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Evaluation of abiotic stress tolerance and physiological characteristics of potato (Solanum tuberosum L. cv. Kennebec) that heterologously expresses the rice Osmyb4 gene

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Abstract

MYB transcription factors are involved in diverse biochemical and physiological processes, including hormone signaling, defense, and stress responses. In the present study, we developed a transgenic potato (Solanum tuberosum L. cv. Kennebec) expressing the rice Osmyb4 gene, which encodes the transcription factor MYB4. The transgene was under the control of either the constitutive CaMV35S promoter or the stress-induced Arabidopsis COR15a promoter. The potential involvement of MYB4 in certain physiological processes and the abiotic stress response in the potato was evaluated. The transgenic plants did not exhibit growth retardation, and they showed no significant difference (P < 0.05) in tuber yield from that of non-transgenic wild-type plants. Although the chlorophyll a and b as well as the anthocyanin contents of the six transgenic lines were similar to those of the wild type, the transgenic line S2 presented a significantly higher carotenoid content. The total sugar contents of the lines S2 and M48 were significantly higher than that of the wild-type plants. S2 and M48 were significantly more tolerant of salinity than the wild type, according to measured growth parameters. Transgenic plants grown under a high concentration of boric acid (3 mM) exhibited greater survival rates than non-transgenic control plants. On the other hand, the transgenic plants did not show an improvement in freezing tolerance. Overall, our results indicated that MYB4 may affect diverse processes such as carotenoid biosynthesis, sugar metabolism, and salinity tolerance in potato, and that it may be an upstream regulatory element of these processes.

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References

  • Amirjani MR (2011) Effect of salinity stress on growth, sugar content, pigment and enzyme activity of rice. Int J Bot 7:73–81

    Article  CAS  Google Scholar 

  • Baranowskij N, Frohberg C, Prat S, Willmitzer L (1994) A novel DNA binding protein with homology to Myb oncoproteins containing only one repeat can function as a transcriptional activator. EMBO J 13(22):5383–5392

    CAS  PubMed Central  PubMed  Google Scholar 

  • Borsani O, Valpuesta V, Botella MA (2003) Developing salt tolerant plants in a new century: a molecular biology approach. Plant Cell Tissue Organ Cult 73:101–115

    Article  CAS  Google Scholar 

  • Chen HH, Li PH (1980) Characteristic of cold acclimation and deacclimation in tuber-bearing Solanum species. Plant Physiol 65:1146–1148

  • Chen RM, Ni ZF, Nie XL, Qin YX, Dong GQ, Sun QX (2005) Isolation and characterization of genes encoding Myb transcription factor in wheat (Triticum aestivem L.). Plant Sci 169:1146–1154

    Article  CAS  Google Scholar 

  • Chen XS, Feng SQ, Wang YL, Yang S, Xu YT (2010) Anthocyanin biosynthesis in pears is regulated by a R2R3-MYB transcription factor PyMYB10. Planta 232:245–255

    Article  PubMed  Google Scholar 

  • Docimo T, Coraggio I, De Tommasi N, Leone A (2008) Enhancing phenylpropanoid secondary metabolites in Nicotiana tabacum and Salvia sclarea by overexpression of a rice Myb4 transcription factor. Planta Medica 74:PG87

  • Dubois M, Gilles KA, Hamilton JK, Rebers PA, Smith F (1956) Colorimetric method for determination of sugars and related substances. Anal Chem 28:350–356

    Article  CAS  Google Scholar 

  • Dubos C, Stracke R, Grotewold E, Weisshaar B, Martin C, Lepiniec L (2010) MYB transcription factors in Arabidopsis. Trends Plant Sci 15:573–581

    Article  CAS  PubMed  Google Scholar 

  • Gao JJ, Shen XF, Zhang Z, Peng RH, Xiong AS, Xu J, Zhu B, Zheng JL, Yao QH (2011) The myb transcription factor MdMYB6 suppresses anthocyanin biosynthesis in transgenic Arabidopsis. Plant Cell Tissue Organ Cult 106(2):235–242

  • Geekiyanage S, Takase T, Ogura Y, Kiyosue T (2007) Anthocyanin production by over-expression of grape transcription factor gene VlmybA2 in transgenic tobacco and Arabidopsis. Plant Biotechnol Rep 1(1):11–18

  • Hassan M (2007) The transcriptional response of barley (Hordeum vulgare L.) to boron toxicity. Dissertation. The University of Adelaide, Adelaide

  • Jin JP, Zhang H, Kong L, Gao G, Luo JC (2014) PlantTFDB 3.0: a portal for the functional and evolutionary study of plant transcription factors. Nucleic Acids Res 42:D1182–D1187. doi: 10.1093/nar/gkt1016

  • Kasuga M, Liu Q, Miura S, Yamaguchi-Shinozaki K, Shinozaki K (1999) Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor. Nat Biotechnol 17:287–291

    Article  CAS  PubMed  Google Scholar 

  • Laura M, Consonni R, Locatelli F, Fumagalli E, Allavena A, Coraggio I, Mattana M (2010) Metabolic response to cold and freezing of Osteospermum ecklonis overexpressing Osmyb4. Plant Physiol Biochem 48:764–771

    Article  CAS  PubMed  Google Scholar 

  • Lichtenthaler HK (1988) Chlorophylls and carotenoids: pigments of photosynthetic biomembranes. Methods Enzymol 148:350–383

    Article  Google Scholar 

  • Liu P, Yang PA (2000) Effects of molybdenum and boron on membrane lipid peroxidation and endogenous protective systems of soybean leaves. Acta Bot Sin 42(5):461–466

    CAS  Google Scholar 

  • Liu Q, Kasuga M, Sakuma Y, Abe H, Miura S, Yamaguchi-Shinozaki K, Shinozaki K (1998) Two transcription factors, DREB1 and DREB2, with an EREBP/AP2 DNA binding domain separate two cellular signal transduction pathways in drought- and low-temperature-responsive gene expression, respectively, in Arabidopsis. Plant Cell 10:1391–1406

    Article  CAS  PubMed Central  PubMed  Google Scholar 

  • Lovatt CJ, Bates LM (1984) Early effects of excess boron on photosynthesis and growth of Cucurbita pepo. J Exp Bot 35(152):297–305

    Article  CAS  Google Scholar 

  • Mattana M, Biazzi E, Consonni R, Locatelli F, Vannini C, Provera S, Coraggio I (2005) Overexpression of Osmyb4 enhances compatible solute accumulation and increases stress tolerance of Arabidopsis thaliana. Physiol Plant 125:212–223

    Article  CAS  Google Scholar 

  • Munns R, Tester M (2008) Mechanisms of salinity tolerance. Annu Rev Plant Biol 59:651–681

    Article  CAS  PubMed  Google Scholar 

  • Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue culture. Physiol Plant 15:473–497

    Article  CAS  Google Scholar 

  • Murray JR, Hackett WP (1991) Dihydroflavonol reductase activity in relation to differential anthocyanin accumulation in juvenile and mature phase Hedera helix L. Plant Physiol 97:343–351

    Article  CAS  PubMed Central  PubMed  Google Scholar 

  • Nable RO, Lance RCM, Cartwright B (1990) Uptake of boron and silicon by barley genotypes with differing susceptibilities to boron toxicity. Ann Bot 66:83–90

    CAS  Google Scholar 

  • Nozawa A, Miwa K, Kobayashi M, Fujiwara T (2006) Isolation of Arabidopsis thaliana cDNAs that confer yeast boric acid tolerance. Biosci Biotechnol Biochem 70:1724–1730

    Article  CAS  PubMed  Google Scholar 

  • Oz T, Yilmaz R, Eyidogan F, Graaff L, Yucel M, Oktem HA (2009) Microarray analysis of late response to boron toxicity in barley (Hordeum vulgare L.) leaves. Turk J Agric For 33:191–202

    CAS  Google Scholar 

  • Parvanova D, Ivanov S, Konstantinova T, Karanov E, Atanassov A, Tsvetkov T, Alexieva V, Djilianov D (2004) Transgenic tobacco plants accumulating osmolytes show reduced oxidative damage under freezing stress. Plant Physiol Biochem 42:57–63

    Article  CAS  PubMed  Google Scholar 

  • Pasquali G, Biricolti S, Locatelli F, Baldoni E, Mattana M (2008) Osmyb4 expression improves adaptive responses to drought and cold stress in transgenic apples. Plant Cell Rep 27:1677–1686

    Article  CAS  PubMed  Google Scholar 

  • Pino MT, Skinner JS, Park EJ, Jeknić Z, Hayes PM, Thomashow MF, Chen THH (2007) Use of a stress inducible promoter to drive ectopic AtCBF expression improves potato freezing tolerance while minimizing negative effects on tuber yield. Plant Biotechnol J 5:591–604

    Article  CAS  PubMed  Google Scholar 

  • Rommens CM, Richael CM, Yan H, Navarre AD, Ye J, Krucker M, Swords K (2008) Engineered native pathways for high kaempferol and caffeoylquinate production in potato. Plant Biotechnol J 6:870–886

    Article  CAS  PubMed  Google Scholar 

  • Sambrook J, Fritsch EF, Maniatis T (1989) Molecular cloning: a laboratory manual, 2nd edn. Cold Spring Harbor Laboratory Press, New York

    Google Scholar 

  • Shin D, Moon S-J, Han S, Kim B-G, Park SR, Lee S-K, Yoon H-J, Lee HE, Kwon H-B, Baek D, Yi BY, Byun M-O (2011) Expression of StMYB1R-1, a novel potato single MYB-like domain transcription factor, increases drought tolerance. Plant Physiol 155:421–432

    Article  CAS  PubMed Central  PubMed  Google Scholar 

  • Sung DY, Kaplan F, Lee KJ, Guy CL (2003) Acquired tolerance to temperature extremes. Trends Plant Sci 8:179–187

    Article  CAS  PubMed  Google Scholar 

  • Vannini C, Locatelli F, Bracale M, Magnani E, Marsoni M, Osnato M, Mattana M, Baldoni E, Coraggio I (2004) Overexpression of the rice Osmyb4 gene increases chilling and freezing tolerance of Arabidopsis thaliana plants. Plant J 37:115–127

    Article  CAS  PubMed  Google Scholar 

  • Vannini C, Iriti M, Bracale M, Locatelli F, Faoro F, Croce P, Pirona R, Di Maro A, Coraggio I, Genga A (2006) The ectopic expression of the rice Osmyb4 gene in Arabidopsis increases tolerance to abiotic, environmental and biotic stresses. Physiol Mol Plant Pathol 69:26–42

  • Vannini C, Campa M, Iriti M, Genga A, Faoro F, Carravieri S, Rotino GL, Rossoni M, Spinardi A, Bracale M (2007) Evaluation of transgenic tomato plants ectopically expressing the rice Osmyb4 gene. Plant Sci 173:231–239

    Article  CAS  Google Scholar 

  • Wenzler H, Mignery G, May G, Park W (1989) A rapid and efficient transformation method for the production of large numbers of transgenic potato plants. Plant Sci 63:79–85

    Article  CAS  Google Scholar 

  • Zhang X, Fowler SG, Cheng HM, Lou YG, Rhee SY, Stockinger EJ, Thomashow MF (2004) Freezing-sensitive tomato has a functional CBF cold response pathway, but a CBF regulon that differs from that of freezing-tolerant Arabidopsis. Plant J 39:905–919

    Article  CAS  PubMed  Google Scholar 

Download references

Acknowledgments

This work was supported by the Research Fund of METU (grant no. BAP-08-11-DPT2002K120510).

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Correspondence to Huseyin Avni Oktem.

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Aydin, G., Yucel, M., Chan, MT. et al. Evaluation of abiotic stress tolerance and physiological characteristics of potato (Solanum tuberosum L. cv. Kennebec) that heterologously expresses the rice Osmyb4 gene. Plant Biotechnol Rep 8, 295–304 (2014). https://doi.org/10.1007/s11816-014-0322-7

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  • DOI: https://doi.org/10.1007/s11816-014-0322-7

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