Otwarty dostęp

Altered differential hemocyte count in 3rd instar larvae of Drosophila melanogaster as a response to chronic exposure of Acephate


Zacytuj

Dutta M, Das S, Roy S. (2014). Structural alterations in compound eye of Drosophila melanogaster in response to sodium fluoride treatment. Toxicol Environ Chem96: 106–113.Search in Google Scholar

Evans CJ, Hartenstein V, Banerjee U. (2003). Thicker than blood: Conserved mechanisms in Drosophila and vertebrate hematopoiesis. Dev Cell5: 673–690.Search in Google Scholar

Fiedler L. (1987). Acephate Residues After Pre-Blossom Treatments: Effects on Small Colonies of Honey Bees. Bull Environ Contam Toxicol38: 594–601.Search in Google Scholar

Ganguly S, Bhattacharya S, Mandi S, Tarafdar J. (2010). Biological Detection and Analysis of Toxicity of Organophosphate- and azadirachtin-based insecticides in Lathyrus sativus L. Ecotoxicology19: 85–95.Search in Google Scholar

George PJE, Ambrose DP. (2004). Impact of Insecticides on the Hemogram of Rhynocoris kumarii Ambrose and Livingstone (Hem., Reduviidae). JEN128: 600–604.Search in Google Scholar

Gong M, Shen B, Gu Y, Tian H, Ma L, Li X, Yang M, Hu Y, Sun Y, Hu X, Li J, Zhu C. (2005). Serine Proteinase Over-Expression in Relation to Deltamethrin Resistance in Culex pipiens pallens. Arch Biochem Biophys438: 53–62.Search in Google Scholar

Hamilton AJ, Gomez BL. (2002). Melanins in Fungal Pathogens. J Med Microbiol51: 189–191.Search in Google Scholar

Lemaitre B, Hoffmann J. (2007). The Host Defense of Drosophila melanogaster. Annu Rev Immunol25: 697–743.Search in Google Scholar

Meister M, Marie L. (2003). Drosophila Blood Cells. Cell Microbiol5: 573–580.Search in Google Scholar

Meister M. (2004). Blood Cells of Drosophila: Cell Lineages and Role in Host Defense. Curr Opin Immunol16: 10–15.Search in Google Scholar

Menozzi P, Ahi MA, Lougarre A, Tang ZH, Fournier D. (2004). Mutations of Acetylcholinesterase Which Confer Insecticide Resistance in Drosophila melanogaster Populations. BMC Evol Biol4: doi:10.1186/1471-2148-4-4.10.1186/1471-2148-4-436286715018651Search in Google Scholar

Podder S, Akbari S, Roy S. (2012). Cryolite Induced Morphological Change in the Compound Eye of Drosophila melanogaster. Fluoride45: 58–64.Search in Google Scholar

Qamar A, Jamal K. (2009). Differential Heamocyte Counts of 5th Instar Nymphs and Adults of Dysdercus cingulatus Fabr (Hemiptera: Pyrrhocoridae) Treated with Acephate, An Organophosphorous Insecticide. Biol Med1: 116–121.Search in Google Scholar

Rajak P, Dutta M, Roy S. (2014). Effect of acute exposure of acephate on hemocyte abundance in a non-target victim Drosophila melanogaster. Toxicol Environ Chem96: 768–776.Search in Google Scholar

Rajak P, Sahana S, Roy S. (2013). Acephate-Induced Shortening of Developmental Duration and Early Adult Emergence in a Nontarget Insect Drosophila melanogaster. Toxicol Environ Chem95: 1369–1379.Search in Google Scholar

Soderlund DM, Clark JM, Sheets LP, Mullin LS, Piccirillo VJ, Sargent D, Stevens JT, Weiner ML (2002). Mechanisms of pyrethroid neurotoxicity: implications for cumulative risk assessment. Toxicology171: 3–59.Search in Google Scholar

Trevizan LRP, Baptista GC and Papa G. (2005). Acephate and methamidophos residues in greenhouse and in field grown tomatoes. Hortic Bras23: 38–43.Search in Google Scholar

Tripathi SM, Thaker AM, Joshi CG, Garg SP and Snakhla LN. (2007). Immunotoxicity induced by subacute acephate exposure in white leghorn cockerels. J Indian Sci Toxicol3: 13–21.Search in Google Scholar

Vijverberg HPM, Zalm JMV, Bercken JV. (1982). Similar mode of action of Pyrethroids and DDT on sodium channel gating in myelinated nerves. Nature295: 601–603.Search in Google Scholar

Wang JJ, Cheng WX, Ding W, Zhao ZM. (2004). The Effect of the Insecticide Dichlorvos on Esterase Activity Extracted from the Psocids, Liposcelis bostrychophila and L. entomophila. J Insect Sci4: 1–5.Search in Google Scholar

Yang Q, Zhou D, Sun L, Zhang D, Qian J, Xiong C, Sun Y, Ma L, Zhu C. (2008). Expression and Characterization of Two Pesticide Resistance-Associated Serine Protease Genes (Nyd-Tr and Nyd-Ch) From Culex pipiens pallens for Metabolism of Deltamethrin. Parasitol Res103: 507–516.Search in Google Scholar

eISSN:
1337-9569
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Medicine, Clinical Medicine, Pharmacology, Toxicology