Spatially and genetically distinct control of seed germination by phytochromes A and B
0301 basic medicine
Plant Growth Regulators/metabolism
ABI5
info:eu-repo/classification/ddc/580
Arabidopsis/embryology/genetics/metabolism
Arabidopsis
seed germination
Germination
DELLA factors
abscisic acid
03 medical and health sciences
Plant Growth Regulators
Endosperm/metabolism
Gene Expression Regulation, Plant
Phytochrome B
Phytochrome A
Phytochrome A/metabolism
Promoter Regions, Genetic
Abscisic Acid/metabolism
Phytochrome B/metabolism
Arabidopsis Proteins
Seeds/embryology/metabolism
phyB
Endosperm
phyA
ddc:580
Seeds
Arabidopsis Proteins/metabolism
Abscisic Acid
Signal Transduction
DOI:
10.1101/gad.194266.112
Publication Date:
2012-09-04T14:49:38Z
AUTHORS (8)
ABSTRACT
Phytochromes phyB and phyA mediate a remarkable developmental switch whereby, early upon seed imbibition, canopy light prevents phyB-dependent germination, whereas later on, it stimulates phyA-dependent germination. Using a seed coat bedding assay where the growth of dissected embryos is monitored under the influence of dissected endosperm, allowing combinatorial use of mutant embryos and endosperm, we show that canopy light specifically inactivates phyB activity in the endosperm to override phyA-dependent signaling in the embryo. This interference involves abscisic acid (ABA) release from the endosperm and distinct spatial activities of phytochrome signaling components. Under the canopy, endospermic ABA opposes phyA signaling through the transcription factor (TF) ABI5, which shares with the TF PIF1 several target genes that negatively regulate germination in the embryo. ABI5 enhances the expression of phytochrome signaling genes PIF1, SOMNUS, GAI, and RGA, but also of ABA and gibberellic acid (GA) metabolic genes. Over time, weaker ABA-dependent responses eventually enable phyA-dependent germination, a distinct type of germination driven solely by embryonic growth.
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CITATIONS (106)
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