Alginate-Based Bioformulation with Four Plant Growth-Promoting Bacteria for Sustainable Biostimulation of Spearmint Growth and Natural Defense
Abstract
1. Introduction
2. Materials and Methods
2.1. Preparation of Bio-Formulation Components
2.1.1. Seaweed Collection
2.1.2. Extraction and Purification of Sodium Alginate
2.2. Characterization of Sodium Alginate
2.2.1. Biochemical Characterization
2.2.2. Morphological and Chemical Structure Characterization
2.3. Preparation of the Bioformulation
2.3.1. Bacterial Strains
2.3.2. Encapsulation of the PGPR Consortium
2.3.3. Encapsulation Efficiency Assessment
2.3.4. Viability Assessment of PGPR Encapsulated in Sodium Alginate
2.3.5. Evaluation of Progressive Release of PGPR Encapsulated in Sodium Alginate Beads
2.3.6. Degradation Assessment of Alginate Beads
2.3.7. Scanning Electron Microscopy of Alginate Beads
2.4. Evaluation of the Bioformulation’s Ability to Stimulate Spearmint’s Growth and Natural Defenses
2.4.1. Spearmint Plant Growth Response to Bioformulation Application
- (control) plants treated with 10 mL of distilled water only,
- (Free PGPR) plants inoculated with a 10 mL suspension containing 108 CFU/mL of each of the four PGPR strains that was prepared from freshly cultivated PGPR and suspended in sterile saline water to obtain a liquid suspension of the consortium after adjusting the concentration by measuring optical density at 600 nm,
- (Alginate) plants treated with 20 g of alginate-only beads,
- (PGPR-Alginate) plants inoculated with 20 g of alginate beads containing 108 CFU/g of the PGPR consortium.
2.4.2. Stimulation of Natural Defenses in the Spearmint Plant
- Enzymatic activity of phenylalanine ammonia-lyase
- Total polyphenol content
- Lignin content
2.5. Statistical Analysis
3. Results
3.1. Characterization of PGPR-Alginate-Based Bioformulation
3.1.1. Properties and Composition of Extracted Sodium Alginate
3.1.2. Morphological and Chemical Structure of Alginate
3.1.3. Characterization of the Bioformulation: Encapsulation Efficiency, Viability and Bacterial Release of Encapsulated PGPR Population
3.1.4. Degradation of Alginate Beads
3.1.5. Scanning Electron Microscope Images of PGPR-Alginate Beads
3.2. Application of the Bioformulation on Spearmint Plants
3.2.1. Effects of the Bioformulation on Growth Parameters in Spearmint Plants
3.2.2. Effects of the Bioformulation on Spearmint Plants’ Natural Defenses
- PAL activity in spearmint
- Total phenolic content in spearmint
- Lignin content in spearmint
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| CFU | Colony Forming Unit |
| DAMP | Damage-Associated Molecular Patterns |
| DW | Dry Weight |
| EE | Encapsulation Efficiency |
| FTIR | Fourier Transform InfraRed |
| IAA | Indole-3 acetic acid |
| Mv | Viscometric Molar Mass |
| NMR | Nuclear Magnetic Resonance |
| PAL | Phenylalanine Ammonia Lyase |
| PGPR | Plant Growth-Promoting Rhizobacteria |
| PRR | Pattern Recognition Receptors |
| ROS | Reactive Oxygen Species |
| SDN | Natural Defense Stimulating |
| SEM | Scanning Electron Microscopy |
Appendix A


| PGPR Strain | Phosphate Solubilization | IAA Production | Siderophores Production | Thermo-Tolerance | Halotolerance | Hydrogen Cyanide Production | References |
|---|---|---|---|---|---|---|---|
| Pseudomonas frideriksbergensis | + | − | +++ | 40 °C | 4% | − | [27] |
| Bacillus aryabhattai | ++ | +++ | + | 45 °C | 12% | +++ | [25] |
| Brevibacterium frigorotolerans | ++ | ++ | − | 50 °C | 8% | + | [26] |
| Bacillus vallismortis | ++ | ++ | + | 45 °C | 7% | ++ | [26] |
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| Extraction Yield (%) | Uronic Acids % (w/w) | Neutral Sugars % (w/w) | Total Sugars % (w/w) | Proteins % (w/w) | Total Polyphenols % (w/w) |
|---|---|---|---|---|---|
| 27.41 ± 3.09 | 77.86 ± 1.16 | 13.80 ± 4.97 | 23.70 ± 3.67 | 0.16 ± 0.02 | Traces (<0.001%) |
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© 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.
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Imehli, Z.; Mouhoub, A.; Ait Bihi, A.; Oulad Ziane, S.; Elkadaoui, S.; El Alaoui-Talibi, Z.; El Modafar, C. Alginate-Based Bioformulation with Four Plant Growth-Promoting Bacteria for Sustainable Biostimulation of Spearmint Growth and Natural Defense. Appl. Sci. 2026, 16, 9091. https://doi.org/10.3390/app16189091
Imehli Z, Mouhoub A, Ait Bihi A, Oulad Ziane S, Elkadaoui S, El Alaoui-Talibi Z, El Modafar C. Alginate-Based Bioformulation with Four Plant Growth-Promoting Bacteria for Sustainable Biostimulation of Spearmint Growth and Natural Defense. Applied Sciences. 2026; 16(18):9091. https://doi.org/10.3390/app16189091
Chicago/Turabian StyleImehli, Zahra, Anouar Mouhoub, Abderrazak Ait Bihi, Salma Oulad Ziane, Soukaina Elkadaoui, Zainab El Alaoui-Talibi, and Cherkaoui El Modafar. 2026. "Alginate-Based Bioformulation with Four Plant Growth-Promoting Bacteria for Sustainable Biostimulation of Spearmint Growth and Natural Defense" Applied Sciences 16, no. 18: 9091. https://doi.org/10.3390/app16189091
APA StyleImehli, Z., Mouhoub, A., Ait Bihi, A., Oulad Ziane, S., Elkadaoui, S., El Alaoui-Talibi, Z., & El Modafar, C. (2026). Alginate-Based Bioformulation with Four Plant Growth-Promoting Bacteria for Sustainable Biostimulation of Spearmint Growth and Natural Defense. Applied Sciences, 16(18), 9091. https://doi.org/10.3390/app16189091
