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Updated: Mar 20, 2026

Chemical Modification of the Tryptophan Residue in a Recombinant Ca2+-ATPase N-domain for Studying Tryptophan-ANS FRET
Published on: October 9, 2021
Role of the tryptophan residues in proton-coupled folate transporter (PCFT-SLC46A1) function
Mitra Najmi1, Rongbao Zhao2, Andras Fiser3
1Department of Molecular Pharmacology, Albert Einstein College of Medicine, Bronx, New York;
Insights
The proton-coupled folate transporter (PCFT) has seven tryptophan residues. Six are accessible, but only W299 is crucial for function, interacting with the lipid membrane during folate transport.
Area of Science:
- Biochemistry
- Molecular Biology
- Membrane Transport
Background:
- The proton-coupled folate transporter (PCFT) is essential for folate absorption in the small intestine and transport into the cerebrospinal fluid.
- Understanding PCFT's structure-function relationship is key to optimizing folate uptake and drug delivery.
Purpose of the Study:
- To investigate the functional significance and accessibility of seven tryptophan (Trp) residues in the PCFT.
- To elucidate the role of specific Trp residues in PCFT's interaction with its environment and its transport function.
Main Methods:
- Substituted-cysteine accessibility method was employed to probe Trp residue accessibility and function.
- Mutagenesis of Trp residues to Cysteine (Cys) followed by accessibility assays using biotinylation reagents.
- Functional analysis of PCFT mutants, including kinetic studies of pemetrexed influx.
Main Results:
- Six of seven Trp residues tolerated Cys substitution, indicating accessibility at a lipid-aqueous interface.
- W48C and W299C were extracellular, while W107C and W333C were intracellular.
- Mutation of W299 to Serine (W299S) significantly impaired PCFT function, reducing Vmax and altering kinetic parameters (Kt, Ki) for pemetrexed influx.
- W299's hydrophobicity is critical, suggesting interaction with the lipid membrane during the transport cycle.
Conclusions:
- The hydrophobicity of W299 is vital for PCFT function, likely through membrane interaction.
- PCFT's transport cycle involves dynamic conformational changes influenced by residue interactions with the lipid bilayer.
- Targeting specific residues like W299 could modulate PCFT activity for therapeutic purposes.
Abstract:
The proton-coupled folate transporter (PCFT) mediates folate absorption across the brush-border membrane of the proximal small intestine and is required for folate transport across the choroid plexus into the cerebrospinal fluid. In this study, the functional role and accessibility of the seven PCFT Trp residues were assessed by the substituted-cysteine accessibility method. Six Trp residues at a lipid-aqueous interface tolerated Cys substitution in terms of protein stability and function. W85C, W202C, and W213C were accessible to N-biotinyl aminoethylmethanethiosulfonate; W48C and W299C were accessible only after treatment with dithiotreitol (DTT), consistent with modification of these residues by an endogenous thiol-reacting molecule and their extracellular location. Neither W107C nor W333C was accessible (even after DTT) consistent with their cytoplasmic orientation. Biotinylation was blocked by pemetrexed only for the W48C (after DTT), W85C, W202C residues. Function was impaired only for the W299C PCFT mutant located in the 4th external loop between the 7th and 8th transmembrane helices. Despite its aqueous location, function could only be fully preserved with Phe and, to a lesser extent, Ala substitutions. There was a 6.5-fold decrease in the pemetrexed influx Vmax and a 3.5- and 6-fold decrease in the influx Kt and Ki, respectively, for the W299S PCFT. The data indicate that the hydrophobicity of the W299 residue is important for function suggesting that during the transport cycle this residue interacts with the lipid membrane thereby impacting on the oscillation of the carrier and, indirectly, on the folate binding pocket.
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