Mentha sp.

Ethnobotanical Studies

Studies

Insights of phytoremediation mechanisms for viruses based on in-vitro, in-vivo and in-silico assessments of selected herbal plants.

Zure D, David Kuo HW and Drizo A (2024).
Chemosphere.
PubMed:
38171396

Optimization of a Green Microwave-Assisted Extraction Method to Obtain Multifunctional Extracts of Mentha sp.

García-Sarrió MJ et al (2023).
Foods.
PubMed:
37238857

Toxicity, Deterrent and Repellent Activities of Four Essential Oils on Aphis punicae (Hemiptera: Aphididae).

Sayed S et al (2022).
Plants (Basel).
PubMed:
35161443

Light potentials of photosynthetic energy storage in the field: what limits the ability to use or dissipate rapidly increased light energy?

Kanazawa A et al (2021).
R Soc Open Sci.
PubMed:
34925868

Optimizing growing conditions for hydroponic farming of selected medicinal and aromatic plants.

Ćavar Zeljković S et al (2022).
Food Chem.
PubMed:
34923398

Potential effects of Psidium sp., Mangifera sp., Mentha sp. and its mixture (PEM) in reducing bacterial populations in biofilms, adherence and acid production of S. sanguinis and S. mutans.

Shafiei Z et al (2020).
Arch Oral Biol.
PubMed:
31563709

Evaluation of Antioxidant, Anti-Inflammatory and Cytoprotective Properties of Ethanolic Mint Extracts from Algeria on 7-Ketocholesterol-Treated Murine RAW 264.7 Macrophages.

Brahmi F et al (2018).
Antioxidants (Basel).
PubMed:
30563252

Essential oils showing in vitro anti MRSA and synergistic activity with penicillin group of antibiotics.

Uzair B et al (2017).
Pak J Pharm Sci.
PubMed:
29105634

Biocidal Compounds from Mentha sp. Essential Oils and Their Structure-Activity Relationships.

Kimbaris AC et al (2017).
Chem Biodivers.
PubMed:
27770481

Antibacterial and anti-adherence effects of a plant extract mixture (PEM) and its individual constituent extracts (Psidium sp., Mangifera sp., and Mentha sp.) on single- and dual-species biofilms.

Shafiei Z et al (2016).
PeerJ.
PubMed:
27761322