PlantTFDB
PlantRegMap/PlantTFDB v5.0
Plant Transcription Factor Database
Rubus occidentalis
FAR1 Family
Species TF ID Description
Ro01_G01326FAR1 family protein
Ro01_G27445FAR1 family protein
Ro02_G04036FAR1 family protein
Ro02_G08790FAR1 family protein
Ro02_G10941FAR1 family protein
Ro02_G10943FAR1 family protein
Ro02_G15129FAR1 family protein
Ro02_G19343FAR1 family protein
Ro02_G23738FAR1 family protein
Ro02_G35511FAR1 family protein
Ro02_G35602FAR1 family protein
Ro03_G10006FAR1 family protein
Ro03_G10173FAR1 family protein
Ro03_G11123FAR1 family protein
Ro03_G26345FAR1 family protein
Ro03_G32363FAR1 family protein
Ro03_G33013FAR1 family protein
Ro04_G13335FAR1 family protein
Ro04_G16087FAR1 family protein
Ro04_G21698FAR1 family protein
Ro04_G22286FAR1 family protein
Ro04_G26096FAR1 family protein
Ro04_G36266FAR1 family protein
Ro04_G36384FAR1 family protein
Ro04_G36412FAR1 family protein
Ro05_G13854FAR1 family protein
Ro05_G13874FAR1 family protein
Ro05_G26265FAR1 family protein
Ro05_G27840FAR1 family protein
Ro05_G31170FAR1 family protein
Ro06_G08427FAR1 family protein
Ro06_G09251FAR1 family protein
Ro06_G17330FAR1 family protein
Ro06_G20929FAR1 family protein
Ro06_G27219FAR1 family protein
Ro06_G27495FAR1 family protein
Ro06_G28421FAR1 family protein
Ro06_G28772FAR1 family protein
Ro07_G08947FAR1 family protein
Ro07_G11489FAR1 family protein
Ro07_G15143FAR1 family protein
Ro07_G18572FAR1 family protein
Ro07_G19867FAR1 family protein
Ro07_G19883FAR1 family protein
Ro07_G24890FAR1 family protein
Ro07_G25647FAR1 family protein
Ro07_G33459FAR1 family protein
Ro07_G34179FAR1 family protein
FAR1 Family Introduction

We show that Arabidopsis FHY3 and FAR1, which encode two proteins related to Mutator-like transposases, act together to modulate phyA signaling by directly activating the transcription of FHY1 and FHL, whose products are essential for light-induced phyA nuclear accumulation and subsequent light responses. FHY3 and FAR1 have separable DNA binding and transcriptional activation domains that are highly conserved in Mutator-like transposases. Further, expression of FHY3 and FAR1 is negatively regulated by phyA signaling. We propose that FHY3 and FAR1 represent transcription factors that have been co-opted from an ancient Mutator-like transposase(s) to modulate phyA-signaling homeostasis in higher plants.

We next used a yeast one-hybrid assay to delineate the DNA sequences to which FHY3 and FAR1 bind. GAD-FHY3 or GAD-FAR1 fusion proteins (GAD, GAL4 transcriptional activation domain), but not GAD alone, activated the LacZ reporter genes driven by the FHY1 and FHL promoters. Deletion analysis narrowed down the FHY3/FAR1 binding site to a 39-bp promoter subfragment located on the "a" fragment for both FHY1 and FHL. Notably, these subfragments share a stretch of consensus sequence, 5'-TTCACGCGCC-3'. Mutating the core sequence "CACGCGC" of this motif (m2 and m3 for FHY1, m5 for FHL) abolished the reporter gene activation by both GAD-FHY3 and GAD-FAR1. Mutating the flanking sequences (m1 and m4) did not obviously affect the reporter gene activation by GAD-FAR1, but clearly reduced activation by GAD-FHY3. Thus, "CACGCGC" likely defines a cis-element that confers specific binding for FHY3 and FAR1 and is named FBS for FHY3-FAR1 binding site.

Lin R, Ding L, Casola C, Ripoll DR, Feschotte C, Wang H.
Transposase-derived transcription factors regulate light signaling in Arabidopsis.
Science, 2007. 318(5854): p. 1302-5.
PMID: 18033885