L-Tryptophan Stimulates Bioactive Metabolite Accumulation and Cell Wall Remodelling in Flax Callus Cultures
Abstract
1. Introduction
2. Results and Discussion
2.1. Impact of Tryptophan Supplementation on Photosynthetically Active Pigments
2.2. Effect of L-Tryptophan on Flax Callus Growth
2.3. Determination of Secondary Metabolites in Callus Shaken Flax Cultures
2.4. Amino Acid Analysis of Flax Callus Using HPLC-DAD Method
2.5. Analysis of Plant Cell Wall Polymers by FTIR
2.6. Impact of L-Trp on Lignin Level in Flax Callus
- Band at 1540 cm−1: Nike control > Nike with 1 mM L-Trp ≈ Nike with 0.1 mM L-Trp;
- Bands at 1510, 1333 and 1260 cm−1: Nike control > Nike with 1 mM L-Trp > Nike with 0.1 mM L-Trp;
- Band at 824 cm−1: Nike control > Nike with 0.1 mM L-Trp > Nike with 1 mM L-Trp.
2.7. Effect of L-Trp on Pectin Level in Flax Callus
3. Materials and Methods
3.1. Plant Material and Establishment of Aseptic Tissue Cultures
3.2. Initiation and Elicitation of Flax Callus Cultures
3.3. Callus Proliferation Coefficient
3.4. Determination of Photosynthetically Active Pigments in Flax Callus
3.5. Determination of Amino Acid Levels in Flax Callus via HPLC-DAD Method
3.6. Analysis of Secondary Metabolites in Flax Callus
3.6.1. Extraction of Secondary Metabolites
3.6.2. Determination of Total Polyphenol Content (TPC)
3.6.3. Measurements of Total Flavonoid Content (TFC) in Flax Callus
3.6.4. Structural Analyses of Flax Callus via FTIR Spectroscopy
3.7. Statistical Analysis
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- El-Saadony, M.T.; Saad, A.M.; Mohammed, D.M.; Alkafaas, S.S.; Abd El-Mageed, T.A.; Fahmy, M.A.; Ezzat Ahmed, A.; Algopishi, U.B.; Abu-Elsaoud, A.M.; Mosa, W.F.A.; et al. Plant bioactive compounds: Extraction, biological activities, immunological, nutritional aspects, food application, and human health benefits-A comprehensive review. Front. Nutr. 2025, 12, 1659743. [Google Scholar] [CrossRef]
- Sadeghifar, H.; Ragauskas, A.J. Lignin as a Natural Antioxidant: Chemistry and Applications. Macromol 2025, 5, 5. [Google Scholar] [CrossRef]
- Alzagameem, A.; Klein, S.E.; Bergs, M.; Do, X.T.; Korte, I.; Dohlen, S.; Hüwe, C.; Kreyenschmidt, J.; Kamm, B.; Larkins, M.; et al. Antimicrobial Activity of Lignin and Lignin-Derived Cellulose and Chitosan Composites against Selected Pathogenic and Spoilage Microorganisms. Polymers 2019, 11, 670. [Google Scholar] [CrossRef]
- Luzi, F.; Yang, W.J.; Ma, P.M.; Torre, L.; Puglia, D. Lignin-based materials with antioxidant and antimicrobial properties. In Lignin-Based Materials for Biomedical Applications; Elsevier: Amsterdam, The Netherlands, 2021; pp. 291–326. [Google Scholar]
- Qian, Y.; Qiu, X. Lignin-based materials with UV-blocking property. In Lignin-Based Materials for Biomedical Applications: Preparation, Characterization, and Implementation; Elsevier: Amsterdam, The Netherlands, 2021; pp. 271–290. [Google Scholar]
- Gautam, D.; Rana, V.; Sharma, S.; Kumar Walia, Y.; Kumar, K.; Umar, A.; Ibrahim, A.A.; Baskoutas, S. Hemicelluloses: A Review on Extraction and Modification for Various Applications. ChemistrySelect 2025, 10, e06050. [Google Scholar] [CrossRef]
- Marinho, E. Cellulose: A comprehensive review of its properties and applications. Sustain. Chem. Environ. 2025, 11, 100283. [Google Scholar] [CrossRef]
- Wróbel-Kwiatkowska, M.; Czemplik, M.; Kulma, A.; Żuk, M.; Kaczmar, J.; Dymińska, L.; Hanuza, J.; Ptak, M.; Szopa, J. New biocomposites based on bioplastic flax fibers and biodegradable polymers. Biotechnol. Prog. 2012, 28, 1336–1346. [Google Scholar] [CrossRef]
- del Rosario Espinoza-Mellado, M.; López-Villegas, E.O.; López-Gómez, M.F.; Rodríguez-Tovar, A.V.; García-Pineda, M.; Rodríguez-Dorantes, A. Biotization and in vitro plant cell cultures: Plant endophyte strategy in response to heavy metals knowledge in assisted phytoremediation. In Microbe Mediated Remediation of Environmental Contaminants; Woodhead Publishing: Cambridge, UK, 2021; pp. 27–36. [Google Scholar]
- Efferth, Y. Biotechnology Applications of Plant Callus Cultures. Engineering 2019, 5, 50–59. [Google Scholar] [CrossRef]
- Aware, C.B.; Patil, D.N.; Suryawanshi, S.S.; Mali, P.R.; Rane, M.R.; Gurav, R.G.; Jadhav, J.P. Natural bioactive products as promising therapeutics: A review of natural product-based drug development. S. Afr. J. Bot. 2022, 151, 512–528. [Google Scholar] [CrossRef]
- Karuppusamy, S. A review on trends in production of secondary metabolites from higher plants by in vitro tissue, organ and cell cultures. J. Med. Plants Res. 2009, 3, 1222–1239. [Google Scholar]
- Wróbel-Kwiatkowska, M.; Kostyn, K.; Dymińska, L.; Hanuza, J.; Kurzawa, A.; Zuk, M.; Rymowicz, W. Spectroscopic and biochemical characteristics of flax transgenic callus cultures producing PHB. Plant Cell Tissue Organ Cult. 2020, 141, 489–497. [Google Scholar] [CrossRef]
- Raven, N.; Schillberg, S.; Rasche, S. Plant cell-based recombinant antibody manufacturing with a 200 L orbitally shaken disposable bioreactor. In Recombinant Proteins from Plants; MacDonald, J., Kolotilin, I., Menassa, R., Eds.; Humana Press: New York, NY, USA, 2016; Volume 1385, pp. 143–158. [Google Scholar]
- Venkataraman, S. Plant Molecular Pharming and Plant-Derived Compounds towards Generation of Vaccines and Therapeutics against Coronaviruses. Vaccines 2022, 10, 1805. [Google Scholar] [CrossRef]
- Venkataraman, S.; Khan, I.; Habibi, P.; Le, M.; Lippert, R.; Hefferon, K. Recent advances in expression and purification strategies for plant made vaccines. Front. Plant Sci. 2023, 14, 1273958. [Google Scholar] [CrossRef]
- Fischer, R.; Liao, Y.C.; Hoffmann, K.; Schillberg, S.; Emans, N. Molecular farming of recombinant antibodies in plants. Biol. Chem. 1999, 380, 825–839. [Google Scholar] [CrossRef]
- Benjamin, E.D.; Ishaku, G.A.; Peingurta, F.A.; Afolabi, A.S. Callus Culture for the Production of Therapeutic Compounds. Am. J. Plant Biol. 2019, 4, 76–84. [Google Scholar] [CrossRef]
- Wang, S.; Zhang, X.; Gong, D.-H.; Huang, Q.-Q.; Kandegama, W.M.W.W.; Georgiev, M.I.; Gao, Y.-Y.; Liao, P.; Hao, G.-F. Sophisticated Crosstalk of Tryptophan-Derived Metabolites in Plant Stress Responses. Plant Commun. 2025, 6, 101425. [Google Scholar] [CrossRef]
- Zigová, M.; Michalková, R.; Mojžiš, J. Anticancer Potential of Indole Phytoalexins and Their Analogues. Molecules 2024, 29, 2388. [Google Scholar] [CrossRef]
- Koczoń, P.; Hołaj-Krzak, J.T.; Palani, B.K.; Bolewski, T.; Dąbrowski, J.; Bartyzel, B.J.; Gruczyńska-Sękowska, E. The Analytical Possibilities of FT-IR Spectroscopy Powered by Vibrating Molecules. Int. J. Mol. Sci. 2023, 24, 1013. [Google Scholar] [CrossRef]
- Raspolli Galletti, A.M.; D’Alessio, A.; Licursi, D.; Antonetti, C.; Valentini, G.; Galia, A.; Nassi ODi Nasso, N. Mid Infrared FT-IR as a Tool for Monitoring Herbaceous Biomass Composition and Its Conversion to Furfural. J. Spectrosc. 2015, 2015, 719042. [Google Scholar] [CrossRef]
- Gondek, K.; Mierzwa-Hersztek, M. Effect of Soil-Applied L-tryptophan on the Amount of Biomass and Nitrogen and Sulfur Utilization by Maize. Agronomy 2021, 11, 2582. [Google Scholar] [CrossRef]
- Wróbel-Kwiatkowska, M.; Turski, W.; Silska, G.; Rakicka-Pustułka, M.; Dymińska, L.; Rymowicz, W. Determination of Bioactive Compound Kynurenic Acid in Linum usitatissimum L. Molecules 2024, 29, 1702. [Google Scholar] [CrossRef]
- Liu, C.; Liu, Y.; Lu, Y.; Liao, Y.; Nie, J.; Yuan, X.; Chen, F. Use of a leaf chlorophyll content index to improve the prediction of above-ground biomass and productivity. PeerJ 2019, 6, e6240. [Google Scholar] [CrossRef]
- Hassan, T.U.; Bano, A. The stimulatory effects of L-tryptophan and plant growth promoting rhizobacteria (PGPR) on soil health and physiology of wheat. J. Soil Sci. Plant Nutr. 2015, 15, 190–201. [Google Scholar]
- Zhou, J.; Mengyun, T.; Mengfei, M.; Qiannan, H.; Yingying, D.; Zisheng, L.; Li, L. Tryptophan as a potential way to enhance phenolics accumulation in strawberry: From the perspective of phenolomics. Food Biosci. 2024, 62, 105370. [Google Scholar] [CrossRef]
- Kim, S.H.; Kronstad, J.W.; Ellis, B.E. Induction of phenylalanine ammonia-lyase activity by tryptophan in Ustilago maydis. Phytochemistry 2001, 58, 849–857. [Google Scholar] [CrossRef]
- Wakasa, K.; Ishihara, A. Metabolic engineering of the tryptophan and phenylalanine biosynthetic pathways in rice. Plant Biotechnol. 2009, 26, 523–533. [Google Scholar] [CrossRef]
- Shahidi, P.; Bahramnejad, B.; Vafaee, Y.; Dastan, D.; Heidari, P. Isolation and Characterization of Phenylalanine Ammonia Lyase (PAL) Genes in Ferula pseudalliacea: Insights into the Phenylpropanoid Pathway. Genes 2024, 15, 771. [Google Scholar] [CrossRef]
- Patil, J.R.; Mhatre, K.J.; Yadav, K.; Yadav, L.S.; Srivastava, S.; Nikalje, G.C. Flavonoids in plant-environment interactions and stress responses. Discov. Plants 2024, 1, 68. [Google Scholar] [CrossRef]
- Xuan, Y.; Feng, W.; Lai, Z.; Liu, S. Effects of aromatic amino acids on callus growth and accumulation of secondary metabolites in amaranth. Trop. Plants 2024, 3, e032. [Google Scholar] [CrossRef]
- Sadak, M.S.; Dawood, M.G.; El-awadi, M.E.S. Auxin and Tryptophan Effectiveness in Attenuating the Adverse Impacts of Drought Stress on Peanut Plants. J. Soil Sci. Plant Nutr. 2026, 26, 3740–3758. [Google Scholar] [CrossRef]
- Majda, M.; Robert, S. The Role of Auxin in Cell Wall Expansion. Int. J. Mol. Sci. 2018, 19, 951. [Google Scholar] [CrossRef]
- Hu, Y.; Hu, Y.; Gao, S.; Luan, Z.; Zhang, T.; Guo, J.; Shi, L. Enhanced lignin and cellulose metabolism promote cell wall synthesis and growth of wild soybean HRA under alkali stress. Ann. Bot. 2025, 136, 1295–1311. [Google Scholar]
- Jobert, F.; Soriano, A.; Brottier, L.; Casset, C.; Divol, F.; Safran, J.; Lefebvre, V.; Pelloux, J.; Robert, S.; Péret, B. Auxin triggers pectin modification during rootlet emergence in white lupin. Plant J. 2022, 112, 1127–1140. [Google Scholar] [CrossRef]
- Jobert, F.; Yadav, S.; Robert, S. Auxin as an architect of the pectin matrix. J. Exp. Bot. 2023, 74, 6933–6949. [Google Scholar] [CrossRef]
- Murashige, T.; Skoog, F. A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiol. Plant 1962, 15, 473–497. [Google Scholar] [CrossRef]
- Wróbel-Kwiatkowska, M.; Osika, A.; Liszka, J.; Lipiński, M.; Dymińska, L.; Piegza, M.; Rymowicz, W. The Impact of a Non-Pathogenic Strain of Fusarium Oxysporum on Structural and Biochemical Properties of Flax Suspension Cultures. Int. J. Mol. Sci. 2024, 25, 9616. [Google Scholar] [CrossRef]
- Lichtenthaler, H.K. Chlorophyll fluorescence signatures of leaves during the autumnal chlorophyll breakdown. J. Plant Physiol. 1987, 131, 101–110. [Google Scholar] [CrossRef]
- Singleton, V.L.; Orthofer, R.; Lamuela-Raventos, R.M. Analysis of total phenols and other oxidation substrates and antioxidants by means of Folin-Ciocalteu reagent. Methods Enzymol. 1999, 299, 152–178. [Google Scholar]
- Wróbel-Kwiatkowska, M.; Słupczyńska, M.; Rymowicz, W. Overexpression of medium-chain-length polyhydroxyalkanoates induces significant salt tolerance and fungal resistance in flax. Plant Cell Tissue Organ Cult. (PCTOC) 2022, 151, 123–132. [Google Scholar]
- Zhishen, J.; Mengcheng, T.; Jianming, W. The determination of flavonoid contents in mulberry and their scavenging effects on superoxide radicals. Food Chem. 1999, 64, 555–559. [Google Scholar] [CrossRef]
- Barik, S. The uniqueness of tryptophan in biology: Properties, metabolism, interactions and localization in proteins. Int. J. Mol. Sci. 2020, 21, 8776. [Google Scholar] [CrossRef]







| Amino Acids (mg/g DW) | Nike − Control | Nike + 0.1 mM Trp | Nike + 1 mM Trp | |||
|---|---|---|---|---|---|---|
| Result | ±Expanded Uncertainty | Result | ±Expanded Uncertainty | Result | ±Expanded Uncertainty | |
| Aspartic acid | 10.32 | 0.52 | 11.60 | 0.58 | 7.67 | 0.38 |
| Glutamic acid | 188.83 | 9.44 | 220.85 | 11.04 | 185.28 | 9.26 |
| Serine | 6.51 | 0.32 | 6.58 | 0.33 | 6.34 | 0.32 |
| Histidine | 0.22 | 0.01 | 0.42 | 0.02 | 0.16 | 0.01 |
| Glycine | 5.23 | 0.26 | 5.43 | 0.27 | 5.15 | 0.26 |
| Threonine | 2.44 | 0.12 | 3.09 | 0.15 | 0.9 | 0.04 |
| Arginine | 6.36 | 0.32 | 6.89 | 0.34 | 6.26 | 0.31 |
| Alanine | 7.94 | 0.40 | 8.49 | 0.42 | 8.71 | 0.43 |
| Tyrosine | <0.1 | - | 0.17 | 0.01 | 0.13 | 0.01 |
| Cysteine | 3.11 | 0.15 | 3.45 | 0.17 | 3.18 | 0.15 |
| Valine | 5.55 | 0.28 | 5.93 | 0.29 | 5.52 | 0.27 |
| Methionine | 5.62 | 0.28 | 7.16 | 0.36 | 5.97 | 0.29 |
| Phenylalanine | 3.10 | 0.15 | 2.99 | 0.15 | 1.39 | 0.07 |
| Isoleucine | 1.68 | 0.08 | 1.95 | 0.10 | 0.78 | 0.04 |
| Leucine | 5.79 | 0.29 | 6.11 | 0.30 | 5.47 | 0.27 |
| Lysine | 6.84 | 0.34 | 7.02 | 0.35 | 6.61 | 0.33 |
| Hydroxyproline | 29.14 | 1.46 | 42.28 | 2.11 | 34.24 | 1.71 |
| Proline | 2.96 | 0.15 | 4.14 | 0.21 | 0.93 | 0.05 |
| Tryptophan | 2.14 | 0.11 | 2.73 | 0.14 | 10.28 | 0.51 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Tudruj, K.L.; Piegza, M.; Dymińska, L.; Słupczyńska, M.; Wróbel-Kwiatkowska, M. L-Tryptophan Stimulates Bioactive Metabolite Accumulation and Cell Wall Remodelling in Flax Callus Cultures. Molecules 2026, 31, 1229. https://doi.org/10.3390/molecules31081229
Tudruj KL, Piegza M, Dymińska L, Słupczyńska M, Wróbel-Kwiatkowska M. L-Tryptophan Stimulates Bioactive Metabolite Accumulation and Cell Wall Remodelling in Flax Callus Cultures. Molecules. 2026; 31(8):1229. https://doi.org/10.3390/molecules31081229
Chicago/Turabian StyleTudruj, Kornelia L., Michał Piegza, Lucyna Dymińska, Maja Słupczyńska, and Magdalena Wróbel-Kwiatkowska. 2026. "L-Tryptophan Stimulates Bioactive Metabolite Accumulation and Cell Wall Remodelling in Flax Callus Cultures" Molecules 31, no. 8: 1229. https://doi.org/10.3390/molecules31081229
APA StyleTudruj, K. L., Piegza, M., Dymińska, L., Słupczyńska, M., & Wróbel-Kwiatkowska, M. (2026). L-Tryptophan Stimulates Bioactive Metabolite Accumulation and Cell Wall Remodelling in Flax Callus Cultures. Molecules, 31(8), 1229. https://doi.org/10.3390/molecules31081229

