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Updated: Dec 26, 2025

Chemical Modification of the Tryptophan Residue in a Recombinant Ca2+-ATPase N-domain for Studying Tryptophan-ANS FRET
Published on: October 9, 2021
ANS Interacts with the Ca2+-ATPase Nucleotide Binding Site
Valentín De la Cruz-Torres1, Yolanda Cataño1, Montserrat Olivo-Rodríguez1
1Instituto de Física, Universidad Autónoma de San Luis Potosí, Manuel Nava 6, Zona Universitaria, C.P, 78290, San Luis Potosí, SLP, Mexico.
8-anilino-1-naphthalene sulfonate (ANS) binds to the Ca2+-ATPase nucleotide binding domain, acting as a fluorescent probe. This interaction reveals structural changes and suggests ANS as a potential inhibitor and probe for Ca2+-ATPase.
Area of Science:
- Biochemistry
- Molecular Biology
- Biophysics
Background:
- The sarcoplasmic reticulum Ca2+-ATPase (SERCA) is crucial for muscle contraction.
- Understanding its nucleotide binding domain (N-domain) is key to SERCA function.
- 8-anilino-1-naphthalene sulfonate (ANS) is a fluorescent probe often used to study protein interactions.
Purpose of the Study:
- To investigate the binding of ANS to the N-domain of SERCA.
- To characterize the binding modes and affinity of ANS.
- To explore the potential of ANS as a fluorescent probe and inhibitor for SERCA.
Main Methods:
- Molecular docking simulations to predict binding modes.
- Fluorescence spectroscopy to confirm ANS binding and interaction.
- Molecular dynamics simulations to assess binding stability.
- Förster Resonance Energy Transfer (FRET) analysis.
- Chemical modification (NBS) to probe structural changes.
- Enzyme kinetics assays (Dixon plot) to determine inhibition type.
Main Results:
- Molecular docking identified two potential binding modes (BMI and BMII) for ANS.
- ANS fluorescence intensity increased upon binding to the N-domain, confirming interaction.
- Molecular dynamics simulations indicated BMI, occupying the ATP site, is the stable mode.
- ANS binding hindered FITC labeling, suggesting occupation of the ATP binding site.
- ANS showed a higher affinity for the N-domain than ATP.
- FRET analysis suggested a Trp-ANS interaction, but NBS modification indicated structural rearrangements instead of FRET.
- ANS exhibited partial mixed-type inhibition of Ca2+-ATPase activity.
- Dixon plot analysis supported the existence of a catalytically active dimeric Ca2+-ATPase.
Conclusions:
- ANS binds to the ATP binding site of the SERCA N-domain with high affinity.
- ANS binding induces structural rearrangements within the nucleotide binding site.
- ANS serves as a valuable fluorescent probe for studying SERCA's nucleotide binding site.
- ANS shows potential as a molecular platform for developing novel Ca2+-ATPase inhibitors.
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