Genetic and molecular analysis of phytochromes from the filamentous fungus Neurospora crassa

被引:127
作者
Froehlich, AC
Noh, B
Vierstra, RD
Loros, J
Dunlap, JC [1 ]
机构
[1] Dartmouth Coll Sch Med, Dept Genet, Hanover, NH 03755 USA
[2] Dartmouth Coll Sch Med, Dept Biochem, Hanover, NH 03755 USA
[3] Univ Wisconsin, Dept Genet, Madison, WI 53706 USA
关键词
D O I
10.1128/EC.4.12.2140-2152.2005
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Phytochromes (Phys) comprise a superfamily of red-/far-red-light-sensing proteins. Whereas higher-plant Phys that control numerous growth and developmental processes have been well described, the biochemical characteristics and functions of the microbial forms are largely unknown. Here, we describe analyses of the expression, regulation, and activities of two Phys in the filamentous fungus Neurospora crassa. In addition to containing the signature N-terminal domain predicted to covalently associate with a bilin chromophore, PHY-1 and PHY-2 contain C-terminal histidine kinase and response regulator motifs, implying that they function as hybrid two-component sensor kinases activated by light. A bacterially expressed N-terminal fragment of PHY-2 covalently bound either biliverdin or phycocyanobilin in vitro, with the resulting holoprotein displaying red-/far-red-light photochromic absorption spectra and a photocycle in vitro. cDNA analysis of phy-1 and phy-2 revealed two splice isoforms for each gene. The levels of the pity transcripts are not regulated by light, but the abundance of the phy-1 mRNAs is under the control of the circadian clock. Phosphorylated and unphosphorylated forms of PHY-1 were detected; both species were found exclusively in the cytoplasm, with their relative abundances unaffected by light. Strains containing deletions of phy-1 and phy-2, either singly or in tandem, were not compromised in any known photoresponses in Neurospora, leaving their function(s) unclear.
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页码:2140 / 2152
页数:13
相关论文
共 80 条
[31]   Light-dependent regulation of cyanobacterial phytochrome expression [J].
García-Domínguez, M ;
Muro-Pastor, MI ;
Reyes, JC ;
Florencio, FJ .
JOURNAL OF BACTERIOLOGY, 2000, 182 (01) :38-44
[32]   PHOTOCONTROL OF CAROTENOID BIOSYNTHESIS [J].
HARDING, RW ;
SHROPSHIRE, W .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1980, 31 :217-238
[33]   GENETIC-ANALYSIS OF PHOTOTROPISM OF NEUROSPORA-CRASSA PERITHECIAL BEAKS USING WHITE-COLLAR AND ALBINO MUTANTS [J].
HARDING, RW ;
MELLES, S .
PLANT PHYSIOLOGY, 1983, 72 (04) :996-1000
[34]   White collar-1, a DNA binding transcription factor and a light sensor [J].
He, QY ;
Cheng, P ;
Yang, YH ;
Wang, LX ;
Gardner, KH ;
Liu, Y .
SCIENCE, 2002, 297 (5582) :840-843
[35]   The PAS protein VIVID defines a clock-associated feedback loop that represses light input, modulates gating, and regulates clock resetting [J].
Heintzen, C ;
Loros, JJ ;
Dunlap, JC .
CELL, 2001, 104 (03) :453-464
[36]  
KARNIOL B, 2005, BIOCHEM J, DOI DOI 10.1045/BJ20050826
[37]   Light-induced nuclear import of phytochrome-A:GFP fusion proteins is differentially regulated in transgenic tobacco and Arabidopsis [J].
Kim, L ;
Kircher, S ;
Toth, R ;
Adam, E ;
Schäfer, E ;
Nagy, F .
PLANT JOURNAL, 2000, 22 (02) :125-133
[38]   Nucleocytoplasmic partitioning of the plant photoreceptors phytochrome A, B, C, D, and E is regulated differentially by light and exhibits a diurnal rhythm [J].
Kircher, S ;
Gil, P ;
Kozma-Bognár, L ;
Fejes, E ;
Speth, V ;
Husselstein-Muller, T ;
Bauer, D ;
Adám, É ;
Schäfer, E ;
Nagy, F .
PLANT CELL, 2002, 14 (07) :1541-1555
[39]   Light quality-dependent nuclear import of the plant photoreceptors phytochrome A and B [J].
Kircher, S ;
Kozma-Bognar, L ;
Kim, L ;
Adam, E ;
Harter, K ;
Schäfer, E ;
Nagy, F .
PLANT CELL, 1999, 11 (08) :1445-1456
[40]   CORRELATION BETWEEN ABSORBANCE CHANGES AND A PHYSIOLOGICAL-RESPONSE INDUCED BY BLUE-LIGHT IN NEUROSPORA [J].
KLEMM, E ;
NINNEMANN, H .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1978, 28 (02) :227-230