These authors contributed equally to this work.
The key enzyme of sulfate assimilation, adenosine 5′-phosphosulfate reductase, is regulated by HY5 in Arabidopsis
Article first published online: 4 JUL 2011
DOI: 10.1111/j.1365-313X.2011.04656.x
© 2011 The Authors. The Plant Journal © 2011 Blackwell Publishing Ltd
Additional Information
How to Cite
Lee, B.-R., Koprivova, A. and Kopriva, S. (2011), The key enzyme of sulfate assimilation, adenosine 5′-phosphosulfate reductase, is regulated by HY5 in Arabidopsis. The Plant Journal, 67: 1042–1054. doi: 10.1111/j.1365-313X.2011.04656.x
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These authors contributed equally to this work.
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Present address: Department of Biochemistry and Molecular Biology, Michigan State University, 209 Biochemistry Building, East Lansing, MI 48824-1319, USA.
Publication History
- Issue published online: 5 SEP 2011
- Article first published online: 4 JUL 2011
- Accepted manuscript online: 30 MAY 2011 09:31AM EST
- Received 15 April 2011; revised 18 May 2011; accepted 25 May 2011; published online 4 July 2011.
References
- , , , , , and (1998) Molecular interaction between COP1 and HY5 defines a regulatory switch for light control of Arabidopsis development. Mol. Cell, 1, 213–222.
- (1993) Regulatory interactions between sulfate and nitrate assimilation. In Sulfur Nutrition and Sulfur Assimilation in Higher Plants (De Kok, L.J., Stulen, I., Rennenberg, H., Brunold, C. and Rauser, W.E., eds). The Hague, The Netherlands: SPB Academic Publishing, pp. 61–75.
- and (2010) Regulation of sulfate uptake and assimilation – the same or not the same? Mol. Plant, 3, 314–325.
- and (1995) Induction of anthocyanin accumulation by cytokinins in Arabidopsis thaliana. Plant Physiol. 108, 47–57.
- , , , , , , and (2006) Leaf yellowing and anthocyanin accumulation are two genetically independent strategies in response to nitrogen limitation in Arabidopsis thaliana. Plant Cell Physiol. 47, 74–83.
- , , , , and (2007) The transcription factor HIG1/MYB51 regulates indolic glucosinolate biosynthesis in Arabidopsis thaliana. Plant J. 50, 886–901.
- , , , , and (2004) Sulfate assimilation in poplars (Populus tremula x P. alba) overexpressing γ-glutamylcysteine synthetase in the cytosol. J. Exp. Bot. 55, 837–845.
- , , et al. (2007) Omics-based identification of Arabidopsis Myb transcription factors regulating aliphatic glucosinolate biosynthesis. Proc. Natl Acad. Sci. USA, 104, 6478–6483.
- , , and (2002) Two interacting bZIP proteins are direct targets of COP1-mediated control of light-dependent gene expression in Arabidopsis. Genes Dev. 16, 1247–1259.
- , and (2008) HY5 and HYH are positive regulators of nitrate reductase in seedlings and rosette stage plants. Planta, 227, 559–564.
- , and (2009) The bZIP transcription factors HY5 and HYH are positive regulators of the main nitrate reductase gene in Arabidopsis leaves, NIA2, but negative regulators of the nitrate uptake gene NRT1.1. J. Plant Physiol. 166, 2071–2076.
- , , , , , and (2009) Sulfur starvation induces the expression of microRNA-395 and one of its target genes but in different cell types. Plant J. 57, 313–321.
- , , , , and (1999) Role of O-acetyl-l-serine in the coordinated regulation of the expression of a soybean seed storage-protein gene by sulfur and nitrogen nutrition. Planta, 209, 282–289.
- (2006) Regulation of sulfate assimilation in Arabidopsis and beyond. Ann. Bot. 97, 479–495.
- , , , , , and (1999) Light regulation of assimilatory sulfate reduction in Arabidopsis thaliana. Plant J. 20, 37–44.
- , , , , , and (2002) Interaction of sulfate assimilation with carbon and nitrogen metabolism in Lemna minor. Plant Physiol. 130, 1406–1413.
- , , , and (2000) Regulation of sulfate assimilation by nitrogen in Arabidopsis. Plant Physiol. 122, 737–746.
- , and (2008) Complex signaling network in regulation of adenosine 5′-phosphosulfate reductase by salt stress in Arabidopsis roots. Plant Physiol. 146, 1408–1420.
- , and (2010a) Arabidopsis root growth dependence on glutathione is linked to auxin transport. Plant Cell Rep. 29, 1157–1167.
- , , , , , , , and (2010b) Identification of a pentatricopeptide repeat protein implicated in splicing of intron 1 of mitochondrial nad7 transcripts. J. Biol. Chem. 285, 32192–32199.
- , , , and (1999) Inter-organ signaling in plants: regulation of ATP sulfurylase and sulfate transporter genes expression in roots mediated by phloem-translocated compound. Plant J. 18, 89–95.
- , , , , , , , , and (2007) Analysis of transcription factor HY5 genomic binding sites revealed its hierarchical role in light regulation of development. Plant Cell, 19, 731–749.
- (2005) Light regulation of nitrate uptake, assimilation and metabolism. In Plant Ecophysiology: Nitrogen Acquisition and Assimilation in Higher Plants, Volume 3 (Amancio, S. and Stulen, I., eds). Dordrecht, The Netherlands: Kluwer Academic Publishers, pp. 149–184.
- , , , and (2006) Arabidopsis SLIM1 is a central transcriptional regulator of plant sulfur response and metabolism. Plant Cell, 18, 3235–3251.
- , , et al. (2010) Plant homologs of the Plasmodium falciparum chloroquine-resistance transporter, PfCRT, are required for glutathione homeostasis and stress responses. Proc. Natl Acad. Sci. USA, 107, 2331–2336.
- , , and (2000) Negative regulation of nitrate reductase gene expression by glutamine or asparagines accumulating in leaves of sulfur-deprived tobacco. Planta, 211, 587–595.
- , , et al. (2009) Disruption of adenosine-5′-phosphosulfate kinase in Arabidopsis reduces levels of sulfated secondary metabolites. Plant Cell, 21, 910–927.
- , , , and (2011) Control of sulfur partitioning between primary and secondary metabolism. Plant J. 65, 96–105.
- , and (1991) Regulation of sulfate assimilation by light and O-acetyl-l-serine in Lemna minor L. Plant Physiol. 97, 253–258.
- , and (1989) Light-activation of ATP-sulfurylase in leaves and chloroplasts of Zea mays. Photosynthetica, 23, 166–172.
- , , and (2001) Rapid disruption of nitrogen metabolism and nitrate transport in spinach plants deprived of sulphate. J. Exp. Bot. 52, 113–121.
- , and (1980) Regulatory coupling of nitrate and sulfate assimilation pathways in cultured tobacco cells. Proc. Natl Acad. Sci. USA, 77, 6670–6672.
- , and (2008) The role of glutathione in photosynthetic organisms: emerging functions for glutaredoxins and glutathionylation. Annu. Rev. Plant Biol. 59, 143–166.
- , , , and (2009) Members of the LBD family of transcription factors repress anthocyanin synthesis and affect additional nitrogen responses in Arabidopsis. Plant Cell, 21, 3567–3584.
- , , , , , , , , and (2009) A regulated auxin minimum is required for seed dispersal in Arabidopsis. Nature, 459, 583–586.
- and (1996) Subcellular localization of spinach cysteine synthase isoforms and regulation of their gene expression by nitrogen and sulfur. Plant Physiol. 112, 273–280.
- , , , and (2011) Sulfur assimilation in photosynthetic organisms: molecular functions and regulations of transporters and assimilatory enzymes. Annu. Rev. Plant Biol. 62, 157–184.
- , , , , , , and (2004) Genome-wide analysis of gene expression reveals function of the bZIP transcription factor HY5 in the UV-B response of Arabidopsis. Proc. Natl Acad. Sci. USA, 101, 1397–1402.
- , , , , and (2007) HY5 is a point of convergence between cryptochrome and cytokinin signalling pathways in Arabidopsis thaliana. Plant J. 49, 428–441.
- , , , , , , , and (2002) Flux control of sulfate assimilation in Arabidopsis thaliana: adenosine 5′-phosphosulfate reductase is more susceptible to negative control by thiols than ATP sulfurylase. Plant J. 31, 729–740.
- , , et al. (2000) The ROOT MERISTEMLESS1/CADMIUM SENSITIVE2 gene defines a glutathione-dependent pathway involved in initiation and maintenance of cell division during postembryonic root development. Plant Cell, 12, 97–109.
- , , and (2010) MOTHER OF FT AND TFL1 regulates seed germination through a negative feedback loop modulating ABA signaling in Arabidopsis. Plant Cell, 22, 1733–1748.
- , , , and (1999) Differential accumulation of transcripts encoding sulfur assimilation enzymes upon sulfur and/or nitrogen deprivation in Arabidopsis thaliana. Biosci. Biotechnol. Biochem. 63, 762–766.
- , , , , , , , and (2010) Genes of primary sulfate assimilation are part of the glucosinolate biosynthetic network in Arabidopsis thaliana. Plant J. 62, 1–11.
- , , , and (2011) Both HY5 and HYH are necessary regulators for low temperature-induced anthocyanin accumulation in Arabidopsis seedlings. J. Plant Physiol. 168, 367–374.

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