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Updated: May 30, 2025

Determination of Protein-ligand Interactions Using Differential Scanning Fluorimetry
Published on: September 13, 2014
Spectroscopic and in silico data indicate that phenolic acids interact with aldose reductase with different degrees
Gustavo Caro1, Julieta Swedzky1, Exequiel Ernesto Barrera Guisasola2
1INBIAS-CONICET, Departamento de Biología Molecular, Facultad de Ciencias Exactas, Físico-Químicas y Naturales, Universidad Nacional de Río Cuarto, Río Cuarto, 5800 Córdoba, Argentina.
Abstract:
Our previous studies demonstrated that the enzyme aldose reductase (AR) is activated by its interaction with tubulin, a mechanism which can lead to the emergence of secondary diseases in diabetic patients. We also found that different compounds derived from phenolic acid (CAFs) can prevent this interaction and thus AR activation. Here, we used spectroscopic and bioinformatic techniques to explore the interaction between AR and three CAFs: 3-nitrotyrosine (NTyr), Tyrosine (Tyr), and vanillic acid (Van). The results revealed that the CAFs alter the UV-Vis absorption spectrum of AR and significantly quenchAR fluorescence. These changes suggest the formation of stable AR-CAF complexes. Moreover, a single binding site for the CAFs was identified in AR, to which a single molecule of NTyr and at least two molecules of Tyr or Van appear to bind. NTyr showed the most affinity for interacting with the enzyme, followed by Tyr and Van. Binding occurs through a thermodynamically favorable and exothermic process. It involves van der Waals interactions and the creation of hydrogen bonds between the phenol substituent in the CAFs and the side residues in AR. Molecular docking calculations confirmed NTyr as the compound with the most affinity and revealed the multiple interactions that contribute to this affinity. These findings enhance our understanding of the molecular mechanisms through which different CAFs bind to AR and inhibit its interaction with tubulin. As such, they could pave the way for the design of novel adjunctive treatments that complement conventional antihyperglycemic therapies and mitigate complications associated with diabetes mellitus.
Insights
Phenolic acid compounds (CAFs) bind to aldose reductase (AR), preventing its interaction with tubulin. This interaction may offer new therapeutic strategies for managing diabetes complications.
Area of Science:
- Biochemistry
- Enzymology
- Medicinal Chemistry
Background:
- Aldose reductase (AR) activation by tubulin interaction contributes to diabetic complications.
- Phenolic acid compounds (CAFs) show potential in inhibiting AR activation.
Purpose of the Study:
- To investigate the interaction mechanisms between AR and three CAFs: 3-nitrotyrosine (NTyr), Tyrosine (Tyr), and vanillic acid (Van).
- To elucidate the binding sites, affinity, and molecular interactions involved.
Main Methods:
- Spectroscopic techniques (UV-Vis absorption, fluorescence quenching).
- Bioinformatic analysis, including molecular docking.
- Thermodynamic analysis of binding.
Main Results:
- CAFs form stable complexes with AR, altering its spectral properties.
- A single binding site on AR was identified for CAFs.
- NTyr exhibited the highest binding affinity, followed by Tyr and Van.
- Binding is thermodynamically favorable, exothermic, and involves van der Waals forces and hydrogen bonds.
Conclusions:
- CAFs, particularly NTyr, effectively bind to AR through specific molecular interactions.
- Understanding these interactions provides a basis for designing novel anti-diabetic agents.
- These findings support the development of adjunctive therapies to mitigate diabetes-related complications.
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