Mentha arvensis

Ethnobotanical Studies

Studies

Antimicrobial Efficacy of Mangifera indica, Mentha arvensis, and Chlorhexidine Mouthwashes on Streptococcus mutans and Candida albicans in Children: A Comparative In Vivo Study.

Summary

Plant extracts like mango and pudina have been shown to be safe and effective in preventing dental caries and periodontal diseases. Herbal medicines can promote oral health.

Kajjari S et al (2024).
Int J Clin Pediatr Dent.
PubMed:
39185262

Comparison of Menthae Herba written with the same kanji characters () in Japan and China.

Negishi H and Ito M (2024).
J Nat Med.
PubMed:
38764002

Insecticidal activity of essential oils and plant extracts on cowpea aphid.

Pedro Novais Queiroz Guimarães J et al (2024).
Nat Prod Res.
PubMed:
38726913

Mentha spp. essential oils: toxicity to Alphitobius diaperinus, activity against poultry pathogenic bacteria, and Beauveria bassiana compatibility.

Gebauer S et al (2024).
Environ Sci Pollut Res Int.
PubMed:
38693455

Volatiles from essential oils of three Lamiaceae plants repel the winged cotton aphid, disturb its feeding behavior and reduce its fecundity.

Zhang Y et al (2024).
Pest Manag Sci.
PubMed:
38624184

Functionalization of niobium nitrogen-doped titanium dioxide (TiO(2)) nanoparticles with ethanolic extracts of Mentha arvensis.

Farooqi MA et al (2024).
Discov Nano.
PubMed:
38619645

Effects of Seven Plant Essential Oils on the Growth, Development and Feeding Behavior of the Wingless Aphis gossypii Glover.

Wang X et al (2024).
Plants (Basel).
PubMed:
38611446

Nanowarriors from Mentha: Unleashing Nature's Antimicrobial Arsenal with Cerium Oxide Nanoparticles.

Summary

Medicinal plant-based cerium oxide nanoparticles (CeONPs) showed strong antimicrobial properties against various bacteria and fungi, with potential applications in pharmaceuticals and food preservation due to low toxicity and organic coating. Plants like Mentha leaf extract can enhance CeONPs' therapeutic potential.

Khan M et al (2024).
ACS Omega.
PubMed:
38585053

Synthesis of eco-friendly layered double hydroxide and nanoemulsion for jasmine and peppermint oils and their larvicidal activities against Culex pipiens Linnaeus.

Radwan IT et al (2024).
Sci Rep.
PubMed:
38519561

Efficient nanostructured materials to reduce nutrient leaching to overcome environmental contaminants.

Nadeem F et al (2024).
Sci Rep.
PubMed:
38413788

Correction: Exploring the antibacterial, antidiabetic, and anticancer potential of Mentha arvensis extract through in‑silico and in‑vitro analysis.

Faisal S et al (2024).
BMC Complement Med Ther.
PubMed:
38388915

Depolymerized carrageenan expresses elicitor-like activity on Mentha arvensis L. under arsenic stress: Insights into arsenic resilience and monoterpene synthesis.

Nabi A et al (2024).
Plant Physiol Biochem.
PubMed:
38354526

Complete genome sequence of a novel robigovirus infecting Mentha arvensis.

Summary

A new plant virus, named Mentha arvensis robigovirus 1 (MARV1), was discovered using genomic sequencing. MARV1 belongs to the Robigovirus genus and is closely related to African oil palm ringspot virus. This finding provides important information about a previously unknown plant virus.

Weng HT et al (2024).
Arch Virol.
PubMed:
38180588

Essential Oils of Mentha arvensis and Cinnamomum cassia Exhibit Distinct Antibacterial Activity at Different Temperatures In Vitro and on Chicken Skin.

Vepštaitė-Monstavičė I et al (2023).
Foods.
PubMed:
37959057

Growth, oil and physiological parameters of three mint species grown under saline stress levels.

Kumar D et al (2023).
Physiol Mol Biol Plants.
PubMed:
37649882

Cytotoxic Screening and Enhanced Anticancer Activity of Lippia alba and Clinopodium nepeta Essential Oils-Loaded Biocompatible Lipid Nanoparticles against Lung and Colon Cancer Cells.

Summary

This study evaluated the cytotoxic activity of plant and herbal essential oils (EOs) against lung and colon cancer cells. The most potent EOs were encapsulated into solid lipid nanoparticles (SLN) to enhance their anticancer activity. SLN/CnEO was found to be safe and significantly increased cancer cell death and inhibition of cell migration.

Rodenak-Kladniew B et al (2023).
Pharmaceutics.
PubMed:
37631258

A Study on the Stability and Antimicrobial Efficacy of a Newly Modeled Teat Dip Solution Containing Chlorhexidine.

Summary

Scientists developed a new biocide for post-milking udder hygiene to reduce antibiotic usage for mastitis treatment. It showed stability and effectiveness against mastitis pathogens. Important for minimizing antimicrobial resistance and environmental contamination.

Kybartas M et al (2023).
Vet Sci.
PubMed:
37624297

Silicon dioxide nanoparticles suppress copper toxicity in Mentha arvensis L. by adjusting ROS homeostasis and antioxidant defense system and improving essential oil production.

Summary

Excessive copper in soil harms plant growth and crop production. Silica nanoparticles (Aerosil 200F) can reduce copper toxicity, improve plant growth, photosynthesis, antioxidant function, and essential oil production.

Aqeel U et al (2023).
Environ Res.
PubMed:
37558115

Exploring the antibacterial, antidiabetic, and anticancer potential of Mentha arvensis extract through in-silico and in-vitro analysis.

Summary

The study investigates the potential medicinal properties of Mentha arvensis through chemical analysis and laboratory testing, with implications for drug development.

Faisal S et al (2023).
BMC Complement Med Ther.
PubMed:
37496047

Mint leaves (Mentha arvensis) mediated CaO nanoparticles in dye degradation and their role in anti-inflammatory, anti-cancer properties.

Summary

The study investigated the synthesis of nanoparticles using mint leaf extract and their potential therapeutic and photocatalytic applications, including anti-cancer properties and degradation of azo dyes.

Shanmuganathan R et al (2023).
Environ Res.
PubMed:
37481060

Role of Phenolic Acid Metabolism in Enhancing Bioactivity of Mentha Extract Fermented with Plant-Derived Lactobacillus plantarum SN13T.

Shakya S et al (2023).
Probiotics Antimicrob Proteins.
PubMed:
37278953

The Anti-Atopic Dermatitis Effects of Mentha arvensis Essential Oil Are Involved in the Inhibition of the NLRP3 Inflammasome in DNCB-Challenged Atopic Dermatitis BALB/c Mice.

Kim SY et al (2023).
Int J Mol Sci.
PubMed:
37175425

Plant-derived smoke water and karrikinolide (KAR(1)) enhance physiological activities, essential oil yield and bioactive constituents of Mentha arvensis L.

Singh S et al (2023).
Front Plant Sci.
PubMed:
37152142

Nematicidal Characterization of Solanum nigrum and Mentha arvensis Leaf Extracts Using Caenorhabditis elegans as a Model Organism.

Khan NU et al (2023).
ACS Omega.
PubMed:
36936282

Genetic identification of the original plant species for Mentha Herb listed in the Japanese Pharmacopoeia and analyses of their essential oil composition.

Masumoto N and Ito M (2023).
J Nat Med.
PubMed:
36933088

In-vitro anti-bacterial activity of medicinal plants against Urinary Tract Infection (UTI) causing bacteria along with their synergistic effects with commercially available antibiotics.

Acharjee M et al (2022).
New Microbes New Infect.
PubMed:
36624873

Phyto-Synthesis, Characterization, and In Vitro Antibacterial Activity of Silver Nanoparticles Using Various Plant Extracts.

Ahmad B et al (2022).
Bioengineering (Basel).
PubMed:
36550985

Nanotechnology approach for exploring the enhanced bioactivities, biochemical characterisation and phytochemistry of freshly prepared Mentha arvensis L. nanosuspensions.

Sahar P et al (2022).
Phytochem Anal.
PubMed:
36453173

Salicylic Acid Priming Regulates Stomatal Conductance, Trichome Density and Improves Cadmium Stress Tolerance in Mentha arvensis L.

Zaid A, Mohammad F and Siddique KHM (2022).
Front Plant Sci.
PubMed:
35865293

Fermented Mentha arvensis administration provides neuroprotection against transient global cerebral ischemia in gerbils and SH-SY5Y cells via downregulation of the MAPK signaling pathway.

Islam MS et al (2022).
BMC Complement Med Ther.
PubMed:
35752797

Non-invasive Estimation of Foliar Nitrogen Concentration Using Spectral Characteristics of Menthol Mint (Mentha arvensis L.).

Pandey P et al (2022).
Front Plant Sci.
PubMed:
35615128

Mentha arvensis Essential Oil Exerts Anti-Inflammatory in LPS-Stimulated Inflammatory Responses via Inhibition of ERK/NF-κB Signaling Pathway and Anti-Atopic Dermatitis-like Effects in 2,4-Dinitrochlorobezene-Induced BALB/c Mice.

Kim SY et al (2021).
Antioxidants (Basel).
PubMed:
34943044

Arq Ajīb - a wonder Unani formulation for inhibiting SARS-CoV-2 spike glycoprotein and main protease - an in silico approach.

Ahmed NZ et al (2021).
J Complement Integr Med.
PubMed:
34679263

Arsenic contribution of poultry manure towards soils and food plants contamination and associated cancer risk in Khyber Pakhtunkhwa, Pakistan.

Muhammad J et al (2022).
Environ Geochem Health.
PubMed:
34542787

Water Extract of Mentha arvensis L. Attenuates Estrogen Deficiency-Induced Bone Loss by Inhibiting Osteoclast Differentiation.

Jang SA et al (2021).
Front Pharmacol.
PubMed:
34421614

Drying characteristics of mint leaves (Mentha arvensis) dried in a solid desiccant dehumidifier system.

Kannan VS, Arjunan TV and Vijayan S (2021).
J Food Sci Technol.
PubMed:
33568871

The Anti-Stress Effect of Mentha arvensis in Immobilized Rats.

Tian W et al (2018).
Int J Mol Sci.
PubMed:
29370076

Mentha arvensis (Linn.)-mediated green silver nanoparticles trigger caspase 9-dependent cell death in MCF7 and MDA-MB-231 cells.

Banerjee PP et al (2017).
Breast Cancer (Dove Med Press).
PubMed:
28458579

Mentha arvensis exhibit better adaptive characters in contrast to Mentha piperita when subjugated to sustained waterlogging stress.

Phukan UJ et al (2014).
Protoplasma.
PubMed:
24154494