of NaDC-1, particularly cation recognition and selectivity, is essential for elucidating its physiological roles.
Purpose of the Study:
- To investigate the role of acidic amino acid residues in cation recognition and selectivity by NaDC-1.
- To identify specific residues critical for NaDC-1 transport activity and kinetics through site-directed mutagenesis.
Main Methods:
- Site-directed mutagenesis was employed to alter specific acidic amino acid residues in NaDC-1.
- Mutated NaDC-1 transporters were expressed in Xenopus oocytes for functional analysis.
- Transport kinetics, sodium affinity, and cation selectivity were assessed for wild-type and mutant transporters.
Main Results:
- Asp-373 and Glu-475, located in transmembrane domains M8 and M9, are critical for NaDC-1 function.
- Mutations at Asp-373 altered sodium affinity and cation selectivity, suggesting its role in cation-binding site organization.
- Substitutions at Glu-475 significantly reduced transport activity and altered kinetics, with some mutants showing altered substrate and sodium affinity, indicating a role in cation binding and potential anion channel activity.
Conclusions:
- Asp-373 and Glu-475 play distinct yet crucial roles in NaDC-1 function, influencing both cation and substrate binding.
- These residues, particularly Glu-475, are implicated in the structural organization of the translocation pathway.
- The findings suggest proximity between cation and substrate binding sites within the carboxy-terminal region, involving transmembrane domains M8 and M9.
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