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Low energy portable industrial radiography X-ray machine of irradiation of Phthorimaea operculella sterilization Cover

Low energy portable industrial radiography X-ray machine of irradiation of Phthorimaea operculella sterilization

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Open Access
|Jul 2026

References

  1. Abdelhafiz, I., Gerth, S., Claussen, J., Weule, M., Hufnagel, E., Vilcinskas, A. and Lee, K.Z. 2024. Radioactivity and GMO‐Free Sterile Insect Technology for the Sustainable Control of the Invasive Pest Drosophila suzukii. Advanced Biology, 8(7): 2400100.
  2. Adhikari, A., Oli, D., Pokhrel, A., Dhungana, B., Paudel, B., Pandit, S., Bigyan, G.C. and Dhakal, A. 2022. A review on the biology and management of potato tuber moth. Agriculture, 68(3): 97-109.
  3. Bakri, A., Mehta, K., Lance, D.R., Dyck, V.A., Hendrichs, J. and Robinson, A.S. 2021. Sterilizing insects with ionizing radiation. Sterile Insect Technique: Principles and Practice in Area-wide Integrated Pest Management: 355-398.
  4. Bryant, L.E. and McIntire, P. 1985. Nondestructive testing handbook, 2nd edition, Volume 3, Radiography and radiation testing, Section 5, Part 2, Absorption and scattering, pp. 203-207, ASNT.
  5. Bushong, S.C. and Goerner, F. 2012. Radiologic Science for Technologists. Elsevier Health Sciences.
  6. Castell-Perez, M.E. and Moreira, R.G. 2021. Irradiation and consumers acceptance. Innovative Food Processing Technologies. A Comprehensive Review: 122-135.
  7. Chandel, R.S., Vashisth, S., Soni, S., Kumar, R. and Kumar, V. 2020. The potato tuber moth, Phthorimaea operculella (Zeller), in India: biology, ecology and control. Potato Research, 63(1): 15-39.
  8. Chang, C.L., Goodman, C.L., Ringbauer, J., Geib, S.M. and Stanley, D. 2016. Larval X‐ray irradiation influences protein expression in pupae of the Oriental Fruit Fly, Bactrocera dorsalis. Archives of Insect Biochemistry and Physiology, 92(3): 192-209.
  9. Chen, C., Qualls, W.A., Xue, R.D., Gibson, S. and Hahn, D.A. 2025. X-rays and gamma rays do not differ in their effectiveness for sterilizing pupae and adults of the mosquito Aedes aegypti (Diptera: Culicidae). Journal of Economic Entomology. https://doi.org/10.1093/jee/toaf030.
  10. Cho, S.R., Kim, M., Shin, E., Kim, H.K., Koo, H.N. and Kim, G.H. 2021. X-ray irradiation-induced abnormal development and DNA damage in Phthorimaea operculella (Lepidoptera: Gelechiidae). Applied Sciences, 11(11): 5068.
  11. Chu, S., Sun, Y., Liu, B. and Lu, Y. 2026. X-ray Dose Optimization for SIT in Helicoverpa armigera: Phenotypic Screening and Transcriptomic Validation. Radiation Physics and Chemistry, p.113854.
  12. Dyck, V.A., Hendrichs, J. and Robinson, A.S. 2021. Sterile Insect Technique: Principles and Practice in Area-wide Integrated Pest Management: 1216. Taylor and Francis.
  13. Fenemore, P.G. 1980. Oviposition of potato tuber moth, Phthorimaea operculella Zell. (Lepidoptera: Gelechiidae); identification of host-plant factors influencing oviposition response. New Zealand Journal of Zoology, 7(3): 435-439.
  14. Follett, P.A. and Wall, M.M. 2013. Phytosanitary irradiation for export of fresh produce: commercial adoption in Hawaii and current issues. Journal of Radioanalytical and Nuclear Chemistry, 296(1): 517-522.
  15. Fox, J.A. 2002. Influences on purchase of irradiated foods. Food technology-champaign then chicago, 56(11): 34-37.
  16. Gunes, G. and Tekin, M.D. 2006. Consumer awareness and acceptance of irradiated foods: Results of a survey conducted on Turkish consumers. LWT-Food Science and Technology, 39(4): 444-448.
  17. Hallman, G.J. 2013. Control of stored product pests by ionizing radiation. Journal of Stored Products Research, 52: 36-41.
  18. Hallman, G.J. and Hellmich, R.L. 2009. Ionizing radiation as a phytosanitary treatment against European corn borer (Lepidoptera: Crambidae) in ambient, low oxygen, and cold conditions. Journal of Economic Entomology, 102(1): pp.64-68.
  19. Halmshaw, R. 1995. Industrial Radiology: Theory and Practice Vol. 1 2nd edition, Chapter 6, pp. 134-140, Chapman and Hall, London.
  20. Hendrichs, J., Bloem, K., Hoch, G., Carpenter, J.E., Greany, P. and Robinson, A.S. 2009. Improving the cost-effectiveness, trade and safety of biological control for agricultural insect pests using nuclear techniques. Biocontrol Science and Technology, 19(sup1): 3-22.
  21. Huang, S.W., Wang, P.C., Wang, Y., Wang, J.Q., Gao, P., Ji, Q.E. and Yang, X.Q. 2025. Linalool fumigation improves mating competitiveness of males for population suppression of the global fruit pest Cydia pomonella. Pest Management Science, 81(3): 1444-1456.
  22. Idris, I. and Hussian, K. 2021. Effects of gamma radiation and Bacillus thuringiensis on F1 progeny of Cydia pomonella. Hellenic Plant Protection Journal, 14: 99-107.
  23. Idris, I. and Shoaib, A. 2019. Efficiency of AFLP markers to detect genetic variation in Phthorimaea operculella (Lepidoptera: Gelechiidae) offspring irradiated males. Advances in Horticultural Science, 33(3): 321-326.
  24. Idris, I., Naddaf, M., Harmalani, H., Alshater, R. and Alsafadi, R. 2023. Efficacy of olive stones and corn-cobs crystalline silica nanoparticles (Sio2, NPs) treatments on potato tuber moths (Phthorimaea operculella). Silicon, 15(8): 3591-3598.
  25. Indiarto, R., Pratama, A.W., Sari, T.I. and Theodora, H.C. 2020. Food irradiation technology: A review of the uses and their capabilities. International Journal of Engineering Technology and Trends, 68(12): 91-98.
  26. Jiang, S., He, L.M., He, W., Zhao, H.Y., Yang, X.M., Yang, X.Q. and Wu, K.M. 2022. Effects of X‐ray irradiation on the fitness of the established invasive pest fall armyworm Spodoptera frugiperda. Pest Management Science, 78(7): 2806-2815.
  27. Kaboré, B. A., Nawaj, A., Maiga, H., Soukia, O., Pagabeleguem, S., Ouédraogo/Sanon, M.S.G., Vreysen, M.J., Mach, R.L. and De Beer, C.J. 2023. X-rays are as effective as gamma-rays for the sterilization of Glossina palpalis gambiensis Vanderplank, 1911 (Diptera: Glossinidae) for use in the sterile insect technique. Scientifi c Reports, 13(1): 17633.
  28. Knipling, E.F.1985. Sterile insect technique as a screwworm control measure: the concept and its development. Symposium on eradication of the screwworm from the United States and Mexico. Miscellaneous Publications of the Entomological Society of America, 62: 4-7.
  29. Kwon, N.H., Park, H.S., Kim, T., Kim, S.R., Kim, K.B., Kim, J.S., Choi, S.H. and Kim, D.W. 2022. Review of shielding evaluation methodology for facilities using kV energy radiation generating devices based on the NCRP-49 Report. Progress in Medical Physics, 33(4): 53-62.
  30. Liang, P.S., Haff, R.P., Ovchinnikova, I., Light, D.M., Mahoney, N.E. and Kim, J.H. 2019. Curcumin and quercetin as potential radioprotectors and/or radiosensitizers for X-ray-based sterilization of male navel orangeworm larvae. Scientifi c Reports, 9(1): 2016.
  31. Ma, C.M., Coffey, C.W., DeWerd, L.A., Liu, C., Nath, R., Seltzer, S.M. and Seuntjens, J.P. 2001. AAPM protocol for 40–300 kV x‐ray beam dosimetry in radiotherapy and radiobiology. Medical Physics, 28(6): 868-893.
  32. Maharaj H.P. 2008. Radiation protection and safety for industrial X-ray equipment. Health Canada, Safety Code 34.
  33. Maherani, B., Hossain, F., Criado, P., Ben-Fadhel, Y., Salmieri, S. and Lacroix, M. 2016. World market development and consumer acceptance of irradiation technology. Foods, 5(4): 79.
  34. Makee, H. and Saour, G. 2003. Noninherited sterility in irradiated Phthorimaea operculella females. Journal of Applied Entomology, 127(9‐10): 489-493.
  35. Makee, H. and Saour, G. 1999. Nonrecovery of fertility in partially sterile male Phthorimaea operculella (Lepidoptera: Gelechiidae). Journal of Economic Entomology, 92(3): 516-520.
  36. Martin, J.E. 2006. Physics for radiation protection handbook, 2nd Edition, Chapter 8 Radiation Shielding, pp.367-421, Verlag GmbH and Co. KGaA, Weinheim.
  37. Marec, F. and Vreysen, M.J. 2019. Advances and challenges of using the sterile insect technique for the management of pest Lepidoptera. Insects, 10(11): 371.
  38. Martin, J.E., 2006. Physics for radiation protection handbook, 2nd edition, Chapter 8 Radiation Shielding, pp.367-421, Verlag GmbH and Co. KGaA, Weinheim.
  39. Mastrangelo, T., Parker, A.G., Jessup, A., Pereira, R., Orozco-Dávila, D., Islam, A., Dammalage, T. and Walder, J.M.M. 2010. A new generation of X-ray irradiators for insect sterilization. Journal of Economic Entomology, 103(1): 85-94.
  40. Mastrangelo, T., Walder, J.M., Parker, A.G., Jessup, A., Orozco-Dávila, D., Islam, A., Dammalage, T. and Pereira, R. 2009. Assessment of differences between X and γ rays in order to validate a new generation of irradiators for insect sterilization (No. INIS-BR--7258). Associacao Brasileira de Energia Nuclear, Rio de Janeiro, RJ (Brazil).
  41. International Atomic Energy Agency. 2007. Dosimetry in diagnostic radiology: An international code of practice. Technical Report series no. 457, Chapter 7, Selection of instrumentation, pp. 41-51, IAEA, Vienna.
  42. Praveen, C., McGrath, I.A., Wavare, N.S. and Pillai, S.D. 2025. Electron Beam and X-ray Technologies in Agriculture and Food Processing: A Viable Alternative to Cobalt-60. Health Physics, 129(3): pp.160-173.
  43. Rondon, S.I., 2010. The potato tuber worm: a literature review of its biology, ecology and control. American Journal of Potato Research, 87(2): pp.149-166.
  44. Russel, K.H and Bardley, J.R. 2015. Intermediate physics for medicine and biology, Medical uses of X-rays, Springer, 5th edition, Apr. chapter 16, Medical uses of X-rays, pp. 437-477, Springer, USA. Saour, G. and Makee, H. 1997. Radiation induced sterility in male potato tuber moth Phthorimaea operculella Zeller (Lep., Gelechiidae). Journal of Applied Entomology, 121(1‐5): 411-415.
  45. Urquidi, J., Brar, R.K., Rodriguez, S. and Hansen, I. 2015. July. The development of new radiation protocols for insect sterilization using long wavelength x-rays. In AIP conference proceedings (Vol. 1671, No. 1, p. 020010). AIP Publishing LLC.
  46. Wang, L.M., Li, N., Ren, C.P., Peng, Z.Y., Lu, H.Z., Li, D., Wu, X.Y., Zhou, Z.X., Deng, J.Y., Zheng, Z.H. and Wang, R.Q. 2023. Sterility of Aedes albopictus by X-ray Irradiation as an Alternative to γ-ray Irradiation for the Sterile Insect Technique. Pathogens, 12(1): 102.
  47. Yamada, H., Zhang, D., Parker, A.G. and Vreysen, M.J. 2023. Sterilizing insects with X-rays or gamma rays-which irradiator to select? Frontiers in Tropical Diseases, 4: 1224386.
  48. Zhang, H. and Zhou, W. 2022. Low-energy X-ray irradiation: A novel non-thermal microbial inactivation technology. In Advances in Food and Nutrition Research (Vol. 100: 287-328). Academic Press.
  49. Zhang, J.H., Li, N., Zhao, H.Y., Wang, Y.Q., Yang, X.Q. and Wu, K.M. 2023. Sterility of Cydia pomonella by X-ray irradiation as an alternative to gamma radiation for the sterile insect technique. Bulletin of Entomological Research, 113(1): 72-78.
  50. Zhao, J., Li, S., Xu, L., Li, C., Li, Q., Dewer, Y. and Wu, K. 2022. Effects of X-ray irradiation on biological parameters and induced sterility of Ephestia elutella: establishing the optimum irradiation dose and stage. Frontiers in Physiology, 13: 895882.
DOI: https://doi.org/10.2478/hppj-2026-0009 | Journal eISSN: 2732-656X (formerly 1791-3691) | Journal ISSN: 1791-3691
Language: English
Page range: 91 - 101
Submitted on: Feb 18, 2026
Accepted on: Jun 21, 2026
Published on: Jul 23, 2026
Published by: Benaki Phytopathological Institute
In partnership with: Paradigm Publishing Services

© 2026 I. Idris, W. Harara, published by Benaki Phytopathological Institute
This work is licensed under the Creative Commons Attribution 4.0 License.