QSAR Analysis of Lichen Depsides and Derivatives: Electronic Descriptors as Predictors of Antioxidant Activity via PLS-1
Abstract
1. Introduction
2. Materials and Methods
2.1. General Experimental Procedures
2.2. Extraction and Isolation
2.3. Spectroscopic Data
2.3.1. R-(+)-Usnic Acid (1)
2.3.2. Dibenzoyl Usnic Acid (2)
2.3.3. Atranorin (3)
2.3.4. 2,4-bis(benzoyloxy)atranorin (4)
2.3.5. 4-O-methyl Atranorin (5)
2.3.6. Decarboxythamnolic Acid (6)
2.3.7. Thamnolic Acid (7)
2.3.8. Perlatolic Acid (8)
2.4. Computational Chemistry
2.5. Antioxidant Activity Assay
2.6. Statistical Analysis
3. Results
3.1. Isolation and Characterisation of Compounds
3.2. Electronic Descriptors Correlated with Antioxidant Activity
3.3. Experimental Radical Scavenging Activity
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ABTS | 2,2′-Azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) |
| BDE | Bond Dissociation Energy |
| CAT | Catalase |
| ΔH-(H-1) | Energy difference between HOMO and HOMO-1 orbitals |
| GPX | Glutathione Peroxidase |
| HOMO | Highest Occupied Molecular Orbital |
| LUMO | Lowest Unoccupied Molecular Orbital |
| LUMOr | Lowest Unoccupied Molecular Orbital of the Radical |
| logP | Partition coefficient (measure of hydrophobicity) |
| PLS-1 | Partial Least Squares Regression (one component) |
| RMS | Root Mean Square |
| ROS | Reactive Oxygen Species |
| SOD | Superoxide Dismutase |
| TEAC | Trolox Equivalent Antioxidant Capacity |
| UHF | Unrestricted Hartree–Fock |
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| Compound | TEAC | ΔHf | HOMO | HOMO-1 | ΔH-(H-1) | LUMOr |
|---|---|---|---|---|---|---|
| 1 (OH-35) | 0.1 | 26.69 | −9.392 | −9.680 | 0.288 | −1.633 |
| 2 (OH-35) | 0.1 | 49.24 | −8.875 | −9.394 | 0.519 | −1.163 |
| 3 (OH-24) | 0.6 | 35.24 | −9.103 | −9.553 | 0.450 | −0.858 |
| 4 (OH-38) | 0.3 | 28.34 | −9.143 | −9.526 | 0.383 | −1.038 |
| 5 (OH-25) | 0.2 | 52.95 | −9.077 | −9.521 | 0.444 | −0.582 |
| 6 (OH-39) | 1.4 | 34.11 | −9.026 | −9.681 | 0.655 | −1.237 |
| 7 (OH-39) | 1.2 | 24.83 | −9.675 | −9.886 | 0.211 | −0.873 |
| 8 (OH-38) | 2.7 | 26.45 | −9.338 | −9.506 | 0.168 | −0.423 |
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Mollinedo, P.; Vila, J.L.; Nogales-Ascarrunz, P.; Apaza Ticona, L. QSAR Analysis of Lichen Depsides and Derivatives: Electronic Descriptors as Predictors of Antioxidant Activity via PLS-1. Antioxidants 2026, 15, 584. https://doi.org/10.3390/antiox15050584
Mollinedo P, Vila JL, Nogales-Ascarrunz P, Apaza Ticona L. QSAR Analysis of Lichen Depsides and Derivatives: Electronic Descriptors as Predictors of Antioxidant Activity via PLS-1. Antioxidants. 2026; 15(5):584. https://doi.org/10.3390/antiox15050584
Chicago/Turabian StyleMollinedo, Patricia, José Luis Vila, Paola Nogales-Ascarrunz, and Luis Apaza Ticona. 2026. "QSAR Analysis of Lichen Depsides and Derivatives: Electronic Descriptors as Predictors of Antioxidant Activity via PLS-1" Antioxidants 15, no. 5: 584. https://doi.org/10.3390/antiox15050584
APA StyleMollinedo, P., Vila, J. L., Nogales-Ascarrunz, P., & Apaza Ticona, L. (2026). QSAR Analysis of Lichen Depsides and Derivatives: Electronic Descriptors as Predictors of Antioxidant Activity via PLS-1. Antioxidants, 15(5), 584. https://doi.org/10.3390/antiox15050584

