Impact of Metallic Nanoparticles on In Vitro Culture, Phenolic Profile and Biological Activity of Two Mediterranean Lamiaceae Species: Lavandula viridis L’Hér and Thymus lotocephalus G. López and R. Morales (original ) (raw )Impact of Metal and Metal Oxide Nanoparticles on Plant: A Critical Review
Hazem Kalaji
Frontiers in chemistry, 2017
View PDFchevron_right
Assessment of Antioxidant Enzyme Responses in Host (Sesamum Indicum L.; Pedaliaceae) Following Nanoparticles (Copper, Copper Oxide and Copper Doped Zinc Oxide) Exposure
DEBADRITO DAS
2017
View PDFchevron_right
Impact of Phytomediated Zinc Oxide Nanoparticles on Growth and Oxidative Stress Response of In Vitro Raised Shoots of Ochradenus arabicus
Aref Al Shameri
BioMed Research International, 2021
View PDFchevron_right
Biochemical Response of Oakleaf Lettuce Seedlings to Different Concentrations of Some Metal(oid) Oxide Nanoparticles
Agnieszka Sękara
2020
View PDFchevron_right
Biogenic copper nanoparticles from Avicennia marina leaves: Impact on seed germination, detoxification enzymes, chlorophyll content and uptake by wheat seedlings
Mohamed Abdelfattah
PLOS ONE, 2021
View PDFchevron_right
Metal Nanoparticles – Their Use and Impact on Plants Growing in Laboratory Conditions
Danuta Kulpa
Folia Pomeranae Universitatis Technologiae Stetinensis Agricultura, Alimentaria, Piscaria et Zootechnica, 2019
View PDFchevron_right
Effect of biologically synthesized copper oxide nanoparticles on metabolism and antioxidant activity to the crop plants Solanum lycopersicum and Brassica oleracea var. botrytis
Himani Singh
Journal of biotechnology, 2017
View PDFchevron_right
Copper oxide (CuO) and manganese oxide (MnO) nanoparticles induced biomass accumulation, antioxidants biosynthesis and abiotic elicitation of bioactive compounds in callus cultures of Ocimum basilicum (Thai basil)
bisma meer
Artificial Cells, Nanomedicine, and Biotechnology
View PDFchevron_right
Foliar Application of Copper Oxide Nanoparticles Increases the Photosynthetic Efficiency and Antioxidant Activity in Brassica juncea
mohammad faizan
Journal of Food Quality
View PDFchevron_right
Copper Oxide Nanoparticles and Bulk Particles Stress Induced Cytological and Physiological Responses of Vicia Faba L
Praveen Verma
View PDFchevron_right
Investigating the Effect of Magnesium and Iron Oxide Nanoparticles on the Levels of Enzymatic and Non-enzymatic Antioxidants in Roselle
The Journal of Medicinal Plants and By-Products (JMPB)
Journal of Medicinal Plants and By-products (JMPB), 2020
View PDFchevron_right
Phytotoxicity and oxidative stress perspective of two selected nanoparticles in Brassica juncea
Prof. (Dr.) G.S. Shekhawat
3 Biotech, 2016
View PDFchevron_right
Biosynthesis of Metallic Nanoparticles from Medicinal Plants: A Review
atul arya
Journal of Nanoscience and Technology, 2019
View PDFchevron_right
INTERACTIONS OF PLANTS WITH NOBLE METAL NANOPARTICLES (review)
Lev Dykman
Sel'skokhozyaistvennaya Biologiya, 2017
View PDFchevron_right
The effects of metallic engineered nanoparticles upon plant systems: An analytic examination of scientific evidence
Wael Abdelraheem
The Science of the total environment, 2017
View PDFchevron_right
NanoparticleEffects of Zinc Oxide Nanoparticles on Chlorophyll Content, Growth Attributes, Antioxidant Enzyme Activities And Bioaccumulation of Common Bean (Phaseolus Vulgaris L.) Grown In Soi...
LATIFAT O L A B I M P E SIDIQ (NEE:ALIU) , Akanbi Gada Mariam
Journal of Environmental Science, Toxicology and Food Technology, 2019
View PDFchevron_right
Effect of metal and metal oxide nanoparticles on growth and physiology of globally important food crops: A critical review
Muhammad Adrees
Journal of Hazardous Materials, 2017
View PDFchevron_right
PHYSIOLOGICAL RESPONSES OF CROP PLANTS TO METAL AND CARBON NANOPARTICLES (Atena Editora)
Atena Editora
PHYSIOLOGICAL RESPONSES OF CROP PLANTS TO METAL AND CARBON NANOPARTICLES (Atena Editora), 2022
View PDFchevron_right
Effects of Biogenic Zinc Oxide Nanoparticles on Growth and Oxidative Stress Response in Flax Seedlings vs. In Vitro Cultures: A Comparative Analysis
nathalie guivarch
Biomolecules, 2020
View PDFchevron_right
Effects of engineered aluminum and nickel oxide nanoparticles on the growth and antioxidant defense systems of Nigella arvensis L
Naser Karimi
Scientific Reports, 2020
View PDFchevron_right
Zinc Oxide Nanoparticles Enhanced Biomass and Zinc Content and Induced Changes in Biological Properties of Red Perilla frutescens
Agnieszka Jaszczak
Materials
View PDFchevron_right
The emergence of metal oxide nanoparticles (NPs) as a phytomedicine: A two-facet role in plant growth, nano-toxicity and anti-phyto-microbial activity
Subham Preetam
Biomedicine & Pharmacotherapy, 2022
View PDFchevron_right
Zinc Oxide Nanoparticles Induced Oxidative Stress and Changes in the Photosynthetic Apparatus in Fenugreek (Trigonella foenum graecum L
Hajer chmingui
View PDFchevron_right
The Role of Zinc Oxide Nanoparticles in Plants: A Critical Appraisal
archana singh
2021
View PDFchevron_right
CuO and ZnO nanoparticles: phytotoxicity, metal speciation, and induction of oxidative stress in sand-grown wheat
Joan McLean
Journal of Nanoparticle Research, 2012
View PDFchevron_right
To duckweeds ( Landoltia punctata), nanoparticulate copper oxide is more inhibitory than the soluble copper in the bulk solution
Krassimira Hristova
Environmental Pollution, 2011
View PDFchevron_right
Effect of foliar application of cerium oxide nanoparticles on growth, photosynthetic pigments, electrolyte leakage, compatible osmolytes and antioxidant enzymes activities of Calendula officinalis L
Sedighe Jahani
Biologia, 2019
View PDFchevron_right