Taste Modulation of White Tea by Red/Blue-LED-Assisted Withering Revealed via Non-Volatile Metabolomics
Abstract
1. Introduction
2. Materials and Methods
2.1. Chemicals and Reagents
2.2. Preparation of Samples
2.3. QDA
2.4. Metabolite Extraction and UPLC–MS/MS Analysis
2.4.1. Sample Preparation and Extraction
2.4.2. UPLC Conditions
2.4.3. ESI-QTRAP-MS/MS
2.5. WGCNA
2.6. HPLC Analysis
2.7. Statistical Analysis
3. Results
3.1. QDA of Taste Attributes
3.2. Data Quality Assessment
3.3. Metabolite Annotation and Global Metabolomic Patterns
3.4. Differential Metabolite Responses Caused by Withering of Red/Blue LED
3.5. WGCNA Links Metabolite Modules to Taste Attributes and Treatment Groups
3.6. HPLC Quantification of Caffeine, Gallic Acid, and Catechins
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| ANOVA | One-way analysis of variance |
| C | catechin |
| CAD | Collision-activated dissociation |
| CE | Collision energy |
| CG | Catechin gallate |
| CV | Coefficient of variation |
| DMs | Differential metabolites |
| DP | Declustering potential |
| EC | Epicatechin |
| ECG | Epicatechin gallate |
| EGC | Epigallocatechin |
| EGCG | Epigallocatechin gallate |
| ESI | Electrospray ionization |
| FC | Fold change |
| GC | Gallocatechin |
| GCG | Gallocatechin gallate |
| HCA | Hierarchical cluster analysis |
| HPLC | High-performance liquid chromatography |
| LED | Light-emitting diode |
| MRM | Multiple reaction monitoring |
| MSEA | Metabolite set enrichment analysis |
| OPLS-DA | Orthogonal proportional latent structures–discriminant analysis |
| PC 1 | Principal component 1 |
| PCA | Principal component analysis |
| PCCs | Pearson correlation coefficients |
| PIF | Phytochrome-interacting factor |
| QC | Quality control |
| QDA | Quantitative descriptive analysis |
| QTRAP | Quadrupole-linear ion trap |
| RT | Room temperature |
| TIC | Total ion current |
| UPLC–MS/MS | Ultra-performance liquid chromatography–tandem mass spectrometry |
| VIP | Variable importance in projection |
| VOCs | Volatile organic compounds |
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| Module | Compound | kWithin | Class | CAS. No. | Taste Descriptor |
|---|---|---|---|---|---|
| Yellow | D-Glucose 6-phosphate * | 42.08 | Saccharides | 56-73-5 | Sweet [17] |
| L-Citramalic acid | 36.89 | Organic acids | 6236-09-5 | Sour [17,18] | |
| Glucose-1-phosphate * | 34.89 | Saccharides | 59-56-3 | Sweet [19] | |
| L-Alanyl-L-Phenylalanine | 34.28 | Amino acids and derivatives | 3061-90-3 | - | |
| Uridine 5′-diphospho-D-glucose | 33.22 | Nucleotides and derivatives | 133-89-1 | - | |
| D-Maltose * | 31.00 | Saccharides | 69-79-4 | Sweet [20] | |
| Galactinol | 30.14 | Saccharides | 3687-64-7 | - | |
| Trehalose 6-phosphate | 29.41 | Saccharides | 4484-88-2 | Regulating sucrose accumulation [21] | |
| 2′-Deoxyuridine | 28.57 | Nucleotides and derivatives | 951-78-0 | - | |
| D-Sucrose * | 28.54 | Saccharides | 57-50-1 | Sweet [20] | |
| Turquoise | 10,16-Dihydroxypalmitic acid | 28.34 | Lipids | 3233-90-7 | - |
| LysoPC 15:0 | 27.52 | Lipids | 108273-89-8 | - | |
| Diosmetin | 27.49 | Flavonoids | 520-34-3 | - | |
| 6,7,8-Tetrahydroxy-5-methoxyflavone * | 27.33 | Flavonoids | - | - | |
| 9,16-Dihydroxypalmitic acid | 26.44 | Lipids | 38076-49-2 | - | |
| Apigenin; 4′,5,7-Trihydroxyflavone | 26.38 | Flavonoids | 520-36-5 | - | |
| LysoPE 20:2(2n isomer) | 25.32 | Lipids | - | - | |
| LysoPE 20:2 | 24.53 | Lipids | - | - | |
| Uridine 5′-diphosphate | 23.63 | Nucleotides and derivatives | 27821-45-0 | Related to taste quality [22] | |
| 2-Hydroxycinnamic acid * | 22.96 | Phenolic acids | 583-17-5 | - | |
| Blue | 9-Oxo-10E,12Z-octadecadienoic acid | 29.45 | Lipids | 54232-59-6 | - |
| 17-Hydroxylinolenic acid | 29.33 | Lipids | - | - | |
| 9,10,13-Trihydroxy-11-Octadecenoic Acid | 28.71 | Lipids | 29907-57-1 | - | |
| 13(S)-HODE | 28.70 | Lipids | 10219-69-9 | - | |
| 9S-Hydroxy-10E,12Z-octadecadienoic acid * | 28.64 | Lipids | 15514-85-9 | - | |
| 9,10,11-Trihydroxy-12-octadecenoic acid | 28.26 | Lipids | 61911-67-9 | - | |
| 9,12,13-Trihydroxy-10,15-octadecadienoic acid | 28.19 | Lipids | - | - | |
| 9,12,13-TriHOME | 26.79 | Lipids | 97134-11-7 | - | |
| Dodecanedioic acid | 26.49 | Lipids | 693-23-2 | - | |
| 1-Stearidonoyl-Glycerol | 26.16 | Lipids | - | - |
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Wu, D.; Deng, Y.; Xing, J.; Wen, L.; Ma, J.; Dong, D.; Cao, F. Taste Modulation of White Tea by Red/Blue-LED-Assisted Withering Revealed via Non-Volatile Metabolomics. Foods 2026, 15, 836. https://doi.org/10.3390/foods15050836
Wu D, Deng Y, Xing J, Wen L, Ma J, Dong D, Cao F. Taste Modulation of White Tea by Red/Blue-LED-Assisted Withering Revealed via Non-Volatile Metabolomics. Foods. 2026; 15(5):836. https://doi.org/10.3390/foods15050836
Chicago/Turabian StyleWu, Dan, Yongyi Deng, Jiabao Xing, Lianghua Wen, Jiawei Ma, Dubin Dong, and Fanrong Cao. 2026. "Taste Modulation of White Tea by Red/Blue-LED-Assisted Withering Revealed via Non-Volatile Metabolomics" Foods 15, no. 5: 836. https://doi.org/10.3390/foods15050836
APA StyleWu, D., Deng, Y., Xing, J., Wen, L., Ma, J., Dong, D., & Cao, F. (2026). Taste Modulation of White Tea by Red/Blue-LED-Assisted Withering Revealed via Non-Volatile Metabolomics. Foods, 15(5), 836. https://doi.org/10.3390/foods15050836
