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Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation

Yıl 2026, Cilt: 40 Sayı: 1 , 75 - 86 , 28.04.2026
https://doi.org/10.15316/selcukjafsci.1730345
https://izlik.org/JA67YH23HR

Öz

This study aimed to evaluate the effects of gamma irradiation on seed germination characteristics and seedling vigor in two mung bean (Vigna radiata L.) varieties, Vima 1 and Kutilang. Five levels of gamma irradiation doses were applied: 0 Gy, 100 Gy, 200 Gy, 300 Gy, and 400 Gy, using a factorial Completely Randomized Design with three replications. The observed parameters included seed viability (germination percentage, normal and abnormal seedlings, hard seeds, fresh but ungerminated seeds, and dead seeds), vigor index, as well as several seed and germination morphological traits. The results showed that gamma radiation significantly affected seed germination quality and morphological trait variation. The highest heritability and genotypic coefficient of variation (GCV) were observed in hypocotyl length, width, and diameter, indicating that these three traits are genetically controlled and have potential for selection. Conversely, seed size traits exhibited lower variability but remained stable across all treatments. Gamma doses of 100–200 Gy maintained seed vigor and germination above the Indonesian National Standard (SNI) (≥85%), while higher doses (300–400 Gy) resulted in a significant decline in both germination and vigor.

Kaynakça

  • Amjad, M., & Anjum, M. A. (2003). Effect of post-irradiation storage on the radiation-induced damage in onion seeds. Asian Journal of Plant Science & Research, 2(9), 702–707. https://doi.org/10.3923/ajps.2003.702.707
  • Balitkabi. (2021). Description of Mung Bean Varieties Vima 1 and Kutilang. Indonesian Agency for Agricultural Research and Development, Ministry of Agriculture.
  • Bonde, P. J., Thorat, B. S., & Gimhavnekar, V. J. (2020). Effect of gamma radiation on germination and seedling parameters of mung bean (vigna radiata). International Journal of Current Microbiology and Applied Sciences, 11(Spesial Issue), 1582–1587. https://www.researchgate.net/profile/Balaji- Thorat/publication/351578822_Effect_of_Gamma_Radiation_on_Germination_and_Seedling_Parameters_o f_Mung_Bean_Vigna_radiata/links/609e4fb3458515c2658d63f6/Effect-of-Gamma-Radiation-on- Germination-and-Seedling-Parameters-of-Mung-Bean-Vigna-radiata.pdf
  • Chahal, G. S., & Gosal, S. S. (2002). Principles and Procedures of Plant Breeding: Biotechnological and Conventional Approaches. Alpha Science Int’l Ltd.
  • Dewanjee, S., & Sarkar, K. K. (2018). Evaluation of performance of induced mutants in mungbean [vigna radiata (L.) wilczek]. Legume Research-An International Journal, 41(2), 213–217. https://doi.org/10.18805/lr.v0iOF.9098
  • Dewi, I. S., & Mulyana, A. (2020). Yield potential and adaptation of mung bean varieties in dryland conditions. Tropical Agrotechnology Journal, 8(2), 67–74.
  • International Seed Testing Association (ISTA). (1999). International Rules for Seed Testing. Seed Science and Technology.
  • International Seed Testing Association (ISTA). (2010). International Rules for Seed Testing. International Seed Testing Association.
  • Kartahadimaja, J., Syuriani, E. E., & Hakim, N. A. (2013). Effect of long-term storage on the viability and vigor of four inbred maize seed lines. Journal of Applied Agricultural Research, 13(3). https://doi.org/https://doi.org/10.25181/jppt.v13i3.184
  • Majeed, A., Muhammad, Z., Ullah, R., & Ali, H. (2018). Gamma irradiation i: effect on germination and general growth characteristics of plants–a review. Pakistan Journal of Botany, 50(6), 2449–2453. https://www.researchgate.net/publication/326015830_Gamma_irradiation_i_Effect_on_germination_and_general_growth_characteristics_of_plants-a_review#fullTextFileContent
  • Malook, A., Hussain, S. A., Ijaz, K. M., Ullah, K. I., Hussain, S. S., Hassan, I., ... & Ahmad, J. S. (2020). Biochemical and molecular evaluation of mungbean (vigna radiata L.) genotypes under different gamma rays treatments. Genetika, 52(2), 527–536. https://doi.org/https://doi.org/10.2298/GENSR2002527M
  • Mensah, J. K., Obadoni, B. O., Akomeah, P. A., Ikhajiagbe, B., & Ajibolu, J. (2007). The effects of sodium azide and colchicine treatments on morphological and yield traits of sesame seed (sesame indicum L.). African Journal of Biotechnology, 6(5). https://www.researchgate.net/publication/27797664_The_effects_of_sodium_azide_and_colchicine_treatm ents_on_morphological_and_yield_traits_of_sesame_seed_Sesame_indicum_L
  • Mohammadi, V., Zare Mehrjerdi, M., Rastogi, A., Gruda, N. S., & Aliniaeifard, S. (2024). Effects of seed priming with gamma radiation on growth, photosynthetic functionality, and essential oil and phytochemical contents of savory plants. Horticulturae, 10(7), 677. https://doi.org/https://doi.org/10.3390/horticulturae10070677
  • Mohsenin, N. N. (1986). Physical Properties of Plant and Animal Materials. Gordon and Breach Science Publishers. Mudibu, J., Nkongolo, K. K., Kalonji-Mbuyi, A., & Kizungu, R. V. (2012). Effect of gamma irradiation on morpho-agronomic characteristics of soybeans (glycine max L.). American Journal of Plant Sciences, 3(3), 331–337. https://doi.org/10.4236/ajps.2012.33039
  • Olajide, J. O., & Ade-Omowaye, B. I. O. (1999). Some physical properties of locust bean seed. Journal of Agricultural Engineering Research, 74(2), 213–215. https://doi.org/https://doi.org/10.1006/jaer.1997.0243
  • Prabhandaru, I., & Saputro, T. B. (2017). Germination response of seeds of the local rice variety ‘sigadis’ following gamma ray irradiation. Journal of Science and Arts, 6(2), E48–E52. https://doi.org/10.12962/j23373520.v6i2.25544
  • Purnobasuki, H. (2012). Seed Germination. PT. Grasindo. Rashid, K. A., Jamaludin, M. I., Farzinebrahimi, R., Nezhadahmadi, A., Taha, R. M., Abd Aziz, N. A., & Mamat, M. (2018). Effect of gamma-ray radiation on morphological development of orthosiphon stamineus (cat whisker). Life Science Journal, 15(11), 45–50. https://doi.org/10.7763/IPCBEE.2014.V77.12
  • Sadjad, S. (1993). From Seed to Seed. PT. Grasindo.
  • Sagita, D., Hasan, R., & Al Zahra, R. (2025). Ohmic heating pretreatment of mung bean seeds: effects of voltage gradient on seed germination and growth of mung bean sprouts. Jordan Journal of Biological Sciences, 18(1). https://doi.org/10.54319/jjbs/180109
  • Sari, A., Anwar, A., & Rozen, N. (2019). The viability and vigor of rice varieties (oryza sativa L.) under high temperature. JERAMI: Indonesian Journal of Crop Science, 2(1), 40–49. https://doi.org/https://doi.org/10.25077/jijcs.2.1.33-42.2019
  • Sharma, P., Jha, A. B., Dubey, R. S., & Pessarakli, M. (2012). Reactive oxygen species, oxidative damage and anti-oxidative defense mechanism in plants under stressful conditions. Journal of Botany, 1. https://doi.org/https://doi.org/10.1155/2012/217037
  • Sivana, N. I. E., Rahadatul‘Aisy, N., Mawaddah, N., Tribuana, R. G., Ilham, R., & Fitriyyah, I. (2025). Viability and seedling growth test of mung bean (vigna radiata) over an 11-day period. Plant: Journal of Agricultural Sociology and Forestry Sciences, 2(1), 64–72. https://doi.org/https://doi.org/10.62951/tumbuhan.v2i1.196
  • Sudrajat, D. J., & Zanzibar, M. (2009). The prospects of gamma ray irradiation technology for improving the quality of forest tree seeds. Seed Information, 13(1), 158–163.
  • Suliartini, N. W. S., Wangiyana, W., Aryana, I. G. P. M., & Sudharmawan, A. A. K. (2020). Radiosensitivity and seedling growth of several genotypes of paddy rice mutants irradiated with gamma rays at different doses. Poppulation, 19(21). https://doi.org/https://dx.doi.org/10.22161/ijhaf.4.5.5
  • Vanmathi, S., Arulbalachandran, D., & Soundarya, V. (2021). Effects of gamma radiation on quantitative traits and genetic variation of three successive generations of cowpea (vigna unguiculata (L.) walp.). Plant Science Today, 8(3), 578–589. https://doi.org/https://doi.org/10.14719/pst.2021.8.3.1054
  • Vanniarajan, C., & Chandirakala, R. (2022). Genetic variability and diversity analyses in electron beam and gamma ray induced mutants for yield attributing traits in urdbean [vigna mungo (L.)]. Electronic Journal of Plant Breeding, 13(2), 512–518. https://doi.org/10.37992/2022.1302.092
  • Waluyo, B., D. Saptadi, N.R. Ardiarini, Kuswanto, and C. U. Z. (2015). Diversity in the physical characteristics of jack bean (phaseolus lunatus l.) seeds as a basis for synchronizing with ındustrial preference. In R. and S. Asmara (Ed.), Proceedings of the National Seminar on Agricultural Development (pp. 555–560). Brawijaya University. https://fp.ub.ac.id/semnas/Paper/90_keragaman_biji_koro-budi_waluyo_(555-560).pdf
  • Wijananto, E. (2012). Radiation and Food Security. BATAN.
  • Yoseph, T., Mekbib, F., Fenta, B. A., & Tadele, Z. (2022). Genetic variability, heritability, and genetic advance in mung bean [vigna radiata (L.) wilczek] genotypes. Ethiopian Journal of Crop Science, 9(2), 113–135. https://www.ajol.info/index.php/ejcs/article/view/236701
  • Zafar, S. H., Umair, M., & Akhtar, M. (2023). Nutritional evaluation, proximate and chemical composition of mungbean varieties/cultivars pertaining to food quality characterization. Food Chemistry Advances, 2, 100. https://doi.org/https://doi.org/10.1016/j.focha.2022.100160
  • Zhang, Y., Liu, J., Jing, L., Ding, D., Chang, W., Cao, L., ... & Yang, S. (2024). Genetic diversity analysis of seed phenotypic traits of 302 mung bean germplasm resources. Ciência Rural, 54(11). https://doi.org/doi.org/10.1590/0103-8478cr20230542

Maş Fasulyesi (Vigna radiata L.) Çeşitlerinde Vima 1 ve Kutilang'da Gama Işınlaması Sonrası Tohum Çimlenmesinin Değerlendirilmesi

Yıl 2026, Cilt: 40 Sayı: 1 , 75 - 86 , 28.04.2026
https://doi.org/10.15316/selcukjafsci.1730345
https://izlik.org/JA67YH23HR

Öz

Bu çalışma, gama ışınlamasının iki maş fasulyesi (Vigna radiata L.) çeşidi olan Vima 1 ve Kutilang'ın tohum çimlenme özellikleri ve fide canlılığı üzerindeki etkilerini değerlendirmeyi amaçlamıştır. Gama ışınlaması beş dozda uygulanmıştır: 0 Gy, 100 Gy, 200 Gy, 300 Gy ve 400 Gy. Deneme, üç tekerrürlü faktöriyel Rastgele Bloklar Deneme Deseni kullanılarak yürütülmüştür. Gözlemlenen parametreler arasında tohum canlılığı (çimlenme yüzdesi, normal ve anormal fideler, sert tohumlar, taze ama çimlenmemiş tohumlar ve ölü tohumlar), canlılık indeksi ve çeşitli morfolojik tohum ve çimlenme özellikleri yer almıştır. Sonuçlar, gama ışınlamasının tohum çimlenme kalitesi ve morfolojik özellik varyasyonu üzerinde anlamlı bir etkiye sahip olduğunu göstermiştir. En yüksek kalıtsallık ve genotipik varyasyon katsayısı (GCV) hipokotil uzunluğu, genişliği ve çapı özelliklerinde gözlemlenmiş olup, bu üç özelliğin genetik olarak kontrol edildiğini ve seleksiyon için potansiyele sahip olduğunu göstermektedir. Buna karşılık, tohum boyutu özellikleri daha düşük değişkenlik göstermiş ancak tüm uygulamalarda istikrarlı kalmıştır. 100–200 Gy gama dozları, tohum canlılığı ve çimlenmesini Endonezya Ulusal Standardı (SNI) (≥%85) üzerinde tutarken, daha yüksek dozlar (300–400 Gy) hem çimlenme hem de canlılıkta önemli bir düşüşe neden olmuştur.

Kaynakça

  • Amjad, M., & Anjum, M. A. (2003). Effect of post-irradiation storage on the radiation-induced damage in onion seeds. Asian Journal of Plant Science & Research, 2(9), 702–707. https://doi.org/10.3923/ajps.2003.702.707
  • Balitkabi. (2021). Description of Mung Bean Varieties Vima 1 and Kutilang. Indonesian Agency for Agricultural Research and Development, Ministry of Agriculture.
  • Bonde, P. J., Thorat, B. S., & Gimhavnekar, V. J. (2020). Effect of gamma radiation on germination and seedling parameters of mung bean (vigna radiata). International Journal of Current Microbiology and Applied Sciences, 11(Spesial Issue), 1582–1587. https://www.researchgate.net/profile/Balaji- Thorat/publication/351578822_Effect_of_Gamma_Radiation_on_Germination_and_Seedling_Parameters_o f_Mung_Bean_Vigna_radiata/links/609e4fb3458515c2658d63f6/Effect-of-Gamma-Radiation-on- Germination-and-Seedling-Parameters-of-Mung-Bean-Vigna-radiata.pdf
  • Chahal, G. S., & Gosal, S. S. (2002). Principles and Procedures of Plant Breeding: Biotechnological and Conventional Approaches. Alpha Science Int’l Ltd.
  • Dewanjee, S., & Sarkar, K. K. (2018). Evaluation of performance of induced mutants in mungbean [vigna radiata (L.) wilczek]. Legume Research-An International Journal, 41(2), 213–217. https://doi.org/10.18805/lr.v0iOF.9098
  • Dewi, I. S., & Mulyana, A. (2020). Yield potential and adaptation of mung bean varieties in dryland conditions. Tropical Agrotechnology Journal, 8(2), 67–74.
  • International Seed Testing Association (ISTA). (1999). International Rules for Seed Testing. Seed Science and Technology.
  • International Seed Testing Association (ISTA). (2010). International Rules for Seed Testing. International Seed Testing Association.
  • Kartahadimaja, J., Syuriani, E. E., & Hakim, N. A. (2013). Effect of long-term storage on the viability and vigor of four inbred maize seed lines. Journal of Applied Agricultural Research, 13(3). https://doi.org/https://doi.org/10.25181/jppt.v13i3.184
  • Majeed, A., Muhammad, Z., Ullah, R., & Ali, H. (2018). Gamma irradiation i: effect on germination and general growth characteristics of plants–a review. Pakistan Journal of Botany, 50(6), 2449–2453. https://www.researchgate.net/publication/326015830_Gamma_irradiation_i_Effect_on_germination_and_general_growth_characteristics_of_plants-a_review#fullTextFileContent
  • Malook, A., Hussain, S. A., Ijaz, K. M., Ullah, K. I., Hussain, S. S., Hassan, I., ... & Ahmad, J. S. (2020). Biochemical and molecular evaluation of mungbean (vigna radiata L.) genotypes under different gamma rays treatments. Genetika, 52(2), 527–536. https://doi.org/https://doi.org/10.2298/GENSR2002527M
  • Mensah, J. K., Obadoni, B. O., Akomeah, P. A., Ikhajiagbe, B., & Ajibolu, J. (2007). The effects of sodium azide and colchicine treatments on morphological and yield traits of sesame seed (sesame indicum L.). African Journal of Biotechnology, 6(5). https://www.researchgate.net/publication/27797664_The_effects_of_sodium_azide_and_colchicine_treatm ents_on_morphological_and_yield_traits_of_sesame_seed_Sesame_indicum_L
  • Mohammadi, V., Zare Mehrjerdi, M., Rastogi, A., Gruda, N. S., & Aliniaeifard, S. (2024). Effects of seed priming with gamma radiation on growth, photosynthetic functionality, and essential oil and phytochemical contents of savory plants. Horticulturae, 10(7), 677. https://doi.org/https://doi.org/10.3390/horticulturae10070677
  • Mohsenin, N. N. (1986). Physical Properties of Plant and Animal Materials. Gordon and Breach Science Publishers. Mudibu, J., Nkongolo, K. K., Kalonji-Mbuyi, A., & Kizungu, R. V. (2012). Effect of gamma irradiation on morpho-agronomic characteristics of soybeans (glycine max L.). American Journal of Plant Sciences, 3(3), 331–337. https://doi.org/10.4236/ajps.2012.33039
  • Olajide, J. O., & Ade-Omowaye, B. I. O. (1999). Some physical properties of locust bean seed. Journal of Agricultural Engineering Research, 74(2), 213–215. https://doi.org/https://doi.org/10.1006/jaer.1997.0243
  • Prabhandaru, I., & Saputro, T. B. (2017). Germination response of seeds of the local rice variety ‘sigadis’ following gamma ray irradiation. Journal of Science and Arts, 6(2), E48–E52. https://doi.org/10.12962/j23373520.v6i2.25544
  • Purnobasuki, H. (2012). Seed Germination. PT. Grasindo. Rashid, K. A., Jamaludin, M. I., Farzinebrahimi, R., Nezhadahmadi, A., Taha, R. M., Abd Aziz, N. A., & Mamat, M. (2018). Effect of gamma-ray radiation on morphological development of orthosiphon stamineus (cat whisker). Life Science Journal, 15(11), 45–50. https://doi.org/10.7763/IPCBEE.2014.V77.12
  • Sadjad, S. (1993). From Seed to Seed. PT. Grasindo.
  • Sagita, D., Hasan, R., & Al Zahra, R. (2025). Ohmic heating pretreatment of mung bean seeds: effects of voltage gradient on seed germination and growth of mung bean sprouts. Jordan Journal of Biological Sciences, 18(1). https://doi.org/10.54319/jjbs/180109
  • Sari, A., Anwar, A., & Rozen, N. (2019). The viability and vigor of rice varieties (oryza sativa L.) under high temperature. JERAMI: Indonesian Journal of Crop Science, 2(1), 40–49. https://doi.org/https://doi.org/10.25077/jijcs.2.1.33-42.2019
  • Sharma, P., Jha, A. B., Dubey, R. S., & Pessarakli, M. (2012). Reactive oxygen species, oxidative damage and anti-oxidative defense mechanism in plants under stressful conditions. Journal of Botany, 1. https://doi.org/https://doi.org/10.1155/2012/217037
  • Sivana, N. I. E., Rahadatul‘Aisy, N., Mawaddah, N., Tribuana, R. G., Ilham, R., & Fitriyyah, I. (2025). Viability and seedling growth test of mung bean (vigna radiata) over an 11-day period. Plant: Journal of Agricultural Sociology and Forestry Sciences, 2(1), 64–72. https://doi.org/https://doi.org/10.62951/tumbuhan.v2i1.196
  • Sudrajat, D. J., & Zanzibar, M. (2009). The prospects of gamma ray irradiation technology for improving the quality of forest tree seeds. Seed Information, 13(1), 158–163.
  • Suliartini, N. W. S., Wangiyana, W., Aryana, I. G. P. M., & Sudharmawan, A. A. K. (2020). Radiosensitivity and seedling growth of several genotypes of paddy rice mutants irradiated with gamma rays at different doses. Poppulation, 19(21). https://doi.org/https://dx.doi.org/10.22161/ijhaf.4.5.5
  • Vanmathi, S., Arulbalachandran, D., & Soundarya, V. (2021). Effects of gamma radiation on quantitative traits and genetic variation of three successive generations of cowpea (vigna unguiculata (L.) walp.). Plant Science Today, 8(3), 578–589. https://doi.org/https://doi.org/10.14719/pst.2021.8.3.1054
  • Vanniarajan, C., & Chandirakala, R. (2022). Genetic variability and diversity analyses in electron beam and gamma ray induced mutants for yield attributing traits in urdbean [vigna mungo (L.)]. Electronic Journal of Plant Breeding, 13(2), 512–518. https://doi.org/10.37992/2022.1302.092
  • Waluyo, B., D. Saptadi, N.R. Ardiarini, Kuswanto, and C. U. Z. (2015). Diversity in the physical characteristics of jack bean (phaseolus lunatus l.) seeds as a basis for synchronizing with ındustrial preference. In R. and S. Asmara (Ed.), Proceedings of the National Seminar on Agricultural Development (pp. 555–560). Brawijaya University. https://fp.ub.ac.id/semnas/Paper/90_keragaman_biji_koro-budi_waluyo_(555-560).pdf
  • Wijananto, E. (2012). Radiation and Food Security. BATAN.
  • Yoseph, T., Mekbib, F., Fenta, B. A., & Tadele, Z. (2022). Genetic variability, heritability, and genetic advance in mung bean [vigna radiata (L.) wilczek] genotypes. Ethiopian Journal of Crop Science, 9(2), 113–135. https://www.ajol.info/index.php/ejcs/article/view/236701
  • Zafar, S. H., Umair, M., & Akhtar, M. (2023). Nutritional evaluation, proximate and chemical composition of mungbean varieties/cultivars pertaining to food quality characterization. Food Chemistry Advances, 2, 100. https://doi.org/https://doi.org/10.1016/j.focha.2022.100160
  • Zhang, Y., Liu, J., Jing, L., Ding, D., Chang, W., Cao, L., ... & Yang, S. (2024). Genetic diversity analysis of seed phenotypic traits of 302 mung bean germplasm resources. Ciência Rural, 54(11). https://doi.org/doi.org/10.1590/0103-8478cr20230542
Toplam 31 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Agronomi, Tahıllar ve Yemeklik Tane Baklagiller, Tarımda Bitki Islahı
Bölüm Araştırma Makalesi
Yazarlar

Puguh Pamungkas 0000-0002-0454-3876

Dharend Lingga Wibisana Bu kişi benim 0000-0003-0393-7432

Dewi Amrih Bu kişi benim 0000-0002-5201-4602

Lana Santika Nadia Bu kişi benim 0000-0001-7717-9748

Gönderilme Tarihi 30 Haziran 2025
Kabul Tarihi 11 Ocak 2026
Yayımlanma Tarihi 28 Nisan 2026
DOI https://doi.org/10.15316/selcukjafsci.1730345
IZ https://izlik.org/JA67YH23HR
Yayımlandığı Sayı Yıl 2026 Cilt: 40 Sayı: 1

Kaynak Göster

APA Pamungkas, P., Wibisana, D. L., Amrih, D., & Nadia, L. S. (2026). Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation. Selcuk Journal of Agriculture and Food Sciences, 40(1), 75-86. https://doi.org/10.15316/selcukjafsci.1730345
AMA 1.Pamungkas P, Wibisana DL, Amrih D, Nadia LS. Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation. Selcuk J Agr Food Sci. 2026;40(1):75-86. doi:10.15316/selcukjafsci.1730345
Chicago Pamungkas, Puguh, Dharend Lingga Wibisana, Dewi Amrih, ve Lana Santika Nadia. 2026. “Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation”. Selcuk Journal of Agriculture and Food Sciences 40 (1): 75-86. https://doi.org/10.15316/selcukjafsci.1730345.
EndNote Pamungkas P, Wibisana DL, Amrih D, Nadia LS (01 Nisan 2026) Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation. Selcuk Journal of Agriculture and Food Sciences 40 1 75–86.
IEEE [1]P. Pamungkas, D. L. Wibisana, D. Amrih, ve L. S. Nadia, “Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation”, Selcuk J Agr Food Sci, c. 40, sy 1, ss. 75–86, Nis. 2026, doi: 10.15316/selcukjafsci.1730345.
ISNAD Pamungkas, Puguh - Wibisana, Dharend Lingga - Amrih, Dewi - Nadia, Lana Santika. “Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation”. Selcuk Journal of Agriculture and Food Sciences 40/1 (01 Nisan 2026): 75-86. https://doi.org/10.15316/selcukjafsci.1730345.
JAMA 1.Pamungkas P, Wibisana DL, Amrih D, Nadia LS. Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation. Selcuk J Agr Food Sci. 2026;40:75–86.
MLA Pamungkas, Puguh, vd. “Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation”. Selcuk Journal of Agriculture and Food Sciences, c. 40, sy 1, Nisan 2026, ss. 75-86, doi:10.15316/selcukjafsci.1730345.
Vancouver 1.Puguh Pamungkas, Dharend Lingga Wibisana, Dewi Amrih, Lana Santika Nadia. Evaluation of Seed Germination in Mung Bean (Vigna radiata L.) Varieties Vima 1 and Kutilang After Gamma Irradiation. Selcuk J Agr Food Sci. 01 Nisan 2026;40(1):75-86. doi:10.15316/selcukjafsci.1730345

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