A rice phytochrome A in Arabidopsis:: The role of the N-terminus under red and far-red light

被引:32
作者
Kneissl, Julia [1 ]
Shinomura, Tomoko [2 ]
Furuya, Masaki [2 ]
Bolle, Cordelia [1 ]
机构
[1] Univ Munich, Bereich Botan, D-80638 Munich, Germany
[2] Hitachi Adv Res Lab, Hatoyama, Saitama 3500395, Japan
关键词
D O I
10.1093/mp/ssm010
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
The phytochrome (phy)A and phyB photoreceptors mediate three photobiological response modes in plants; whereas phyA can mediate the very-low-fluence response (VLFR), the high-irradiance response (HIR) and, to some extent, the low fluence response (LFR), phyB and other type II phytochromes only mediate the LFR. To investigate to what level a rice phyA can complement for Arabidopsis phyA or phyB function and to evaluate the role of the serine residues in the first 20 amino acids of the N-terminus of phyA, we examined VLFR, LFR, and HIR responses in phyB and phyAphyB mutant plants transformed with rice PHYA cDNA or a mutant rice PHYA cDNA in which the first 10 serine residues were mutated to alanines (phyA SA). Utilizing mutants without endogenous phyB allowed the evaluation of red-light-derived responses sensed by the rice phyA. In summary, the WT rice phyA could complement VLFR and LFR responses such as inhibition of hypocotyl elongation under pulses of FR or continuous R light, induction of flowering and leaf expansion, whereas the phyA SA was more specific for HIR responses (e. g. inhibition of hypocotyl elongation and anthocyanin accumulation under continuous far-red light). As the N-terminal serines can no longer be phosphorylated in the phyA SA mutant, this suggests a role for phosphorylation discriminating between the different phyA-dependent responses. The efficacy of the rice phyA expressed in Arabidopsis was dependent upon the developmental age of the plants analyzed and on the physiological response, suggesting a stage-dependent downstream modulation of phytochrome signaling.
引用
收藏
页码:84 / 102
页数:19
相关论文
共 90 条
[21]   THE PHYTOCHROME APOPROTEIN FAMILY IN ARABIDOPSIS IS ENCODED BY 5 GENES - THE SEQUENCES AND EXPRESSION OF PHYD AND PHYE [J].
CLACK, T ;
MATHEWS, S ;
SHARROCK, RA .
PLANT MOLECULAR BIOLOGY, 1994, 25 (03) :413-427
[22]   Sequences within both the N- and C-terminal domains of phytochrome A are required for PFR ubiquitination and degradation [J].
Clough, RC ;
Jordan-Beebe, ET ;
Lohman, KN ;
Marita, JM ;
Walker, JM ;
Gatz, C ;
Vierstra, RD .
PLANT JOURNAL, 1999, 17 (02) :155-167
[23]   PHOTOTRANSFORMATION OF PEA PHYTOCHROME-A INDUCES AN INCREASE IN ALPHA-HELICAL FOLDING OF THE APOPROTEIN - COMPARISON WITH A MONOCOT PHYTOCHROME-A AND CD ANALYSIS BY DIFFERENT METHODS [J].
DEFORCE, L ;
TOKUTOMI, S ;
SONG, PS .
BIOCHEMISTRY, 1994, 33 (16) :4918-4922
[24]   Phytochrome D acts in the shade-avoidance syndrome in Arabidopsis by controlling elongation growth and flowering time [J].
Devlin, PF ;
Robson, PRH ;
Patel, SR ;
Goosey, L ;
Sharrock, RA ;
Whitelam, GC .
PLANT PHYSIOLOGY, 1999, 119 (03) :909-915
[25]   Phytochrome E influences internode elongation and flowering time in Arabidopsis [J].
Devlin, PF ;
Patel, SR ;
Whitelam, GC .
PLANT CELL, 1998, 10 (09) :1479-1487
[26]   The rosette habit of Arabidopsis thaliana is dependent upon phytochrome action: Novel phytochromes control internode elongation and flowering time [J].
Devlin, PF ;
Halliday, KJ ;
Harberd, NP ;
Whitelam, GC .
PLANT JOURNAL, 1996, 10 (06) :1127-1134
[27]  
EMMLER K, 1995, PLANTA, V197, P103, DOI 10.1007/BF00239945
[28]   Phytochromes and shade-avoidance responses in plants [J].
Franklin, KA ;
Whitelam, GC .
ANNALS OF BOTANY, 2005, 96 (02) :169-175
[29]   Mutant analyses define multiple roles for phytochrome C in Arabidopsis photomorphogenesis [J].
Franklin, KA ;
Davis, SJ ;
Stoddart, WM ;
Vierstra, RD ;
Whitelam, GC .
PLANT CELL, 2003, 15 (09) :1981-1989
[30]   Phytochrome A is an irradiance-dependent red light sensor [J].
Franklin, Keara A. ;
Allen, Trudie ;
Whitelam, Garry C. .
PLANT JOURNAL, 2007, 50 (01) :108-117