Submitted:
12 September 2025
Posted:
16 September 2025
You are already at the latest version
Abstract
The use of biostimulants offers a sustainable strategy to improve crop quality. This study assessed the effects of an arbuscular mycorrhizal fungi inoculum and an aqueous extract of Landoltia punctata on the growth and biochemical composition of lettuce (Lactuca sativa L. cv. ‘Dubáček’) under indoor conditions. Four variants were tested: control (C), mycorrhiza (M), L. punctata extract (L), and their combination (M+L), with biometric, physiological, and biochemical parameters evaluated. While biostimulant treatments did not affect above-ground biomass, L. punctata extract (L and M+L) significantly raised chlorophyll a (by 15.9 % and 16.0 %) and chlorophyll b (by 55.5 % and 42.8 %) compared to the control. The combined treatment (M+L) achieved the highest total phenolic content (254.28 mg/kg). All treated variants significantly reduced leaf nitrate content, with M and M+L being most effective (−35.1 % and −33.6 %). Amino acid metabolomic analysis showed that the extract is rich in γ-aminobutyric acid, valine, phenylalanine, tryptophan, and other proteinogenic amino acids that may drive its biostimulant effects. Microscopy confirmed successful root colonisation in mycorrhizal variants (58 % in M, 42 % in M+L). Overall, while biometric parameters remained unaffected, the applied biostimulants enhanced lettuce nutritional quality and physiological status by boosting photosynthetic pigments and phenolic compounds while lowering nitrate content, highlighting their potential for producing high-quality, safe crops.
Keywords:
1. Introduction
2. Materials and Methods
Plant Material and Growing Conditions
Experimental Design
- (1)
- C – control variant without any treatment;
- (2)
- M – variant treated with mycorrhizal inoculum;
- (3)
- M+L – variant treated with a combination of mycorrhizal inoculum and Landoltia punctata (clone no. 5562) extract;
- (4)
- L – variant treated with L. punctata (clone no. 5562) extract.
Biostimulant Preparation and Application
Harvest of Plants and Sampling
Assessment of Photosynthetic, Biometric, and Biochemical Parameters of Lettuce
Amino Acid Metabolomic Profiling of the Landoltia punctata Extract
Root Sample Processing for Microscopy
Statistical Analyses
3. Results
3.1. Plant Physiological Status
NDVI
Quantum Yield of Photosystem II
3.2. Biometric Parameters at Harvest
Above-ground Biomass
Leaf Area, Plant Height and Diameter, Number of Leaves
3.3. Qualitative and Compositional Analysis
Dry Matter Content
Vitamin C Content
Photosynthetic Pigments
Carotenoids
Phenolic and Flavonoid Content, Total Antioxidant Capacity
Nitrate Content
Correlation Analysis
3.4. Identified Amino Acids in the Aqueous Extract of Landoltia punctata
3.5. Mycorrhizal Colonisation
4. Discussion
Photosynthetic Parameters
Biometric Parameters
Photosynthetic Pigments and Carotenoids
Qualitative Parameters
5. Conclusions
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| Value | Proportion of mycorrhiza in observed plant tissue samples |
| 0 | Without targeted mycorrhiza |
| 1 | Incidence trace |
| 2 | Targeted mycorrhiza present in less than 10% of plant tissue |
| 3 | From 11 to 50% |
| 4 | From 51% to 90% |
| 5 | More than 90% |
| AA | Mean concentration [µg/l] ± SD |
| GABA | 1547.68 ± 4.208 |
| Valine | 1526.97 ± 1.842 |
| Phenylalanine | 750.93 ± 3.787 |
| Tryptophan | 550.65 ± 3.999 |
| Alanine | 471.19 ± 4.164 |
| Leucine | 418.51 ± 3.179 |
| Arginine | 346.03 ± 4.005 |
| Aspartic acid | 285.20 ± 0.408 |
| Isoleucine | 259.16 ± 0.490 |
| Asparagine | 235.54 ± 0.116 |
| Glutamic acid | 219.85 ± 0.334 |
| Tyrosine | 200.70 ± 0.164 |
| Proline | 124.65 ± 0.283 |
| Histidine | 112.37 ± 0.276 |
| Glycine | 74.31 ± 0.213 |
| Threonine | 66.18 ± 0.418 |
| Glutamine | 33.98 ± 0.418 |
| Lysine | 12.63 ± 0.028 |
| Methionine | 4.16 ± 0.036 |
| Hydroxy-proline | 1.09 ± 0.005 |
| Serine | 0.32 ± 0.002 |
| Cysteine | 0.08 ± 0.001 |
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