Z-Box Binding Transcription Factors (ZBFs): A New Class of Transcription Factors in Arabidopsis Seedling Development

被引:37
作者
Gangappa, Sreeramaiah N. [1 ]
Srivastava, Anjil Kumar [1 ]
Maurya, Jay P. [1 ]
Ram, Hathi [1 ]
Chattopadhyay, Sudip [1 ]
机构
[1] Natl Inst Technol, Dept Biotechnol, Durgapur 713209, India
关键词
photomorphogenesis; transcription factor; Z-box; G-box; MYC2; ZBF1; GBF1; ZBF2; CAM7; ZBF3; ABSCISIC-ACID; GENE-EXPRESSION; LIGHT CONTROL; MEDIATED REGULATION; SIGNALING PATHWAYS; Z-DNA; UV-B; JASMONATE; MYC2; PHYTOCHROME;
D O I
10.1093/mp/sst140
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Although the function of each Z-box binding factor (ZBF) is qualitatively and quantitatively distinct, ZBFs integrate signals from multiple wavelengths of light to coordinate the transcriptional networks for plant growth and development.One set of genes encoding diverse groups of transcription factors that interact with the Z-box (ATACGTGT; a potential Z-DNA forming sequence) is called ZBFs (Z-box Binding Factors). ZBFs include ZBF1, ZBF2, and ZBF3, which encode ZBF1/MYC2 (bHLH), ZBF2/GBF1 (bZIP), and ZBF3/CAM7 (Calmodulin) proteins, respectively. With several recent reports, it is becoming increasingly evident that ZBFs play crucial roles in Arabidopsis seedling photomorphogenesis. ZBFs integrate signals from various wavelengths of light to coordinate the regulation of transcriptional networks that affect multiple facets of plant growth and development. The function of each ZBF is qualitatively and quantitatively distinct. The zbf mutants display pleiotropic effects including altered hypocotyl elongation, cotyledon expansion, lateral root development, and flowering time. In this inaugural review, we discuss the identification, molecular functions, and interacting partners of ZBFs in light-mediated Arabidopsis seedling development.
引用
收藏
页码:1758 / 1768
页数:11
相关论文
共 82 条
[1]   Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling [J].
Abe, H ;
Urao, T ;
Ito, T ;
Seki, M ;
Shinozaki, K ;
Yamaguchi-Shinozaki, K .
PLANT CELL, 2003, 15 (01) :63-78
[2]   Role of Arabidopsis MYC and MYB homologs in drought- and abscisic acid-regulated gene expression [J].
Abe, H ;
YamaguchiShinozaki, K ;
Urao, T ;
Iwasaki, T ;
Hosokawa, D ;
Shinozaki, K .
PLANT CELL, 1997, 9 (10) :1859-1868
[3]   Antagonistic interaction between abscisic acid and jasmonate-ethylene signaling pathways modulates defense gene expression and disease resistance in Arabidopsis [J].
Anderson, JP ;
Badruzsaufari, E ;
Schenk, PM ;
Manners, JM ;
Desmond, OJ ;
Ehlert, C ;
Maclean, DJ ;
Ebert, PR ;
Kazan, K .
PLANT CELL, 2004, 16 (12) :3460-3479
[4]   Molecular interaction between COP1 and HY5 defines a regulatory switch for light control of Arabidopsis development [J].
Ang, LH ;
Chattopadhyay, S ;
Wei, N ;
Oyama, T ;
Okada, K ;
Batschauer, A ;
Deng, XW .
MOLECULAR CELL, 1998, 1 (02) :213-222
[5]   Evolution of light-regulated plant promoters [J].
Argüello-Astorga, G ;
Herrera-Estrella, L .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1998, 49 :525-555
[6]  
Arsovski A.A., 2012, ARABIDOPSIS BOOK, V10, pe0147, DOI 10.1199/tab.0147
[7]   Decoding of light signals by plant phytochromes and their interacting proteins [J].
Bae, Gabyong ;
Choi, Giltsu .
ANNUAL REVIEW OF PLANT BIOLOGY, 2008, 59 :281-311
[8]   Jasmonate-induced defenses: a tale of intelligence, collaborators and rascals [J].
Ballare, Carlos L. .
TRENDS IN PLANT SCIENCE, 2011, 16 (05) :249-257
[9]   SHORT HYPOCOTYL INWHITE LIGHT1, a serine-arginine-aspartate-rich protein in Arabidopsis, acts as a negative regulator of photomorphogenic growth [J].
Bhatia, Shikha ;
Gangappa, Sreeramaiah N. ;
Kuswaha, Ritu ;
Kundu, Snehangshu ;
Chattopadhyay, Sudip .
PLANT PHYSIOLOGY, 2008, 147 (01) :169-178
[10]   Conserved MYC transcription factors play a key role in jasmonate signaling both in tomato and Arabidopsis [J].
Boter, M ;
Ruíz-Rivero, O ;
Abdeen, A ;
Prat, S .
GENES & DEVELOPMENT, 2004, 18 (13) :1577-1591