Journal of Vegetables Sciences

Journal of Vegetables Sciences

The response of some agronomic and qualitative traits of potato genotypes to foliar spraying of anti-cold compounds (Frisbon and potassium) in two different planting dates

Document Type : Original Article

Authors
1 Ph.D. student, Department of Engineering Production and Plant Genetics, Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
2 Professor, Department of Engineering Production and Plant Genetics, Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
3 Associate Professor, Horticulture Crops Research Department, Ardabil Agricultural and Natural Resources Research Centre, AREEO, Ardabil, Iran
4 Associate Professor, Department of Engineering Production and Plant genetics, Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
Abstract
Extended Abstract
 

Introduction: Plants are affected by adverse environmental conditions. One of these environmental factors is cold stress, which is one of the main factors limiting the growth and productivity of agricultural products. One of the effects of cold stress is damage to photosynthetic pigments. So that the cold stress causes the light energy absorbed by the pigments cannot be used in photosynthetic reactions. As a result, this light energy causes photo-oxidation reactions and ultimately causes the loss of photosynthetic pigments. To protect plants from freezing in agriculture, it is possible to foliar application of chemical and natural compounds on plants before they are exposed to low temperatures. Anti-freezing compounds are easily absorbed by the plant and participate in all metabolic processes of the plant. This mechanism allows the plant to reserve some of its energy and thus be resistant to environmental stresses. In addition to anti-freezing compounds, the state of nutritional elements in the plant plays an important role in increasing the capacity of plants to deal with environmental stresses such as salt stress, drought, cold, etc. One of these nutritional elements is potassium, which plays a very important role in reducing the effects of various abiotic stresses such as drought, salinity, metal toxicity, high and low temperatures, etc. Potassium plays key roles in many physiological and biochemical processes such as photosynthesis, protein synthesis, synthesis and transfer of sugars, activation of more than 60 types of enzymes, regulation of osmotic and ionic potassium, and regulation of opening and closing of stomata. Potato (Solanum tuberosum L.) is an herbaceous plant of the Solanaceae family, which is the fourth most important crop in the world in terms of yield and production volume and is used for food, forage, industrial and seed purposes. The appropriate combination of variety and planting date in crops is one of the most important effective factors in adjusting the harmful effects of climate change on the yield of crops.
Materials and Methods: This research was conducted as a split-factorial design in the form of a randomized complete block design with three replications at the Ardabil Agricultural and Natural Resources Research Station during the two crop season of 2018-2019 and 2019-2020. The investigated factors include planting date in two levels (August 1 and 11), antifreeze compound in two levels (foliar application with water as a control and foliar application with a mixture of frezzebon amino acid + potassium) and potato genotypes in 10 levels including (901375, 901475, 902375, 8708-7, 8709-106, 7009-3, 905675, 8707-26 genotypes and Agria and Savalan cultivars). Furthermore, before the spraying treatment, samples were taken from the experimental treatments and frozen using liquid nitrogen and stored in a freezer.After 24 hours 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: According to the results, it was determined that foliar application of frezzebon amino acid combined with potassium increased plant height, tuber weight per plant, content of photosynthetic pigments, vitamin C, soluble sugars, tuber starch percentage and tuber dry matter percentage. The highest amounts of these traits were observed on the planting date of August 1. Means comparison showed that 901475 genotype had the highest tuber weight per plant (811.71 g) and the Agria cultivar had the lowest tuber weight per plant (497.25 g). The maximum plant height, chlorophyll a, b and total chlorophyll content, vitamin C, soluble sugars, and tuber dry matter was related to 8707-26 genotype. On the other hand, 3-7009 and 26-8707 genotype had the highest percentage of starch. Based on these results, it seems that the planting date of August 1 and the foliar application of Freezbon with potassium can enhance the cold tolerance threshold, growth, and performance of potato cultivars in regions exposed to cold stress by regulating physiological and biochemical responses.
Conclusion: The combined use of anti-freezing compounds of frezzebon and potassium improved the morphological and physiological traits of potato genotypes compared to their non-use. Results showed that the simultaneous use of anti-freezing compounds of frezzebon and potassium increased the mean yield of the plant by 24.08% compared to not using them. On the other hand, the planting date of August 1 had a more favorable effect on the studied traits than August 11. So that the mean yield of the plant on the planting date of August 1 was 12.31% more compared to August 11. According to the results, it can be concluded that the application of anti-freezing compounds and the planting date of August 1 caused changes in the morphological and physiological traits of potato genotypes, which provided more suitable conditions for their growth and increase in yield. Therefore, it is possible to recommend the planting date of August 1 and the foliar application of frezzebon with potassium to achieve optimal yield in the potato fields of the Ardabil region.

 
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. doi:10.1080/00103624.2011.550378.
Abedi Baba-Arabi, S., Movahhedi Dehnavi, M., Yadavi, A. R. & Adhami, E. (2012). Effects of Zn and K foliar application on physiological traits and yield of spring safflower under drought stress. Journal of Crop Production, 4(1), 75-90. (In Farsi). doi: 20.1001.1.2008739.1390.4.1.6.8.
 Alavi Matin, S. M., Rahnama, A. & Meskarbashi, M. (2015). Effects of type and rate of potassium fertilizer on agronomic and physiological traits of two durum wheat varieties under salt stress. Cereal Research, 5(2), 177-187. (In Farsi). doi:20.1001.1.22520163.1394.5.2.6.9.
Alizadeh Frutan, M., Pirdashti, H., Yaghoubian, Y. & Babaeizad, V. (2016). Effect of paclobutrazol and priformospora indica inoculation on antioxidant enzymes activity and morphological characteristics of green beans (Phaseoluse vulgaris L.) in chilling stress. Journal of Plant Process and Function, 5(15), 133-146. (In Farsi). doi:20.1001.1.23222727.1395.5.15.8.1. 
Arafa, A. A., Farouk, S. & Mohamed, H. S. (2011). Effect of potassium fertilizer, biostimulants and effective microorganisms as well as their interactions on potato growth, photosynthetic pigments and stem anatomy. Journal of Plant Production, 2(8), 1017-1035.‏ doi:10.21608/jpp.2011.85634.
Arnon, D. I. (1949). Copper enzymes in isolated chloroplast polyphenol oxidase in Beta vulgaris. Plant Physiology, 24(1), 1-15. doi:10.1104/pp.24.1.1.
Baghbani-Arani, A., Modarres-Sanavy, S. A. M., Mashhadi-Akbar-Boojar, M. & Mokhtassi-Bidgoli, A. (2017). Towards improving the agronomic performance, chlorophyll fluorescence parameters and pigments in fenugreek using zeolite and vermicompost under deficit water stress. Industrial Crops and Products, 109, 346-357.‏ doi:10.1016/j.indcrop.2017.08.049.
Bagheri, F. & Blochi, H. (2013). Effect of planting date on some quantity and qulity nine grain surgum (Sorghum bicolor L.) in Yasouj. Journal of Crop Production and Processing, 3(9), 29-42. (In Farsi). doi: 20.1001.1.22518517.1392.3.9.3.6.  
Baninasab, B. (2009). Amelioration of chilling stress by paclobutrazol in watermelon seedlings. Scientia Horticulturae, 121(2), 144-148. doi:10.1016/j.scienta.2009.01.028.
Beck, E. H., Heim, R. & Hansen, J. (2004). Plant resistance to cold stress: mechanisms and environmental signals triggering frost hardening and dehardening. Journal of Biosciences, 29(4), 449-459.‏ doi:10.1007/BF02712118. 
Burgos, G., Auqui, S., Amoros, W., Salas, E. & Bonierbale, M. (2009). Ascorbic acid concentration of native Andean potato varieties as affected by environment, cooking and storage. Journal of Food Composition and Analysis, 22(6), 533-538.‏ doi:10.1016/j.jfca.2008.05.013.
Chinnusamy, V., Zhu, J. & Zhu, J. K. (2007). Cold stress regulation of gene expression in plants. Trends in Plant Science, 12(10), 444-451.‏ doi:10.1016/j.tplants.2007.07.002. 
Colom, M. R. & Vazzana, C. (2001). Drought stress effects on three cultivars of Eragrostis curvula: photosynthesis and water relations. Plant Growth Regulation, 34(2), 195-202.‏ doi:10.1023/A:1013392421117 
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). doi:10.22092/sppj.2017.110524.
Dhaliwal, A., Khondker, A., Alsop, R. & Rheinstädter, M. C. (2019). Glucose can protect membranes against dehydration damage by inducing a glassy membrane state at low hydrations. Membranes, 9(1), 15.‏ doi:10.3390/membranes9010015. 
Dkhil, B. B., Denden, M. & Aboud, S. (2011). Foliar potassium fertilization and its effect on grovvth, yield and quality of potato grown under loan-sandy soil and semi-arid. International Journal of Agricultural Research, 6(7), 593-600. doi:10.3923/ijar.2011.593.600.
Economakis, C. & Daskalaki, A. (2003). Effect of potassium nutrition on yield and quality of tomato plants grown with nutrient film technique under sodium chloride saline conditions. In International Symposium on Managing Greenhouse Crops in Saline Environment, 609, 337-339.‏ doi:10.17660/ActaHortic.2003.609.50.
EL-Anany, A. (2020). Stimulate the ability of potato plant to tolerance low temperature in winter plantation. Journal of Productivity and Development, 25(4), 425-451.‏ doi:10.21608/jpd.2020.140227.
El-Dissoky, R. A. & Abdel-Kadar, A. E. S. (2013). Effect of boron as a foliar application on some potatoes cultivars under Egyptian alluvial soil conditions. Research Journal of Agriculture and Biological Sciences, 9(5), 232-240.‏ doi:sweri.sci.eg/detailsofresearches.php?id=686.
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). doi:20.1001.1.76712423.1392.8.32.8.2.
Faten, S. A., Shaheen, A. M., Ahmed, A. A. & Mahmoud, A. R. (2010). Effect of foliar application of amino acids as antioxidants on growth, yield and characteristics of Squash. Research Journal of Agriculture and Biological Science, 6(5), 583-588.
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(1), 45-55.‏ doi:10.1016/j.jssas.2013.01.001.
Fereres, E. & Soriano, M. A. (2007). Deficit irrigation for reducing agricultural water use. Journal of Experimental Botany, 58(2), 147-159.‏ doi:10.1093/jxb/erl165
Haddad, M., Bani-Hani, N. M., Al-Tabbal, J. A. & Al-Fraihat, A. H. (2016). Effect of different potassium nitrate levels on yield and quality of potato tubers. Journal of Food, Agriculture and Environment, 14(1), 101-107.‏
Hagman, J. E. & Martenssen, A. (2009). Cultivation practices and potato cultivars suitable for organic potato production. Potato Research, 52, 319 -330.
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.‏ doi:10.1080/00103624.2011.550378.
Haverkort, A. J. & Verhagen, A. (2008). Climate change and its repercussions for the potato supply chain. Potato Research, 51(3), 223-237. doi:10.1007/s11540-008-9107-0
Ilyas, M., Ayub, G., Imran, Ali 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. doi:10.1080/00103624.2020.1854286.
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)
Kalisz, A., Jezdinský, A., Pokluda, R., Sękara, A., Grabowska, A. & Gil, J. (2016). Impacts of chilling on photosynthesis and chlorophyll pigment content in juvenile basil cultivars. Horticulture, Environment, and Biotechnology, 57(4), 330-339.‏ doi:10.1007/s13580-016-0095-8
Karimi, R. (2017). Potassium-induced freezing tolerance is associated with endogenous abscisic acid, polyamines and soluble sugars changes in grapevine. Scientia Horticulturae, 215, 184-194.‏ doi: 10.1016/j.scienta.2016.12.018
Kazemi, M., Abadi, H. & Tavakoli, H. (2011). Potato production management.
agricultural education and extension press. 156 p. 
Khan, M. I. R., Fatma, M., Per, T. S., Anjum, N. A. & Khan, N. A. (2015). Salicylic acid-induced abiotic stress tolerance and underlying mechanisms in plants. Frontiers in Plant Science, 6, 462.‏ doi:10.3389/fpls.2015.00462. 
Kumar, G., Verama, M. M. & Singh, J. (2004). Effect of potassium and nitrogen on yield and quality of potato (Solanum tuberosum L.) tubers. Indian Journal of Agricultural Biochemistry, 17(1), 45-57.‏
Laboski, C. A. & Kelling, K. A. (2007). Influence of fertilizer management and soil fertility on tuber specific gravity: a review. American Journal of Potato Research, 84(4), 283-290.‏
Lawlor, D. W. & Cornic, G. (2002). Photosynthetic carbon assimilation and associated metabolism in relation to water deficits in higher plants affected by N fertilization. Agronomy Journal, 73, 583 -587. doi:10.1046/j.0016-8025.2001.00814.x. 
Layegh, M., Peyvast, G., Samiezadeh, H. & Khosusi, M. (2010). Effect of salinity on growth, yield and quality indices of tomato in soilless culture. Iranian Journal of Horticultural Science, 40(4), 11-21. (In Farsi). doi:20.1001.1.2008482.1388.40.4.2.5.
Li, H., Luo, W., Ji, R., Xu, Y., Xu, G., Qiu, S. & Tang, H. (2021). A comparative proteomic study of cold responses in potato leaves. Heliyon, 7(2), e06002. 10.1016/j.heliyon.2021.e06002
Malash, N., Ghaibeh, A., Yeo, A., Ragab, R. & Cuartero, J. (2002). Effect of irrigation water salinity on yield and fruit quality of tomato. In International Symposium on Techniques to Control Salination for Horticultural Productivity, 573, 415-423.‏ doi:10.17660/ActaHortic.2002.573.51
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). doi:20.1001.1.2008739.1393.7.2.9.4.
McCready, R. M., Guggolz, J., Silviera, V. & Owens, H. S. (1950). Determination of starch and amylose in vegetables. Analytical Chemistry, 22, 1156-1158. doi:10.1021/ac60045a016
McCue, P., Zheng, Z., Pinkham, J. L. & Shetty, K. (2000). A model for enhanced pea seedling vigour following low pH and salicylic acid treatments. Process Biochemistry, 35(6), 603-613.‏ doi:10.1016/S0032-9592(99)00111-9.
Miura, K. & Furumoto, T. (2013). Cold signaling and cold response in plants. International Journal of Molecular Sciences, 14(3), 5312-5337.‏ doi:10.3390/ijms14035312.
Miura, K. & Tada, Y. (2014). Regulation of water, salinity, and cold stress responses by salicylic acid. Frontiers in Plant Science, 5, 4.‏ doi: 10.3389/fpls.2014.00004 
Moradi, R., Koocheki, A. & Nassiri Mahallati, M. (2014). Adaptation of maize to climate change impacts in Iran. Mitigation and Adaptation Strategies for Global Change, 19(8), 1223-1238.‏ doi:10.1007/s11027-013-9470-2
Mutlu, S., Atici, Ö. & Nalbantoglu, B. (2009). Effects of salicylic acid and salinity on apoplastic antioxidant enzymes in two wheat cultivars differing in salt tolerance. Biologia Plantarum, 53(2), 334-338. doi:10.1007/s10535-009-0061-8
Najafzadeh, S. & Ehsanpour, A. (2012). Effect of drought stress on some physiological parameters of two potato cultivars (Kenebec and Concord) under in vitro culture condition. Arid Biome Scientific and Research Journal, 2(1), 70- 81. doi: 20.1001.1.2008790.1391.2.1.6.1.
Nayyar, H., Bains, T. & Kumar, S. (2005). Chilling stressed chickpea seedlings: Effect of cold acclimation, calcium and abscisic acid on cryoprotective solutes and oxidative damage. Environmental and Experimental Botany, 54, 275-285. doi:10.1016/j.envexpbot.2004.09.007.
Pourasadollahi, A., Siosemardeh, A., Hosseinpanahi, F. & Sohrabi, Y. (2019). Effect of spraying of growth regulators on water use efficiency, some osmolites and physiological traits of potato in drought stress conditions. Journal of Plant Process and Function, 9(35), 329-345. (In Farsi). doi: 20.1001.1.23222727.1399.9.35.16.7. 
Senaratna, T., Touchell, D., Bunn, E. & Dixon, K. (2000). Acetyl salicylic acid (Aspirin) and salicylic acid induce multiple stress tolerance in bean and tomato plants. Plant Growth Regulation, 30(2), 157-161.‏ doi:10.1023/A:1006386800974.
 Shabani Sangtarashani, E. & Tabatabaei, S. J. (2013). The effect of potassium concentration in nutrient solution on lycopene, vitamin c and qualitative characteristics of cherry tomato in saline conditions. Journal of Crop Production and Processing, 3(7), 133-143. (In Farsi). doi:20.1001.1.22518517.1392.3.7.12.1. 
Shahryari, R. & Vahid Taze-Kand, S. (2023). Effect of pretreatment of Agria potato (Solanum tuberosum) seedlings with potassium humate on production of seed minitubers. Journal of Vegetables Sciences. (In Farsi).     doi:10.22034/iuvs.2023.1999972.1279.
Slugina, M. A., Meleshin, A. A., Kochieva, E. Z. & Shchennikova, A. V. (2020). The opposite effect of low temperature on the Pho1a starch phosphorylase gene expression in Solanum tuberosum L. tubers and petota species leaves. American Journal of Potato Research, 97(1), 78-87.‏ doi: 10.1007/s12230-019-09758-z
Souza, R. P., Machado, E. C., Silva, J. A. B., Lagôa, A. M. M. A. & Silveira, J. A. G. (2004). Photosynthetic gas exchange, chlorophyll fluorescence and some associated metabolic changes in cowpea (Vigna unguiculata) during water stress and recovery. Environmental and Experimental Botany, 51(1), 45-56.‏ doi:10.1016/S0098-8472(03)00059-5.
Tadjvar, Y., Fotouhi Ghazvini, R., Hamidoghli, Y. & Hassan Sajedi, R. (2011). Physiological and biochemical responses of page mandarin on citrange rootstock to low temperature stress. Iranian Journal of Plant Biology, 3(9), 1-12.‏ (In Farsi). doi:20.1001.1.20088264.1390.3.9.2.2.
Takahiro, N., Shogo, T., Motoyuki, M., Shigenobu, T., Chie, M. E., Katsuichi, S., Arachichige, W. H., Akihiro, H., Yasuyuki, S. & Hiroaki, Y. (2004). The effect of harvest dates on the starch properties of various potato cultivars. Food Chemistry, 86, 119-125. doi:10.1016/j.foodchem.2003.09.035.
Tobeh, A. & Jamaati-e-Somarin, S. H. (2012). Low temperature stress effect on wheat cultivars germination. African Journal of Microbiology Research, 6, 1265-1269. doi:10.5897/AJMR11.1498
Upadhyaya, C. P., Akula, N., Young, K. E., Chun, S. C., Kim, D. H. & Park, S. W. (2010). Enhanced ascorbic acid accumulation in transgenic potato confers tolerance to various abiotic stresses. Biotechnology Letters, 32(2), 321-330.‏ doi:10.1007/s10529-009-0140-0. 
Wang, M., Zheng, Q., Shen, Q. & Guo, S. (2013). The critical role of potassium in plant stress response. International Journal of Molecular Sciences, 14(4), 7370-7390.‏ doi:10.3390/ijms14047370.
Yadegari, L. Z., Heidari, R. & Carapetian, J. (2007). The influence of cold acclimation on proline, malondialdehyde (MDA), total protein and pigments contents in soybean (Glycine max) seedlings. Journal of Biological Sciences, 7(8), 1436-1141.‏ doi:10.3923/jbs.2007.1436.1441.
Yoon, Y. E., Kuppusamy, S., Cho, K. M., Kim, P. J., Kwack, Y. B. & Lee, Y. B. (2017). Influence of cold stress on contents of soluble sugars, vitamin C and free amino acids including gamma-aminobutyric acid (GABA) in spinach (Spinacia oleracea). Food Chemistry, 215, 185-192. doi: 10.1016/j.foodchem.2016.07.167. 
You, L., Song, Q., Wu, Y., Li, S., Jiang, C., Chang, L., Yang, X. & Zhang, J. (2019). Accumulation of glycine betaine in transplastomic potato plants expressing choline oxidase confers improved drought tolerance. Planta, 249(6), 1963-1975.‏ doi:10.1007/s00425-019-03153-y. 
Zadehbagheri, M., Kamelmanesh, M. M., Javanmardi, S. & Sharafzadeh, S. (2012). Effect of drought stress on yield and yield components, relative leaf water content, proline and potassium ion accumulation in different white bean genotype. African Journal of Agriculture Research, 7, 5661 -5670. doi:10.5897/AJAR10.901.
Zhang, W., Zhao, Y., Li, L., Xu, X., Yang, L., Luo, Z., Wang, B., Ma, S., Fan, Y. & Huang, Z. (2021). The effects of short-term exposure to low temperatures during the booting stage on starch synthesis and yields in wheat grain. Frontiers in Plant Science, 12, 684784.doi:10.3389/fpls.2021.684784. 
Zhang, Y., Zhang, L., Yang, N., Huth, N., Wang, E., Werf, W. V. D., Evers, J. B., Wang, Q., Zhang, D., Wang, R., Gao, H. & Anten, N. P. R. (2019). Optimized planting time windows mitigate climate risks for oats production under cool semi-arid growing conditions. Agricultural and Forest Meteorology, 266, 184-197. doi:10.1016/j.agrformet.2018.12.019.
Ziachehre, M., Tobeh, ,. A., Hassanpanah, D., farzaneh, S. (2023). 'Influence of Planting Date and Foliar Application of Antifreeze Compounds on Some Morpho-physiological Traits of Potato Cultivars in Ardabil Region', Journal of Vegetables Sciences, 7(2), pp. 136-159. (In Farsi) doi:10.22034/iuvs.2022.1971753.1245 

  • Receive Date 06 December 2022
  • Revise Date 25 December 2022
  • Accept Date 01 January 2023