Journal of Vegetables Sciences

Journal of Vegetables Sciences

Influence of Planting Date and Foliar Application of Antifreeze Compounds on Some Morpho-physiological Traits of Potato Cultivars in Ardabil Region

Document Type : Original Article

Authors
1 Ph.D. Student, Department of Engineering of Plant Production and Genetics, Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
2 Professor, Department of Engineering of Plant Production and Genetics, Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
3 Associate Professor, Horticultural and Agronomical Researches Department, Center of Agricultural and Natural Resources Researches & Education-Ardabil (Moghan), AREEO, Ardabil, Iran
4 Associate Professor, Department of Engineering of Plant Production and Genetics, Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
Abstract
Extended Abstract

Introduction: Potato (Solanum tuberosum) is one of the most important food products in the world, which is rich in carbohydrates, proteins, vitamins and other nutrients. Choosing the suitable planting date and cultivars is one of the most important and effective ways to reduce the negative effects of environmental stresses on potato characteristics. Cold stress is one of the limiting factors for production of agricultural crops. One of the adverse effects of this stress is increasing the biosynthesis rate of reactive oxygen species that causes oxidative stress. Plants have enzymatic and non-enzymatic mechanisms to overcome oxidative stress. The enzymatic antioxidant defense system includes different enzymes such as superoxide dismutase, catalase, polyphenol oxidase, guaiacol peroxidases and ascorbate peroxidase, and the non-enzymatic antioxidants include the soluble sugars, proline, carotenoids and other compounds such as flavonoids, and polyphenols. Nowadays, application of antifreeze compounds in agriculture is widely used technique to overcome chilling injuries. These substances are quickly absorbed by plants and increase the metabolic activity rate of plants. As a result, the amount of antifreeze proteins, amino acids, carbohydrates, lipids, vitamins and minerals increases in the plant organs leading to more resistance rate of plant cells against freezing. Potassium is one of the elements that reduces the effects of environmental stresses such as drought, salinity, high temperatures, cold, etc. through the accumulation of soluble carbohydrates and osmotic regulation. Also, potassium plays a role in regulating the activity of enzymes related to the detoxification of reactive oxygen species. The aim of the current study was to investigate the influence of cultivar, planting date and foliar application of antifreeze compounds on some of most important morpho-physiological characteristics of potato crop.           
Materials and Methods: The current study was conducted as a split-factorial experiment based on randomized complete blocks design with three replications at Ardabil Agricultural and Natural Resources Research Station during two cultivation seasons (2018-2019 and 2019-2020). The investigated factors included planting date in two levels (August 1st and 11th), foliar application of antifreeze compound at two levels (foliar application with a mixture of Frezzebon amino acid + potassium, and water as a control) and potato cultivars at 10 levels (901375, 901475, 902375, 8708-7, 8709-106, 7009-3, 905675, 8707-26, Agria and Savalan). Foliar applications were performed at the end of the growth season as same time as the increased likelihood of cold weather (considering the weather forecasts and the measured temperatures in the field and their correlation, one week before the possibility of temperatures below 7 ºC). Furthermore, before the spraying treatments, samples were taken from the experimental treatments and frozen using liquid nitrogen and stored in a freezer. After 24 h of freezing, the samples were again collected from the experimental treatments and rapidly frozen using liquid nitrogen before being transferred to the laboratory for measurement of the desired characteristics. After collecting the samples, laboratory experiments were conducted at the Faculty of Agriculture of Ardabil University of Medical Sciences and the Agricultural and Natural Resources Research Station in Ardabil.
Results and Discussion: Based on the obtained results, it was found that the foliar application of the amino acid Freezbon combined with potassium increased the yield, number of tuber per plant, leaf relative water content, proline and the activity of antioxidant enzymes. Also, the planting date of August 1st has the highest yield, number of tuber per plant, leaf relative water content, potassium and proline content, and the activity of catalase, superoxide dismutase and polyphenol oxidase enzymes. In terms of yield, 901475 cultivar had the highest yield (43.02 ton ha-1) and Agria cultivar had the lowest yield (26.35 ton ha-1). Among the cultivars studied, 8708-26 cultivar had the highest leaf relative water content, potassium and sodium content. The maximum content of proline and antioxidant enzymes activity were related to 7009-3 and 8707-26 cultivars. Based on these results, it seems that the planting date of August 1st and the foliar application of Freezbon with potassium can enhance the cold tolerance threshold, growth, and performance of potato cultivars in regions with cold weather by regulating physiological and biochemical responses. The results of the current study in line with the observations of the other conducted researches on different horticultural crops demonstrated that choosing appropriate planting date and application of antifreeze compounds positively influence the accumulation rate of osmoprotectants, cells antioxidant capacity and plant water and nutrient status resulting in a significant increase in cold resistance rate of plant cells.
Conclusion: Foliar application of antifreeze compounds Frezzebon amino acid + potassium, and planting date on August 1st can positively influence potato cultivars yield and physiological characteristics under cold conditions, therefore this foliar treatment and planting date are recommendable to overcome negative effects of cold stress on potato characteristics in cultivation reigns with cold weather.
Keywords

-    Abbasi, G. H., Akhtar, J., Anwar-ul-Haq, M. & Ahmad, N. (2012). Screening of maize hybrids for salt tolerance at seedling stage under hydroponic condition. Soil and Environment, 31(1), 83-90.
-    Abdul-Hannan, A., Arif, M., Ranjha, A. M., Abid, A., Fan, X. H. & Li. Y. C. (2011). Using soil potassium adsorption and yield response models to determine potassium fertilizer rates for potato crop on a calcareous soil in Pakistan. Communications in Soil Science and Plant Analysis, 42(6), 645-655. 
-    Akbari, M., Mahna, N., Ramesh, K., Bandehagh, A. & Mazzuca, S. (2018). Ion homeostasis, osmoregulation, and physiological changes in the roots and leaves of pistachio rootstocks in response to salinity. Protoplasma, 255(5), 1349-1362.
-    Allen, D. J. & Ort, D. R. (2001). Impact of chilling temperature on photosynthesis in warm climate plants. Trends in Plant Science, 6, 36-42.
-    Al-Mahmud, A., Hossain, A., Al-Mamun, A., Ebna Habib, S. H., Rahaman, S. H., Ali Khan, S. H. & Bazzaz, M. (2014). Plant canopy, tuber yield and growth analysis of potato under moderate and severe drought condition. Journal of Plant Science, 2(5), 201-208. 
-    Amobeigi, M. & Razavizadeh, R. (2013). Effects of drought stress and PBA on flavnoid accumulation and minerals in Brassica napus. Journal of Iranian Plant Ecophysiological Research, 8(31), 12-22. (In Farsi)
-    Banerjee, A. & Roychoudhury, A. (2019). Cold stress and photosynthesis. Photosynthesis, Productivity and Environmental Stress, 27-37.
-    Baninasab, B. (2009). Amelioration of chilling stress by paclobutrazol in watermelon seedlings. Scientia Horticulturae, 121(2), 144-148.
-    Barzegari Barogh, R., Hassanpanah, D., Esmaielpour, B., Jahanbakhsh Gade Kahriz, S. & Kalateh Jari, S. (2023). The effect of using biological fertilizers on the morphological characteristics, nutrients, and soluble solids of the obtained plantlets from tissue culture of (Solanum tuberosum L.) cv. Gelli and Agria. Journal of Vegetables Sciences, 6(2), 97-108. (In Farsi) doi: 10.22034/iuvs.2021.138417.1123
-    Bates, I. S., Waldern, R. P. & Teare, I. D. (1973). Rapid determination of free prolin for water stress studies. Plant and Soil, 39, 205-207.
-    Berova, M., Zlatev, Z. & Stoeva, N. (2002). Effect of paclobutrazol on wheat seedlings under low temperature stress. Bulgarian Journal of Plant Physiology, 28, 75-84.
-    Bhattarai, B. & Swarnima, K. C. (2016). Effect of potassium on quality and yield of potato tubers-A review. International Journal of Agriculture and Environmental Science, 3(6), 7-12.
-    Cakmak, I. (2002). Plant nutrition research: Priorities to meet human needs for food in sustainable ways. Plant and Soil, 247(1), 3-24.
-    Cakmak, I. (2005). The role of potassium in alleviating detrimental effects of abiotic stresses in plants. Journal of Plant Nutrition and Soil Science, 168(4), 521-530.
-    Chadha, K. L. (2009). Handbook of Hortculture, ICAR, New Delhi. 1031 pages.
-    Che, Y., Zhang, N., Zhu, X., Li, S., Wang, S. & Si, H. (2020). Enhanced tolerance of the transgenic potato plants overexpressing Cu/Zn superoxide dismutase to low temperature. Scientia Horticulturae, 261, 108949.
-    Cheema, M. A., Wahid, M. A., Sattar, A., Rasul, F. & Saleem, M. F. (2012). Influence of different levels of potassium on growth, yield and quality of canola (Brassica napus L.) cultivars. Pakistan Journal of Agricultural Sciences, 49(2), 163-168.
-    Cheng, L., Ma, F. & Ranwala, D. (2004). Nitrogen storage and its interaction with carbohydrates of young apple trees in response to nitrogen supply. Tree Physiology, 24(1), 91-98.
-    Chinnusamy, V., Zhu, J. & Zhu, J. K. (2007). Cold stress regulation of gene expression in plants. Trends in Plant Science, 12(10), 444-451.
-    Çolpan, E., Zengin, M. & Özbahçe, A. (2013). The effects of potassium on the yield and fruit quality components of stick tomato. Horticulture, Environment, and Biotechnology, 54(1), 20-28.
-    Darini, A., Fathi, Gh., Gharineh, M. H., Alami-Saeid, Kh., Khodadadi, M. & Siadat, S. A. (2013). Effect of planting date and application of anti-freeze on tuber yield and some physiological traits of potato cultivars in autumn planting in Jiroft region of Iran. Seed and Plant Production Journal, 29(4), 443-459. (In Farsi)
-    Devi, B. S. R., Kim, Y. J., Selvi, S. K., Gayathri, S., Altanzul, K., Parvin, S., Yang, D. U., Lee, O. R., Lee, S. & Yang, D. C. (2012). Influence of potassium nitrate on antioxidant level and secondary metabolite genes under cold stress in Panax ginseng. Russian Journal of Plant Physiology, 59(3), 318-325.
-    Dkhil, B. B., Denden, M. & Aboud, S. (2011). Foliar potassium fertilization and its effect on growth, yield and quality of potato grown under loann-sandy soil and semi-arid. International Journal of Agricultural Research, 6(7), 593-600.
-    Dörffling, K., Dörffling, H. & Luck, E. (2009). Improved frost tolerance and winter hardiness in proline overaccumulating winter wheat mutants obtained by in vitro-selection is associated with increased carbohydrate, soluble protein and abscisic acid (ABA) levels. Euphytica, 165(3), 545-556.
-    Duan, M., Feng, H. L., Wang, L. Y., Li, D. & Meng, Q. W. (2012). Overexpression of thylakoidal ascorbate peroxidase shows enhanced resistance to chilling stress in tomato. Journal of Plant Physiology, 169(9), 867-877.
-    Erdal, S. (2012). Androsterone-induced molecular and physiological changes in maize seedlings in response to chilling stress. Plant Physiology and Biochemistry, 57, 1-7.
-    Farzaneh, M., Ghanbari, M., Eftekharian Jahromi, A. & Jaavaanmardi, Sh. (2014). Effect of salicylic acid foliar application on osmolytes content and photosynthetic pigments of eggplant (Solanum melongena L.) under cold stress. Journal of Iranian Plant Ecophysiological Research, 8(32), 75-83. (In Farsi)
-    Fayez, K. A. & Bazaid, S. A. (2014). Improving drought and salinity tolerance in barley by application of salicylic acid and potassium nitrate. Journal of the Saudi Society of Agricultural Sciences, 13, 45-55.
-    García Morales, S., Trejo-Téllez, L. I., Gómez Merino, F. C., Caldana, C., Espinosa-Victoria, D. & Herrera Cabrera, B. E. (2012). Growth, photosynthetic activity, and potassium and sodium concentration in rice plants under salt stress. Acta Scientiarum. Agronomy, 34(3), 317-324.
-    Giannopolitis, C. N. & Ries, S. K. (1977). Superoxide dismutases: I. Occurrence in higher plants. Plant Physiology, 59(2), 309-314
-    Hajivand, S. & Rahmati, M. (2018). The effects of anti-freeze compounds on the effective biological materials in freezing tolerance of grape under the orchard conditions. Journal of Horticultural Science, 32(1), 159-170. (In Farsi)
-    Hajivand, S., Kashanizadeh, S. & Javanshah, A. (2022). Effects of different antifreeze chemicals on late spring frost in pistachio. Protoplasma, 259(1), 91-102.
-    Ilyas, M., Ayub, G., Imran, A., Awan, A. & Ahmad, M. (2021). Calcium and boron effect on production and quality of autumn potato crop under chilling temperature. Communications in Soil Science and Plant Analysis, 52(4), 375-388.
-    Jafari, S. R., Manouchehr Kalantari, Kh. & Turkzadeh, M. (2006). The evaluation of paclobutrazol effects on increase cold hardiness in tomato seedlings (lycopersicum esculentum L.). Iranian Journal of Biology, 19(3), 290-298. (In Farsi)
-    Jan, A. U., Hadi, F., Nawaz, M. A. & Rahman, K. (2017). Potassium and zinc increase tolerance to salt stress in wheat (Triticum aestivum L.). Plant Physiology and Biochemistry, 116, 139-149.
-    Jiang, M. Y. & Zhang, J. H. (2004). Abscisic acid and antioxidant defense in plant cells. Acta Botanica Sinica, 46(1), 1-9.
-    Joshi, S. C., Chandra, S. & Palni, L. M. S. (2007). Differences in photosynthetic characteristics and accumulation of osmoprotectants in saplings of evergreen plants grown inside and outside a glasshouse during the winter season. Photosynthetica, 45(4), 594-600.
-    Kafi, M., Tarigholeslami, M., Nezami, A. & Zarghami, R. (2018). Effect of salicylic acid on improving chilling stress damage in corn hybrid SC 400 (Zea mays L.). Joural of Plant Process and Function, 6(19), 281-292. (In Farsi)
-    Kang, G., Wang, C., Sun, G. & Wang, Z. (2003). Salicylic acid changes activities of H2O2-metabolizing enzymes and increases the chilling tolerance of banana seedlings. Environmental and Experimental Botany, 50(1), 9-15.
-    Kant, S. & Kafkafi, U. (2002). Potassium and abiotic stresses in plants. In: Potassium for Sustainable Crop Production (eds. N.S. Pasricha and S.K. Bansal), 233-251. Gurgaon, India: Potash Institute of India.
-    Karimi, R. (2017). Potassium-induced freezing tolerance is associated with endogenous abscisic acid, polyamines and soluble sugars changes in grapevine. Scientia Horticultura, 215, 184-194.
-    Karimi, R., Ershadi, A. & Esna Ashari, M. (2014). Effects of late-season nitrogen and potassium spray on dormant buds cold tolerance of ‘Bidaneh Sefid’grapevine. Iranian Journal of Horticultural Sience and Technology, 15(3), 419-434. (In Farsi)
-    Karmakar, N., Chakravarty, A., Bandopadhyay, P. K. & Kanti Da, P. (2014). Response of fenugreek (Trigonella foenum-graecum L.) seedlings under moisture and heavy metal stress with special reference to antioxidant system. African Journal of Biotechnology, 13(3), 434-440.
-    Karo, M. & Mishra, D. (1976). Catalase, peroxidase and polyphenol oxidase activity during rice leaf senescence. Plant Physiology, 57, 315-319.
-    Kawakami, J., Iwama, K. & Jitsuyama, Y. (2005). Effects of planting date on growth and yield of two potato cultivars from microtubers and conventional seed tubers. Plant Production Science, 8(1), 74-78.
-    Kazemi, B., Alymanesh, M. R., & Beigi, S. (2023). Isolation of Rhizospheric Pantoea sp. and Pseudomonas sp. bacteria and evaluation of their bio-control ability against Pectobacterium carotovorum subsp. carotovorum causes of tubers and vegetables rot. Journal of Vegetables Sciences, 7(1), 167-182. (In Farsi) doi: 10.22034/iuvs.2022.555204.1209
-    Kazemi Shahandashti, S. S., Maali-Amiri, R., Zeinali, H., Khazaei, M., Talei, A. & Ramezanpour, S. S. (2014). Effect of short-term cold stress on oxidative damage and transcript accumulation of defense-related genes in chickpea seedlings. Journal of Plant Physiology, 171(13), 1106-1116.
-    Khichar, M. L. & Niwas, R. (2006). Microclimatic profiles under different sowing environments in wheat. Journal of Agrometeorology, 8(2), 201-209.
-    Kishor, P. K., Sangam, S., Amrutha, R. N., Laxmi, P. S., Naidu, K. R., Rao, K. S., Rao, S., Reddy, K. J., Theriappan, P. & Sreenivasulu, N. (2005). Regulation of proline biosynthesis, degradation, uptake and transport in higher plants: its implications in plant growth and abiotic stress tolerance. Current Science, 88(3), 424-438.
-    Kleinkoph G. E. & Dwelle R. B. (2003). Delaying of tuber initiation and shortened tuber bulking periods reduce tuber yield in potato crop. Plant and Cell Physiology, 11, 303-314.
-    Kocsy, G., Galiba, G. & Brunold, C. (2001). Role of glutathione in adaptation and signaling during chilling and cold acclimation in plants. Physiologia Plantarum, 113(2), 158-164.
-    Kuan-Hung, L., Fu-Hsiang, P., Shih-Ying, H. & Hsiao-Feng, L. (2006). Pre-treating paclobutrazol enhanced chilling tolerance of sweet potato. Journal of Plant Growth Regulation, 49, 249-262.
-    Kuk, Y. I., Shin, J. S., Burgos, N. R., Hwang, T. E., Han, O., Cho, B. H., Jung, S. & Guh, J. O. (2003). Antioxidative enzymes offer protection from chilling damage in rice plants. Crop Science, 43(6), 2109-2117.
-    Li, H., Luo, W., Ji, R., Xu, Y., Xu, G., Qiu, S. & Tang, H. (2021a). A comparative proteomics study of cold responses in potato leaves. Heliyon, 7(2), e06002.
-    Li, Y., Wang, J., Tang, J., Wang, E., Pan, Z., Pan, X. & Hu, Q. (2021b). Optimum planting date and cultivar maturity to optimize potato yield and yield stability in North China. Field Crops Research, 269, 108179.
-    Lin, K. H. R., Tsou, C. C., Hwang, S. Y., Chen, L. F. O. & Lo, H. F. (2006). Paclobutrazol pre-treatment enhanced flooding tolerance of sweet potato. Journal of Plant Physiology, 163(7), 750-760.
-    Lugojan, C. & Ciulca, S. (2011). Evaluation of relative water content in winter wheat. Journal of Horticulture, Forestry and Biotechnology, 15(2), 173-177.
-    Manafi, E., Modarres-Sanavy, S. A. M., Agha Alikhani, M. & Modares Vameghi, S. M. (2014). Effect of concentration and application methods of 5-aminolevulinic acid on inducing cold resistance of Soybean (Glycine max L.). Journal of Crop Production, 7(2), 157-174. (In Farsi)
-    Marschner, P. (2012). Marschner’s mineral nutrition of higher plants. 3rd edition, Academic Press, London.
-    Miura, K. & Tada, Y. (2014). Regulation of water, salinity, and cold stress responses by salicylic acid. Frontiers in Plant Science, 5(4), 1-12.
-    Nazari, M., Maali Amiri, R. & Ramezanpour S. S. (2011). Study on the activity and relative gene expression of catalase and peroxidase enzymes in the Iranian chickpea genotypes under cold stress. Genetics in the 3rd Millennium. 9(1), 2290-2299. (In Farsi)
-    Ort, D. R. (2002). Chilling-induced limitations on photosynthesis in warm climate plants: contrasting mechanisms. Environmental Control in Biology, 40, 7-18.
-    Payton, P., Webb, R., Kornyeyev, D., Allen, R. & Holaday, A. S. (2001). Protecting cotton photosynthesis during moderate chilling at high light intensity by increasing chloroplastic antioxidant enzyme activity. Journal of Experimental Botany, 52(365), 2345-2354.
-    Raghami, M., Estaji, A., Bagheri, V. & Aryakia, E. (2016). Effect of salinity stress and salicylic acid on some morphophysiological characteristics of eggplant (Solanum melongena var. Taki) in soilless culture. Journal of Soil and Plant Interactions, 7(3), 77-87. (In Farsi)
-    Rani, A., Kiran, A., Sharma, K. D., Prasad, P. V., Jha, U. C., Siddique, K. H. & Nayyar, H. (2021). Cold tolerance during the reproductive phase in chickpea (Cicer arietinum L.) is associated with superior cold acclimation ability involving antioxidants and cryoprotective solutes in anthers and ovules. Antioxidants, 10(11), 1693.
-    Razdan, M. K. & Mattoo, A. K. (2005). Genetic improvement of solanaceous crops, volume 1: potato. CRC Press.
-    Schittenhelm, S., Sourell, H. & Lopmeier, F. J. (2006). Drought resistance of potato cultivars with contrasting canopy architecture. European Journal of Agronomy, 24, 193-202.
-    Seema, N., Azm, Y., Singh, P. K. & Kumar, M. (2018). Effect of cold stress on primary nutrient level during seedling growth of Boro rice. International Journal of Current Microbiology and Applied Sciences, Special Issue-7, 3739-3744.
-    Sepehri, A. & Bayat, S. (2013). The effect of salicylic acid and paclobutrazol on yield and yield components of maize (Zea mays L.) under water stress. Plant Productions, 35(4), 55-68. (In Farsi)
-    Sheteiwy, M. S., An, J., Yin, M., Jia, X., Guan, Y., He, F. & Hu, J. (2019). Cold plasma treatment and exogenous salicylic acid priming enhances salinity tolerance of Oryza sativa seedlings. Protoplasma, 256(1), 79-99.
-    Shigeoka, S., Ishikawa, T., Tamoi, M., Miyagawa, Y., Takeda, T., Yabuta, Y. & Yoshimura, K. (2002). Regulation and function of ascorbate peroxidase isoenzymes. Journal of Experimental Botany, 53(372), 1305-1319.
-    Siddique, K., Tennant, H. & Belford, P. K. (1990). Growth development and weight interception of old and modern potato cultivars in mediterranian type environwent. Australian Journal of Agricultural Research, 41, 431-437.
-    Soleimani Aghdam, M., Asghari, M., Khorsandi, A., Muradbeygi, H., Mohamadkhani, N., Mohayeji, M. & Hassanpor aghdam, M. B. (2014). Possible mechanisms of salicylic acid to reduce the effects of frost after harvest tomato fruit. Journal of Plant Research (Journal of Biology Iran), 27(2), 34-46. (In Farsi)
-    Sudhakar, C., Lakshmi, A. & Giridara Kumar, S. (2001). Changes in the antioxidant enzyme efficacy in two high yielding genotypes of mulberry (Morus alba L.) under NaCl salinity. Plant Science, 167, 613-619.
-    Tambussi, E. A., Nogués, S. & Araus, J. L. (2005). Ear of durum wheat under water stress: water relations and photosynthetic metabolism. Planta, 221(3), 446-458.
-    Tari, I., Csiszar, J., Szalai, G., Horvath, F., Pecsvaradi, A., Kiss, G., Szepsi, A., Szabo, M. & Erdei, L. (2002). Acclimation of tomato plants to salinity stress after a salicylic acid pre-treatment. Acta Biologica Szegediensis, 46(3-4), 55-56.
-    Thipyapong, P., Hunt, M. D. & Steffens, J. C. (2004). Antisense downregulation of polyphenol oxidase results in enhanced disease susceptibility. Planta, 220(1), 105-117.
-    Thongam, B., Kadam, A. S., Singh, A. A. & Singh, Y. H. (2017). Influence of planting dates on growth and yield of potato (Solanum tuberosum L.). Journal of Pharmacognosy and Phytochemistry, 6(6), 1243-1246.
-    Tian, S., Qin, G. & Li, B. (2013). Reactive oxygen species involved in regulating fruit senescence and fungal pathogenicity. Plant Molecular Biology, 82(6), 593-602.
-    Venketesh, S. & Dayananda, C. (2008). Properties, potentials, and prospects of antifreeze proteins. Critical Reviews in Biotechnology, 28(1), 57-82.
-    Verbruggen, N. & Hermans, C. (2008). Proline accumulation in plants: a review. Amino Acids, 35(4), 753-759.
-    Waraich, E. A., Ahmad, R., Halim, A. & Aziz, T. (2012). Alleviation of temperature stress by nutrient management in crop plants: a review. Journal of Soil Science and Plant Nutrition, 12(2), 221-244.
-    Webster, D. E. & Ebdon, J. S. (2005). Effects of nitrogen and potassium fertilization on perennial ryegrass cold tolerance during deacclimation in late winter and early spring. HortScience, 40(3), 842-849.
-    Wilkinson, S., Clephan, A. L. & Davies, W. J. (2001). Rapid low temperature-induced stomatal closure occurs in cold-tolerant Commelina communis leaves but not in cold-sensitive tobacco leaves, via a mechanism that involves apoplastic calcium but not abscisic acid. Plant Physiology, 126(4), 1566-1578.
-    Xu, J., Zheng, X., Yan, H., Tang, X., Xiong, J., Wei, M., Qin, W. & Li, W. (2016). Physiological responses of different potato varieties to cold stress at seedling stage. Journal of Southern Agriculture, 47(11), 1837-1943.
-    Yang, H. & Guo, H. (2016). Physiological responds of potato seedlings to low temperature stress and comprehensive evaluation on their cold tolerance. Southwest China Journal of Agricultural Sciences, 29(11), 2560-2566.
-    Yang, J., He, Y., Luo, S., Ma, X., Li, Z., Lin, Z. & Zhang, Z. (2021). Optimizing the optimal planting period for potato based on different water-temperature year types in the agro-pastoral ecotone of north China. Agriculture, 11(11), 1061.
-    Zhou, B., Guo, Z. & Liu, Z. (2005). Effects of abscisic acid on antioxidant systems of Stylosanthes guianensis (Aublet) Sw. under chilling stress. Crop Science, 45(2), 599-605.
-    Zhu, J., Dong, C. H. & Zhu, J. K. (2007). Interplay between cold-responsive gene regulation, metabolism and RNA processing during plant cold acclimation. Current Opinion in Plant Biology, 10(3), 290-295.
Volume 7, Issue 14 - Serial Number 2
January 2024
Pages 136-159

  • Receive Date 31 October 2022
  • Revise Date 21 November 2022
  • Accept Date 25 November 2022