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Using light to improve commercial value 被引量:4

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摘要 The plasticity of plant morphology has evolved to maximize reproductive fitness in response to prevailing environmental conditions.Leaf architecture elaborates to maximize light harvesting,while the transition to flowering can either be accelerated or delayed to improve an individual’s fitness.One of the most important environmental signals is light,with plants using light for both photosynthesis and as an environmental signal.Plants perceive different wavelengths of light using distinct photoreceptors.Recent advances in LED technology now enable light quality to be manipulated at a commercial scale,and as such opportunities now exist to take advantage of plants’developmental plasticity to enhance crop yield and quality through precise manipulation of a crops’lighting regime.This review will discuss how plants perceive and respond to light,and consider how these specific signaling pathways can be manipulated to improve crop yield and quality.
出处 《Horticulture Research》 SCIE 2018年第1期332-344,共13页 园艺研究(英文)
基金 The author thanks the University of Essex for funding this work.
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  • 1Abe, M., Kobayashi, Y., Yamamoto, S., Daimon, Y., Yamaguchi, A., Ikeda, Y., Ichinoki, H., Notaguchi, M., Goto, K., and Araki, T. (2005). FD, a bZlP protein mediating signals from the floral pathway integrator FT at the shoot apex. Science 309:1052-1056. 被引量:1
  • 2Adrian, J., Farrona, S., Reimer, J.J., Albani, M.C., Coupland, G., and Turck, F. (2010). cis-Regulatory elements and chromatin state coordinately control temporal and spatial expression of FLOWERING LOCUS T in Arabidopsis. Plant Cell 22:1425-1440. 被引量:1
  • 3Aguilar-Martinez, J.A., Poza-Carri6n, C., and Cubas, P. (2007). Arabidopsis BRANCHED1 acts as an integrator of branching signals within axillary buds. Plant Cell 19:458-472. 被引量:1
  • 4Ahn, J.H., Miller, D., Winter, V,J., Banfield, M.J., Lee, J.N., Yoo, S.Y., Henz, S.R., Brady, R.L., and Weigel, D. (2006). A divergent external loop confers antagonistic activity on floral regulators FT and TFL1. EMBO J. 25:605-614. 被引量:1
  • 5Amasino, R. (2010). Seasonal and developmental timing of flowering Plant J. 61:1001-1013. 被引量:1
  • 6Amaya, I., Ratcliffe, O.J., and Bradley, D.J. (1999). Expression of (CEN) and CEN-like genes in tobacco reveals a conserved mechanism controlling phase change in diverse species Plant Cell 11:1405-1418. 被引量:1
  • 7Ando, E., Ohnishi, M., Wang, Y., Matsushita, T., Watanabe, A., Hayashi, Y., Fujii, M., Ma, JoF., Inoue, S., and Kinoshita, T. (2013), TWIN SISTER OF FT, GIGANTEA, and CONSTANS have a positive but indirect effect on blue light-induced stomatal opening in Arabidopsis. Plant Physiol. 162:1529-1538. 被引量:1
  • 8Andr6s, F., and Coupland, G. (2012). The genetic basis of flowering responses to seasonal cues. Nat. Rev. Genet. 13:627-639. Bernard, R.L. (1972). Two genes affecting stem termination in soybeans. Crop Sci. 12:235-239. 被引量:1
  • 9Blackman, B.K., Strasburg, J.L., Raduski, A.R., Michaels, S.D., and Rieseberg, L.H. (2010). The role of recently derived FT paralogs in sunflower domestication. Curr. Biol. 20:629-635. 被引量:1
  • 10Blazquez, M.A., Ahn, J.H., and Weigel, D. (2003). A thermosensory pathway controlling flowering time in Arabidopsis thaliana. Nat. Genet. 33:168-171. 被引量:1

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