Persistence and effect of decontamination processes on reduction of cypermethrin in okra (Abelmoschus esculentus) fruits


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Authors

  • REENA CHAUHAN Research Associate, Department of Entomology, CCS HAU, Hisar
  • DHARMENDAR SINGH Research Scholar, Department of Entomology, CCS HAU, Hisar
  • SAMRITI MONGA Assistant Professor, Department of Chmistry, Baba Farid College, Deon, Bhatinda, Punjab
  • BEENA KUMARI Senior Residue Chemist, Department of Entomology, CCS HAU, Hisar

https://doi.org/10.56093/ijas.v88i12.85449

Abstract

Persistence of cypermethrin and decontamination processes on reduction of cypermethrin residues was studied in okra (Abelmoschus esculentus L.) fruits following foliar application of formulation at dose of 50 and 100 g a. i./ha in a field at the Research field of CCS HAU, Hisar, India. Samples of okra fruits were collected periodically and residues were estimated by GC-ECD and confirmed by GC-MS. The average initial deposits of cypermethrin were 0.119 and 0.272 mg/kg in the okra fruits at single and double dose, respectively, one hour after the application. Residues of cypermethrin reached equal to below determination level (0.01mg/kg) on 10th in single dose and after 15 days at double dose. Half-life periods for cypermethrin were observed to be 2.74 days and 3.31 days at single and double dose, respectively following first order kinetics. Residues were below maximum residue limit (MRL) value of 0.2 mg/kg on 0 day in single dose and 1 day in double dose. Safe waiting period of 2 days has been suggested for safety sake. Decontamination processes were found very effective in reducing the residues of cypermethrin in okra fruits. Washing reduced the residues in the range of 39-41 %, whereas washing followed by boiling reduced 71 to 79% residues. In soil, residues of cypermethrin reached below detectable level of 0.005 mg/kg after 3rd and 5th days of application at single and double dose, respectively.

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References

Anonymous. 2013. Times of india.indiatimes.com /city/varanasi/... production.../23221845.cms

Azizi M H and Hadian Z .2008. Determination of pesticide residues in fresh and greenhouse vegetables. Journal of Science and Technology Agriculture and Natural Research 12 (43): 205.

Battu R S, Singh B, Arora P K and Sahoo S K .2008. Dissipation of quinalphos in Kinnow Mandarin fruits under subtropical conditions of Punjab, India. Bulletin of Environmental Contamination and Toxicolology 80: 395–8. DOI: https://doi.org/10.1007/s00128-008-9363-3

Chandra S, Kumar M, Mahindrakar Anil N and Shinde L P .2014. Persistence pattern of chlorpyriphos, cypermethirn and monocrotophos in okra. International Journal of Advance Research 2 (12): 738–43.

Chauhan R, Monga S and Kumari B .2012. Effect of processing on reduction of λ-Cyhalothrin residues in tomato fruits. Bulletin of Environmental Contamination and Toxicolology 88: 352–7. DOI: https://doi.org/10.1007/s00128-011-0483-9

Chauhan R, Monga S and Kumari B. 2012. Dissipation and decontamination of bifenthrin residues to (Lycopersicon esculentum Mill). Bulletin of Environmental Contamination and Toxicolology 89: 181–6. DOI: https://doi.org/10.1007/s00128-012-0629-4

Deen M K, Kumari B and Sharma S S .2009. Dissipation and decontamination of residues of three pesticides in okra fruits. Pesticide Research Journal 21: 80–2.

Essumang D K, Dodoo D K, Adokoh C K and Fumador E A .2008. Analysis of some pesticide residues in tomatoes in Ghana. Human Ecolological Risk Assessment 14 (4): 796–806. DOI: https://doi.org/10.1080/10807030802235243

Gupta S, Gajbhiye V T, Sharma R K and Gupta R K. 2011. Dissipation of cypermethrin, chlorpyriphos, and profenofos in tomato fruits and soil following application of pre-mix formulations. Environmental Monitoring and Assessment 174: 337–45. DOI: https://doi.org/10.1007/s10661-010-1461-0

Jyot G, Kousik M, Battu R S and Singh B .2013. Estimation of chlorpyriphos and cypermethrin residues in chilli (Capsicum annuum L.) by gas-liquid chromatography. Environmental Monitoring and Assessment 185: 5703–14. DOI: https://doi.org/10.1007/s10661-012-2977-2

Kaur P, Yadav G S, Chauhan R and Kumari B .2011. Persistence of cypermethrin and decamethrin residues in/on brinjal fruits. Bulletin of Environmental Contamination and Toxicolology 87: 693–8. DOI: https://doi.org/10.1007/s00128-011-0395-8

Kumari B, Madan V K and Kathpal T S .2008. Status of insecticide contamination of soil and water in Haryana, India. Environmental Monitoring and Assessment 136: 239–44. DOI: https://doi.org/10.1007/s10661-007-9679-1

Kumari B, Madan V K and Kathpal T S. 2006. Monitoring of pesticide residues in fruits. Environmental Monitoring and Assessment 123 (1–3): 407–12. DOI: https://doi.org/10.1007/s10661-006-1493-7

Kumari S, Chauhan R, Ramprakash and Kumari B. 2013. Persistence and decontamination of bifenthrin residues in okra fruits. African Journal of Agriculture Research 8 (38): 4833–8.

Parmar K D, Korat D M, Shah P G and Singh Susheel. 2012. Dissipation and decontamination of some pesticides in/ on okra. Pesticide Research Journal 24 (1): 42–6.

Sharma K K. 2013. Pesticide Residue Analysis Manual. Maximum residue limits (MRLs), as per the Prevention of Food Adulteration Act and Rules, 219 p.

Singh Y, Mandal K and Singh B. 2015. Persistence and risk assessment of cypermethrin residues on chilli (Capsicum annuum L.). Environmental Monitoring and Assessment 187: 120–9. DOI: https://doi.org/10.1007/s10661-015-4341-9

Walter J K, Arsenault T L, Pylypiw H M and Mattina M J I . 2000. Reduction of pesticide residues on produce by rinsing. Journal of Agriculture Food Chemistry 48: 4666–70. DOI: https://doi.org/10.1021/jf0002894

Walia S, Boora P and Kumari B .2010. Effect of processing on dislodging of cypermethrin residues on brinjal. Bulletin of Environmental Contamination and Toxicolology 84: 465–8. DOI: https://doi.org/10.1007/s00128-010-9952-9

Zawiyah S, Che Man Y B, Nazimah S A H, Chin C K, Tsukamoto I and Hamanyza A H .2007. Determination of organochlorine and pyrethroid pesticides in fruit and vegetables using SAX/ PSA clean-up column. Food Chemistry 102(1): 98–103. DOI: https://doi.org/10.1016/j.foodchem.2006.05.003

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Submitted

2018-12-11

Published

2018-12-11

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How to Cite

CHAUHAN, R., SINGH, D., MONGA, S., & KUMARI, B. (2018). Persistence and effect of decontamination processes on reduction of cypermethrin in okra (Abelmoschus esculentus) fruits. The Indian Journal of Agricultural Sciences, 88(12), 1926-1931. https://doi.org/10.56093/ijas.v88i12.85449
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