Evolutionary Studies Illuminate the Structural-Functional Model of Plant Phytochromes

被引:94
作者
Mathews, Sarah [1 ]
机构
[1] Arnold Arboretum Harvard Univ, Cambridge, MA 02138 USA
基金
美国国家科学基金会;
关键词
FAR-RED LIGHT; CHROMOPHORE-BINDING DOMAIN; SHADE-AVOIDANCE-RESPONSE; QUANTITATIVE TRAIT LOCI; KINASE-RELATED DOMAIN; N-TERMINAL DOMAIN; ARABIDOPSIS-THALIANA; FLOWERING TIME; GENE FAMILY; SIGNAL-TRANSDUCTION;
D O I
10.1105/tpc.109.072280
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
A synthesis of insights from functional and evolutionary studies reveals how the phytochrome photoreceptor system has evolved to impart both stability and flexibility. Phytochromes in seed plants diverged into three major forms, phyA, phyB, and phyC, very early in the history of seed plants. Two additional forms, phyE and phyD, are restricted to flowering plants and Brassicaceae, respectively. While phyC, D, and E are absent from at least some taxa, phyA and phyB are present in all sampled seed plants and are the principal mediators of red/far-red-induced responses. Conversely, phyC-E apparently function in concert with phyB and, where present, expand the repertoire of phyB activities. Despite major advances, aspects of the structural-functional models for these photoreceptors remain elusive. Comparative sequence analyses expand the array of locus-specific mutant alleles for analysis by revealing historic mutations that occurred during gene lineage splitting and divergence. With insights from crystallographic data, a subset of these mutants can be chosen for functional studies to test their importance and determine the molecular mechanism by which they might impact light perception and signaling. In the case of gene families, where redundancy hinders isolation of some proportion of the relevant mutants, the approach may be particularly useful.
引用
收藏
页码:4 / 16
页数:13
相关论文
共 150 条
[41]   Amino acid polymorphisms in Arabidopsis phytochrome B cause differential responses to light [J].
Filiault, Daniele L. ;
Wessinger, Carolyn A. ;
Dinneny, Jose R. ;
Lutes, Jason ;
Borevitz, Justin O. ;
Weigel, Detlef ;
Chory, Joanne ;
Maloof, Julin N. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (08) :3157-3162
[42]   Gene duplication and evolutionary novelty in plants [J].
Flagel, Lex E. ;
Wendel, Jonathan F. .
NEW PHYTOLOGIST, 2009, 183 (03) :557-564
[43]  
Frankland B., 1983, Encyclopaedia of Plant Physiology. New Series. Volume 16A. Photomorphogenesis, P428
[44]   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
[45]   Shade avoidance [J].
Franklin, Keara A. .
NEW PHYTOLOGIST, 2008, 179 (04) :930-944
[46]   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
[47]   Phytochrome functions in Arabidopsis development [J].
Franklin, Keara A. ;
Quail, Peter H. .
JOURNAL OF EXPERIMENTAL BOTANY, 2010, 61 (01) :11-24
[48]   Evolutionary aspects of functional and pseudogene members of the phytochrome gene family in Scots pine [J].
Garcia-Gil, Maria Rosario .
JOURNAL OF MOLECULAR EVOLUTION, 2008, 67 (02) :222-232
[49]   Nucleotide diversity at two phytochrome loci along a latitudinal cline in Pinus sylvestris [J].
García-Gil, MR ;
Mikkonen, M ;
Savolainen, O .
MOLECULAR ECOLOGY, 2003, 12 (05) :1195-1206
[50]   Differential patterns of expression of the arabidopsis PHYB, PHYD, and PHYE phytochrome genes [J].
Goosey, L ;
Palecanda, L ;
Sharrock, RA .
PLANT PHYSIOLOGY, 1997, 115 (03) :959-969