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http://dx.doi.org/10.7235/hort.2012.12019

Night Interruption and Night Temperature Regulate Flower Characteristics in Cymbidium  

Kim, Yoon-Jin (Department of Plant Science, Seoul National University)
Park, Chae-Jeong (Department of Plant Science, Seoul National University)
Rho, Hyung-Min (Department of Plant Science, Seoul National University)
Kim, Ki-Sun (Department of Plant Science, Seoul National University)
Publication Information
Horticultural Science & Technology / v.30, no.3, 2012 , pp. 236-242 More about this Journal
Abstract
We investigated the influences of night interruption (NI) and night temperature on flowering and flower coloration in Cymbidium. Cymbidium 'Red Fire' and 'Yokihi' were grown under a 9 hours photoperiod (control), a 9 hours photoperiod with NI at a low light intensity (LNI) of 3-7 ${\mu}mol{\cdot}m^{-2}{\cdot}s^{-1}$, or a 9 hours photoperiod with NI at a high light intensity (HNI) of 120 ${\mu}mol{\cdot}m^{-2}{\cdot}s^{-1}$ for four hours (22:00-02:00 HR) for 16 weeks during the reproductive growth stage (Experiment 1). Thirty month-old Cymbidium 'Red Fire' plants with initiated flowering buds were placed in four different growth chamber with night temperature set points of 6, 9, 12, or $15^{\circ}C$ for 16 hours (18:00 to 09:00 HR) and a daytime temperature of $25^{\circ}C$ (Experiment 2). In Experiment 1, the numbers of visible buds and flowers increased, and time to flowering decreased in both the LNI and HNI treatments, as compared to the control in both cultivars. Red color in Cymbidium 'Red Fire' increased by both LNI and HNI, as evidenced by an increased $a^*$ in plants grown under these conditions, relative to those grown under the control condition. Number of days to visible buds at 9-$15^{\circ}C$ ranged from 31-34 days, as compared to 39 days at $6^{\circ}C$ in Experiment 2. Although as the temperature increased days to flowering decreased when the plant was grown at $15^{\circ}C$ as compared to 6, 9, or $12^{\circ}C$, the red color ($a^*$) also decreased. The number of flowers and percent flowering increased when the night temperature was maintained higher than $9^{\circ}C$. Therefore, NI treatment and maintaining the night temperature at approximately 9-$12^{\circ}C$ during the winter season after flower spike initiation in the reproductive developmental growth stage improve flower quality and controls flowering time.
Keywords
coloration; flowering; photoperiod;
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1 Biran, I. and A.H. Halevy. 1974. Effects of varying light intensity and temperaure treatments applied to whole plants, or locally to leaves or flower buds, on growth and pigmentation of 'Baccara' roses. Physiol. Plant. 31:175-179.   DOI
2 Blanchard, M.G. and E.S. Runkle. 2008. Temperature and pseudobulb size influence flowering of Odontioda orchids. HortScience 43:1404-1409.
3 Vaz, A.P.A., R.D.L. Figueiredo-Ribeiro, and G.B. Kerbauy. 2004. Photoperiod and temperature effects on in vitro growth and flowering of P. pusilla, an epiphytic orchid. Plant Physiol. Biochnol. 42:411-415.   DOI
4 Weiss, D. and A.H. Halevy. 1991. The role of light reactions in the regulation of anthocyanin synthesis in Petunia corollas. Physiol. Plant. 81:127-133.   DOI
5 Whitman, C.M., R.D. Heins, A.C. Cameron, and W.H. Carlson. 1998. Lamp type and irradiance level for daylength extensions influence flowering of Campanula carpatica 'Blue Clips', Coreopsis grandiflora 'Early Sunrise', and Coreopsis verticillata 'Moonbeam'. J. Amer. Soc. Hort. Sci. 123:802-807.
6 Kubota, S., J. Yamamoto, Y. Takazawa, H. Sakasai, K. Watanabe, K. Yoneda, and N. Matsui. 2005. Effects of light intensity and temperature on growth, flowering, and singleleaf $CO_2$ assimilation in Odontioda orchid. J. Japan. Soc. Hort. Sci. 74:330-336.   DOI
7 Yamada, A., T. Tanigawa, T. Suyama, T. Matsuno, and T. Kunitake. 2009. Red:far-red light ratio and far-red light integral promote or retard growth and flowering in Eustoma grandiflorum (Raf.) Shinn. Scientia Hort. 120:101-106.   DOI   ScienceOn
8 Kim, H.J., H.H. Jung, and K.S. Kim. 2011a. Influence of photoperiod on growth and flowering of dwarf purple loosestrife. Hort. Environ. Biotechnol. 52:1-5.   과학기술학회마을   DOI
9 Kim, Y.J., H.J. Lee, and K.S. Kim. 2011b. Night interruption promotes vegetative growth and flowering of Cymbidium. Scientia Hort. 130:887-893.   DOI
10 Levitt, J. 1980. Responses of plants to environmental stresses. 2nd ed. Academic Press, New York, USA.
11 Mattson, N.S. and J.E. Erwin. 2005. The impact of photoperiod and irradiance on flowering of several herbaceous ornamentals. Scientia Hort. 104:275-292.   DOI   ScienceOn
12 Meng, X.C., T. Xing, and X.J. Wang. 2004. The role of light in the regulation of anthocyanin accumulation in Gerbera hybrida. Plant Growth Regulat. 44:243-250.   DOI
13 Miller, R., S.J. Owens, and B. Rørslett. 2011. Plants and colour: Flowers and pollination. Opt Laser Technol. 43:282-294.   DOI
14 Oh, W., Y.H. Rhie, J.H. Park, E.S. Runkle, and K.S. Kim. 2008. Flowering of cyclamen is accelerated by an increase in temperature, photoperiod, and daily light integral. J. Hort. Sci. Biotechnol. 83:559-562.
15 Rittershausen, W. and B. Rittershausen. 2009. The amazing world of orchids. Quadrille, London, UK.
16 Seddigh, M. and G.D. Jolliff. 1994. Light-intensity effects on meadowfoam growth and flowering. Crop Sci. 34:497-503.   DOI
17 Torres, A.P. and R.G. Lopez. 2011. Photoperiod and temperature influence flowering responses and morphology of Tecoma stans. HortScience 46:416-419.
18 Blanchard, M.G. and E.S. Runkle. 2010. Intermittent light from a rotating high-pressure sodium lamp promotes flowering of long-day plants. HortScience 45:236-241.
19 Clough, E.A., A.C. Cameron, R.D. Heins, and W.H. Carlson. 2001. Growth and development of Oenothera fruticosa is influenced by vernalization duration, photoperiod, forcing temperature, and plant growth regulators. J. Amer. Soc. Hort. Sci. 126:269-274.
20 Deal, D.L., J.C. Raulston, and L.E. Hinesley. 1990. Leaf color retention, dark respiration, and growth of red-leafed Japanese maples under high night temperatures. J. Amer. Soc. Hort. Sci. 115:135-140.
21 Dong, Y.H., L. Beuning, K. Davies, D. Mitra, B. Morris, and A. Kootstra. 1998. Expression of pigmentation genes and photo-regulation of anthocyanin biosynthesis in developing 'Royal Gala' apple flowers. Austr. J. Plant Physiol. 25:245-252.   DOI
22 Erwin, J.E., R. Warner, G.T. Smith, and R. Wagner. 1997. Photoperiod and temperature interact to affect Petunia ${\times}$ hybrida Vilm. development. HortScience 32:502. (Abstr.)
23 Francis, F.J. 1980. Color quality evaluation of horticultural crops. HortScience 15:58-59.
24 Halevy, A.H. 1985. Handbook of flowering Vol. 1. CRC Press, Boca Raton, Fl, USA.
25 Hew, C.S. and J.W.H. Yong. 2004. The physiology of tropical orchids in relation to the industry. World Scientific Press, Singapore.
26 Jiao, J., E.D. Leonardos, and B. Grodzinski. 1997. Approaches to measuring plant bioproductivity and growth, p. 699-716. In: M. Pessarakli (ed.). Handbook of photosynthesis. Marcel Dekker, New York, USA.
27 Kang, K.J., W. Oh, J.H. Shin, and K.S. Kim. 2008. Night interruption and cyclic lighting promote flowering of Cyclamen persicum under low temperature regime. Hort. Environ. Biotechnol. 49:72-77.