期刊文献+

Modulation of starch synthesis in Arabidopsis via phytochrome B-mediated light signal transduction 被引量:2

原文传递
导出
摘要 Starch is a major storage carbohydrate in plants and is critical in crop yield and quality.Starch synthesis is intricately regulated by internal metabolic processes and external environmental cues;however,the precise molecular mechanisms governing this process remain largely unknown.In this study,we revealed that high red to far-red(high R:FR)light significantly induces the synthesis of leaf starch and the expression of synthesis-related genes,whereas low R:FR light suppress these processes.Arabidopsis phytochrome B(phyB),the primary R and FR photoreceptor,was identified as a critical positive regulator in this process.Downstream of phyB,basic leucine zipper transcription factor ELONGATED HYPOCOTYL5(HY5)was found to enhance starch synthesis,whereas the basic helix-loop-helix transcription factors PHYTOCHROME INTERACTING FACTORs(PIF3,PIF4,and PIF5)inhibit starch synthesis in Arabidopsis leaves.Notably,HY5 and PIFs directly compete for binding to a shared G-box cis-element in the promoter region of genes encoding starch synthases GBSS,SS3,and SS4,which leads to antagonistic regulation of their expression and,consequently,starch synthesis.Our findings highlight the vital role of phyB in enhancing starch synthesis by stabilizing HY5 and facilitating PIFs degradation under high R:FR light conditions.Conversely,under low R:FR light,PIFs predominantly inhibit starch synthesis.This study provides insight into the physiological and molecular functions of phyB and its downstream transcription factors HY5 and PIFs in starch synthesis regulation,shedding light on the regulatory mechanism by which plants synchronize dynamic light signals with metabolic cues to module starch synthesis.
出处 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2024年第5期973-985,共13页 植物学报(英文版)
基金 supported by the National Natural Science Foundation of China(32270263) the Shandong Provincial Natural Science Foundation(ZR2022QC095,ZR2020MC023,ZR2022MC019).
  • 相关文献

参考文献6

二级参考文献81

  • 1AI-Sady, B., Kikis, E.A., Monte, E., and Quail, P.H. (2008). Mechanis- tic duality of transcription factor function in phytochrome sig- naling. Proc. Natl Acad. Sci. U S A. 105, 2232-2237.
  • 2Al-Sady, B., Ni, W., Kircher, S., Schafer, E., and Quail, P.H. (2006). Photoactivated phytochrome induces rapid PIF3 phosphoryla- tion prior to proteasorne-rnediated degradation. Mol. Cell. 23, 439-446.
  • 3Bae, G., and Choi, G. (2008). Decoding of light signals by plant phy- tochromes and their interacting proteins. Annu. Rev. Plant Biol. 59, 281-311.
  • 4Ballare, C.L. (2009). Illuminated behaviour: phytochrome as a key regulator of light foraging and plant anti-herbivore defence. Plant Cell Environ. 32, 713-725.
  • 5Ballare, C.L (2011). Jasmonate-induced defenses: a tale of intelli- gence, collaborators and rascals~ Trends Plant Sci. 16, 249-257.
  • 6Bauer, D., et al. (2004). Constitutive photomorphogenesis 1 and multiple photoreceptors control degradation of phytochrome interacting factor 3, a transcription factor required for light sig- naling in Arabidopsis. Plant Cell. 16, 1433-1445.
  • 7Castillon, A., Shen, H., and Huq, E. (2007). Phytochrome Interacting Factors: central players in phytochrome-mediated light signaling networks. Trends Plant Sci. 12, 514-521.
  • 8Child, R., and Smith, H. (1987). Phytochrome action in light-grown mustard: kinetics, fluence-rate compensation and ecological sig- nificance. Planta. 172, 219-229.
  • 9Cole, B., Kay, S.A., and Chory, J. (2011). Automated analysis of hypocotyl growth dynamics during shade avoidance in Arabi- dopsis. Plant J. 65, 991-1000.
  • 10de Lucas, M., et al. (2008). A molecular framework for light and gibberellin control of cell elongation. Nature. 451,480-484.

共引文献135

同被引文献17

引证文献2

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部