期刊文献+

DBB2 regulates plant height and shade avoidance responses in maize 被引量:1

原文传递
导出
摘要 Increasing plant density has been recognized as an effective strategy for boosting maize yields over the past few decades.However,dense planting significantly reduces the internal light intensity and the red to far-red(R:FR)light ratio in the canopy,which subsequently triggers shade avoidance responses(SAR)that limit further yield enhancements,particularly under high-density conditions.In this study,we identified double B-box containing protein DBB2,a member of the ZmBBX family that is rapidly induced by shade,as a crucial regulator of plant height and SAR.Disruption of DBB2 resulted in shorter internodes,reduced plant height,decreased cell elongation,and diminished sensitivity to shade in maize,effects that can be largely alleviated by external treatment with gibberellins(GA).Furthermore,we discovered that DBB2physically interacted with the transcription factor HY5,inhibiting its transcriptional activation of ZmGA2ox4,a gene encoding a GA2 oxidase that can deactivate GA.This interaction positively influences maize plant height through the GA pathway.Additionally,we found that the induction of ZmDBB2 by shade is mediated by the transcription factor PIF4.Interestingly,DBB2 then interacted with PIF4 to enhance the transcriptional activation of cell elongation-related genes,such as ZmEXPA1,thereby establishing a positive feedback loop promoting cell elongation under canopy shade conditions.Our findings highlight the critical role of BBX proteins in modulating plant height and SAR,presenting them as key genetic targets for developing maize varieties suited to high-density planting conditions.This study also provides new insights into the molecular mechanisms underlying SAR and offers potential strategies for the genetic improvement of maize plant architecture and grain yield.
出处 《Journal of Integrative Plant Biology》 2025年第5期1323-1338,共16页 植物学报(英文版)
基金 supported by the National Natural Science Foundation of China(32270263 to G.L.,32400297 to Q.S.,32372198 to F.K.) the Shandong Provincial Natural Science Foundation(ZR2022QC095,ZR2022MC019)。
  • 相关文献

参考文献2

二级参考文献63

  • 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48

同被引文献5

引证文献1

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