37
Views
1
CrossRef citations to date
0
Altmetric
Research Articles

In-vitro and in-silico analysis of methanolic crude extracts of Mountain knotgrass Aerva lanta (L.) against two lepidopteran pests and non-target species

, , , , , , , , ORCID Icon, , & show all
Pages 102-117 | Received 21 Mar 2023, Accepted 06 Dec 2023, Published online: 22 Dec 2023

References

  • Abbott, W.S., 1925. A method of computing the effectiveness of an insecticide. Journal of economic entomology, 18 (2), 265–267.
  • Ahmad, A., 2013. Statistical optimization of aqueous leaf extract of Aerva lanata for citrinin and fungal biomass reduction in submerged fermentation by Aspergillus niger using response surface methodology. Journal of microbiology, biotechnology and food sciences, 3 (3), 243–249.
  • Ahmed, E., et al., 2006. Antioxidant activity with flavonoidal constituents from Aerva persica. Archives of pharmacal research, 29 (5), 343–347.
  • Ajayi, G.O., et al., 2011. Gas Chromatography mass spectrometry analysis and phytochemical screening of ethanolic root of Plumbago zeylanica (Linn.). Journal of medicinal plants research 5 (9), 1756–1761.
  • Akrout, A., et al., 2009. Screening of antiradical and antibacterial activities of essential oils of Artemisia campestris L., Artemisia herba Alba Asso, & Thymus capitatus Hoff. et Link. growing wild in the Southern of Tunisia. Recent research in science and technology, 2 (1), 29–39.
  • Amala, K., et al., 2021. Bioefficacy of Epaltes divaricata (L.) n-Hexane extracts and their major metabolites against the Lepidopteran pests Spodoptera litura (fab.) and dengue mosquito Aedes aegypti (Linn.). Molecules (Basel, Switzerland), 26 (12), 3695.
  • Amala, K., et al., 2021. Larval and gut enzyme toxicity of n-hexane extract Epaltes pygmaea DC. against the arthropod vectors and its non-toxicity against aquatic predator. Toxin reviews, 40 (4), 681–691.
  • Ammar, S., et al., 2020. Essential oils from three Algerian medicinal plants (Artemisia campestris, Pulicaria arabica, and Saccocalyx satureioides) as new botanical insecticides? Environmental science and pollution research international, 27 (21), 26594–26604.
  • Benelli, G., et al., 2020. Phytol,(E)-nerolidol and spathulenol from Stevia rebaudiana leaf essential oil as effective and eco-friendly botanical insecticides against Metopolophium dirhodum. Industrial crops and products, 155, 112844.
  • Benkert, P., Biasini, M., and Schwede, T., 2011. Toward the estimation of the absolute quality of individual protein structure models. Bioinformatics (Oxford, England), 27 (3), 343–350.
  • Berman, H.M., et al., 2000. The protein data bank. Nucleic acids research, 28 (1), 235–242.
  • Bessey, O.A., Lowry, O.H., and Brock, M.J., 1946. A method for the rapid determination of alkaline phosphatase with five cubic millimeters of serum. The journal of biological chemistry, 164 (1), 321–329.
  • Castelo-Branco, M., and Gatehouse, A.G., 2001. A survey of insecticide susceptibility in Plutella xylostella (L.) (Lepidoptera: Yponomeutidae) in the Federal District, Brazil. Neotropical entomology, 30 (2), 327–332.
  • Chau, N.N.B., Quoc, N.B., and Tu, D.T.C., 2019. Antifeedant activity of essential oil Lantana camara L. against Spodoptera litura Fab. (Lepidoptera: Noctuidae) and Plutella xylostella Curtis (Lepidoptera: Plutellidae). Can tho university journal of science, 11(1) (1), 1–6.
  • Chellappandian, M., et al., 2018. Botanical essential oils and uses as mosquitocides and repellents against dengue. Environment international, 113, 214–230.
  • Chen, V.B., et al., 2010. MolProbity: all-atom structure validation for macromolecular crystallography. Acta crystallographica, section D, Biological crystallography, 66 (Pt 1), 12–21.
  • Colovos, C., and Yeates, T.O., 1993. Verification of protein structures: patterns of nonbonded atomic interactions. Protein science: a publication of the protein society, 2 (9), 1511–1519.
  • Datta, R., et al., 2019. Effect of crude extracts and purified compounds of Alpinia galanga on nutritional physiology of a polyphagous lepidopteran pest, Spodoptera litura (Fabricius). Ecotoxicology and environmental safety, 168, 324–329.
  • Edwin, E., et al., 2016a. Effect of andrographolide on phosphatases activity and cytotoxicity against Spodoptera litura. Invertebrate survival journal, 13 (1), 153–163.
  • Edwin, E.S., et al., 2016b. Anti-dengue efficacy of bioactive andrographolide from Andrographis paniculata (Lamiales: Acanthaceae) against the primary dengue vector Aedes aegypti (Diptera: Culicidae). Acta tropica, 163, 167–178.
  • Edwin, E. et al., 2021. Toxicity of bioactive molecule andrographolide against Spodoptera litura Fab and its binding potential with detoxifying enzyme cytochrome P450. Molecules, 26 (19), 5982.
  • Eisenberg, D., Lüthy, R., and Bowie, J.U., 1997. VERIFY3D: assessment of protein models with three-dimensional profiles. Methods in enzymology, 277, 396–404.
  • Finney, D.J., 1971. Statistical logic in the monitoring of reactions to therapeutic drugs. Methods of information in medicine, 10 (04), 237–245.
  • Forli, S., et al., 2016. Computational protein-ligand docking and virtual drug screening with the AutoDock suite. Nature protocols, 11 (5), 905–919.
  • Giongo, A.M.G., Vendramim, J.D., and Forim, M.R., 2016. Evaluation of neem-based nanoformulations as alternative to control fall armyworm. Ciência e agrotecnologia, 40 (1), 26–36.
  • Goyal, M., et al., 2011. Aerva lanata: A review on phytochemistry and pharmacological aspects. Pharmacognosy reviews, 5 (10), 195–198.
  • Gupta, A.K., and Neeraj, T., 2004. Reviews on Indian medicinal plants. New Delhi: ICMR, vol. 1, 338–340.
  • Hassan, F., et al., 2017. Synthesis, characterization and physicochemical analysis of some mannofuranoside derivatives with potent antimicrobial activity. Oriental journal of chemistry, 33 (6), 2731–2741.
  • Karthi, S., et al., 2019. Comparative efficacy of two mycotoxins against Spodoptera litura Fab. And their non-target activity against Eudrilus eugeniae Kinb. Ecotoxicology and environmental safety, 183, 109474.
  • Karthi, S., et al., 2020. Larvicidal enzyme inhibition and repellent activity of red mangrove Rhizophora mucronata (Lam.) leaf extracts and their biomolecules against three medically challenging arthropod vectors. Molecules (Basel, Switzerland), 25 (17), 3844.
  • Laskowski, R.A., et al., 1993. PROCHECK: a program to check the stereochemical quality of protein structures. Journal of applied crystallography, 26 (2), 283–291.
  • Liu, J., et al., 2015. Toxicity and bioaccumulation of bromadiolone to earthworm Eisenia fetida. Chemosphere, 135, 250–256.
  • Liu, X., et al., 2008. Allelopathic effects of essential oil from Eucalyptus grandis× E. urophylla on pathogenic fungi and pest insects. Frontiers of forestry in China, 3 (2), 232–236.
  • Mahmoud, M.A., and Hassan, A.N.T., 2022. Insecticidal Activity of seed extracts of Annona squamosa L., against the cotton leafworm Spodoptera littoralis (Boisd.). Egyptian journal of chemistry, 65 (6), 73–80.
  • Morris, G.M., et al., 1998. Automated docking using a Lamarckian genetic algorithm and an empirical binding free energy function. Journal of computational chemistry, 19 (14), 1639–1662.
  • Murfadunnisa, S., et al., 2019. Larvicidal and enzyme inhibition of essential oil from Spheranthus amaranthroids (Burm.) against lepidopteran pest Spodoptera litura (Fab.) and their impact on non-target earthworms. Biocatalysis and agricultural biotechnology, 21, 101324.
  • Murugan, M., and Mohan, V.R., 2014. Phytochemical, FT-IR and antibacterial activity of whole plant extract of Aerva lanata (L.) Juss. Ex. Schult. Journal of medicinal plants studies, 4 (3), 51–57.
  • Napoleão, T.H., et al., 2012. Effect of Myracrodruon urundeuva leaf lectin on survival and digestive enzymes of Aedes aegypti larvae. Parasitology research, 110 (2), 609–616.
  • Nataya, S., et al., 2010. Chemical composition and larvicidal activity of edible plant-derived essential oils against the pyrethroid-susceptible and resistantstrains of Aedes aegypti (Diptera: culicidae). Journal of vector ecology, 35 (1), 106–115.
  • Nattudurai, G., et al., 2014. Vermicomposting of coirpith with cowdung by Eudrilus eugeniae Kinberg and its efficacy on the growth of Cyamopsis tetragonaloba (L) Taub. Journal of the Saudi society of agricultural sciences, 13 (1), 23–27.
  • Nordin, O., et al., 2013. Oral ingestion of transgenic RIDL Ae. aegypti larvae has no negative effect on two predator Toxorhynchites species. Plos one, 8 (3), e58805.
  • OECD, 1984. 207: Earthworm, acute toxicity tests. OECD Guidelines for the Testing of Chemicals, Section, 2.
  • Omoyeni, O.A., and Adeyeye, E.I., 2009. Chemical composition, calcium, zinc and phytate interrelationships in Aerva lanata (Linn) Juss. Ex schult leaves. Orient journal of chemistry, 25, 485–488.
  • Pervykh, L.N., Karasartov, B.S., and Zapesochnaya, G.G., 1992. A study of the herb Aerva lanata IV. Flavonoid glycosides. Chemistry of natural compounds, 28 (5), 509–510.
  • Ponsankar, A., et al., 2018. Response of Spodoptera litura Fab. (Lepidoptera: Noctuidae) larvae to Citrullus colocynthis L. (Cucurbitales: Cucurbitaceae) chemical constituents: larval tolerance, food utilization and detoxifying enzyme activities. Physiological and molecular plant pathology, 101, 16–28.
  • Ponsankar, A., et al., 2020. Toxicity and developmental effect of cucurbitacin E from Citrullus colocynthis L. (Cucurbitales: Cucurbitaceae) against Spodoptera litura Fab. and a non-target earthworm Eisenia fetida Savigny. Environmental science and pollution research international, 27 (19), 23390–23401.
  • Pradeepa, V., et al., 2016. Potential mode of action of a novel plumbagin as a mosquito repellent against the malarial vector Anopheles stephensi (Culicidae: Diptera). Pesticide biochemistry and physiology, 134, 84–93.
  • Premachandra, W.D., Mampitiyarachchi, H., and Ebssa, L., 2014. Nemato-toxic potential of Betel (Piper betle L.) (Piperaceae) leaf. Crop protection, 65, 1–5.
  • Raghuraman, P., and Sudandiradoss, C., 2019. R516Q mutation in Melanoma differentiation-associated protein 5 (MDA5) and its pathogenic role towards rare Singleton-Merten syndrome; a signature associated molecular dynamics study. Journal of biomolecular structure & dynamics, 37 (3), 750–765.
  • Rahman, M.A., et al., 2004. Medicinal plant diversity in the flora of Saudi Arabia 1: A report on seven plant families. Fitoterapia, 75 (2), 149–161.
  • Ravi, G., and Sundararajan, G., 2020. Larvicidal and antifeedant activity of some plants extracts against the larvae of Helicoverpa armigera (Hubner). International journal of scientific research and management, 08, 2321–3418.
  • Selin-Rani, S., et al., 2016. Toxicity and physiological effect of quercetin on generalist herbivore, Spodoptera litura Fab. and a non-target earthworm Eisenia fetida Savigny. Chemosphere, 165, 257–267.
  • Selin-Rani, S., et al., 2016. Toxicity of Alangium salvifolium Wang chemical constituents against the tobacco cutworm Spodoptera litura Fab. Pesticide biochemistry and physiology, 126, 92–101.
  • Senthil-Nathan, S., 2013. Physiological and biochemical effect of neem and other Meliaceae plants secondary metabolites against Lepidopteran insects. Frontiers in physiology, 4, 359.
  • Senthil-Nathan, S., et al., 2006a. The toxicity and behavioural effects of neem limonoids on Cnaphalocrocis medinalis (Guenée), the rice leaffolder. Chemosphere, 62 (8), 1381–1387.
  • Senthil-Nathan, S., et al., 2006b. Efficacy of Melia azedarach L. extract on the malarial vector Anopheles stephensi Liston (Diptera: Culicidae). Bioresource technology, 97 (11), 1316–1323.
  • Senthil-Nathan, S., 2015. A review of biopesticides and their mode of action against insect pests. Environmental sustainability: Role of green technologies, 49–63.
  • Senthil-Nathan, S., Chung, P.G., and Murugan, K., 2005. Effect of biopesticides applied separately or together on nutritional indices of the rice leaffolder Cnaphalocrocis medinalis. Phytoparasitica, 33 (2), 187–195.
  • Shaalan, E.A.S., et al., 2005. A review of botanical phytochemicals with mosquitocidal potential. Environment international, 31 (8), 1149–1166.
  • Sharma, A., Sharma, S.C., and Vaghela, J.S., 2010. Phytopharmacological investigation of Aerva lanata flowers with special emphasis on diuretic activity. Pharmacognosy journal, 2 (17), 59–62.
  • SWISS-MODEL, (2016). SWISS-MODEL: an automated protein homology-modeling server. Available from: http://nar.oxfordjournals.org/content/31/13/3381.short [Accessed 20 July 2016].
  • Thangavel, A., et al., 2014. Phytochemical screening, gas chromatography-mass spectrometry (GC–MS) analysis of phytochemical constituents and anti-bacterial activity of Aerva lanata (L.) leaves. African journal of pharmacy and pharmacology, 8 (5), 126–135.
  • The GROMOS Software, (2016). Biomolecular simulation—the GROMOS software. Available from: http://www.gromos.net/ [Accessed 20 July 2016].
  • Torres, P., et al., 2003. Antioxidant and insect growth regulatory activities of stilbenes and extracts from Yucca periculosa. Phytochemistry, 64 (2), 463–473.
  • Vasantha-Srinivasan, P., et al., 2016. Developmental response of Spodoptera litura Fab. to treatments of crude volatile oil from Piper betle L. and evaluation of toxicity to earthworm, Eudrilus eugeniae Kinb. Chemosphere, 155, 336–347.
  • Vasantha-Srinivasan, P., et al., 2018a. A novel herbal product based on Piper betle and Sphaeranthus indicus essential oils: Toxicity, repellent activity and impact on detoxifying enzymes GST and CYP450 of Aedes aegypti Liston (Diptera: Culicidae). Journal of Asia-Pacific entomology, 21 (4), 1466–1472.
  • Vasantha-Srinivasan, P., et al., 2018b. Acute toxicity of chemical pesticides and plant-derived essential oil on the behavior and development of earthworms, Eudrilus eugeniae (Kinberg) and Eisenia fetida (Savigny). Environmental science and pollution research international, 25 (11), 10371–10382.
  • Vasantha-Srinivasan, P., et al., 2018c. Toxicological effects of chemical constituents from Piper against the environmental burden Aedes aegypti Liston and their impact on non-target toxicity evaluation against biomonitoring aquatic insects. Environmental Science and Pollution Research, 25, 10434–10446.
  • Xiao, X.-W., et al., 2013. Potential anti-angiogenic sulfates of andrographolide. Journal of Asian natural products research, 15 (8), 809–818.
  • Zapesochnaya, G., et al., 1992. Canthin-6-one and β-carboline alkaloids from Aerva lanata. Planta medica, 58 (2), 192–196.
  • Zapesochnaya, G.G., Pervykh, L.N., and Kurkin, V.A., 1991. A study of the herb Aerva lanata. III. Alkaloids. Chemistry of natural compounds, 27 (3), 336–340.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.