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Original Articles

Biochemical and molecular characterizations of cypermethrin resistance in laboratory-selected cypermethrin-resistant strains of Tetranychus urticae Koch. (Acari: Tetranychidae)

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Pages 262-267 | Received 23 Mar 2018, Accepted 21 Jun 2018, Published online: 31 Jul 2018

References

  • Ay R. 2005. Determination of susceptibility and resistance of some greenhouse populations of Tetranychus urticae Koch to chlorpyrifos (Dursban 4) by the petri dish–potter tower method. Journal of Pesticide Science. 78:139–143.
  • Ay R, Gürkan MO. 2005. Resistance to bifenthrin and resistance mechanisms of different strains of the two-spotted spider mite (Tetranychus urticae) from Turkey. Phytoparasitica. 33:237–244.
  • Ay R, Yorulmaz S. 2009. The determination of multiple resistance, inheritance and cytochrome P450 activity in bifentrin resistance Tetranychus urticae Koch (Acari: tetranychidae). Plant Protection Bulletin. 49:67–78.
  • Bradford MM. 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein dye binding. Analytical Biochemistry. 72:248–254.
  • Ding TB, Zhong R, Jiang XZ, Liao CY, Xia WK, Liu B, Dou W, Wang, JJ. 2015. Molecular characterisation of a sodium channel gene and identification of a Phe1538 to Ile mutation in citrus red mite, Panonychus citri. Pest Managment Science. 71:266–277.
  • Fasulo TR, Denmark HA. 2000. Two spotted spider mite, Tetranychus urticae Koch (Arachnida: Acari: Tetranychidae). UF/IFAS Featured Creatures EENY-150. Available from: http://www.growables.org/information/TropicalFruit/documents/MitesTwoSpotted.pdf
  • Grbić M, Van Leeuwen, T, Clark RM, Rombauts S, Rouzé P, Grbić V, Hernández-Crespo P, Diaz I,  Martinez M,  Navajas M, et al. 2011. The genome of Tetranychus urticae reveals herbivorous pest adaptations. Nature. 479:487–492.
  • Ilias A, Vassiliou VA, Vontas J, Tsagkarakou A. 2017. Molecular diagnostics for detecting pyrethroid and abamectin resistance mutations in Tetranychus urticae. Pesticide Biochemistry and Physiology. 135:9–14.
  • Ilias A, Vontas J, Tsagkarakou A. 2014. Global distribution and origin of target site insecticide resistance mutations in Tetranychus urticae. Insect Biocheical and Molecular Biology. 48:17–28.
  • Khajehali J, Van Nieuwenhuyse P, Demaeght P, Tirry L, Van Leeuwen T. 2011. Acaricide resistance and resistance mechanisms in Tetranychus urticae populations from rose greenhouses in the Netherlands. Pest Managment Science. 67:1424–1433.
  • Khalighi M, Tirry L, Van Leeuwen T. 2014. Cross resistance risk of the novel complex II inhibitors cyenopyrafen and cyflumetofen in resistant strains of the two spotted spider mite Tetranychus urticae. Pest Managment Science. 70:365–368.
  • Kim YJ, Lee SH, Lee SW, Ahn YJ. 2004. Fenpyroximate resistance in Tetranychus urticae (Acari: tetranychidae) cross-resistance and biochemical resistance mechanisms. Pest Management Science. 60:1001–1006.
  • Kwon DH, Clark JM, Lee SH. 2010. Cloning of a sodium channel gene and identification of mutations putatively associated with fenpropathrin resistance in Tetranychus urticae. Pesticide Biochemimistry and Physiology. 97:93–100.
  • LeOra Software. 1994. Polo-pc: a user’s guide to probit or logit analysis. Leora Software, 1119 Shattuck Avenue, Berkeley, CA 94707. 28 p.
  • Muthusamy R, Shivakumar MS. 2015. Resistance selection and molecular mechanisms of cypermethrin resistance in red hairy caterpillar (Amsacta albistriga walker). Pesticide Biochemistry and Physiology. 11:54–61.
  • Piraneo TG, Bull J, Morales MA, Lavine L, Walsh DB, Zhu F. 2015. Molecular mechanisms of Tetranychus urticae chemical adaptation in hop fields. Nature Scientific Reports. 5:17090.
  • Rauch N, Nauen R. 2002. Spirodiclofen resistance risk assessment in Tetranychus urticae (Acari: tetranychidae): A biochemical approach. Pesticide Biochemistry and Physiology. 74:91–101.
  • Riga M, Bajda S, Themistokleous C, Papadaki S, Palzewicz M, Vontas J, Van Leeuwen T. 2017. The relative contribution of target-site mutations in complex acaricide resistant phenotypes as assessed by marker assisted backcrossing in Tetranychus urticae. Nature Scientific Reports. 7(1):9202.
  • Robertson JL, Russell RM, Preisler HK, Savin NE. 2007. Bioassays with Arthropods. second ed. Boca Raton (FL): CRC Press. p. 224.
  • Roditakis E, Tsagkarakou A, Vontas J. 2006. Identification of mutations in the para sodium channel of Bemisia tabaci from Crete, associated with resistance to pyrethroids. Pesticide Biochemistry and Physiology. 85:161–166.
  • Scott JG, Kasai S. 2004. Evolutionary plasticity of monooxygenase-mediated resistance. Pesticide Biochemical Physiology. 78:171–178.
  • Soderlund DM, Knipple DC. 2003. The molecular biology of knockdown resistance to pyrethroid insecticides. Insect Biochemical and Molecular Biology. 33:563–577.
  • Spark T, Nauen R. 2015. IRAC: mode of action classification and insecticide resistance management. Pesticide Biochemistry and Physiology. 121:122–128.
  • Sparks TC. 2013. Insecticide discovery: an evaluation and analysis. Pesticide Biochemistry and Physiology. 107:8–17.
  • Stumpf N, Nauen R. 2001. Cross-resistance, inheritance and biochemistry of mitochondrial electron transport inhibitor-acaricide resistance in Tetranychus urticae (Acari: tetranychidae). Journal Economic Entomology. 94:1577–1583.
  • Stumpf N, Nauen R. 2002. Biochemical markers linked to abamectin resistance in Tetranychus urticae (Acari: tetranychidae). Pesticide Biochemistry and Physiology. 72:111–121.
  • Tan JG, Liu Z, Wang R, Huang ZY, Chen AC, Gurevitz M, and Dong K. 2005. Identification of amino acid residues in the insect sodium channel critical for pyrethroid binding. Molecular Pharmacology. 67:513–522.
  • Tehri K, Gulati R, Geroh M. 2014. Damage potential of Tetranychus urticae Koch to cucumber fruit and foliage: effect of initial infestation density. Journal of Applied and Natural Science. 6:170–176.
  • Tsagkarakou A, Van Leeuwen T, Khajehali J, Ilias A, Grispou M, Williamson MS, Tirry L, Vontas J. 2009. Identification of pyrethroid resistance associated mutations in the para sodium channel of the two-spotted spider mite Tetranychus urticae (Acari: tetranychidae). Insect Molecular Biology. 18:583–593.
  • Van Leeuwen T, Van Pottelberge S, Tirry L. 2005. Comparative acaricide susceptibility and detoxifying enzyme activities in field collected resistant and susceptible strains of Tetranychus urticae. Pest Management Science. 61:499–507.
  • Van Leeuwen T, Vontas J, Tsagkarakou A, Dermauw W, Tirry L. 2010. Acaricide resistance mechanisms in the two-spotted spider mite Tetranychus urticae and other important acari: A review. Insect Biochemistry and Molecular Biology. 40:563–572.
  • Van Leeuwen T, Tirry L. 2007. Esterase-mediated bifenthrin resistance in a multiresistant strain of the two‐spotted spider mite, Tetranychus urticae. Pest Management Science. 63:150–156.
  • Winer BJ, Brown DR, Michels KM. 1991. Statistical principles in experimental design. New York (NY): McGraw-Hill Book Company.
  • Xu, Z., Zhu, W., Liu, Y., Liu, X., Chen, Q, Peng, M, Wang X, Shen G, He L. 2014. Analysis of insecticide resistance-related genes of the carmine spider mite Tetranychus cinnabarinus based on a de novo assembled transcriptome. PloSone. 9:e94779.
  • Yang X, Buschman LL, Zhu KY, Margolies DC. 2002. Susceptibility and detoxifying enzyme activity in two spider mite species (Acari: tetranychidae) after selection with three insecticides. Journal Economic Entomology. 95:399–406.
  • Zhang L, Gao X, Liang P. 2007. Beta-cypermethrin resistance associated with high carboxylesterase activities in a strain of house fly, Muscadomestica (Diptera: muscidae). Pesticide Biochemistry and Physiology. 89:65–72.
  • Zhang ZQ. 2003. Spider Mites. Mites of greenhouses: identification, biology and control. By Zhang ZQ. Wallingford (UK): CABI Publishing, 4–86.

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