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Regulation of the SQUAMOSA PROMOTER-BINDING PROTEIN-LIKE genes/microRNA 156 Module by the Homeodomain Proteins PENNYWISE and POUND-FOOLISH in Arabidopsis 被引量:14

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摘要 The morphology of inflorescences is regulated in part by the temporal and spatial events that regulate flower specification.In Arabidopsis,an endogenous flowering time pathway mediated by a subset of SQUAMOSA PROMOTER-BINDING PROTEIN-LIKE(SPL)transcription factors,including SPL3,SPL4,and SPL5,function to specify flowers by activating floral meristem identity genes.During shoot development,SPL3,SPL4,and SPL5 are post-transcriptionally regulated by microRNA156(miR156).The photoperiod regulated florigenic signal,FLOWERING LOCUS T(FT),promotes floral induction,in part by activating SPL3,SPL4,and SPL5.In turn,these SPLs function in parallel with FT to specify flower meristems.Two related BELLl-like homeobox genes PENNYWISE(PNY)and POUND-FOOLISH(PNF)expressed in the shoot apical meristem are absolutely required for the specification of floral meristems.Genetic studies show that the floral specification function of FT depends upon PNYand PNF;however,the interplay between these homeodomain proteins and SPLs is not known.In this manuscript,we show that the photoperiodic floral induction of SPL3,SPL4,and SPL5 is dependent upon PNY and PNE Further,PNY and PNF also control SPL3,SPL4,and SPL5 expression by negatively regulating miR156.Lastly,ectopic expres-sion of SPL4 partially rescues the pny pnf non-flower-producing phenotype,while overexpression of SPL3 or SPL5 in pny pnf plants was unable to restore flower specification.These results suggest that:(1)SPL3,SPL4,and SPL5 function is dependent upon PNY and PNF,or(2)expression of multiple SPLs is required for floral specification in pny pnf plants.
出处 《Molecular Plant》 SCIE CAS CSCD 2011年第6期1123-1132,共10页 分子植物(英文版)
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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 bZIP protein mediating signals from the floral pathway integrator FTat the shoot apex. Science. 309, 1052-1056.
  • 2Alvarez-Venegas, R., Pien, S., Sadder, M., Witmer, X., Grossniklaus, U., and Avramova, Z. (2003). ATX 1, an Arabidopsis homolog of trithorax, activates flower homeotic genes. Curr. Biol. 13, 627-637.
  • 3Ausin, I., AIonso-Blanco, C., Jarillo, J.A., Ruiz-Garcia, L., and Martinez- Zapater, J.M. (2004). Regulation of flowering time by FVE, a retinoblastoma-associated protein. Nat. Genet. 36, 162-166.
  • 4Barrero, J.M., Gonzalez-Bayon, R., del Pozo, J.C., Ponce, M.R., and Micol, J.L. (2007). INCURVATA2 encodes the catalytic subunit of DNA Polymerase alpha and interacts with genes involved in chromatin-mediated cellular memory in Arabidopsis thaliana. Plant Cell. 19, 2822-2838.
  • 5Bastow, R., Mylne, J.S., Lister, C., Lippman, Z., Martienssen, R.A., and Dean, C. (2004). Vernalization requires epigenetic silencing of FLC by histone methylation. Nature. 427, 164-167.
  • 6Baumbusch, L.O., Thorstensen, T., Krauss, V., Fischer, A., Naumann, K., Assalkhou, R., Schulz, I., Reuter, G., and Aalen, R.B. (2001). The Arabidopsis thaliana genome contains at least 29 active genes encoding SET domain proteins that can be assigned to four evolutionarily conserved classes. Nucleic Acids Res. 29, 4319-4333.
  • 7Baurle, I., and Dean, C. (2006). The timing of developmental transitions in plants. Cell. 125, 655-664.
  • 8Baurle, I., and Dean, C. (2008). Differential interactions of the autonomous pathway RRM proteins and chromatin regulators in the silencing of Arabidopsis targets. PLoS ONE. 3, e2733.
  • 9Baurle, I., Smith, L., Baulcombe, D.C., and Dean, C. (2007). Widespread role for the flowering-time regulators FCA and FPA in RNA-mediated chromatin silencing. Science. 318, 109-112.
  • 10Bernstein, B.E., et al. (2006). A bivalent chromatin structure marks key developmental genes in embryonic stem cells. Cell. 125, 315-326.

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  • 1Peng Ru,Lin Xu,Hong Ma,Hai Huang.Plant fertility defects induced by the enhanced expression of microRNA167[J].Cell Research,2006,16(5):457-465. 被引量:36
  • 2章文蔚,罗玉萍,李思光.microRNA及其在植物生长发育中的作用[J].植物生理学通讯,2006,42(6):1015-1020. 被引量:8
  • 3王磊,范云六.植物微小RNA(microRNA)研究进展[J].中国农业科技导报,2007,9(3):18-23. 被引量:16
  • 4Lee R C, Feinbaum R L, Ambres V. The C. elegans heterochronic gene hn4 encodes small RNAs with antlsense complementarity to lln - 14 [ J ]. Cell, 1993,75:843 - 854.
  • 5Reinhart B J,Slack F J, Basson M, Pasquinelli A E, Bettinger J C, Rougvie A E,Horvitz H R,Ruvkun G. The 21-nucleotide let- 7 RNA regulates developmental timing in Caenorhabditis elegans [ J ]. Nature ,2000,403:901 - 906.
  • 6Bonnet E, Wuyts J, Rouze P, Van de Peer Y. Evidence that microRNA precursors, unlike other non-coding RNAs, have lower folding free energies than random sequences [ J ]. Bioinformatics, 2004,20:2911 - 2917.
  • 7Reinhart B J,Weinstein E G,Rhoades M W,Bartel B,Bartel D P. MicroRNAs in plants[ J]. Genes & Develpmont, 2002,16 : 1616 - 1626.
  • 8Millar A A, Waterhouse P M. Plant and animal microRNAs: similarities and differences [ J ]. Functional Integrative Genomics, 2005,5:129 - 135.
  • 9Llave C, Kasschau K D, Rector M A, Carrington J C. Endogenous and silencing-associated small RNAs in plants [ J ]. The Plant Cell,2002, 14 : 1605 - 1619.
  • 10Suukar R,Zhu J K, Novel and stress-regulated microRNAs and other small RNAs from Arabidopsis[ J]. The Plant Cell,2004,16:2001 - 2019.

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