Photosynthetic sucrose acts as cotyledon-derived long-distance signal to control root growth during early seedling development in Arabidopsis.

PubWeight™: 1.11‹?› | Rank: Top 10%

🔗 View Article (PMC 3396492)

Published in Proc Natl Acad Sci U S A on June 25, 2012

Authors

Stefan Kircher1, Peter Schopfer

Author Affiliations

1: Department of Plant Physiology, Faculty of Biology, Albert-Ludwigs-University, D-79104 Freiburg, Germany. stefan.kircher@biologie.uni-freiburg.de

Articles citing this

Soluble carbohydrates regulate auxin biosynthesis via PIF proteins in Arabidopsis. Plant Cell (2012) 1.39

An endogenous carbon-sensing pathway triggers increased auxin flux and hypocotyl elongation. Plant Physiol (2012) 1.18

Light as stress factor to plant roots - case of root halotropism. Front Plant Sci (2014) 1.01

Arabidopsis type I proton-pumping pyrophosphatase expresses strongly in phloem, where it is required for pyrophosphate metabolism and photosynthate partitioning. Plant Physiol (2015) 0.98

The art of being flexible: how to escape from shade, salt, and drought. Plant Physiol (2014) 0.93

A dual role of strigolactones in phosphate acquisition and utilization in plants. Int J Mol Sci (2013) 0.93

Interplay between sucrose and folate modulates auxin signaling in Arabidopsis. Plant Physiol (2013) 0.92

Glucose control of root growth direction in Arabidopsis thaliana. J Exp Bot (2014) 0.88

Two cytosolic glutamine synthetase isoforms play specific roles for seed germination and seed yield structure in Arabidopsis. J Exp Bot (2014) 0.88

Photoreceptor effects on plant biomass, resource allocation, and metabolic state. Proc Natl Acad Sci U S A (2016) 0.87

The relationship between leaf area growth and biomass accumulation in Arabidopsis thaliana. Front Plant Sci (2015) 0.87

Phloem transport velocity varies over time and among vascular bundles during early cucumber seedling development. Plant Physiol (2013) 0.87

Interaction between glucose and brassinosteroid during the regulation of lateral root development in Arabidopsis. Plant Physiol (2015) 0.86

How and why do root apices sense light under the soil surface? Front Plant Sci (2015) 0.85

Poly(ADP-ribose)polymerase activity controls plant growth by promoting leaf cell number. PLoS One (2014) 0.83

High-resolution confocal imaging of wall ingrowth deposition in plant transfer cells: Semi-quantitative analysis of phloem parenchyma transfer cell development in leaf minor veins of Arabidopsis. BMC Plant Biol (2015) 0.81

The effects of rising atmospheric carbon dioxide on shoot-root nitrogen and water signaling. Front Plant Sci (2013) 0.81

Light and gravity signals synergize in modulating plant development. Front Plant Sci (2014) 0.79

Increased Sucrose Accumulation Regulates Iron-Deficiency Responses by Promoting Auxin Signaling in Arabidopsis Plants. Plant Physiol (2015) 0.79

Consequences of a deficit in vitamin B6 biosynthesis de novo for hormone homeostasis and root development in Arabidopsis. Plant Physiol (2014) 0.79

Overexpression of a brassinosteroid biosynthetic gene Dwarf enhances photosynthetic capacity through activation of Calvin cycle enzymes in tomato. BMC Plant Biol (2016) 0.78

OsERF2 controls rice root growth and hormone responses through tuning expression of key genes involved in hormone signaling and sucrose metabolism. Plant Mol Biol (2015) 0.77

Integration of light and metabolic signals for stem cell activation at the shoot apical meristem. Elife (2016) 0.77

Over-expression of Arabidopsis AtCHR23 chromatin remodeling ATPase results in increased variability of growth and gene expression. BMC Plant Biol (2014) 0.76

Photosynthate Regulation of the Root System Architecture Mediated by the Heterotrimeric G Protein Complex in Arabidopsis. Front Plant Sci (2016) 0.75

Spatiotemporal Phytochrome Signaling during Photomorphogenesis: From Physiology to Molecular Mechanisms and Back. Front Plant Sci (2016) 0.75

Regulation of root development in Arabidopsis thaliana by phytohormone-secreting epiphytic methylobacteria. Protoplasma (2017) 0.75

GA(3) enhances root responsiveness to exogenous IAA by modulating auxin transport and signalling in Arabidopsis. Plant Cell Rep (2014) 0.75

Articles cited by this

Sugar sensing and signaling in plants: conserved and novel mechanisms. Annu Rev Plant Biol (2006) 7.03

cop1: a regulatory locus involved in light-controlled development and gene expression in Arabidopsis. Genes Dev (1991) 5.64

Genetic and molecular analysis of an allelic series of cop1 mutants suggests functional roles for the multiple protein domains. Plant Cell (1994) 4.07

Auxin promotes Arabidopsis root growth by modulating gibberellin response. Nature (2003) 3.80

COP1 - from plant photomorphogenesis to mammalian tumorigenesis. Trends Cell Biol (2005) 3.01

The FUSCA genes of Arabidopsis: negative regulators of light responses. Mol Gen Genet (1994) 2.59

Effects of the herbicide san 9789 on photomorphogenic responses. Plant Physiol (1979) 2.57

Genetic evidence for the in planta role of phloem-specific plasma membrane sucrose transporters. Proc Natl Acad Sci U S A (2000) 2.53

Molecular physiology of higher plant sucrose transporters. FEBS Lett (2007) 2.24

Sugar signals and molecular networks controlling plant growth. Curr Opin Plant Biol (2010) 2.03

Plant hormone signaling lightens up: integrators of light and hormones. Curr Opin Plant Biol (2010) 1.95

Survival of the flexible: hormonal growth control and adaptation in plant development. Nat Rev Genet (2009) 1.81

Genomic evidence for COP1 as a repressor of light-regulated gene expression and development in Arabidopsis. Plant Cell (2002) 1.52

The action mechanisms of plant cryptochromes. Trends Plant Sci (2011) 1.51

Functional characterization of the Arabidopsis AtSUC2 Sucrose/H+ symporter by tissue-specific complementation reveals an essential role in phloem loading but not in long-distance transport. Plant Physiol (2008) 1.47

Sucrose: metabolite and signaling molecule. Phytochemistry (2010) 1.40

Circadian control of root elongation and C partitioning in Arabidopsis thaliana. Plant Cell Environ (2011) 1.37

Phytochrome coordinates Arabidopsis shoot and root development. Plant J (2007) 1.33

Integration of light and auxin signaling. Cold Spring Harb Perspect Biol (2009) 1.28

Sugar signaling in root responses to low phosphorus availability. Plant Physiol (2011) 1.25

Hierarchical coupling of phytochromes and cryptochromes reconciles stability and light modulation of Arabidopsis development. Development (2001) 1.18

SCAR mediates light-induced root elongation in Arabidopsis through photoreceptors and proteasomes. Plant Cell (2011) 1.15

Root system architecture in Arabidopsis grown in culture is regulated by sucrose uptake in the aerial tissues. Plant Cell (2008) 1.13

The roles of phytochromes in elongation and gravitropism of roots. Plant Cell Physiol (2005) 1.11

Light-controlled inhibition of hypocotyl growth inSinapis alba L. seedlings : Fluence rate dependence of hourly light pulses and continuous irradiation. Planta (1982) 1.02

Cryptochrome photoreceptors cry1 and cry2 antagonistically regulate primary root elongation in Arabidopsis thaliana. Planta (2006) 1.01

Root-localized phytochrome chromophore synthesis is required for photoregulation of root elongation and impacts root sensitivity to jasmonic acid in Arabidopsis. Plant Physiol (2011) 0.98

Photomorphogenesis. Arabidopsis Book (2012) 0.97