Scientia Agricultura Sinica ›› 2015, Vol. 48 ›› Issue (6): 1177-1185.doi: 10.3864/j.issn.0578-1752.2015.06.13

• HORTICULTURE • Previous Articles     Next Articles

Analysis of Expression of KT/HAK/KUP Family Genes and Their Responses to Potassium Fertilizer Application During Peach Flowering

SONG Zhi-zhong, GUO Shao-lei, MA Rui-juan, YU Ming-liang   

  1. Institute of Horticulture, Jiangsu Academy of Agricultural Sciences/Jiangsu Key Laboratory of Horticultural Crop Genetic Improvement, Nanjing 210014
  • Received:2014-08-20 Online:2015-03-16 Published:2015-03-16

Abstract: 【Objective】 The objective of this study is to analyze the transcriptional expression of KT/HAK/KUP family genes and response characteristics to potassium fertilizer application during different flowering stages, and key K+ transporter genes and its function. A close relationship between K+ nutritional status and flower development was discussed, thus providing a theoretical basis for K fertilization in orchards and genetic improvement and breeding of efficient horticulture crops.【Method】The K fertilizer treatment experiment was conducted via applying 834 g KCl (K2O content 60%) to each ‘Xiahui6’ peach tree at flower bud expanding stage. The effect of K fertilizer application on flower development, K+ nutritional status and blooming date of peach trees was analyzed. The K+ concentration of peach flowers at different developmental stages was determined by using ICP-AES apparatus with HNO3-HClO4 digestion method. Quantitative real-time PCR was used to analyze the expression profiles of KT/HAK/KUP family genes during the whole flowering process, and the key K+ transporter genes were identified. The response of KT/HAK/KUP family genes to K fertilizer application at different developmental stages was also revealed. Functions of the key genes were validated by using heterologous complementation of bacterial function lossing mutant. Coding sequence of KUP11 was cloned into pPAB404 vector to obtain the recombinant expression vector pPAB404-KUP11. Sequencing verified recombinant vector was then transformed into functional mutant E. coli strain TK2420. Whether the recombinant vector pPAB404-KUP11 can restore the ability of TK2420 mutant strain to uptake external K+, supplied with either KCl or K2SO4, was determined.【Result】Application of K fertilizer treatment favorably induced ‘Xiahui6’ flowers to bloom 2-day earlier, and specifically contributed to flower development at full bloom stage, with an increase of 21.5% in fresh weight. The highest K+ accumulation occurred at full-bloom stage, which was followed by begin bloom, bud period and petal fall stages. Potasium application significantly enhanced the K+ nutritional status, with an increase of 24.3%, 27.4%, 29.1% and 26.3% of K+ concentration, respectively, during four flowering stages. Genes of KUP1-13 were differentially expressed during the four stages, and the highest expression level appeared especially in full-bloom stage. The KT/HAK/KUP family genes were differentially regulated by K, i.e., KUP1 and KUP5 were most sensitive to Kapplication, whose expression was consistently induced from bud swell stage to full-bloom stage. KUP11 was the most expressed gene throughout the whole flowering process, which was highly up-regulated at bud swell stage but greatly reduced at petal fall stage by K treatment. The recombinant expression vector pPAB404-KUP11 can restore the K+ uptake capacity in TK2420 bacterial mutant, and can utilize either external KCl or K2SO4, indicating that the expression level of KUP11 was positively correlated with the K+ uptake of bacterial cells.【Conclusion】Application of K fertilizer favorably promotes peach flower development, improves the K+ nutritional status, makes peach flower early to open, and differentially regulated KT/HAK/KUP family genes at different flowering stages. KUP11 transporter possesses the capacity to uptake external K+, which may play an important role in peach flowering.

Key words: peach, flowering, potassium, KT/HAK/KUP gene family, potassium homeostasis, peach, flowering, potassium, KT/HAK/KUP gene family, potassium homeostasis

[1]    Véry A A, Sentenac H. Molecular mechanisms and regulation of K+ transport in higher plants. Annual Review of Plant Biology, 2003, 54: 575-603.
[2]    Grabov A. Plant KT/KUP/HAK potassium transporters: Single family - multiple functions. Annals of Botany, 2007, 99: 1035-1041.
[3]   Zhao D, Oosterhuis D M, Bednarz C W. Influence of potassium deficiency on photosynthesis, chlorophyll content, and chloroplast ultrastructure of cotton plants. Photosynthetica, 2001, 39: 103-109.
[4]    Ashley M K, Grant M, Grabov A. Plant responses to potassium deficiencies: a role for potassium transport proteins. Journal of Experimental Botany, 2006, 57: 425-436.
[5]    Li M, Li Y, Li H, Wu G. Overexpression of AtNHX5 improves tolerance to both salt and drought stress in Broussonetia papyrifera (L.) Vent. Tree Physiology, 2011, 31: 349-357.
[6]    Song Z Z, Su Y H. Distinctive potassium-accumulation capability of alligatorweed (Alternanther philoxeroides) links to high-affinity potassium transport facilitated by K+-uptake systems. Weed Science, 2013, 61: 77-84.
[7]    Mian A, Oomen R J, Isayenkov S, Sentenac H, Maathuis F J, Véry A A. Over-expression of an Na+-and K+-permeable HKT transporter in barley improves salt tolerance. Plant Journal. 2011, 68: 468-479.
[8]    Bose J, Rodrigo-Moreno A, Shabala S. ROS homeostasis in halophytes in the context of salinity stress tolerance. Journal of Experimental Botany, 2014, 65: doi:10.1093/jxb/ert430.
[9]    Song Z Z, Yang S Y, Zhu H, Jin M, Su Y H. Heterologous expression of an alligatorweed high-affinity potassium transporter gene enhances salinity tolerance in Arabidopsis. American Journal of Botany, 2014, 101: 840-850.
[10]   Rai R K, Singh P, Shrivastava A K, Suman A. Modulation of low-temperature-induced biochemical changes in bud and root band zones of sugar cane sets by potassium, zinc, and ethrel for improving sprouting. Journal of Agricultural and Food Chemistry, 2008, 56: 11976-11982.
[11]   Ramalho J C, Fortunato A S, Goulao L F, Lidon F C. Cold-induced changes in mineral content in leaves of Coffea spp. Identification of descriptors for tolerance assessment. Biologia Plantarum, 2013, 57: 495-506.
[12]   Santa-Maria G E, Rubio F, Dubcovsky J, Rodriguez-Navarro A. The HAK1 gene of barley is a member of a large gene family and encodes a high-affinity potassium transporter. Plant Cell, 1997, 9: 2281-2289.
[13]   Rubio F, Santa-Maria G E, Rodriguez-Navarro A. Cloning of Arabidopsis and barley cDNAs encoding HAK potassium transporters in root and shoot cells. Physiologia Plantarum, 2000, 109: 34-43.
[14]   Fu H H, Luan S. AtKuP1: a dual-affinity K+ transporter from Arabidopsis. Plant Cell, 1998, 10: 63-73.
[15]   Gupta M, Qiu X, Wang L, Xie W, Zhang C J, Xiong L Z, Lian X M, Zhang QF. KT/HAK/KUP potassium transporters gene family and their whole-life cycle expression profile in rice (Oryza sativa). Molecular Genetics and Genomics, 2008, 280: 437-452.
[16]   Zhang Z B, Zhang J W, Chen Y J, Li R F, et al. Genome-wide analysis and identification of HAK potassium transporter gene family in maize (Zea mays L.). Molecular Biology Reports, 2012, 39: 8465-8473.
[17]   宋志忠, 丛郁, 韩蕾, 王莉, 苏彦华. 葡萄基因组中KUP 蛋白的生物信息学分析. 基因组学与应用生物学, 2011, 30(6): 728-737.
Song Z Z, Cong Y, Han L, Wang L, Su Y H. In silico analyses of KUP proteins based on grape genomic data. Genomics and Applied Biology, 2011, 30(6): 728-737. (in Chinese)
[18]   Song Z Z, Yang Y, Ma R J, Xu J L, Yu M L. Transcription of potassium transporter genes of KT/HAK/KUP family in peach seedlings and responses to abiotic stresses. Biologia Plantarum, 2015, 59: 65-73.
[19]   Yamasaki A, Yano T. Effect of supplemental application of fertilizers on flower bud initiation and development of strawberry – possible role of nitrogen. Acta Horticulturae, 2009, 842: 765-768.
[20]   Demiral M A, Köseoglu A T. Effect of potassium on yield, fruit quality, and chemical composition of green house-grown aalia melon. Journal of Plant Nutrition, 2005, 28: 93-100.
[21]   Yurtseven E, Kesmez G D, Ünlükara A. The effects of water salinity and potassium levels on yield, fruit quality and water consumption of a native central anatolian tomato species (Lycopersicon esculantum). Agricultural Water Management, 2005, 78: 128-135.
[22]   Hartz T K, Johnstone P R, Francis D M, Miyao E M. Processing tomato yield and fruit quality improved with potassium fertigation. HortScience, 2005, 40: 1862-1867.
[23]   Nava G, Dechen A R, Nachtigall R G. Nitrogen and potassium fertilization affect apple fruit quality in Southern Brazil. Communications in Soil Science and Plant Analysis, 2007, 39: 96-107.
[24]   Epstein W, Buurman E T, McLaggan D, Naprstek J. Multiple mechanisms, roles and controls of K+ transport in Escherichia coli. Biochemical Society Transactions, 1993, 21: 1006-1010.
[25] Senn M E, Rubio F, Banuelos M A, Rodriguez-Navarro A. Comparative functional features of plant potassium HvHAK1 and HvHAK2 transporters. Journal of Biological Chemistry, 2001, 276: 44563-44569.
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