PlantTFDB
PlantRegMap/PlantTFDB v5.0
Plant Transcription Factor Database
Macleaya cordata
FAR1 Family
Species TF ID Description
OUZ99407.1FAR1 family protein
OUZ99541.1FAR1 family protein
OUZ99992.1FAR1 family protein
OVA00335.1FAR1 family protein
OVA00703.1FAR1 family protein
OVA00705.1FAR1 family protein
OVA01034.1FAR1 family protein
OVA02136.1FAR1 family protein
OVA02572.1FAR1 family protein
OVA03871.1FAR1 family protein
OVA04577.1FAR1 family protein
OVA04578.1FAR1 family protein
OVA04579.1FAR1 family protein
OVA04580.1FAR1 family protein
OVA04797.1FAR1 family protein
OVA04868.1FAR1 family protein
OVA05733.1FAR1 family protein
OVA06355.1FAR1 family protein
OVA06510.1FAR1 family protein
OVA06891.1FAR1 family protein
OVA07472.1FAR1 family protein
OVA07954.1FAR1 family protein
OVA09324.1FAR1 family protein
OVA09490.1FAR1 family protein
OVA10208.1FAR1 family protein
OVA10252.1FAR1 family protein
OVA11075.1FAR1 family protein
OVA11080.1FAR1 family protein
OVA11257.1FAR1 family protein
OVA11616.1FAR1 family protein
OVA12152.1FAR1 family protein
OVA12623.1FAR1 family protein
OVA13226.1FAR1 family protein
OVA13699.1FAR1 family protein
OVA14304.1FAR1 family protein
OVA14988.1FAR1 family protein
OVA15084.1FAR1 family protein
OVA16175.1FAR1 family protein
OVA16834.1FAR1 family protein
OVA18848.1FAR1 family protein
OVA18881.1FAR1 family protein
OVA19126.1FAR1 family protein
OVA19177.1FAR1 family protein
OVA19377.1FAR1 family protein
OVA19379.1FAR1 family protein
OVA20148.1FAR1 family protein
OVA20447.1FAR1 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