193
Views
3
CrossRef citations to date
0
Altmetric
Article

Effect of Aspergillus flavus on lipid peroxidation and activity of antioxidant enzymes in midgut tissue of Spodoptera litura larvae

, , &
Pages 177-190 | Received 21 May 2020, Accepted 11 Sep 2020, Published online: 30 Sep 2020

References

  • Abraham S, Basukriadi A, Pawiroharsono S, Sjamsuridzal W. 2015. Insecticidal activity of ethyl acetate extracts from culture filtrates of mangrove fungal endophytes. Mycobiology. 43(2):137–149.
  • Adamski Z. 2007. Exposure to carbaryl leads to ultrastructural changes and alters activity of antioxidant enzymes in Spodoptera exigua (Lepidoptera: Noctuidae). Invertebr Bio. 126(2):191–201.
  • Adamski Z, Banaszkiewicz M, Ziemnicki K. 2005. Ultrastructural and developmental alterations in larvae of Tenebrio molitor L. Insecta, (Coleoptera) induced by sublethal concentrations of fenitrothion. J Biol Res. 3:15–22.
  • Adamski ZB, Ziemnicki KA, Fila KA, Zikic R, Stajn A. 2003. Effects of long-term exposure to fenitrothion on Spodoptera exigua and Tenebrio molitor larval development and antioxidant enzyme activity. Biol Lett. 40(1):43–52.
  • Aebi H. 1984. Catalase in vitro. Meth Enzymol. 105:121–126.
  • Ahmad S. 1995. Oxidative stress from environmental pollutants. Arch Insect Biochem Physiol. 29(2):135–157.
  • Ahmed AE, Hussein GI, Loh JP, Abdel‐Rahman SZ. 1991. Studies on the mechanism of haloacetonitrile-induced gastrointestinal toxicity: interaction of dibromoacetonitrile with glutathione and glutathione-S-transferase in rats. J Biochem Toxicol. 6(2):115–121.
  • Ali A, Rashid MA, Huang QY, Lei CL. 2017. Influence of UV-A radiation on oxidative stress and antioxidant enzymes in Mythimna separata (Lepidoptera: Noctuidae). Environ Sci Pollut Res Int. 24(9):8392–8398.
  • Aslanturk A, Kalender S, Uzunhisarcikli M, Kalender Y. 2011. Effects of methidathion on antioxidant enzyme activities and malondialdehyde level in midgut tissues of Lymantria dispar (Lepidoptera) larvae. J Entomol Res Soc. 13(3):27–38.
  • Buyukguzel E. 2009. Evidence of oxidative and antioxidative responses by Galleria mellonella larvae to malathion. J Econ Entomol. 102(1):152–159.
  • Büyükgüzel E, Büyükgüzel K, Snela M, Erdem M, Radtke K, Ziemnicki K, Adamski Z. 2013. Effect of boric acid on antioxidant enzyme activity, lipid peroxidation, and ultrastructure of midgut and fat body of Galleria mellonella. Cell Biol Toxicol. 29(2):117–129.
  • Chaurasia A, Lone Y, Gupta US. 2016. Effect of entomopathogenic fungi, Hirsutella thompsonii on mortality and detoxification enzyme activity in Periplaneta americana. J Entomol Zool Stud. 4(1):234–239.
  • Ding JN, Zhang HH, Chi DF. 2015. Effects of a pathogenic Beauveria bassiana (Hypocreales: Cordycipitaceae) strain on detoxifying and protective enzyme activities in Xylotrechus rusticus (Coleoptera: Cerambycidae) larvae. Fla Entomol. 98(4):1148–1156.
  • Felton GW, Summers CB. 1995. Antioxidant systems in insects. Arch Insect Biochem Physiol. 29(2):187–197.
  • Foyer CH, Descourvieres P, Kunert KJ. 1994. Protection against oxygen radicals: an important defence mechanism studied in transgenic plants. Plant Cell Environ. 17(5):507–523.
  • Fridovich I. 1978. The biology of oxygen radicals. Science. 201(4359):875–880.
  • Gao XR, Cui YL, Xu FH, Li RF. 1995. The effects SOD scavenging O2− as CAT existing. J Heibei Normal Univ (Nat Sci). 4:59–62.
  • Gill R, Gupta A, Taggar G, Taggar M. 2010. Role of oxidative enzymes in plant defenses against insect herbivory. Acta Phytopathol Entomol Hung. 45(2):277–290.
  • Habig WH, Pabst MJ, Jakoby WB. 1974. Glutathione S-transferases the first enzymatic step in mercapturic acid formation. J Biol Chem. 249(22):7130–7139.
  • Hayes JD, Pulford DJ. 1995. The glutathione S-transferase supergene family: regulation of GST and the contribution of the lsoenzymes to cancer chemoprotection and drug resistance part II. Crit Rev Biochem Mol Biol 30(6):521–600.
  • Hyrsl P, Buyukguzel E, Buyukguzel K. 2007. The effects of boric acid-induced oxidative stress on antioxidant enzymes and survivorship in Galleria mellonella. Arch Insect Biochem Physiol. 66(1):23–31.
  • Jain SK, Levine SN. 1995. Elevated lipid peroxidation and vitamin E-quinone levels in heart ventricles of streptozotocin-treated diabetic rats. Free Rad Biol Med. 18(2):337–341.
  • Karthi S, Shivakumar MS. 2015. The protective effect of melatonin against cypermethrin-induced oxidative stress damage in Spodoptera litura (Lepidoptera: Noctuidae). Biol Rhythm Res. 46(1):1–12.
  • Karthi S, Vaideki K, Shivakumar MS, Ponsankar A, Thanigaivel A, Chellappandian M, Vasantha-Srinivasan P, Muthu-Pandian CK, Hunter WB, Senthil-Nathan S. 2018. Effect of Aspergillus flavus on the mortality and activity of antioxidant enzymes of Spodoptera litura Fab. (Lepidoptera: Noctuidae) larvae. Pestic Biochem Physiol. 149:54–60.
  • Kaur M, Chadha P, Kaur S, Kaur A, Kaur R, Yadav AK, Kaur R. 2019. Evaluation of genotoxic and cytotoxic effects of ethyl acetate extract of Aspergillus flavus on Spodoptera litura. J Appl Microbiol. 126(3):881–893.
  • Khan RR, Ahmed S, Nisar S. 2011. Mortality responses of Spodoptera litura (Fab.) (Lepidoptera: Noctuidae) against some conventional and new chemistry insecticides under laboratory conditions. Pak Entomol. 33(2):147–150.
  • Kono Y. 1978. Generation of superoxide radical during autoxidation of hydroxylamine and an assay for superoxide dismutase. Arch Biochem Biophys. 86(1):189–195.
  • Konno Y, Shishido T. 1992. Distribution of glutathione S-transferase activity in insect tissues. Appl Entomol Zool. 27(3):391–397.
  • Koul O, Shankar JS, Mehta N, Taneja SC, Tripathi AK, Dhar KL. 1997. Bioefficacy of crude extracts of Aglaia species (Meliaceae) and some active fractions against lepidopteran larvae. J Appl Entomol. 121(1–5):245–248.
  • Krishnan N, Kodrík D. 2006. Antioxidant enzymes in Spodoptera littoralis (Boisduval): are they enhanced to protect gut tissues during oxidative stress? J Insect Physiol. 52(1):11–20.
  • Krishnan N, Kodrík D, Turanli F, Sehnal F. 2007. Stage-specific distribution of oxidative radicals and antioxidant enzymes in the midgut of Leptinotarsa decemlineata. J Insect Physiol. 53(1):67–74.
  • Lalouette L, Williams CM, Hervant F, Sinclair BJ, Renault D. 2011. Metabolic rate and oxidative stress in insects exposed to low temperature thermal fluctuations. Comp Biochem Physiol A Mol Integr Physiol. 158(2):229–234.
  • Lesser MP. 2006. Oxidative stress in marine environments: biochemistry and physiological ecology. Annu Rev Physiol. 68:253–278.
  • Li HP, Huang DZ, Gao J, Fan JX, Bei B. 2006. The change of activities of protective enzymes in interaction of Apriona germari and different resistant populus. Sci Sericult. 32:578–581.
  • Lomate P, Sangole K, Sunkar R, Hivrale V. 2015. Superoxide dismutase activities in the midgut of Helicoverpa armigera larvae: identification and biochemical properties of a manganese superoxide dismutase. Insect Physiol. 5:13–20.
  • Mathews MC, Summers CB, Felton GW. 1997. Ascorbate peroxidase: a novel antioxidant enzyme in insects. Arch Insect Biochem Physiol. 34(1):57–68.
  • Meng JY, Zhang CY, Zhu F, Wang XP, Lei CL. 2009. Ultraviolet light-induced oxidative stress: effects on antioxidant response of Helicoverpa armigera adults. J Insect Physiol. 55(6):588–592.
  • Munday R, Winterbourn CC. 1989. Reduced glutathione in combination with superoxide dismutase as an important biological antioxidant defence mechanism. Biochem Pharmacol. 38(24):4349–4352.
  • Namasivayam SKR, Sekar S, Bharani RA. 2014. Pesticidal activity of endophytic fungal metabolites against major groundnut defoliator Spodoptera litura (Fab.) (Lepidoptera: Noctuidae). J Biopest. 7:116–120.
  • Naren Babu M, Ravi Sankar UV, Padmaja V. 2014. Insecticidal activity of the entomopathogenic fungus and the strategy of horizontal transmission for control of cockroaches. IJPAES. 4(1):1–7.
  • Sandhu SS, Sharma AK, Beniwal V, Goel G, Batra P, Kumar A, Jaglan S, Sharma AK, Malhotra S. 2012. Myco-biocontrol of insect pests: factors involved, mechanism, and regulation. J Pathog. 2012:1–9.
  • Sies H. 1991. Oxidative stress, oxidant and antioxidants – antioxidant activity of fruit exudate and C-methylated dihydrochalcones from Myrica Gale. Planta Med. 61:515–518.
  • Song Z, Feng L, Jing Y. 2002. Changes of some biochemical estimates in the hemolymph and body wall of Dendrolimus punctatus infected by Metarhizium anisopliae. Kunchong Zhishi. 39(4):297–300.
  • Sree KS, Padmaja V. 2008. Oxidative stress induced by destruxin from Metarhizium anisopliae (Metch.) involves changes in glutathione and ascorbate metabolism and instigates ultrastructural changes in the salivary glands of Spodoptera litura (Fab.) larvae. Toxicon. 51(7):1140–1150.
  • Suganya M, Karthi S, Shivakumar MS. 2016. Effect of cadmium and lead exposure on tissue specific antioxidant response in Spodoptera litura. Free Rad Antiox. 6(1):1–9.
  • U.S. Environmental Protection Agency. 2003. Biopesticide registration action document Aspergillus flavus AF36. [accessed 2009 October 20]. http://www.epa.gov/oppbppd1/biopesticides/ingredients/tech_docs/brad_006456.pdf.
  • U.S. Environmental Protection Agency. 2004. Biopesticide registration action document Aspergillus flavus (NRRL 21882). [accessed 2009 October 20]. http://www.epa.gov/oppbppd1/biopesticides/ingredients/tech_docs/brad_006500.pdf.
  • Wang Y, Wang L, Zhu Z, Ma W, Lei C. 2012. The molecular characterization of antioxidant enzyme genes in Helicoverpa armigera adults and their involvement in response to ultraviolet-A stress. J Insect Physiol. 58(9):1250–1258.
  • Wu H, Zhang R, Liu J, Guo Y, Ma E. 2011. Effects of malathion and chlorpyrifos on acetylcholinesterase and antioxidant defense system in Oxya chinensis (Thunberg) (Orthoptera: Acrididae). Chemosphere. 83(4):599–604.
  • Yamamoto K, Teshiba S, Shigeoka Y, Aso Y, Banno Y, Fujiki T, Katakura Y. 2011. Characterization of an omega-class glutathione S-transferase in the stress response of the silkmoth. Insect Mol Biol. 20(3):379–386.
  • Zhang J, Song D, Chen J. 2003. Physiological and biochemical changes of the silkworm, Bombyx mori infected by Cordyceps militaris. Kun Chong Xue Bao Acta Entomol. Sin. 46(6):674–678.

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.