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Apical meristem transcriptome analysis identifies a role for the blue light receptor gene GhFKF1 in cotton architecture development

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摘要 Cotton architecture is determined by the differentiation fate transition of axillary meristem(AM),and influences cotton yield and the efficiency of mechanized harvesting.We observed that the initiation of flowering primordium was earlier in early-maturing than that in late-maturing cultivars during the differentiation and development of AM.The RNA-Seq and expression level analyses showed that genes FLAVIN BINDING,KELCH REPEAT,F-BOX1(GhFKF1),and GIGANTEA(GhGI)were in response to circadian rhythms,and involved in the regulation of cotton flowering.The gene structure,predicted protein structure,and motif content analyses showed that in Arabidopsis,cotton,rapseed,and soybean,proteins GhFKF1 and GhGI were functionally conserved and share evolutionary origins.Compared to the wild type,in GhFKF1 mutants that were created by the CRISPR/Cas9 system,the initiation of branch primordium was inhibited.Conversely,the knocking out of GhGI increased the number of AM differentiating into flower primordium,and there were much more lateral branch differentiation and development.Besides,we investigated that proteins GhFKF1 and GhGI can interact with each other.These results suggest that GhFKF1 and GhGI are key regulators of cotton architecture development,and may collaborate to regulate the differentiation fate transition of AM,ultimately influencing plant architecture.We describe a strategy for using the CRISPR/Cas9 system to increase cotton adaptation and productivity by optimizing plant architecture.
出处 《The Crop Journal》 SCIE CSCD 2024年第4期1126-1136,共11页 作物学报(英文版)
基金 funded by the National Key Research and Development Program of China(2020YFD1001004) the China Agricultural Research System(CARS-15-06).
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  • 1Abe, M., et al. (2005). FD, a bZIP protein mediating signals from the floral pathway integrator FT at the shoot apex. Science. 309, 1052-1056.
  • 2Andrade, M.A., Gonzalez-Guzman, M., Serrano, R., and Rodriguez, RL. (2001). A combination of the F-box motif and Kelch repeats defines a large Arabidopsis family of F-box pro- teins. Plant Mol. Biol. 46, 603-614.
  • 3Baudry, A., etal. (2010). F-box proteins FKF1 and LKP2 act in concert with ZEITLUPE to control Arabidopsis clock progression. Plant Cell. 22, 606-622.
  • 4Chaves, I~, et al. (2011). The cryptochromes: blue light photorecep- tors in plants and animals. Annu. Rev. Plant Biol. 62, 335-364.
  • 5Chen, M., Chory, J., and Fankhauser, C. (2004). Light signal transduc- tion in higher plants. Annu. Rev. Genet. 38, 87-117.
  • 6Christie, J.M. (2007). Phototropin blue-light receptors. Annu. Rev. Plant Biol. 58, 21-45.
  • 7Christie, J.M., et al. (1998). Arabidopsis NPHI: a flavoprotein with the properties of a photoreceptor for phototropism. Science. 282, 1698-1701.
  • 8Christie, J.M., et al. (2007). Steric interactions stabilize the signaling state of the LOV2 domain of phototropin 1. Biochemistry. 46, 9310-9319.
  • 9Christie, J.M., et al. (2011). photl inhibition of ABCB19 primes lateral auxin fluxes in the shoot apex required for phototropism. PLoS Biol. 9, ei001076.
  • 10Christie, J.M., Swartz, T.E., Bogomolni, R.A., and Briggs, W.R. (2002). Phototropin LOV domains exhibit distinct roles in regulating photoreceptor function. Plant J. 32, 205-219.

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