Evaluation of Foliar Paclobutrazol Application on Growth Suppression, Yield, Residue Levels and Fruit Quality in Greenhouse Tomato Cultivation
Year 2025,
Volume: 8 Issue: 5, 605 - 614, 15.09.2025
Özlem Yılmaz
,
Emine Polat
,
Tarık Balkan
,
Naif Geboloğlu
Abstract
This study investigated the effects of foliar paclobutrazol (PBZ) applications at varying doses and intervals on the vegetative growth, yield, fruit quality, and residue accumulation in greenhouse-grown tomatoes. The experiment was conducted from April to November 2021 in a controlled greenhouse environment at Tokat Gaziosmanpaşa University, Türkiye. Indeterminate beef tomato cultivar Bellfort F₁ (Enza Zaden) was used in the study. PBZ was applied foliarly at concentrations of 10, 20, and 40 mg/L at 7-day and 14-day intervals. Results indicated that PBZ significantly reduced plant height and internode length, with the most compact plants observed under the 40 mg/L 14-day treatment. However, yield-related parameters responded more favorably to lower PBZ doses. The highest marketable yield (175.59 t/ha) and total yield (178.27 t/ha) were obtained under the 10 mg/L 14-day treatment, which also supported greater fruit number and higher dry matter content. Moderate PBZ doses improved fruit weight and chlorophyll index, whereas higher doses tended to suppress yield and quality. While fruit soluble solids and titratable acidity were not significantly affected, slight improvements were noted under moderate PBZ treatments. Importantly, no PBZ residues were detected in fruit samples. These findings demonstrate that foliar PBZ application at low doses is effective for controlling vegetative growth without compromising fruit quality or leaving detectable residues. The results support the use of foliar PBZ as a safe and practical growth regulation strategy for high-density tomato production under greenhouse conditions.
Ethical Statement
Since no studies involving humans or animals were conducted, ethical committee approval was not required for this study.
References
-
Aktaş Y, Geboloğlu N, Polat E. 2024. Hıyarda fide kalitesi üzerine paklobutrazol dozlarının ve uygulama metotlarının etkisi. Turk J Agric Food Sci Technol, 12(11): 1908-1913.
-
Amooaghaie R, Shariat E. 2014. Effect of cultivar, cold and paclobutrazol on growth, chlorophyll content and cell membrane injury in Phaseolus vulgaris plantlet. J Plant Biol Sci, 6(22): 77-90.
-
Balkan T, Kara K. 2021. Validation of QuEChERS method for the determination of some plant grow regulator residues in cucumber. Anadolu J Agric Sci, 36(1): 45-54.
-
Balkan T, Yılmaz Ö. 2022. Investigation of insecticide residues in potato grown in Türkiye by LC-MS/MS and GC-MS and health risk assessment. Turk J Entomol, 46(4): 481-500.
-
Baloch AA, Ali N, Ullah Z, Baloch H, Jabbar A, Reki AR, Jaffar S. 2019. Effect of paclobutrazol on growth and fruit characteristics of ornamental pepper (Capsicum annum L.). Pure Appl Biol, 8(4): 2302-2310.
-
Banoo M, Sinha BK, Chand G, Sharma MK, Rai G, Gupta M. 2020. Effect of paclobutrazol and partial root drying on growth and yield attributes of tomato (Solanum lycopersicum L.). Int J Curr Microbiol Appl Sci, 9(10): 2010-2021.
-
Bekheta MA, Talaal IM. 2009. Physiological response of mung bean (Vigna radiata) plants to some bioregulators. J Appl Bot Food Qual, 83: 76-84.
-
Berova M, Zlatev Z. 2000. Physiological response and yield of paclobutrazol treated tomato plants (Lycopersicon esculentum Mill.). Plant Growth Regul, 30: 117-123.
-
Brigard JP, Harkess RL, Baldwin BS. 2006. Tomato early seedling height control using a paclobutrazol seed soak. HortScience, 41(3): 768-772.
-
Burondkar MM, Rajan S, Upreti KK, Reddy YTN, Singh VK, Sabale SN, Naik MM, Ngade PM, Saxena P. 2013. Advancing Alphonso mango harvest season in lateritic rocky soils of Konkan region through manipulation in time of paclobutrazol application. J Appl Hortic, 15: 178-182.
-
Carr SM, Jaffe MJ. 1995. Pith autolysis in herbaceous, dicotyledonous plants: Experimental manipulation of pith autolysis in several cultivated species. Ann Bot, 75: 587-592.
-
Cemeroğlu B. 2010. Gıda analizlerinde genel yöntemler. Gıda Analizleri. Gıda Teknolojisi Derneği Yayınları, Ankara, Türkiye, pp: 34.
-
Chen S, Wang XJ, Tan GF, Zhou WQ, Wang GL. 2020. Gibberellin and the plant growth retardant paclobutrazol altered fruit shape and ripening in tomato. Protoplasma, 257(3): 853-861.
-
Christov C, Tsvetkov I, Kovachev V. 1995. Use of paclobutrazol to control vegetative growth and improve fruiting efficiency of grapevines (Vitis vinifera L.). Bulg J Plant Physiol, 21: 64-71.
-
Currey CJ, Lopez RG. 2010. Paclobutrazol pre-plant bulb dips effectively control height of ‘Nellie White’ Easter lily. HortTechnology, 20: 357-360.
-
Davis TD, Stefens GL, Sankhla N. 1988. Triazole plant growth regulators. Hortic Rev, 10: 63-105.
-
Dayan J, Voronin N, Gong F, Sun TP, Hedden P, Fromm H, Aloni R. 2012. Leaf-induced gibberellin signaling is essential for internode elongation, cambial activity, and fiber differentiation in tobacco stems. Plant Cell, 24(1): 66-79.
-
Deigado R, Casamayor R, Rodriguez JL, Cruz P, Fajardo R. 1986. Paclobutrazol affects oranges under tropical conditions. Acta Hortic, 179: 537-544.
-
Desta B, Amare G. 2021. Paclobutrazol as a plant growth regulator. Chem Biol Technol Agric, 8(1): 1-15.
-
Early JD, Martin GC. 1988. Translocation and breakdown of 14C-labeled paclobutrazol in ‘Nemaguaro’ peach seedlings. HortScience, 23: 196-200.
-
FAO. 2023. Crops and livestock products. FAOSTAT. URL: https://www.fao.org/faostat/en/#data/QCL (accessed date: March 10, 2025).
-
Fletcher R, Gilley A, Sankhla N, Davis T. 2000. Triazoles as plant growth regulators and stress protectants. Hortic Rev, 24: 55-138.
-
Flores LLC, Alcaraz TDJV, Ruvalcaba LP, Valdés TD, Tafoya FA, Torres NDZ, Juárez MGY. 2018. Paclobutrazol applied on cotyledonal leaves and quality of cucumber, squash, melon and watermelon seedlings. Agric Sci, 9(3): 264-271.
-
Geboloğlu N, Durukan A, Sağlam N, Doksöz S, Şahin S, Yılmaz E. 2015. Patlıcanda fide gelişimi ve fide kalitesi ile paclobutrazol uygulamaları arasındaki ilişkiler. J Agric Sci Res, 8(1): 62-66.
-
Geboloğlu N, Kum AD, Şahin S, Boncukçu SD, Sağlam N. 2016. Paklobutrazolun marulda fide boyu ve kalite özelliklerine etkisi. J Agric Sci Res, 9(2): 26-29.
-
Ghosh SN, Tarai RK, Ahlawat TR. 2022. Plant growth regulators in tropical and sub-tropical fruit crops. CRC Press, Boca Raton, FL, USA, pp: 320.
-
Giovinazzo R, Souza-Machado V, Hartz TK. 2001. Paclobutrazol responses with processing tomato in France. Acta Hortic, 542: 355-358.
-
Hoagland DR, Arnon DI. 1950. The water culture method for growing plants without soil. Agric Exp Sta Berkeley, CA, USA, Circular 347: 39.
-
Hua S, Zhang Y, Yu H, Lin B, Ding H, Zhang D, Ren Y, Fang Z. 2014. Paclobutrazol application effects on plant height, seed yield and carbohydrate metabolism in canola. Int J Agric Biol, 16: 471-479.
-
Huang WD, Shen T, Han ZH, Liu S. 1995. Influence of paclobutrazol on photosynthesis rate and dry matter partitioning in the apple tree. J Plant Nutr, 18(5): 901-910.
-
Jain SK, Singh R, Misra KK. 2002. Effect of paclobutrazol on growth, yield and fruit quality of lemon (Citrus limon). Indian J Agric Sci, 72: 488-490.
-
Jyothsna J, Shanthi A, Nadaradjan S. 2022. Paclobutrazol increases pod yield of okra by altering plant architecture: A case of a growth retardant that outperformed the growth promoters. Pharma Innov, 11: 1568-1576.
-
Kalra G, Bhatla SC. 2018. Gibberellins. In: Plant physiology, development and metabolism. Springer Nature Singapore, Singapore, pp: 617-628.
-
Khalil IA, Rahman HU. 1995. Effect of paclobutrazol on growth, chloroplast pigments and sterol biosynthesis of maize (Zea mays L.). Plant Sci, 105(1): 15-21.
-
Kondhare KR, Hedden P, Kettlewell PS, Farrell AD, Monaghan JM. 2014. Use of the hormone-biosynthesis inhibitors fluridone and paclobutrazol to determine the effects of altered abscisic acid and gibberellin levels on pre-maturity amylase formation in wheat grains. J Cereal Sci, 60: 210-216.
-
Kum AD, Geboloğlu N. 2024. Domateste farklı paklobutrazol dozlarının fide kalitesi ve kalıntı düzeyi üzerine etkileri. Gaziosmanpaşa Bilimsel Araştırma Dergisi, 13(1): 152-160.
-
Kumar A. 2023. Effect of paclobutrazole (PBZ) on fruit production: a review. Int Res J Plant Sci, 14(2): 1-20.
-
Kumar B. 2021. Plant bio-regulators for enhancing grain yield and quality of legumes: a review. Agric Rev, 42(2): 175-182.
-
Lehotay SJ. 2007. Determination of pesticide residues in foods by acetonitrile extraction and partitioning with magnesium sulfate: Collaborative Study. J AOAC Int, 90(2): 485-520.
-
Li X, Yang W, Wan J, Novita A. 2022. The effect of gibberellin (GA3) and paclobutrazol on growth and production on tomato (Lycopersicum esculentum Mill.). IOP Conf Ser Earth Environ Sci, 1025(1): 012061.
-
Lolaei A, Kaviani B, Khorrami Raad M, Rezaei MA, Maghsoudi M. 2012. Effect of paclobutrazol and salinity on vegetative and sexual growth and fruit quality of strawberry (Fragaria × ananassa Duch. cv. Selva). Ann Biol Res, 3(10): 4663-4667.
-
Maheshwari C, Garg NK, Hasan M, V P, Meena NL, Singh A, Tyagi A. 2022. Insight of PBZ mediated drought amelioration in crop plants. Front Plant Sci, 13: 1-15.
-
Mansuroglu S, Karaguzel O, Ortacesme V, Sayan MS. 2009. Effect of paclobutrazol on flowering, leaf and flower colour of Consolida orientalis. Pak J Bot, 41(5): 2323-2332.
-
Meena RK. 2014. Effect of paclobutrazol on growth and yield of cashew (Anacardium occidentale L.). Vegetos, 27(1): 11-16.
-
Mohamed GF, Agamy RA, Rady MM. 2011. Ameliorative effects of some antioxidants on water-stressed tomato (Lycopersicon esculentum Mill.) plants. J Appl Sci Res, 7: 2470-2478.
-
Novita A. 2022. The effect of gibberellin (GA3) and paclobutrazol on growth and production on tomato (Lycopersicum esculentum Mill.). IOP Conf Ser Earth Environ Sci, 1025(1): 012037.
-
Rademacher E. 2000. Growth retardants: Effects on gibberellin biosynthesis and other metabolic pathways. Annu Rev Plant Physiol Mol Biol, 51: 501-531.
-
Rademacher W. 2015. Plant growth regulators: Backgrounds and uses in plant production. J Plant Growth Regul, 34(4): 845-872.
-
Rai N, Yadav DS, Yadav RK. 2002. Standardization of paclobutrazol concentrations in vegetable crops. Veg Sci, 29: 149-153.
-
Rigsby CM, Smiley ET, Henry S, Holmes L, Loyd AL. 2025. Total root and shoot biomass inhibited by paclobutrazol application on common landscape trees. Arboric Urban For, 51(1): 74-84.
-
Samaan M, Nasser MA. 2020. Effect of spraying paclobutrazol (PP333) on yield and fruit quality of Crimson Seedless grape. J Plant Prod, 11: 1031-1034.
-
Sansavini S, Bonomo R, Finotti A, Palara U. 1986. Foliar and soil application of paclobutrazol on Gloster apple. Acta Hortic, 179: 489-496.
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SANTE. 2021. SANTE/11312/2021 Analytical quality control and method validation procedures for pesticide residues analysis in food and feed. European Commission, pp: 1-55.
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Sarker B, Rahim M. 2018. Influence of paclobutrazol on growth, yield and quality of mango. Bangladesh J Agric Res, 43(1): 1-12.
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Evaluation of Foliar Paclobutrazol Application on Growth Suppression, Yield, Residue Levels and Fruit Quality in Greenhouse Tomato Cultivation
Year 2025,
Volume: 8 Issue: 5, 605 - 614, 15.09.2025
Özlem Yılmaz
,
Emine Polat
,
Tarık Balkan
,
Naif Geboloğlu
Abstract
This study investigated the effects of foliar paclobutrazol (PBZ) applications at varying doses and intervals on the vegetative growth, yield, fruit quality, and residue accumulation in greenhouse-grown tomatoes. The experiment was conducted from April to November 2021 in a controlled greenhouse environment at Tokat Gaziosmanpaşa University, Türkiye. Indeterminate beef tomato cultivar Bellfort F₁ (Enza Zaden) was used in the study. PBZ was applied foliarly at concentrations of 10, 20, and 40 mg/L at 7-day and 14-day intervals. Results indicated that PBZ significantly reduced plant height and internode length, with the most compact plants observed under the 40 mg/L 14-day treatment. However, yield-related parameters responded more favorably to lower PBZ doses. The highest marketable yield (175.59 t/ha) and total yield (178.27 t/ha) were obtained under the 10 mg/L 14-day treatment, which also supported greater fruit number and higher dry matter content. Moderate PBZ doses improved fruit weight and chlorophyll index, whereas higher doses tended to suppress yield and quality. While fruit soluble solids and titratable acidity were not significantly affected, slight improvements were noted under moderate PBZ treatments. Importantly, no PBZ residues were detected in fruit samples. These findings demonstrate that foliar PBZ application at low doses is effective for controlling vegetative growth without compromising fruit quality or leaving detectable residues. The results support the use of foliar PBZ as a safe and practical growth regulation strategy for high-density tomato production under greenhouse conditions.
Ethical Statement
Since no studies involving humans or animals were conducted, ethical committee approval was not required for this study.
References
-
Aktaş Y, Geboloğlu N, Polat E. 2024. Hıyarda fide kalitesi üzerine paklobutrazol dozlarının ve uygulama metotlarının etkisi. Turk J Agric Food Sci Technol, 12(11): 1908-1913.
-
Amooaghaie R, Shariat E. 2014. Effect of cultivar, cold and paclobutrazol on growth, chlorophyll content and cell membrane injury in Phaseolus vulgaris plantlet. J Plant Biol Sci, 6(22): 77-90.
-
Balkan T, Kara K. 2021. Validation of QuEChERS method for the determination of some plant grow regulator residues in cucumber. Anadolu J Agric Sci, 36(1): 45-54.
-
Balkan T, Yılmaz Ö. 2022. Investigation of insecticide residues in potato grown in Türkiye by LC-MS/MS and GC-MS and health risk assessment. Turk J Entomol, 46(4): 481-500.
-
Baloch AA, Ali N, Ullah Z, Baloch H, Jabbar A, Reki AR, Jaffar S. 2019. Effect of paclobutrazol on growth and fruit characteristics of ornamental pepper (Capsicum annum L.). Pure Appl Biol, 8(4): 2302-2310.
-
Banoo M, Sinha BK, Chand G, Sharma MK, Rai G, Gupta M. 2020. Effect of paclobutrazol and partial root drying on growth and yield attributes of tomato (Solanum lycopersicum L.). Int J Curr Microbiol Appl Sci, 9(10): 2010-2021.
-
Bekheta MA, Talaal IM. 2009. Physiological response of mung bean (Vigna radiata) plants to some bioregulators. J Appl Bot Food Qual, 83: 76-84.
-
Berova M, Zlatev Z. 2000. Physiological response and yield of paclobutrazol treated tomato plants (Lycopersicon esculentum Mill.). Plant Growth Regul, 30: 117-123.
-
Brigard JP, Harkess RL, Baldwin BS. 2006. Tomato early seedling height control using a paclobutrazol seed soak. HortScience, 41(3): 768-772.
-
Burondkar MM, Rajan S, Upreti KK, Reddy YTN, Singh VK, Sabale SN, Naik MM, Ngade PM, Saxena P. 2013. Advancing Alphonso mango harvest season in lateritic rocky soils of Konkan region through manipulation in time of paclobutrazol application. J Appl Hortic, 15: 178-182.
-
Carr SM, Jaffe MJ. 1995. Pith autolysis in herbaceous, dicotyledonous plants: Experimental manipulation of pith autolysis in several cultivated species. Ann Bot, 75: 587-592.
-
Cemeroğlu B. 2010. Gıda analizlerinde genel yöntemler. Gıda Analizleri. Gıda Teknolojisi Derneği Yayınları, Ankara, Türkiye, pp: 34.
-
Chen S, Wang XJ, Tan GF, Zhou WQ, Wang GL. 2020. Gibberellin and the plant growth retardant paclobutrazol altered fruit shape and ripening in tomato. Protoplasma, 257(3): 853-861.
-
Christov C, Tsvetkov I, Kovachev V. 1995. Use of paclobutrazol to control vegetative growth and improve fruiting efficiency of grapevines (Vitis vinifera L.). Bulg J Plant Physiol, 21: 64-71.
-
Currey CJ, Lopez RG. 2010. Paclobutrazol pre-plant bulb dips effectively control height of ‘Nellie White’ Easter lily. HortTechnology, 20: 357-360.
-
Davis TD, Stefens GL, Sankhla N. 1988. Triazole plant growth regulators. Hortic Rev, 10: 63-105.
-
Dayan J, Voronin N, Gong F, Sun TP, Hedden P, Fromm H, Aloni R. 2012. Leaf-induced gibberellin signaling is essential for internode elongation, cambial activity, and fiber differentiation in tobacco stems. Plant Cell, 24(1): 66-79.
-
Deigado R, Casamayor R, Rodriguez JL, Cruz P, Fajardo R. 1986. Paclobutrazol affects oranges under tropical conditions. Acta Hortic, 179: 537-544.
-
Desta B, Amare G. 2021. Paclobutrazol as a plant growth regulator. Chem Biol Technol Agric, 8(1): 1-15.
-
Early JD, Martin GC. 1988. Translocation and breakdown of 14C-labeled paclobutrazol in ‘Nemaguaro’ peach seedlings. HortScience, 23: 196-200.
-
FAO. 2023. Crops and livestock products. FAOSTAT. URL: https://www.fao.org/faostat/en/#data/QCL (accessed date: March 10, 2025).
-
Fletcher R, Gilley A, Sankhla N, Davis T. 2000. Triazoles as plant growth regulators and stress protectants. Hortic Rev, 24: 55-138.
-
Flores LLC, Alcaraz TDJV, Ruvalcaba LP, Valdés TD, Tafoya FA, Torres NDZ, Juárez MGY. 2018. Paclobutrazol applied on cotyledonal leaves and quality of cucumber, squash, melon and watermelon seedlings. Agric Sci, 9(3): 264-271.
-
Geboloğlu N, Durukan A, Sağlam N, Doksöz S, Şahin S, Yılmaz E. 2015. Patlıcanda fide gelişimi ve fide kalitesi ile paclobutrazol uygulamaları arasındaki ilişkiler. J Agric Sci Res, 8(1): 62-66.
-
Geboloğlu N, Kum AD, Şahin S, Boncukçu SD, Sağlam N. 2016. Paklobutrazolun marulda fide boyu ve kalite özelliklerine etkisi. J Agric Sci Res, 9(2): 26-29.
-
Ghosh SN, Tarai RK, Ahlawat TR. 2022. Plant growth regulators in tropical and sub-tropical fruit crops. CRC Press, Boca Raton, FL, USA, pp: 320.
-
Giovinazzo R, Souza-Machado V, Hartz TK. 2001. Paclobutrazol responses with processing tomato in France. Acta Hortic, 542: 355-358.
-
Hoagland DR, Arnon DI. 1950. The water culture method for growing plants without soil. Agric Exp Sta Berkeley, CA, USA, Circular 347: 39.
-
Hua S, Zhang Y, Yu H, Lin B, Ding H, Zhang D, Ren Y, Fang Z. 2014. Paclobutrazol application effects on plant height, seed yield and carbohydrate metabolism in canola. Int J Agric Biol, 16: 471-479.
-
Huang WD, Shen T, Han ZH, Liu S. 1995. Influence of paclobutrazol on photosynthesis rate and dry matter partitioning in the apple tree. J Plant Nutr, 18(5): 901-910.
-
Jain SK, Singh R, Misra KK. 2002. Effect of paclobutrazol on growth, yield and fruit quality of lemon (Citrus limon). Indian J Agric Sci, 72: 488-490.
-
Jyothsna J, Shanthi A, Nadaradjan S. 2022. Paclobutrazol increases pod yield of okra by altering plant architecture: A case of a growth retardant that outperformed the growth promoters. Pharma Innov, 11: 1568-1576.
-
Kalra G, Bhatla SC. 2018. Gibberellins. In: Plant physiology, development and metabolism. Springer Nature Singapore, Singapore, pp: 617-628.
-
Khalil IA, Rahman HU. 1995. Effect of paclobutrazol on growth, chloroplast pigments and sterol biosynthesis of maize (Zea mays L.). Plant Sci, 105(1): 15-21.
-
Kondhare KR, Hedden P, Kettlewell PS, Farrell AD, Monaghan JM. 2014. Use of the hormone-biosynthesis inhibitors fluridone and paclobutrazol to determine the effects of altered abscisic acid and gibberellin levels on pre-maturity amylase formation in wheat grains. J Cereal Sci, 60: 210-216.
-
Kum AD, Geboloğlu N. 2024. Domateste farklı paklobutrazol dozlarının fide kalitesi ve kalıntı düzeyi üzerine etkileri. Gaziosmanpaşa Bilimsel Araştırma Dergisi, 13(1): 152-160.
-
Kumar A. 2023. Effect of paclobutrazole (PBZ) on fruit production: a review. Int Res J Plant Sci, 14(2): 1-20.
-
Kumar B. 2021. Plant bio-regulators for enhancing grain yield and quality of legumes: a review. Agric Rev, 42(2): 175-182.
-
Lehotay SJ. 2007. Determination of pesticide residues in foods by acetonitrile extraction and partitioning with magnesium sulfate: Collaborative Study. J AOAC Int, 90(2): 485-520.
-
Li X, Yang W, Wan J, Novita A. 2022. The effect of gibberellin (GA3) and paclobutrazol on growth and production on tomato (Lycopersicum esculentum Mill.). IOP Conf Ser Earth Environ Sci, 1025(1): 012061.
-
Lolaei A, Kaviani B, Khorrami Raad M, Rezaei MA, Maghsoudi M. 2012. Effect of paclobutrazol and salinity on vegetative and sexual growth and fruit quality of strawberry (Fragaria × ananassa Duch. cv. Selva). Ann Biol Res, 3(10): 4663-4667.
-
Maheshwari C, Garg NK, Hasan M, V P, Meena NL, Singh A, Tyagi A. 2022. Insight of PBZ mediated drought amelioration in crop plants. Front Plant Sci, 13: 1-15.
-
Mansuroglu S, Karaguzel O, Ortacesme V, Sayan MS. 2009. Effect of paclobutrazol on flowering, leaf and flower colour of Consolida orientalis. Pak J Bot, 41(5): 2323-2332.
-
Meena RK. 2014. Effect of paclobutrazol on growth and yield of cashew (Anacardium occidentale L.). Vegetos, 27(1): 11-16.
-
Mohamed GF, Agamy RA, Rady MM. 2011. Ameliorative effects of some antioxidants on water-stressed tomato (Lycopersicon esculentum Mill.) plants. J Appl Sci Res, 7: 2470-2478.
-
Novita A. 2022. The effect of gibberellin (GA3) and paclobutrazol on growth and production on tomato (Lycopersicum esculentum Mill.). IOP Conf Ser Earth Environ Sci, 1025(1): 012037.
-
Rademacher E. 2000. Growth retardants: Effects on gibberellin biosynthesis and other metabolic pathways. Annu Rev Plant Physiol Mol Biol, 51: 501-531.
-
Rademacher W. 2015. Plant growth regulators: Backgrounds and uses in plant production. J Plant Growth Regul, 34(4): 845-872.
-
Rai N, Yadav DS, Yadav RK. 2002. Standardization of paclobutrazol concentrations in vegetable crops. Veg Sci, 29: 149-153.
-
Rigsby CM, Smiley ET, Henry S, Holmes L, Loyd AL. 2025. Total root and shoot biomass inhibited by paclobutrazol application on common landscape trees. Arboric Urban For, 51(1): 74-84.
-
Samaan M, Nasser MA. 2020. Effect of spraying paclobutrazol (PP333) on yield and fruit quality of Crimson Seedless grape. J Plant Prod, 11: 1031-1034.
-
Sansavini S, Bonomo R, Finotti A, Palara U. 1986. Foliar and soil application of paclobutrazol on Gloster apple. Acta Hortic, 179: 489-496.
-
SANTE. 2021. SANTE/11312/2021 Analytical quality control and method validation procedures for pesticide residues analysis in food and feed. European Commission, pp: 1-55.
-
Sarker B, Rahim M. 2018. Influence of paclobutrazol on growth, yield and quality of mango. Bangladesh J Agric Res, 43(1): 1-12.
-
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