期刊文献+

Paradigms and Paradox in the Ethylene Signaling Pathway and Interaction Network 被引量:24

Paradigms and Paradox in the Ethylene Signaling Pathway and Interaction Network
原文传递
导出
摘要 Phytohormone ethylene plays pivotal roles in plant response to developmental and environmental signals. During the past few years, the emerging evidence has led us to a new understanding of the signaling mechanisms and regulatory networks of the ethylene action. In this review, we focus on the major advances made in the past three years, particularly the findings leading to new paradigms and the observations under debate. With the recent demonstration of the regulation of the protein stability of numerous key signaling components including EIN3, ELL1, EIN2, ETR2, EBFI/EBF2, and ETPI/ETP2, we highlight proteasome-dependent protein degradation as an essential regulatory mechanism that is widely adopted in the ethylene signaling pathway. We also discuss the implication of the negative feedback mechanism in the ethylene signaling pathway in light of ethylene-induced ETR2 and EBF2 gene expression. Meanwhile, we summarize the controversy on the involvement of MKK9-MPK3/6 cascade in the ethylene signaling versus biosynthesis pathway, and discuss the possible role of this MAPK module in the ethylene action. Finally, we describe the complex interactions between ethylene and other signaling pathways including auxin, light, and plant innate immunity, and propose that EIN3/ EIL1 act as a convergence point in the ethylene-initiated signaling network. Phytohormone ethylene plays pivotal roles in plant response to developmental and environmental signals. During the past few years, the emerging evidence has led us to a new understanding of the signaling mechanisms and regulatory networks of the ethylene action. In this review, we focus on the major advances made in the past three years, particularly the findings leading to new paradigms and the observations under debate. With the recent demonstration of the regulation of the protein stability of numerous key signaling components including EIN3, ELL1, EIN2, ETR2, EBFI/EBF2, and ETPI/ETP2, we highlight proteasome-dependent protein degradation as an essential regulatory mechanism that is widely adopted in the ethylene signaling pathway. We also discuss the implication of the negative feedback mechanism in the ethylene signaling pathway in light of ethylene-induced ETR2 and EBF2 gene expression. Meanwhile, we summarize the controversy on the involvement of MKK9-MPK3/6 cascade in the ethylene signaling versus biosynthesis pathway, and discuss the possible role of this MAPK module in the ethylene action. Finally, we describe the complex interactions between ethylene and other signaling pathways including auxin, light, and plant innate immunity, and propose that EIN3/ EIL1 act as a convergence point in the ethylene-initiated signaling network.
出处 《Molecular Plant》 SCIE CAS CSCD 2011年第4期626-634,共9页 分子植物(英文版)
关键词 Ethylene signaling MAPK protein turnover negative feedback ETP1/2 interplay. Ethylene signaling MAPK protein turnover negative feedback ETP1/2 interplay.
  • 相关文献

参考文献3

二级参考文献77

  • 1Abel S, Nguyen MD, Chow W, Theologis A (1995). ACS4, a primary indoleacetic acid-responsive gene encoding 1-aminocyclopropane- 1-carboxylate synthase in Arabidopsis thaliana. Structural characterization, expression in Escherichia coil, and expression characteristics in response to auxin. J. BioL Chem. 270, 19093-19099.
  • 2Achard P, Vriezen WH, Van Der Straeten D, Harberd NP (2003). Ethylene regulates Arabidopsis development via the modulation of DELLA protein growth repressor function. Plant Cell 15, 2816- 2825.
  • 3Alonso J M, Hirayama T, Roman G, Nourizadeh S, Ecker JR (1999). EIN2, a bifunctional transducer of ethylene and stress responses in Arabidopsis. Science 284, 2148-2152.
  • 4Barry CS, Giovannoni JJ (2006). Ripening in the tomato green-ripe mutant is inhibited by ectopic expression of a protein that disrupts ethylene signaling. Proc. Natl. Acad. Sci. USA 103, 7923-7928.
  • 5Beaudoin N, Serizet C, Gosti F, Giraudat J (2000). Interactions between abscisic acid and ethylene signaling cascades, Plant Cell 12, 1103-1115.
  • 6Binder BM, Walker JM, Gagne JM, Emborg T J, Hemmann G, Bleecker AB et al. (2007). The Arabidopsis EIN3 binding F-Box proteins EBF1 and EBF2 have distinct but overlapping roles in ethylene signaling. Plant Cell 19, 509-523.
  • 7Bleecker AB, Kende H (2000). Ethylene: a gaseous signal molecule in plants. Annu. Rev. Cell Dev. Biol. 16, 1-18.
  • 8Bleecker AB, Estelle MA, Somerville C, Kende H (1988). Insensitivity to ethylene conferred by a dominant mutation in Arabidopsis thaliana. Science 241, 1086-1089.
  • 9Chang C (2003). Ethylene signaling: the MAPK module has finally landed. Trends Plant Sci. 8, 365-368.
  • 10Chang C, Kwok SF, Bleecker AB, Meyerowitz EM (1993). Arabidopsis ethylene response gene ETR1-similarity of product to 2-component regulators. Science 262, 539-544.

共引文献29

同被引文献149

引证文献24

二级引证文献134

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