Solvent-driven modulation of phenolic composition and biofunctional activities of three Mentha aquatica formulations: integrated in vitro and in silico insights
Meryem Tourabi , Amira Metouekel , Mohamed Jeddi , Mohamed Chebaibi , Nesrine Benkhaira , Kawtar Fikri-Benbrahim , Youssouf Ali Younous , Turki M. Dawoud , Esmael M. Alyami , Hina Ali , Gehan M. Elossaily , Badiaa Lyoussi , Elhoussine Derwich
Bioresources and Bioprocessing ›› 2026, Vol. 13 ›› Issue (1) : 98
The goal of this work was to examine the effect of different solvents (Water, EtOH 70%, and acetone) on the phenolic composition, antioxidant, and antibacterial capacity of Moroccan Mentha aquatica L. leaf extract. To this end, HPLC-ESI-FULL-MS was used to characterize the extracts, while the Folin-Ciocalteu and aluminum trichloride techniques were used to evaluate the total phenolic and flavonoid contents. To assess the antibacterial capacity, the microdilution technique was performed to calculate the minimal inhibition concentration (MIC), and minimal bactericidal concentration (MBC). Phytochemical profiling revealed that the extracts were rich in bioactive constituents, particularly ferulic acid derivative, caffeoyl-protocatechuic acid derivative, quercetin, and diosmetin 7-O-beta-D-glucuronide. The hydroethanolic extract contained the highest levels of total phenolic (62.2 ± 1.2 mg GAE/g DW) and flavonoid (29.15 ± 0.09 mg QE/g DW) contents, exceeding those of the acetonic extract (22.2 ± 0.6 and 10.17 ± 0.07 mg GAE/g DW, respectively) and the water extract (22.4 ± 0.6 and 10.9 ± 0.6 mg QE/g DW, respectively). This extract also showed the strongest antioxidant effect, recording an IC50 of 0.060 ± 0.001 mg/mL in the DPPH assay, and an EC50 of 80 µg/mL in the RP test. In addition, it shows a great total antioxidant capacity, reaching 75.1 ± 2.0 mg EAA/g DW when compared to water and acetonic extracts (28.5 ± 1.4 and 21.1 ± 0.1 mg EAA/g DW, respectively). The antibacterial potential ranges from 0.78 ± 0.05 mg/mL to 12.6 mg/mL. In-silico prediction highlighted diosmetin 7-O-beta-D-glucuronide, quercetin, and equisetumpyrone as the key contributors to antioxidant capacity, while quercetin, 2,3,8-Tri-O-methylellagic acid, and diosmetin 7-O-beta-D-glucuronide were involved in antibacterial activity.
Mentha aquatica / HPLC-ESI-FULL-MS in-silico approach / Solvent polarity / Antioxidant activity / Antibacterial activity
| [1] |
|
| [2] |
|
| [3] |
|
| [4] |
|
| [5] |
|
| [6] |
|
| [7] |
|
| [8] |
|
| [9] |
|
| [10] |
|
| [11] |
Chebaibi M, Bourhia M, Amrati F, ez-zahra et al (2024) Salsoline derivatives, genistein, semisynthetic derivative of kojic acid, and naringenin as inhibitors of A42R profilin-like protein of monkeypox virus: in silico studies. Front Chem 12. https://doi.org/10.3389/fchem.2024.1445606 |
| [12] |
|
| [13] |
|
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
|
| [18] |
|
| [19] |
|
| [20] |
|
| [21] |
|
| [22] |
|
| [23] |
|
| [24] |
Hajimehdipoor H, Shahrestani R, Shekarchi M (2013) Investigating the synergistic antioxidant effects of some flavonoid and phenolic compounds |
| [25] |
Herrera-Calderon O, Chacaltana-Ramos LJ, Huayanca-Gutiérrez IC et al (2021) Chemical Constituents, In Vitro Antioxidant Activity and In Silico Study on NADPH Oxidase of Allium sativum L. (Garlic) Essential Oil. https://doi.org/10.3390/antiox10111844. Antioxidants 10: |
| [26] |
|
| [27] |
|
| [28] |
|
| [29] |
|
| [30] |
|
| [31] |
|
| [32] |
|
| [33] |
Lahlou RA, Gonçalves AC, Bounechada M et al (2024) Antioxidant, Phytochemical, and Pharmacological Properties of Algerian Mentha aquatica Extracts. Antioxidants 13. https://doi.org/10.3390/antiox13121512 |
| [34] |
|
| [35] |
|
| [36] |
|
| [37] |
|
| [38] |
|
| [39] |
|
| [40] |
|
| [41] |
|
| [42] |
|
| [43] |
|
| [44] |
Namdev D, Thakur TK, Kumar A, Subha Narayan Das, Anita Thakur (2026) Phytochemical Profiling, Antioxidant Activity, and Antimicrobial Potential of Curcuma aromatica Rhizomes from Central India. Atlantic Journal of Life Sciences. 2026(1). https://doi.org/10.71005/yag8yz88 |
| [45] |
|
| [46] |
|
| [47] |
|
| [48] |
|
| [49] |
|
| [50] |
|
| [51] |
|
| [52] |
Sharma V, Hussain S, Gupta M, Saxena AK (2014) In vitro anticancer activity of extracts of Mentha Spp. against human cancer cells |
| [53] |
|
| [54] |
Taibi M, Rezouki S, Moubchir T et al (2025) Satureja calamintha essential oil: Chemical composition and assessing insecticidal efficacy through activity against acetylcholinesterase, chitin, juvenile hormone, and molting hormone. J2BR 1:79–91. https://doi.org/10.69998/j2br.v1i2.8 |
| [55] |
|
| [56] |
Tourabi M, Baghouz A (2024) Unveiling the molecular composition and biological properties of essential oil derived from the leaves of wild Mentha aquatica L.: A comprehensive in vitro and in silico exploration. Open Chem 22. https://doi.org/10.1515/chem-2024-0057 |
| [57] |
Tourabi M, Ghouizi EL, Nouioura A G, et al (2023a) Phenolic profile, acute and subacute toxicity of an aqueous extract from Moroccan Mentha longifolia L. aerial part in Swiss Albino mice model. J Ethnopharmacol 117293. https://doi.org/10.1016/j.jep.2023.117293 |
| [58] |
|
| [59] |
|
| [60] |
|
| [61] |
|
| [62] |
|
| [63] |
|
| [64] |
|
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