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Articles

Upregulation of MdMYB110a is responsible for ABA-mediated colouration of type 2 red-fleshed apples

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Pages 33-40 | Accepted 09 Mar 2018, Published online: 22 Mar 2018

References

  • An, J.P., Li, H.H., Song, L.Q., Su, L., Liu, X., You, C.X., … Hao, Y.J. (2016). The molecular cloning and functional characterization of MdMYC2, a bHLH transcription factor in apple. Plant Physiology and Biochemistry, 108, 24–31.
  • An, X.H., Tian, Y., Chen, K.Q., Liu, X.J., Liu, D.D., Xie, X.B., … Hao, Y.J. (2015). MdMYB9 and MdMYB11 are involved in .,the regulation of the JA-induced biosynthesis of anthocyanin and proanthocyanidin in apples. Plant & Cell Physiology, 56, 650–662.
  • Ban, Y., Honda, C., Hatsuyama, Y., Igarashi, M., Bessho, H., & Moriguchi, T. (2007). Isolation and functional analysis of a MYB transcription factor gene that is a key regulator for the development of red coloration in apple skin. Plant & Cell Physiology, 48, 958–970.
  • Butelli, E., Titta, L., Giorgio, M., Mock, H.-P., Matros, A., Peterek, S., … Martin, C. (2008). Enrichment of tomato fruit with health-promoting anthocyanins by expression of select transcription factors. Nature Biotechnology, 26, 1301–1308.
  • Chagné, D., Lin-Wang, K., Espley, R.V., Volz, R.K., How, N.M., Rouse, S., … Allan, A.C. (2013). An ancient duplication of apple MYB transcription factors is responsible for novel red fruit-flesh phenotypes. Plant Physiology, 161, 225–239.
  • Chang, S., Puryear, J., & Cairney, J. (1993). A simple and efficient method for isolating RNA from pine trees. Plant Molecular Biology Reporter, 11, 113–116.
  • Eberhardt, M.V., Lee, C.Y., & Liu, R.H. (2000). Antioxidant activity of fresh apples. Nature, 405, 903–904.
  • Espley, R.V., Brendolise, C., Chagné, D., Kutty-Amma, S., Green, S., Volz, R., … Allan, A.C. (2009). Multiple repeats of a promoter segment causes transcription factor autoregulation in red apples. The Plant Cell, 21, 168–183.
  • Hamada, Y., Sato, H., Otagaki, S., Okada, K., Abe, K., & Matsumoto, S. (2015). Breeding depression of red flesh apple progeny containing both functional MdMYB10 and MYB110a_JP genes. Plant Breeding, 134, 239–246.
  • Honda, C., Iwanami, H., Naramoto, K., Maejima, T., Kanamaru, K., Moriya-Tanaka, Y., … Wada, M. (2016). Thinning and bagging treatments and the growing region influence anthocyanin accumulation in red-fleshed apple fruit. The Horticulture Journal, Advance Publication. doi:10.2503/hortj.OKD-010
  • Jiang, Y., Joyce, D.C., & Macnish, A.J. (2000). Effect of abscisic acid on banana fruit ripening in relation to the role of ethylene. Journal of Plant Growth Regulation, 19, 106–111.
  • Kondo, S., Sugaya, S., Sugawa, S., Ninomiya, M., Kittikorn, M., Okawa, K., … Hirai, N. (2012). Dehydration tolerance in apple seedlings is affected by an inhibitor of ABA 8-hydroxylase CYP707A. Journal of Plant Physiology, 169, 234–241.
  • Kondo, S., Tsukada, N., Niimi, Y., &Seto, H. (2001). Interactions between jasmonates and abscisic acid in apple fruit, and stimulative effect of jasmonetes on anthocyanin accumulation. Journal of the Japanese Society for Horticultural Science, 70, 546–552.
  • Lai, B., Li, X.-J., Hu, B., Qin, Y.-H., Huang, X.-M., Wang, H.-C., &Hu, G.-B. (2014). LcMYB1 is a key determinant of differential anthocyanin accumulation among genotypes, tissues, developmental phases and ABA and light stimuli in Litchi chinensis. PLoS One, 9, e86293.
  • Lara, I., &Vendrell, M. (2000). Changes in abscisic acid levels, ethylene biosynthesis, and protein patterns during fruit maturation of ‘Granny Smith’ apples. Journal of the American Society for Horticultural Science, 125, 183–189.
  • Li, Y.Y., Mao, K., Zhao, C., Zhao, X.Y., Zhang, H.L., Shu, H.R., & Hao, Y.J. (2012). MdCOP1 ubiquitin E3 ligases interact with MdMYB1 to regulate light-induced anthocyanin biosynthesis and red fruit coloration in apple. Plant Physiology, 160, 1011–1022.
  • Lin-Wang, K., Bolitho, K., Grafton, K., Kortstee, A., Karunairetnam, S., McGhie, T.K., … Allan, A.C. (2010). An R2R3 MYB transcription factor associated with regulation of the anthocyanin biosynthetic pathway in Rosaceae. BMC Plant Biology, 10, 50.
  • McAtee, P., Karim, S., Schaffer, R., & David, K. (2013). A dynamic interplay between phytohormones is required for fruit development, maturation, and ripening. Frontiers in Plant Science, 4(1–7), Article 79. doi:10.3389/fpls.2013.00079
  • Miyazawa, Y., Moriwaki, T., Uchida, M., Kobayashi, A., Fujii, N., & Takahashi, H. (2012). Overexpression of MIZU-KUSSEI1 enhances the root hydrotropic response by retaining cell viability under hydrostimulated conditions in Arabidopsis thaliana. Plant & Cell Physiology, 53, 1926–1933.
  • Mou, W., Li, D., Bu, J., Jiang, Y., Khan, Z.U., Luo, Z., … Ying, T. (2016). Comprehensive analysis of ABA effects on ethylene biosynthesis and signaling during tomato fruit ripening. PLoS One, 11, e0154072.
  • Sato, H., Otagaki, S., Saelai, P., Kondo, S., Shiratake, K., & Matsumoto, S. (2017). Varietal differences in phenolic compounds metabolism of type 2 red-fleshed apples. Scientia Horticulturae, 219, 1–9.
  • Shen, X., Zhao, K., Liu, L., Zhang, K., Yuan, H., Liao, X., … Li, T. (2014). A role for PacMYBA in ABA-regulated anthocyanin biosynthesis in red-colored sweet cherry cv. Hong Deng (Prunus avium L.). Plant & Cell Physiology, 55, 862–880.
  • Shin, D., Moon, S.-J., Han, S., Kim, B.-G., Park, S.R., Lee, S.-K., … Byun, M.-O. (2011). Expression of StMYB1R-1, a novel potato single MYB-like domain transcription Factor, increases drought tolerance. Plant Physiology, 155, 421–432.
  • Su, L., Diretto, G., Purgatto, E., Danoun, S., Zouine, M., Li, Z., … Chervin, C. (2015). Carotenoid accumulation during tomato fruit ripening is modulated by the auxin-ethylene balance. BMC Plant Biology, 15:114. doi:10.1186/s12870-015-0495-4
  • Sun, L., Sun, Y., Zhang, M., Wang, L., Ren, J., Cui, M., … Leng, P. (2012a). Suppression of 9-cis-epoxycarotenoid dioxygenase, which encodes a key enzyme in abscisic acid biosynthesis, alters fruit texture in
transgenic tomato. Plant Physiology, 158, 283–298.
  • Sun, L., Yuan, B., Zhang, M., Wang, L., Cui, M., Wang, Q., & Leng, P. (2012b). Fruit-specific RNAi-mediated suppression of SlNCED1 increases both lycopene and ß-carotene contents in tomato fruit. Journal of Experimental Botany, 63, 3097–3108.
  • Toufektsian, M.-C., De Lorgeril, M., Nagy, N., Salen, P., Donati, M.B., Giordano, L., … Martin, C. (2008). Chronic dietary intake of plant-derived anthocyanins protects the rat heart against ischemia-rererfusion injury. The Journal of Nutrition, 138, 747–752.
  • Umemura, H., Otagaki, S., Wada, M., Kondo, S., & Matsumoto, S. (2013). Expression and functional analysis of a novel MYB gene, MdMYB110a_JP, responsible for red flesh, not skin color in apple fruit. Planta, 238, 65–76.
  • Umemura, H., Shiratake, K., Maejima, T., Komatsu, H., & Matsumoto, S. (2011). Practical breeding of red-fleshed apple: Cultivar combination for efficient red-fleshed progeny production. HortScience, 46, 1098–1101.
  • Vendrell, M., & Buesa, C. (1989). Relationship between abscisic acid content and ripening of apples. Acta Horticulturae, 258, 389–396.
  • Volz, R.K., Kumar, S., Chagné, D., Espley, R., McGhie, T.K., & Allan, A.C. (2013). Genetic relationships between red flesh and fruit quality traits in apple. Acta Horticulturae, 976, 363–368.
  • Wolfe, K., Wu, W., &Liu, R.H. (2003). Antioxidant activity of apple peels. Journal of Agricultural and Food Chemistry, 51, 609–614.
  • Yang, X., Song, J., Campbell-Palmer, L., Fillmore, S., &Zhang, Z. (2013). Effect of ethylene and 1-MCP on expression of genes involved in ethylene biosynthesis and perception during ripening of apple fruit. Postharvest Biology and Technology, 78, 55–66.
  • Zhang, M., Leng, P., Zhang, G., & Li, X. (2009a). Cloning and functional analysis of 9-cis-epoxycarotenoid dioxygenase (NCED) genes encoding a key enzyme during abscisic acid biosynthesis from peach and grape fruits. Journal of Plant Physiology, 166, 1241–1252.
  • Zhang, M., Yuan, B., & Leng, P. (2009b). The role of ABA in triggering ethylene biosynthesis and ripening of tomato fruit. Journal of Experimental Botany, 60, 1579–1588.

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