تاثیر زمان‌های مختلف پرتودهی اشعه‌ فرا بنفش (UV-C) بر پراسنجه‌های جدول زندگی کنه تارتن دو لکه‌ای Tetranychus urticae Kotch (Acari: Tetranychidae)

نوع مقاله : مقاله پژوهشی

نویسندگان

1 گروه گیاه پزشکی، دانشکده کشاورزی، دانشگاه ارومیه، ارومیه، ایران

2 مرکز تحقیقات و آموزش کشاورزی و منابع طبیعی استان آذربایجان‌غربی، سازمان تحقیقات، آموزش و ترویج کشاورزی، ارومیه، ایران

چکیده

کنه تارتن دو لکه­ ای Tetranychus urticae Koch، به بیش از 150 گونه گیاهی خسارت اقتصادی وارد می ­کند. با توجه به اثرات نامطلوب استفاده از کنه کش­ ها و ایجاد مقاومت در کنه ­های گیاهی، روش ­های کنترل سازگار با محیط زیست مانند پرتودهی، که یکی از روش ­های سازگار با محیط زیست می ­باشد مورد توجه قرار گرفته است. در پژوهش حاضر، اثر اشعه UV-C روی پراسنجه ­های جمعیتی کنه تارتن دو لکه ­ای در شرایط آزمایشگاهی [دمای °C 25±3، رطوبت نسبی 5±65 درصد و دوره نوری 16:8 ساعت (تاریکی: روشنایی)] در زمان­ های صفر، 4، 8، 12 و 16 دقیقه روی تخم­ های هم­سن این آفت مورد بررسی قرار گرفت. افزایش مدت زمان پرتودهی، موجب کاهش طول عمر کنه بالغ ماده از 22/25 به 19/38روز شد. میزان باروری از 39 به 17/31تخم و طول دوره تخمگذاری از 14/35به 8/72 روز کاهش یافت. نرخ ذاتی افزایش جمعیت در شاهد و 16 دقیقه پرتودهی با یک کاهش معنی‌داری به‌ترتیب 005/0±0/201 و 010/0±0/098 در روز بود. کم­ترین و بیش­ترین مقدار نرخ خالص تولید­مثل (R0) به‌ترتیب در زمان­ 16 دقیقه پرتو­دهی و شاهد، 5/62 و 26/81 تخم به ازای هر ماده بود. بنابراین، رشد جمعیت با افزایش مدت زمان پرتودهی نسبت به شاهد کاهش یافت. نتایج به­ دست‌آمده نشان­ دهنده اثرات منفی پرتو­دهی اشعه فرا­بنفش روی پراسنجه ­های رشدی و رشد جمعیتی کنه تارتن می ­باشد. 

کلیدواژه‌ها


عنوان مقاله [English]

Effect of different durations of UV-C radiation on the life table parameters of the Tetranychus urticae

نویسندگان [English]

  • Barfin Pero 1
  • Fariba Mehrkhou 1
  • Maryam Fourouzan 2
1 Department of Plant Protection, Faculty of Agriculture, Urmia University. Iran
2 Research and Agricultural Education Center of West Azarbaijan Province, Agricultural Research, Education and Extension Organization, Urmia, Iran
چکیده [English]

The two-spotted spider mite, Tetranychus urticae Koch, causes significant economic damage to over 150 plant species. Given the adverse effects of synthetic acaricides and the increasing incidence of pesticide resistance in mite populations, eco-friendly control strategies such as irradiation have gained prominence. In the present study, the effect of UV-C radiation on population parameters of the two-spotted spider mite was investigated under laboratory conditions [25 ± 3°C, 65 ± 5% RH, and a 16:8 L:D photoperiod (dark:light)]. The observations were made at intervals of 0, 4, 8, 12, and 16 minutes on eggs of the same age of this pest. Increasing the duration of irradiation reduced the lifespan of adult female mites from 22.25 to 19.38 days. The fecundity rate decreased from 39.00 to 17.31 eggs, and the ovipositional period was reduced from 14.35 to 8.72 days. The intrinsic rate of increase in the control and 16 min irradiation with a significant decrease was 0.201±0.005 and 0.098±0.010 per day, respectively. The lowest and highest net reproductive rate values (R0​) were 5.62 and 26.81 eggs/per female at 16 minutes of irradiation and control, respectively. Therefore, population growth decreased with increasing irradiation duration compared to the control. These results demonstrate the inhibitory effects of UV-C radiation on the biological and demographic performance of T. urticae.

کلیدواژه‌ها [English]

  • Life table
  • non-chemical control
  • population growth parameters
  • two-spotted spider mite
Ahmed, R. G. (2005). Damage pattern as function of various types of radiations. Islamic World Academy of Sciences, 15, 135-147.
Ayvaz, A., & Tuncbilek, A. Ş. (2006). Effects of gamma radiation on life stages of the Mediterranean flour moth, Ephestia kuehniella Zeller (Lepidoptera: Pyralidae). Pest Science, 79, 215-222. DOI: https://doi.org/10.1007/s10340-006-0137-6.
Bakhshi, A., Talebi, A. A., & Fathipour, Y. (2012).  Effect of ultra violet irradiation on biological parameters of Plodia interpunctella (Hübner) (Lep., Pyralidae). Entomological Research, 4(2), 103-116.
Barcelo, J. A. (1981). Photoeffects of visible and ultraviolet radiation on the twospotted spider mite Tetranychus urticae. Photochemistry and Photobiology, 33, 703–706. DOI: https://doi.org/ 10.1111/j.1751-1097.1981.tb05477.x
Beard, R. L. (1972). Lethal action of UV irradiation on insects. Economic Entomology, 65, 650-654. DOI: https://doi.org/10.1093/jee/65.3.650
Beynaghi, S., Kheradmand, K., Asgari, S., & Sheykhi Garjan, A. (2014). Sublethal effects of Cuminum cyminum and Eugenia caryophyllata essential oils on two–spotted spider mite, Tetranychus urticae. Plant Pathology, 82(2), 81-90. (In Farsi)
Birch, L. (1948). The Intrinsic Rate of Natural Increase of an Insect Population. The Journal of Animal Ecology, 1, 15-26. DOI:https://doi.org/10.2307/1605
Cagatay, N. S., Menault, P., Riga, M., Vontas, J., & Ay, R. (2018). Identification and characterization of abamectin resistance in Tetranychus urticae Koch populations from greenhouses in Turkey. Crop Protection, 112, 112–117.  DOI: https://doi.org/10.1016/j.cropro.2018.05.016.
Carey, J. R. (2001). Insect biodemography. Annual Review of Entomology, 46(1), 79-110. DOI: https:// doi.org/10.1146/annurev.ento.46.1.79
Chi, H. (1990). Timing of control based on the stage structure of pest population: a simulation approach. Economic Entomology, 83, 1143-1150.  DOI: https://doi.org/10.1093/jee/83.4.1143
 Chi, H. (2016). TWOSEX-MSChart: Computer program for the agestage, two-sex life table analysis. Zenodo. Available on the website: https://zenodo.org/records/7484085
Chi, H. (2022a). TWOSEX-MSChart: A computer program for the population projection based on age-stage, two-sex life table. Access date: 2016.04.25. Available on the website: http://140.120.197.173/ecology/prod02.htm. Zip
Chi, H. (2022b). TIMING-MSChart: a computer program for the population projection based on age-stage, two-sex life table. Access date: 2017.01.28. Available on the website: http://140.120.197.173/ecology/prod02.htm. Zip
Darras, A. I., Skouras, P. J., Assimomitis, P., Labropouloy, C., & Stathas, G. J. (2021). Application of UV-C irradiation to Rosa x hybrida plants as a tool to minimise Macrosiphum rosae populations. Agronomy, 11(4), 702. DOI: https://doi.org/10.3390/agronomy11040702
Faruki, S. I., Das, D. R., & Khatun, S. (2005). Effects of UV-radiation on the larvae of the lesser mealworm, Alphitobius diaperinus Panzer (Coleoptera: Tenebrionidae) and their progeny. Biological Sciences, 5, 444-448.
Fathi, S. A. A., Nouri-Ghanbalanni, G., & Sedaghati, M. (2010). Resistance of some canola cultivars to Aphis Gossypii (Hemiptera: Aphididae). Applied Entomology and Zoology, 45(4), 601-608.
Fathipour, Y., & Maleknia, B. (2016). Mite predators. In Ecofriendly pest management for food security (pp. 329-366). Academic Press. DOI: https://doi.org/10.1016/B978-0-12-803265-7.00011-7
Fathipour, Y., Mehrkhou, F., Mirhosseini, M. A., Rezaei, M., & Pervez, A. (2024). Comprehensive foraging behavior of acarophagous ladybird, Stethorus gilvifrons (Coleoptera: Coccinellidae) on Tetranychus urticae (Trombidiformes: Tetranychidae): Implications for biological control. Tropical Insect Science, 44(1), 215-226. DOI:  https://doi.org/10.1007/s42690-023-01148-7
Gill, S. S., Cowles, E. A., & Francis, V. (1995). Identification, isolation, and cloning of a Bacillus thuringiensis CryIAc toxin-binding protein from the midgut of the Lepidopteran insect Heliothis virescens. Biological Chemistry, 270(45), 27277_27282. DOI: https://doi.org/10.1074/ jbc.270. 45.27277
Guven, E., Pandir, D., & Hatice, B. (2015). UV radyasyonun, Un güvesi, Ephestia kuehniella Zeller (Lepidoptera: Pyralidae), larvalarında meydana getirdiği oksidatif stres ve DNA hasarının belirlenmesi. Turkish Journal of Entomology, 39, 23-33. DOI:  https://doi.org/10.16970/ted.06717.
Hallman, G. L. (2004). Ionizing irradiation quarantine treatment against orient fruit moth (Lepidoptera: Tortricidae) in ambient and hypoxic atomospheres. Economic Entomology, 97, 824-827. DOI: https://doi.org/10.1093/jee/97.3.824
Han, Y., Zhang, Y. C., Ye, W. N., Wang, S. M., Wang, X., & Gao, C. F. (2024). Increasing resistance of Tetranychus urticae to common acaricides in China and risk assessment to spiromesifen. Crop Protection, 176, 106519. DOI: https://doi.org/10.1016/j.cropro.2023.106519.
Hassan, M., Jahan, M. S., & Khan, I. R. (1998). Effect of UV radiation on the uzi-fly, Exorista sorbillans Widemann, an endoparasitoidof silkworm, Bombyx mori L. Insect Science, 18, 87-91. DOI: https://doi.org/10.1017/S1742758400007505
Heidari, N., Sedaratian-Jahromi, A., & Ghane-Jahromi, M. (2016). Possible effects of ultraviolet ray (UV-C) on biological traits of Callosobruchus maculatus Fabricius (Col.: Chrysomelidae).  Stored Products Research, 69, 91-98. DOI: https://doi.org/10.1016/j.jspr.2016.06.008.
Hu, Z., Zh, H., & T, T. (2013). Probing behaviors of Sitobion avenae (Hemiptera: Aphididae) on enhanced UV_B irradiated plants.  Archives of Biological Sciences, 65(1), 247-254, 2013. DOI: https://doi.org/10.2298/ABS1301247H
Infante, F. (2000). Development and population growth rates of Prorops nasuta (Hym.: Bethylidae) at constant temperatures. Applied Entomology, 124, 343-348. DOI: https://doi.org/10.1046/j.1439-0418.2000.00462.x
Kalaras, M. D., Beelman, R. B., & Elias, R. J. (2012). Effects of postharvest pulsed UV light treatment of white button mushrooms (Agaricus bisporus) on vitamin D2 content and quality attributes. Agricultural and Food Chemistry, 60, 220-225. DOI: https://doi.org/10.1021/jf203825e
Kim, M. J., & Johnson, W. A. (2014). ROS-mediated activation of Drosophila larval nociceptor neurons by UVC irradiation. BMC Neuroscience, 15, 14. DOI: https://doi.org/10.1186/1471-2202-15-14
Kimura, H., et al. (2018). UV-C irradiation as a management tool for Tetranychus urticae on strawberries. Photochemistry and Photobiology, 196, 88599.
Lah, E. F. C., Musa, P. N. A. R., & Ming, H. T. (2012). Effect of germicidal UV_C light (254 nm) on eggs and adult of hous dust mites, Dermatophagoides pteronyssinus and Dermtaophagoides farina (Astigmata: pyroglyhidae). Tropical Biomedicine, 2, 679-683 32.
Medeiros, R. S., Ramalho, F. S., Lemos, W. P., & Zanuncio, J. C. (2000). Age-dependent fecundity and life fertility tables for Podisus nigrispinus (Dallas) (Heteroptera: Pentatomidae). Applied Entomology, 124, 319-324. DOI: https://doi.org/10.1046/j.1439-0418.2000.00482.x
Modarres Najafabadi, S. S., Sedehi, A., & Karbalaizadeh, M. (2014). Effect of ultraviolet irradiation (254 nm) on egg hatching population growth and reproductive parameters of cowpea weevil, Callosobruchus maculatus Fabricus (Col.: bruchidae). Farming Alleid Science, 3(5), 476-482.
Montemayor, J.D., Smith, H.A., Peres, N.A., De Marchi, B.R. and Lahiri, S., 2023. Is UV-C light compatible with biological control of twospotted spider mite?. Biological Control, 183, p.105269.
Murata, Y., & Osakabe M. (2014). Factors affecting photoreactivation in UV-B irradiated herbivorous
Naegele, J. A., McEnroe, W. D., & Soans, A. B. (1966). Spectral sensitivity and orientation response of the two-spotted spider mite, Tetranychus urticae Koch, from 350 mm to 700 mm. Insect Physiology, 12, 1187–1195. DOI: https://doi.org/10.1016/0022-1910(66)90131-4
Parween, T., Mahmooduzzafar, S., & Fatma, T. (2012). Evaluation of oxidative stress in Vigna radiata L. in response to chlorpyrifos. Environmental Sciences, 9, 605–612. DOI: https://doi.org/ 10.1007/ s13762-012-0095-x
Pero, B., Aramideh, Sh., Mirfakhraie, Sh., & Hosseinzadeh, A. (2024). Effect of UV radiation on life table parameters of the Phthorimaea operculella Zeller (Lep.: Gelechiidae). Entomological Society of Iran, 44(1), 11-24. (In Farsi)
Pilkington, L. J., & Hoddle, M. S. (2007). Use of life table to quantify reproductive and developmental biology of Gonatocera triguttatus Girault (Hym.: Mymaridae), an egg parasitoid of Homalodisca vitripennis Germar (Hemiptera: Cicadellidae). Biological Control, 42, 1-8. DOI: https://doi.org/ 10.1016/j.biocontrol.2007.04.006
Pourhemati, A., Teklozadeh, H. M., & Mashrafe, M. (2013). Investigating the effect of two wavelengths of ultraviolet rays on the mortality of adult grain insects. 1th National Conference on Sustainable Development of Agriculture and Healthy Environment. (In Farsi).
 Pourhemati, A., Teklozadeh, H. M., & Mashrafe, M. (2013). Investigating the effect of two wavelengths of ultraviolet rays on the mortality of adult grain insects. 1st National Conference on Sustainable Development of Agriculture and Healthy Environment.18 April. PP. (In Farsi).
Rezaei, N., Mossadegh, M. S., Kocheyli, F., Jahromi, K. T., & Kavousi, A. (2018). Sub–lethal effects of thiamethoxam and pirimicarb on life–table parameters of Diaeretiella rapae (Hymenoptera: Braconidae), parasitoid of Lipaphis erysimi (Hemiptera: Aphididae). Agricultural and Biosystems Engineering, 12(10), 321–328.
Rincon, R. A., Rodríguez, D., & Coy-Barrera, E. (2019). Botanicals against Tetranychus urticae Koch under laboratory conditions: a survey of alternatives for controlling pest mites. Plants, 8, 272. DOI: https://doi.org/10.3390/plants8080272
Silva, W. D., Arthur, V., & Mastrangelo, T. (2010). Response of oriental fruit moth, Grapholita molesta (Busck) (Lepidoptera: Tortricidae), eggs to gamma radiation. Radiation Phisics and Chemistry, 79, 1063-1066. DOI:  https://doi.org/10.1016/j.radphyschem.2010.05.009
Southwood, T. R. E., & Henderson, P. A. (2000). Ecological Methods. 3rd ed. Blackwell Science Ltd., 592 pp.
Suzuki, T., Watanabe, M., & Takeda, M. (2009). UV tolerance in the two-spotted spider mite, Tetranychus urticae. Physics, 55, 649-654.
Villena, O. C., Momen, B., & Sullivan, J. (2018). Effects of ultraviolet radiation on metabolic rate and fitness of Aedes albopictus and Culex pipiens mosquitoes. PeerJ., 6, 61-33. DOI: https://doi.org/ 10.7717/peerj.6133
Wu, M., Adesanya, A. W., Morales, M. A., Walsh, D. B., Lavine, L. C., Lavine, M. D., & Zhu, F. (2019). Multiple acaricide resistance and underlying mechanisms in Tetranychus urticae on hops. Pest Science, 92, 543- 555. DOI: https://doi.org/10.1007/s10340-018-1050-5
Zhao, S., Qiu, C., Xiong, S., & Cheng, X. (2007). A thermal lethal model of rice weevils subjected to microwave irradiation. Stored Products Research, 43, 430-434. DOI: https://doi.org/10.1016/ j.jspr.2006.12.005