Agriculture Reference
In-Depth Information
Seo M, Nambara E, Choi G, Yamaguchi S. Interaction of light and hormone signals in germina-
tion seeds. Plant Mol Biol. 2009;69:463-72.
Shen H, Luong P, Huq E. The F-box protein MAX2 functions as a positive regulator of photo-
morphogenesis in Arabidopsis. Plant Physiol. 2007;145:1471-83.
Shen H, Moon J, Huq E. PIF1 is regulated by light-mediated degradation through the ubiquitin-
26S proteasome pathway to optimize photomorphogenesis of seedlings in Arabidopsis. Plant
J. 2005;44:1023-35.
Shen H, Zhu L, Bu QY, Huq E. MAX2 affects multiple hormones to promote photomorphogen-
esis. Mol Plant. 2012;5:750-62.
Shen YY, Wang XF, Wu FQ, Du SY, Cao Z, Shang Y, Wang SL, Peng CC, Yu XC, Zhu SY, Fan
RC, Xu YH, Zhang DP. The Mg-chelatase H subunit is an abscisic acid receptor. Nature.
2006;443:823-6.
Shi H, Zhong S, Mo X, Liu N, Nezames CD, Deng XW. HFR1 sequesters PIF1 to govern the
transcriptional network underlying light-initiated seed germination in Arabidopsis. Plant
Cell. 2013;25:3770-84.
Shinomura T. Phytochrome regulation of seed germination. J Plant Res. 1997;110:151-61.
Shinomura T, Nagatani A, Chory J, Furuya M. The induction of seed germination in Arabidopsis
thaliana isregulated principally by Phytochrome B and secondarily byPhytochrome A. Plant
Physiol. 1994;104:363-71.
Shinomura T, Nagatani A, Hanzawa H, Kubota M, Watanabe M, Furuya M. Action spectra for
phytochrome A- and B-specific photoinduction of seed germination in Arabidopsis thaliana.
Proc Natl Acad Sci USA. 1996;93:8129-33.
Staneloni RT, Rodriguez-Batiller MJ, Casal JJ. Abscisic acid, high-light, and oxidative stress
down-regulate a photosynthetic gene via a promoter motif not involved in phytochrome-
mediated transcriptional regulation. Mol Plant. 2008;1:75-83.
Stephenson PG, Terry MJ. Light signaling pathways regulating the Mg-chelatasebranchpoint of
chlorophyll synthesis during de-etiolation in Arabidopsis thaliana. Photochem Photobiol Sci.
2008;7:1243-52.
Takahashi N, Goto N, Okada K, Takahashi H. Hydrotropism in abscisic acid, wavy, and gravit-
ropic mutants of Arabidopsis thaliana. Planta. 2002;216:203-11.
Tanaka R, Tanaka A. Tetrapyrrole biosynthesis in higher plants. Annu Rev Plant Biol.
2007;58:321-46.
Tang WJ, Ji Q, Huang Y, Jiang Z, Bao M, Wang H, Lin R. FHY3 and FAR1 transcription factors
integrate light and abscisic acid signaling in Arabidopsis. Plant Physiol. 2013;163:857-66.
Thompson AJ, Jackson AC, Parker RA, Morpeth DR, Burbidge A, Taylor IB. Abscisic acid
biosynthesis in tomato: regulation of zeaxanthin epoxidase and 9-cisepoxycarotenoid
dioxygenase mRNAs by light/dark cycles, water stress and abscisic acid. Plant Mol Biol.
2000;42:833-45.
Toyomasu T, Yamane H, Murofushi N, Inoue Y. Effects of exogenously applied gibberellin and
red light on the endogenous levels of abscisic acid in photoblastic lettuce seeds. Plant Cell
Physiol. 1994;35:127-9.
Voigt C, Oster U, Bornke F, Jahns P, Dietze KJ, Leister D, Kleine T. In-depth analysis of the
distinctive effects of norflurazon implies that tetrapyrrole biosynthesis, organellar gene
expression and ABA cooperate in the GUN-type of plastid signaling. Physiol Plant.
2010;138:503-19.
Wang H, Deng XW. Arabidopsis FHY3 defines a key phytochromeA signaling component
directly interacting with its homologous partner FAR1. EMBO J. 2002;21:1339-49.
Warpeha KM, Upadhyay S, Yeh J, Adamiak J, Hawkins SI, Lapik YR, Anderson MB, Kaufman
LS. The GCR1, GPA1, PRN1, NF-Y signal chain mediates both blue light ans abscisic acid
responses in Arabidopsis. Plant Physiol. 2007;143:1590-600.
Weatherwax SC, Ong MS, Degenhardt J, Bray EA, Tobin EM. The interaction of light and absci-
sic acid in the regulation of plant gene expression. Plant Physiol. 1996;111:363-70.
Search WWH ::




Custom Search