Plant Essential Oils as Biopesticides: Applications, Mechanisms, Innovations, and Constraints

The advent of the “Green Revolution” was a great success in significantly increasing crop productivity. However, it involved high ecological costs in terms of excessive use of synthetic agrochemicals, raising concerns about agricultural sustainability. Indiscriminate use of synthetic pesticides resulted in environmental degradation, the development of pest resistance, and possible dangers to a variety of nontarget species (including plants, animals, and humans). Thus, a sustainable approach necessitates the exploration of viable ecofriendly alternatives. Plant-based biopesticides are attracting considerable attention in this context due to their target specificity, ecofriendliness, biodegradability, and safety for humans and other life forms. Among all the relevant biopesticides, plant essential oils (PEOs) or their active components are being widely explored against weeds, pests, and microorganisms. This review aims to collate the information related to the expansion and advancement in research and technology on the applications of PEOs as biopesticides. An insight into the mechanism of action of PEO-based bioherbicides, bioinsecticides, and biofungicides is also provided. With the aid of bibliometric analysis, it was found that ~75% of the documents on PEOs having biopesticidal potential were published in the last five years, with an annual growth rate of 20.51% and a citation per document of 20.91. Research on the biopesticidal properties of PEOs is receiving adequate attention from European (Italy and Spain), Asian (China, India, Iran, and Saudi Arabia), and American (Argentina, Brazil, and the United States of America) nations. Despite the increasing biopesticidal applications of PEOs and their widespread acceptance by governments, they face many challenges due to their inherent nature (lipophilicity and high volatility), production costs, and manufacturing constraints. To overcome these limitations, the incorporation of emerging innovations like the nanoencapsulation of PEOs, bioinformatics, and RNA-Seq in biopesticide development has been proposed. With these novel technological interventions, PEO-based biopesticides have the potential to be used for sustainable pest management in the future.

[1]  L. Nollet,et al.  Biopesticides Handbook , 2023 .

[2]  T. Changbunjong,et al.  Effects of Piper nigrum L. Fruit Essential Oil Toxicity against Stable Fly (Diptera: Muscidae) , 2023, Plants.

[3]  T. Mohamed,et al.  Chemical Profiling of Significant Antioxidant and Phytotoxic Microwave-Extracted Essential Oil from Araucaria heterophylla Resin , 2023, Separations.

[4]  Rishikesh Singh,et al.  Pesticide contamination in agro-ecosystems: toxicity, impacts, and bio-based management strategies , 2022, Environmental Science and Pollution Research.

[5]  V. De Feo,et al.  Juniperus horizontalis Moench: Chemical Composition, Herbicidal and Insecticidal Activities of Its Essential Oil and of Its Main Component, Sabinene , 2022, Molecules.

[6]  V. De Feo,et al.  Chemical Composition and Phytotoxic and Antibiofilm Activity of the Essential Oils of Eucalyptus bicostata, E. gigantea, E. intertexta, E. obliqua, E. pauciflora and E. tereticornis , 2022, Plants.

[7]  A. Najda,et al.  Phytotoxic Effects of Three Origanum Species Extracts and Essential Oil on Seed Germinations and Seedling Growths of Four Weed Species , 2022, Agronomy.

[8]  V. De Feo,et al.  Eucalyptus cinerea and E. nicholii by-Products as Source of Bioactive Compounds for Agricultural Applications , 2022, Plants.

[9]  S. Jaiswal,et al.  Encapsulation of Essential Oils in Nanocarriers for Active Food Packaging , 2022, Foods.

[10]  S. Ercişli,et al.  Biological Control of Penicillium on Lemon Fruits by Essential Oils of Satureja Species , 2022, Erwerbs-Obstbau.

[11]  M. Khammassi,et al.  Tunisian Pine Essential Oils: Chemical Composition, Herbicidal and Antifungal Properties , 2022, Journal of Essential Oil Bearing Plants.

[12]  H. Singh,et al.  Chemical Composition and Potential of Eucalyptus camaldulensis Dehnh. Essential Oil and Its Major Components as Anti-inflammatory and Anti-leishmanial Agent , 2022, Journal of Essential Oil Bearing Plants.

[13]  N. Sahoo,et al.  Functionalized graphene oxide based nanocarrier for enhanced cytotoxicity of Juniperus squamata root essential oil against breast cancer cells , 2022, Journal of Drug Delivery Science and Technology.

[14]  S. Kordali,et al.  Insecticidal activities of some plant essential oils on Rhyzopertha dominica (F.) and Sitophilus granarius L. (Coleoptera: Bostrichidae and Curculionidae) adults , 2022, Artvin Çoruh Üniversitesi Orman Fakültesi Dergisi.

[15]  Sachin M. Mendhi,et al.  Multivalent Role of Essential Oil in Cosmetics: A Review , 2022, International Journal of Pharmaceutical Sciences Review and Research.

[16]  O. Campolo,et al.  Contact Toxicity and Ovideterrent Activity of Three Essential Oil-Based Nano-Emulsions against the Olive Fruit Fly Bactrocera oleae , 2022, Horticulturae.

[17]  R. Kohli,et al.  Essential oils as anticancer agents: Potential role in malignancies, drug delivery mechanisms, and immune system enhancement. , 2021, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.

[18]  W. Hsiao,et al.  Anti-Melanogenic Activity of Calocedrus formosana Wood Essential Oil and Its Chemical Composition Analysis , 2021, Plants.

[19]  P. Barbosa,et al.  Phytochemicals as Biopesticides against the Pinewood Nematode Bursaphelenchus xylophilus: A Review on Essential Oils and Their Volatiles , 2021, Plants.

[20]  A. Smeriglio,et al.  Eucalyptus gunnii and Eucalyptus pulverulenta ‘Baby Blue’ Essential Oils as Potential Natural Herbicides , 2021, Molecules.

[21]  Jingze Liu,et al.  Transcriptome profile of Haemaphysalis longicornis (Acari: Ixodidae) exposed to Cymbopogon citratus essential oil and citronellal suggest a cytotoxic mode of action involving mitochondrial Ca2+ overload and depolarization. , 2021, Pesticide biochemistry and physiology.

[22]  M. S. Bhullar,et al.  Nanoemulsion of Foeniculum vulgare essential oil: A propitious striver against weeds of Triticum aestivum , 2021 .

[23]  O. Campolo,et al.  Essential Oil-Based Nano-Biopesticides: Formulation and Bioactivity against the Confused Flour Beetle Tribolium confusum , 2021, Sustainability.

[24]  M. Bruschi,et al.  Design of Nanostructured Lipid Carriers Containing Cymbopogon martinii (Palmarosa) Essential Oil against Aspergillus nomius , 2021, Molecules.

[25]  M. Herranz-López,et al.  Antibacterial plant compounds, extracts and essential oils: An updated review on their effects and putative mechanisms of action. , 2021, Phytomedicine : international journal of phytotherapy and phytopharmacology.

[26]  A. Nadra,et al.  Transcriptomic analysis and molecular docking reveal genes involved in the response of Aedes aegypti larvae to an essential oil extracted from Eucalyptus , 2021, PLoS neglected tropical diseases.

[27]  A. Rahimi,et al.  Combined bio-chemical fertilizers ameliorate agro-biochemical attributes of black cumin (Nigella sativa L.) , 2021, Scientific Reports.

[28]  A. Chiriac,et al.  Polymeric Carriers Designed for Encapsulation of Essential Oils with Biological Activity , 2021, Pharmaceutics.

[29]  A. S. Raghubanshi,et al.  Compatible package-based agriculture systems: an urgent need for agro-ecological balance and climate change adaptation , 2021, Soil Ecology Letters.

[30]  A. Ibrahim,et al.  Evaluation of Insecticidal Effects of Plants Essential Oils Extracted from Basil, Black Seeds and Lavender against Sitophilus oryzae , 2021, Plants.

[31]  D. Mcclements,et al.  Investigate the adverse effects of foliarly applied antimicrobial nanoemulsion (carvacrol) on spinach , 2021 .

[32]  L. Zappalà,et al.  Bioactivity of essential oil-based nano-biopesticides toward Rhyzopertha dominica (Coleoptera: Bostrichidae) , 2021 .

[33]  Giuseppe De Mastro,et al.  Bioherbicidal Potential of the Essential Oils from Mediterranean Lamiaceae for Weed Control in Organic Farming , 2021, Plants.

[34]  J. C. Carvalho,et al.  Nano-emulsions of the essential oil of Baccharis reticularia and its constituents as eco-friendly repellents against Tribolium castaneum , 2021 .

[35]  A. Ismail,et al.  Essential oils of Tunisian Pinus radiata D. Don, chemical composition and study of their herbicidal activity , 2021 .

[36]  G. Celano,et al.  Essential oils and quality composts sourced by recycling vegetable residues from the aromatic plant supply chain , 2021 .

[37]  M. Cisse,et al.  Bio-insecticidal effects of essential oil nano-emulsion of Lippia multiflora Mold. on major cabbage pests , 2021, Journal of Plant Protection Research.

[38]  F. Drago,et al.  Essential Oils: Pharmaceutical Applications and Encapsulation Strategies into Lipid-Based Delivery Systems , 2021, Pharmaceutics.

[39]  M. Ricupero,et al.  Silica‐Microencapsulated Orange Oil for Sustainable Pest Control , 2021, Advanced Sustainable Systems.

[40]  N. Sharma,et al.  Determination of the Volatile Composition in Essential Oil of Azadirachta indica A. Juss from different areas of North Indian Plains by Gas Chromatography/Mass Spectrometry (GC/MS) , 2021, Analytical Chemistry Letters.

[41]  Samantha Nunes de Godoi,et al.  Nanobiopesticides: development and inseticidal activity of nanoemulsions containing lemongrass or eucalyptus oils , 2020, Natural product research.

[42]  Justice A. Essiedu,et al.  Benefits and limitations in using biopesticides: A review , 2020 .

[43]  O. Campolo,et al.  Essential oil-based nano-emulsions: Effect of different surfactants, sonication and plant species on physicochemical characteristics , 2020 .

[44]  E. M. Castanheira,et al.  Cytotoxic Plant Extracts towards Insect Cells: Bioactivity and Nanoencapsulation Studies for Application as Biopesticides , 2020, Molecules.

[45]  F. Araniti,et al.  Phytotoxic Effects and Mechanism of Action of Essential Oils and Terpenoids , 2020, Plants.

[46]  A. Movafeghi,et al.  Exploring the bio-control efficacy of Artemisia fragrans essential oil on the perennial weed Convolvulus arvensis: Inhibitory effects on the photosynthetic machinery and induction of oxidative stress , 2020 .

[47]  G. Manchanda,et al.  Nanoparticles in sustainable agriculture: An emerging opportunity. , 2020, Journal of controlled release : official journal of the Controlled Release Society.

[48]  M. Burrows,et al.  Antifungal Activity of Plant Derived Essential Oils on Pathogens of Pulse Crops. , 2020, Plant disease.

[49]  Nobile Riccardo,et al.  Citrus bergamia, Risso: the peel, the juice and the seed oil of the bergamot fruit of Reggio Calabria (South Italy). , 2020 .

[50]  Ricky B. Nellas,et al.  The interaction and mechanism of monoterpenes with tyramine receptor (SoTyrR) of rice weevil (Sitophilus oryzae) , 2020, SN Applied Sciences.

[51]  M. Saharkhiz,et al.  A natural post-emergence herbicide based on essential oil encapsulation by cross-linked biopolymers: characterization and herbicidal activity , 2020, Environmental Science and Pollution Research.

[52]  S. Jafari,et al.  Formulation optimization of D-limonene-loaded nanoemulsions as a natural and efficient biopesticide , 2020 .

[53]  Kun-peng Zhang,et al.  Insecticidal Activity of Artemisia vulgaris Essential Oil and Transcriptome Analysis of Tribolium castaneum in Response to Oil Exposure , 2020, Frontiers in Genetics.

[54]  G. Selling,et al.  Insecticidal Activity of Commiphora erythraea Essential Oil and Its Emulsions Against Larvae of Three Mosquito Species , 2020, Journal of Medical Entomology.

[55]  P. Tranel,et al.  Mechanisms of evolved herbicide resistance , 2020, The Journal of Biological Chemistry.

[56]  S. Koutroubas,et al.  Botanical Pesticides for Eco‐Friendly Pest Management , 2020 .

[57]  Xinkui Liu,et al.  Investigating the multi-target pharmacological mechanism of danhong injection acting on unstable angina by combined network pharmacology and molecular docking , 2020, BMC Complementary Medicine and Therapies.

[58]  A. Kumari,et al.  Appraisal of phytotoxic, cytotoxic and genotoxic potential of essential oil of a medicinal plant Vitex negundo , 2020 .

[59]  Jingze Liu,et al.  Expression profiles of glutathione S-transferases genes in semi-engorged Haemaphysalis longicornis (Acari: Ixodidae) exposed to Cymbopogon citratus essential oil , 2020, Systematic and Applied Acarology.

[60]  Pesticides in Crop Production , 2020 .

[61]  R. Kohli,et al.  Chemical characterization, phytotoxic, and cytotoxic activities of essential oil of Mentha longifolia , 2020, Environmental Science and Pollution Research.

[62]  E. Sikora,et al.  Nanoformulations as a modern form of biofungicide , 2020, Journal of Environmental Health Science and Engineering.

[63]  V. De Feo,et al.  Thymol Chemotype Origanum vulgare L. Essential Oil as a Potential Selective Bio-Based Herbicide on Monocot Plant Species , 2020, Molecules.

[64]  T. Gokturk,et al.  Insecticidal effects of some essential oils against Tribolium confusum (du Val.) and Acanthoscelides obtectus (Say), (Coleoptera: Tenebrionidae and Bruchidae) adults , 2020, International Journal of Tropical Insect Science.

[65]  Jinjing Xiao,et al.  Knockdown of NADPH-cytochrome P450 reductase and CYP6MS1 increases the susceptibility of Sitophilus zeamais to terpinen-4-ol. , 2020, Pesticide biochemistry and physiology.

[66]  Lucia Pavoni,et al.  An Overview of Micro- and Nanoemulsions as Vehicles for Essential Oils: Formulation, Preparation and Stability , 2020, Nanomaterials.

[67]  O. Campolo,et al.  Repellence and acute toxicity of a nano-emulsion of sweet orange essential oil toward two major stored grain insect pests , 2019 .

[68]  M. Isman Challenges of Pest Management in the Twenty First Century: New Tools and Strategies to Combat Old and New Foes Alike , 2019, Front. Agron..

[69]  G. Smagghe,et al.  Essential oil from Negramina (Siparuna guianensis) plants controls aphids without impairing survival and predatory abilities of non-target ladybeetles. , 2019, Environmental pollution.

[70]  F. Araniti,et al.  Carum carvi L. essential oil: A promising candidate for botanical herbicide against Echinochloa crus-galli (L.) P. Beauv. in maize cultivation , 2019, Industrial Crops and Products.

[71]  H. Ali,et al.  Essential and Recovery Oils from Matricaria chamomilla Flowers as Environmentally Friendly Fungicides Against Four Fungi Isolated from Cultural Heritage Objects , 2019, Processes.

[72]  M. Isman Commercial development of plant essential oils and their constituents as active ingredients in bioinsecticides , 2019, Phytochemistry Reviews.

[73]  M. Khan,et al.  Chemical diversity in leaf and stem essential oils of Origanum vulgare L. and their effects on microbicidal activities , 2019, AMB Express.

[74]  Xia-Li Jia,et al.  Antifungal Effects and Potential Mechanism of Essential Oils on Collelotrichum gloeosporioides In Vitro and In Vivo , 2019, Molecules.

[75]  Stephen O. Duke,et al.  Natural Products in Pest Management: Innovative Approaches for Increasing their Use. , 2019, Pest management science.

[76]  D. Barreca,et al.  Feijoa Fruit Peel: Micro-morphological Features, Evaluation of Phytochemical Profile, and Biological Properties of Its Essential Oil , 2019, Antioxidants.

[77]  L. Lins,et al.  Insights into the Relationships Between Herbicide Activities, Molecular Structure and Membrane Interaction of Cinnamon and Citronella Essential Oils Components , 2019, International journal of molecular sciences.

[78]  M. Ibáñez,et al.  Phytotoxic Effects of Commercial Eucalyptus citriodora, Lavandula angustifolia, and Pinus sylvestris Essential Oils on Weeds, Crops, and Invasive Species , 2019, Molecules.

[79]  G. Benelli,et al.  Insecticidal activity of the essential oil from Schizogyne sericea (Asteraceae) on four insect pests and two non-target species , 2019, Entomologia Generalis.

[80]  J. Jampílek,et al.  Bio-Based Nanoemulsion Formulations Applicable in Agriculture, Medicine, and Food Industry , 2019, Nanobiotechnology in Bioformulations.

[81]  M. Stankiewicz,et al.  The unusual action of essential oil component, menthol, in potentiating the effect of the carbamate insecticide, bendiocarb. , 2019, Pesticide biochemistry and physiology.

[82]  M. Fauconnier,et al.  Encapsulation of Essential Oils for the Development of Biosourced Pesticides with Controlled Release: A Review , 2019, Molecules.

[83]  A. S. Raghubanshi,et al.  Challenges and opportunities for agricultural sustainability in changing climate scenarios: a perspective on Indian agriculture , 2019, Tropical Ecology.

[84]  Vallavan Rajkumar,et al.  Toxicity, antifeedant and biochemical efficacy of Mentha piperita L. essential oil and their major constituents against stored grain pest. , 2019, Pesticide biochemistry and physiology.

[85]  R. Kohli,et al.  Chemical profiling, cytotoxicity and phytotoxicity of foliar volatiles of Hyptis suaveolens. , 2019, Ecotoxicology and environmental safety.

[86]  M. Scharf,et al.  Toxicity and neurophysiological impacts of plant essential oil components on bed bugs (Cimicidae: Hemiptera) , 2019, Scientific Reports.

[87]  K. Haddi,et al.  Mosquiticidal and repellent potential of formulations containing wood residue extracts of a Neotropical plant, Tabebuia heptaphylla , 2019, Industrial Crops and Products.

[88]  N. Ouaini,et al.  Hirtellina lobelii DC. essential oil, its constituents, its combination with antimicrobial drugs and its mode of action. , 2019, Fitoterapia.

[89]  Amina J. Mohammed The State of Food Security and Nutrition in the World 2021 , 2021 .

[90]  Jian Zhao,et al.  Essential oil of Chrysanthemum indicum L.: potential biocontrol agent against plant pathogen Phytophthora nicotianae , 2019, Environmental Science and Pollution Research.

[91]  S. Abdelgaleil,et al.  Insecticidal potential and repellent and biochemical effects of phenylpropenes and monoterpenes on the red flour beetle, Tribolium castaneum Herbst , 2019, Environmental Science and Pollution Research.

[92]  C. Ochoa-Velasco,et al.  Antioxidant and Antimicrobial Activity of Mexican Oregano (Poliomintha longiflora) Essential Oil, Hydrosol and Extracts from Waste Solid Residues , 2019, Plants.

[93]  M. Bhavya,et al.  Ocimum tenuiflorum oil, a potential insecticide against rice weevil with anti-acetylcholinesterase activity , 2018, Industrial Crops and Products.

[94]  R. Ksouri,et al.  Cupressus sempervirens essential oils and their major compounds successfully control postharvest grey mould disease of tomato , 2018, Industrial Crops and Products.

[95]  A. Russo,et al.  Essential Oils in Stored Product Insect Pest Control , 2018, Journal of Food Quality.

[96]  Juan Francisco Sánchez-Tejeda,et al.  In Silico Studies on Compounds Derived from Calceolaria: Phenylethanoid Glycosides as Potential Multitarget Inhibitors for the Development of Pesticides , 2018, Biomolecules.

[97]  Ashwani Kumar,et al.  Ocimum sp.: Source of biorational pesticides , 2018, Industrial Crops and Products.

[98]  I. Thompson,et al.  Species-specific antimicrobial activity of essential oils and enhancement by encapsulation in mesoporous silica nanoparticles , 2018, Industrial Crops and Products.

[99]  G. Benelli,et al.  The essential oil from industrial hemp (Cannabis sativa L.) by-products as an effective tool for insect pest management in organic crops , 2018, Industrial Crops and Products.

[100]  Jinjing Xiao,et al.  Toxicity of Melaleuca alternifolia essential oil to the mitochondrion and NAD+/NADH dehydrogenase in Tribolium confusum , 2018, PeerJ.

[101]  Jinjing Xiao,et al.  Transcriptome profiling reveals differential gene expression of detoxification enzymes in Sitophilus zeamais responding to terpinen-4-ol fumigation. , 2018, Pesticide biochemistry and physiology.

[102]  S. Kordali,et al.  Investigation of Pesticidal Activities of Essential Oil of Eucalyptus camaldulensis Dehnh , 2018, Records of Natural Products.

[103]  M. Baldissera,et al.  In vitro Safety and Efficacy of Lavender Essential Oil (Lamiales: Lamiaceae) as an Insecticide Against Houseflies (Diptera: Muscidae) and Blowflies (Diptera: Calliphoridae) , 2018, Journal of Economic Entomology.

[104]  S. Irmak,et al.  Climate-Driven Crop Yield and Yield Variability and Climate Change Impacts on the U.S. Great Plains Agricultural Production , 2018, Scientific Reports.

[105]  G. Nouri-Ganbalani,et al.  Antifeedant Activity and Toxicity of Some Plant Essential Oils to Colorado Potato Beetle, Leptinotarsa decemlineata Say (Coleoptera: Chrysomelidae) , 2018 .

[106]  R. Pavela Essential oils from Foeniculum vulgare Miller as a safe environmental insecticide against the aphid Myzus persicae Sulzer , 2018, Environmental Science and Pollution Research.

[107]  I. Stappen,et al.  Essential Oils and Their Single Compounds in Cosmetics—A Critical Review , 2018 .

[108]  M. Stankiewicz,et al.  Molecular Targets for Components of Essential Oils in the Insect Nervous System—A Review , 2017, Molecules.

[109]  R. Kohli,et al.  Phytotoxicity and cytotoxicity of Citrus aurantiifolia essential oil and its major constituents: Limonene and citral , 2017 .

[110]  Massimo Aria,et al.  bibliometrix: An R-tool for comprehensive science mapping analysis , 2017, J. Informetrics.

[111]  Yingying Wei,et al.  Tea tree oil exhibits antifungal activity against Botrytis cinerea by affecting mitochondria. , 2017, Food chemistry.

[112]  A. Pardossi,et al.  Weeds for weed control: Asteraceae essential oils as natural herbicides , 2017 .

[113]  M. Niakousari,et al.  Natural herbicide activity of Satureja hortensis L. essential oil nanoemulsion on the seed germination and morphophysiological features of two important weed species. , 2017, Ecotoxicology and environmental safety.

[114]  Bhanu Prakash,et al.  Chemically characterized Mentha cardiaca L. essential oil as plant based preservative in view of efficacy against biodeteriorating fungi of dry fruits, aflatoxin secretion, lipid peroxidation and safety profile assessment. , 2017, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.

[115]  Cleydson B. R. Santos,et al.  Chemical Study, Predictions In Silico and Larvicide Activity of the Essential Oil of Root Philodendron deflexum Poepp. , 2017 .

[116]  C. Barrow,et al.  Progress on Azadirachta indica Based Biopesticides in Replacing Synthetic Toxic Pesticides , 2017, Front. Plant Sci..

[117]  Fernando P. Carvalho,et al.  Pesticides, environment, and food safety , 2017 .

[118]  N. Al-Dhabi,et al.  Comparative analysis of mosquito (Diptera: Culicidae: Aedes aegypti Liston) responses to the insecticide Temephos and plant derived essential oil derived from Piper betle L. , 2017, Ecotoxicology and environmental safety.

[119]  Wenda Wang,et al.  Synthesis and Evaluation of Essential Oil-Derived β-Methoxyacrylate Derivatives as High Potential Fungicides , 2017, Molecules.

[120]  T. Day,et al.  Interaction of plant essential oil terpenoids with the southern cattle tick tyramine receptor: A potential biopesticide target. , 2017, Chemico-biological interactions.

[121]  Yang Liu,et al.  Insecticidal Activity of Melaleuca alternifolia Essential Oil and RNA-Seq Analysis of Sitophilus zeamais Transcriptome in Response to Oil Fumigation , 2016, PloS one.

[122]  G. Benelli,et al.  Essential Oils as Ecofriendly Biopesticides? Challenges and Constraints. , 2016, Trends in plant science.

[123]  Manoj Kumar,et al.  Plant essential oils against food borne fungi and mycotoxins , 2016 .

[124]  P. Soundy,et al.  Different defense responses and brown rot control in two Prunus persica cultivars to essential oil vapours after storage , 2016 .

[125]  M. Zaker Natural Plant Products as Eco-friendly Fungicides for Plant Diseases Control- A Review , 2016 .

[126]  P. Vanloot,et al.  Chemical characterization and antifungal activities of four Thymus species essential oils against postharvest fungal pathogens of citrus , 2016 .

[127]  A. Ebadollahi,et al.  Phytochemistry, toxicity and feeding inhibitory activity of Melissa officinalis L. essential oil against a cosmopolitan insect pest; Tribolium castaneum Herbst , 2016 .

[128]  A. Mossa Green Pesticides: Essential Oils as Biopesticides in Insect-pest Management , 2016 .

[129]  D. Kheirallah,et al.  Histological Effects of Essential Oils, Their Monoterpenoids and Insect Growth Regulators on Midgut, Integument of Larvae and Ovaries of Khapra Beetle, Trogoderma granarium Everts , 2016 .

[130]  Reshma B. Nambiar,et al.  Antifungal activity of five different essential oils in vapour phase for the control of Colletotrichum gloeosporioides and Lasiodiplodia theobromae in vitro and on mango , 2016 .

[131]  F. Perina,et al.  Thymus vulgaris essential oil and thymol against Alternaria alternata (Fr.) Keissler: effects on growth, viability, early infection and cellular mode of action. , 2015, Pest management science.

[132]  P. Variyar,et al.  Comparison of Essential Oils Obtained from Different Extraction Techniques as an Aid in Identifying Aroma Significant Compounds of Nutmeg (Myristica Fragrans) , 2015, Natural product communications.

[133]  S. ElshafieHazem,et al.  Antifungal Activity of Some Constituents of Origanum vulgare L. Essential Oil Against Postharvest Disease of Peach Fruit. , 2015 .

[134]  A. Varma,et al.  Synergistic anti-candidal activity and mode of action of Mentha piperita essential oil and its major components , 2015, Pharmaceutical biology.

[135]  M. González-Chávez,et al.  Composition of the Essential Oil of Salvia ballotiflora (Lamiaceae) and Its Insecticidal Activity , 2015, Molecules.

[136]  A. Elaissari,et al.  Essential oils: from extraction to encapsulation. , 2015, International journal of pharmaceutics.

[137]  S. Watson,et al.  Sarmentine, a natural herbicide from Piper species with multiple herbicide mechanisms of action , 2015, Front. Plant Sci..

[138]  T. Glare Types of biopesticides , 2015 .

[139]  S. Combrinck,et al.  Application of essential oils as multi-target fungicides for the control of Geotrichum citri-aurantii and other postharvest pathogens of citrus , 2014 .

[140]  K. Kang,et al.  Fumigant toxicity and acetylcholinesterase inhibitory activity of 4 Asteraceae plant essential oils and their constituents against Japanese termite (Reticulitermes speratus Kolbe). , 2014, Pesticide biochemistry and physiology.

[141]  N. Tao,et al.  Citral inhibits mycelial growth of Penicillium italicum by a membrane damage mechanism , 2014 .

[142]  S. Aziza,et al.  Natural plant oils and terpenes as protectors for the potato tubers against Phthorimaea operculella (Zeller) infestation by different application methods. , 2014 .

[143]  S. Duke,et al.  Natural Compounds as Next-Generation Herbicides , 2014, Plant Physiology.

[144]  Jianhui Xie,et al.  Insecticidal activity of pogostone against Spodoptera litura and Spodoptera exigua (Lepidoptera: Noctuidae). , 2014, Pest management science.

[145]  I. Orhan,et al.  Phytochemical contents and enzyme inhibitory and antioxidant properties of Anethum graveolens L. (dill) samples cultivated under organic and conventional agricultural conditions. , 2013, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.

[146]  A. Ismail,et al.  Chemical composition, bio-herbicidal and antifungal activities of essential oils isolated from Tunisian common cypress (Cupressus sempervirens L.) , 2013 .

[147]  Cristina Nerín,et al.  Combined analytical and microbiological tools to study the effect on Aspergillus flavus of cinnamon essential oil contained in food packaging , 2013 .

[148]  R. Kohli,et al.  Assessment of in vitro antioxidant activity of essential oil of Eucalyptus citriodora (lemon-scented Eucalypt; Myrtaceae) and its major constituents. , 2012 .

[149]  E. Puglisi,et al.  Soil enzymology: classical and molecular approaches , 2012, Biology and Fertility of Soils.

[150]  A. Khani,et al.  Insecticide Activity of Essential Oils of Mentha longifolia, Pulicaria gnaphalodes and Achillea wilhelmsii Against Two Stored Product Pests, the Flour Beetle, Tribolium castaneum, and the Cowpea Weevil, Callosobruchus maculatus , 2012, Journal of insect science.

[151]  Hany Abdelhady Insecticidal activity and chemical composition of essential oil from Artemisia judaica L. against Callosobruchus maculatus (F.) (coleoptera: bruchidae) , 2012 .

[152]  Stephen P. Nyirenda,et al.  Pesticidal plants: a viable alternative insect pest management approach for resource-poor farming in Africa. , 2012 .

[153]  Charles L Cantrell,et al.  Natural products as sources for new pesticides. , 2012, Journal of natural products.

[154]  A. Baumann,et al.  Plant essential oils and formamidines as insecticides/acaricides: what are the molecular targets? , 2012, Apidologie.

[155]  R. Meyer,et al.  Essential Oils in Food Preservation: Mode of Action, Synergies, and Interactions with Food Matrix Components , 2012, Front. Microbio..

[156]  G. Begg,et al.  How agro-ecological research helps to address food security issues under new IPM and pesticide reduction policies for global crop production systems. , 2011, Journal of experimental botany.

[157]  R. Kohli,et al.  Chemical characterization and allelopathic potential of volatile oil of Eucalyptus tereticornis against Amaranthus viridis , 2011 .

[158]  G. Smagghe,et al.  Repellency and toxicity of essential oils from the leaves and bark of Laurelia sempervirens and Drimys winteri against Tribolium castaneum , 2010 .

[159]  M. J. Pascual-Villalobos,et al.  Mode of inhibition of acetylcholinesterase by monoterpenoids and implications for pest control. , 2010 .

[160]  S. Galleti,et al.  Ageratum conyzoides essential oil as aflatoxin suppressor of Aspergillus flavus. , 2010, International journal of food microbiology.

[161]  A. Tripathi,et al.  A review on prospects of essential oils as biopesticide in insect-pest management , 2009 .

[162]  Charles L Cantrell,et al.  Natural products in crop protection. , 2009, Bioorganic & medicinal chemistry.

[163]  I. Orhan,et al.  Acetylcholinesterase inhibitory and antioxidant properties of Cyclotrichium niveum, Thymus praecox subsp. caucasicus var. caucasicus, Echinacea purpurea and E. pallida. , 2009, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.

[164]  Ravinder Kumar Kohli,et al.  Eucalyptus essential oil as a natural pesticide , 2008 .

[165]  F Bakkali,et al.  Biological effects of essential oils--a review. , 2008, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.

[166]  A. Allameh,et al.  Growth inhibition and morphological alterations of Aspergillus niger by essential oils from Thymus eriocalyx and Thymus x-porlock , 2006 .

[167]  Soner Soylu,et al.  Antimicrobial Activities of the Essential Oils of Various Plants against Tomato Late Blight Disease Agent Phytophthora infestans , 2006, Mycopathologia.

[168]  S. Burdman,et al.  Expression of a plant expansin is involved in the establishment of root knot nematode parasitism in tomato , 2006, Planta.

[169]  E. Enan Molecular response of Drosophila melanogaster tyramine receptor cascade to plant essential oils. , 2005, Insect biochemistry and molecular biology.

[170]  R. Kohli,et al.  Allelopathic Interactions and Allelochemicals: New Possibilities for Sustainable Weed Management , 2003 .

[171]  S. Burt,et al.  Antibacterial activity of selected plant essential oils against Escherichia coli O157:H7 , 2003, Letters in applied microbiology.

[172]  D. Hegedus,et al.  Changes in cysteine protease activity and localization during midgut metamorphosis in the crucifer root maggot (Delia radicum). , 2002, Insect biochemistry and molecular biology.

[173]  C. Gileadi,et al.  Activation of octopaminergic receptors by essential oil constituents isolated from aromatic plants: possible mode of action against insect pests. , 2002, Pest management science.

[174]  M. Isman PLANT ESSENTIAL OILS FOR PEST AND DISEASE MANAGEMENT , 2000 .

[175]  S. Sonnino,et al.  Linalool modifies the nicotinic receptor-ion channel kinetics at the mouse neuromuscular junction. , 2000, Pharmacological research.

[176]  T. Alghamdi,et al.  Toxicity of citronella essential oil and its nanoemulsion against the sawtoothed grain beetle Oryzaephilus surinamensis (Coleoptera: Silvanidae) , 2022, Industrial Crops and Products.

[177]  J. S. McElroy,et al.  Concurrent weed growth suppression with essential oils and species-specific response to fractionated coconut oil , 2022, Industrial Crops and Products.

[178]  M. Ricupero,et al.  Nanostructured lipid carriers of essential oils as potential tools for the sustainable control of insect pests , 2022, Industrial Crops and Products.

[179]  S. Duke,et al.  The potential future roles of natural compounds and microbial bioherbicides in weed management in crops , 2022, Advances in Weed Science.

[180]  TRANSFORMING FOOD SYSTEMS FOR FOOD SECURITY, IMPROVED NUTRITION AND AFFORDABLE HEALTHY DIETS FOR ALL , 2021 .

[181]  E. Nabti,et al.  Biofertilizers and Biopesticides: Microbes for Sustainable Agriculture , 2020 .

[182]  S. Naik,et al.  Biopesticides: Formulations and Delivery Techniques , 2020, Natural Remedies for Pest, Disease and Weed Control.

[183]  Manoj Kumar,et al.  Nanobiotechnology in Bioformulations , 2019, Nanotechnology in the Life Sciences.

[184]  Pedro Luiz Rosalen,et al.  Antifungal activity, mode of action and anti-biofilm effects of Laurus nobilis Linnaeus essential oil against Candida spp. , 2017, Archives of oral biology.

[185]  M. Chifiriuc,et al.  Molecular mechanisms of pesticides toxicity , 2017 .

[186]  Harkesh B. Singh,et al.  Agriculturally Important Microorganisms , 2016, Springer Singapore.

[187]  F. Garcia,et al.  Insecticide activity of clove essential oil on bean weevil and maize weevil , 2016 .

[188]  Robert A. Nepomuceno,et al.  Regulatory Requirements and Registration of Biopesticides in the Philippines , 2016 .

[189]  Hyunseok Kim,et al.  Insecticidal and acetylcholine esterase inhibition activity of Asteraceae plant essential oils and their constituents against adults of the German cockroach (Blattella germanica). , 2015, Journal of agricultural and food chemistry.

[190]  D. Singh,et al.  Advances in Plant Biopesticides , 2014, Springer India.

[191]  R Core Team,et al.  R: A language and environment for statistical computing. , 2014 .

[192]  H. Ohta,et al.  Molecular Signalling, Pharmacology, and Physiology of Octopamine and Tyramine Receptors as Potential Insect Pest Control Targets , 2014 .

[193]  G. Reddy,et al.  Development of Insect Resistance to Plant Biopesticides: An Overview , 2014 .

[194]  M. Teerarak,et al.  Phytotoxic effects of essential oil from Cymbopogon citratus and its physiological mechanisms on barnyardgrass (Echinochloa crus-galli) , 2013 .

[195]  S. Gašić,et al.  Biopesticide formulations, possibility of application and future trends , 2013 .

[196]  I. Ahmad,et al.  Identification and characterization of post harvest fungal pathogens of mango from domestic markets of Punjab. , 2013 .

[197]  I. Ghanem,et al.  Chemical composition and fumigation toxicity of Laurus nobilis L. and Salvia officinalis L. essential oils on larvae of khapra beetle (Trogoderma granarium Everts) , 2012 .

[198]  Shakhnoza S. Azimova,et al.  Carum carvi L. , 2012 .

[199]  Department of Economic and Social Affairs Population Division United Nations Expert Group Meeting on Mortality Crises : Conflicts , Violence , Famine , Natural Disasters and the Growing Burden of Non-communicable Diseases , 2012 .

[200]  M. Isman Botanical insecticides, deterrents, and repellents in modern agriculture and an increasingly regulated world. , 2006, Annual review of entomology.

[201]  J. Copplestone The development of the WHO Recommended Classification of Pesticides by Hazard. , 1988, Bulletin of the World Health Organization.