Published in Nature on December 04, 2003
Sugars and circadian regulation make major contributions to the global regulation of diurnal gene expression in Arabidopsis. Plant Cell (2005) 4.13
Plant circadian rhythms. Plant Cell (2006) 4.06
Circadian mutant Overtime reveals F-box protein FBXL3 regulation of cryptochrome and period gene expression. Cell (2007) 3.99
Extension of a genetic network model by iterative experimentation and mathematical analysis. Mol Syst Biol (2005) 3.88
The ubiquitin-26S proteasome system at the nexus of plant biology. Nat Rev Mol Cell Biol (2009) 3.81
Experimental validation of a predicted feedback loop in the multi-oscillator clock of Arabidopsis thaliana. Mol Syst Biol (2006) 3.68
LUX ARRHYTHMO encodes a Myb domain protein essential for circadian rhythms. Proc Natl Acad Sci U S A (2005) 3.04
The ubiquitin-proteasome pathway and plant development. Plant Cell (2004) 2.72
Interplay between ethylene, ETP1/ETP2 F-box proteins, and degradation of EIN2 triggers ethylene responses in Arabidopsis. Genes Dev (2009) 2.59
PSEUDO-RESPONSE REGULATORS 9, 7, and 5 are transcriptional repressors in the Arabidopsis circadian clock. Plant Cell (2010) 2.57
A novel computational model of the circadian clock in Arabidopsis that incorporates PRR7 and PRR9. Mol Syst Biol (2006) 2.48
PSEUDO-RESPONSE REGULATOR 7 and 9 are partially redundant genes essential for the temperature responsiveness of the Arabidopsis circadian clock. Plant Cell (2005) 2.48
TOC1 functions as a molecular switch connecting the circadian clock with plant responses to drought. EMBO J (2009) 2.38
A functional link between rhythmic changes in chromatin structure and the Arabidopsis biological clock. Plant Cell (2007) 2.37
COP1 and ELF3 control circadian function and photoperiodic flowering by regulating GI stability. Mol Cell (2008) 2.34
The clock gene circuit in Arabidopsis includes a repressilator with additional feedback loops. Mol Syst Biol (2012) 2.34
Arabidopsis circadian clock protein, TOC1, is a DNA-binding transcription factor. Proc Natl Acad Sci U S A (2012) 2.19
JETLAG resets the Drosophila circadian clock by promoting light-induced degradation of TIMELESS. Science (2006) 2.13
Conservation of Arabidopsis flowering genes in model legumes. Plant Physiol (2005) 1.98
PRR3 Is a vascular regulator of TOC1 stability in the Arabidopsis circadian clock. Plant Cell (2007) 1.97
The molecular basis of diversity in the photoperiodic flowering responses of Arabidopsis and rice. Plant Physiol (2004) 1.96
Molecular mechanism of light responses in Neurospora: from light-induced transcription to photoadaptation. Genes Dev (2005) 1.89
An expanding universe of circadian networks in higher plants. Trends Plant Sci (2010) 1.85
The F-box protein ZEITLUPE confers dosage-dependent control on the circadian clock, photomorphogenesis, and flowering time. Plant Cell (2004) 1.79
LdpA: a component of the circadian clock senses redox state of the cell. EMBO J (2005) 1.79
GIGANTEA acts in blue light signaling and has biochemically separable roles in circadian clock and flowering time regulation. Plant Physiol (2006) 1.74
Data assimilation constrains new connections and components in a complex, eukaryotic circadian clock model. Mol Syst Biol (2010) 1.73
Proteasome function is required for biological timing throughout the twenty-four hour cycle. Curr Biol (2011) 1.70
Natural allelic variation in the temperature-compensation mechanisms of the Arabidopsis thaliana circadian clock. Genetics (2005) 1.67
Quinone sensing by the circadian input kinase of the cyanobacterial circadian clock. Proc Natl Acad Sci U S A (2006) 1.58
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How plants tell the time. Biochem J (2006) 1.55
Targeted degradation of PSEUDO-RESPONSE REGULATOR5 by an SCFZTL complex regulates clock function and photomorphogenesis in Arabidopsis thaliana. Plant Cell (2007) 1.52
F-box proteins FKF1 and LKP2 act in concert with ZEITLUPE to control Arabidopsis clock progression. Plant Cell (2010) 1.48
Phytochrome signaling mechanisms. Arabidopsis Book (2011) 1.47
PRR5 regulates phosphorylation, nuclear import and subnuclear localization of TOC1 in the Arabidopsis circadian clock. EMBO J (2010) 1.43
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Arabidopsis circadian clock and photoperiodism: time to think about location. Curr Opin Plant Biol (2009) 1.40
CIRCADIAN CLOCK ASSOCIATED1 and LATE ELONGATED HYPOCOTYL function synergistically in the circadian clock of Arabidopsis. Plant Physiol (2009) 1.37
The circadian oscillator gene GIGANTEA mediates a long-term response of the Arabidopsis thaliana circadian clock to sucrose. Proc Natl Acad Sci U S A (2011) 1.31
REVEILLE8 and PSEUDO-REPONSE REGULATOR5 form a negative feedback loop within the Arabidopsis circadian clock. PLoS Genet (2011) 1.29
Forward genetic analysis of the circadian clock separates the multiple functions of ZEITLUPE. Plant Physiol (2006) 1.27
Molecular mechanisms underlying the Arabidopsis circadian clock. Plant Cell Physiol (2011) 1.24
Posttranslational regulation of CIRCADIAN CLOCK ASSOCIATED1 in the circadian oscillator of Arabidopsis. Plant Physiol (2009) 1.22
Genetics and neurobiology of circadian clocks in mammals. Cold Spring Harb Symp Quant Biol (2007) 1.22
SKIP is a component of the spliceosome linking alternative splicing and the circadian clock in Arabidopsis. Plant Cell (2012) 1.21
Identification of Evening Complex Associated Proteins in Arabidopsis by Affinity Purification and Mass Spectrometry. Mol Cell Proteomics (2015) 1.21
Independent roles for EARLY FLOWERING 3 and ZEITLUPE in the control of circadian timing, hypocotyl length, and flowering time. Plant Physiol (2005) 1.20
XAP5 CIRCADIAN TIMEKEEPER coordinates light signals for proper timing of photomorphogenesis and the circadian clock in Arabidopsis. Plant Cell (2008) 1.20
Arabidopsis response regulators ARR3 and ARR4 play cytokinin-independent roles in the control of circadian period. Plant Cell (2005) 1.18
Mutation of Arabidopsis spliceosomal timekeeper locus1 causes circadian clock defects. Plant Cell (2012) 1.17
Testing time: can ethanol-induced pulses of proposed oscillator components phase shift rhythms in Arabidopsis? J Biol Rhythms (2008) 1.14
CIRCADIAN CLOCK ASSOCIATED1 transcript stability and the entrainment of the circadian clock in Arabidopsis. Plant Physiol (2007) 1.14
Sensitive to freezing6 integrates cellular and environmental inputs to the plant circadian clock. Plant Physiol (2008) 1.13
Abiotic stress and the plant circadian clock. Plant Signal Behav (2011) 1.13
Modelling the widespread effects of TOC1 signalling on the plant circadian clock and its outputs. BMC Syst Biol (2013) 1.11
Circadian clock and photoperiodic flowering in Arabidopsis: CONSTANS is a hub for signal integration. Plant Physiol (2016) 1.10
Systems biology flowering in the plant clock field. Mol Syst Biol (2006) 1.08
Conservation and divergence of circadian clock operation in a stress-inducible Crassulacean acid metabolism species reveals clock compensation against stress. Plant Physiol (2005) 1.08
Network news: prime time for systems biology of the plant circadian clock. Curr Opin Genet Dev (2010) 1.07
The functional interplay between protein kinase CK2 and CCA1 transcriptional activity is essential for clock temperature compensation in Arabidopsis. PLoS Genet (2010) 1.06
The Cryptochrome Blue Light Receptors. Arabidopsis Book (2010) 1.05
The RPN5 subunit of the 26s proteasome is essential for gametogenesis, sporophyte development, and complex assembly in Arabidopsis. Plant Cell (2009) 1.05
Circadian timekeeping during early Arabidopsis development. Plant Physiol (2008) 1.04
Two new clock proteins, LWD1 and LWD2, regulate Arabidopsis photoperiodic flowering. Plant Physiol (2008) 1.03
Coordination of the maize transcriptome by a conserved circadian clock. BMC Plant Biol (2010) 1.03
Distinct light and clock modulation of cytosolic free Ca2+ oscillations and rhythmic CHLOROPHYLL A/B BINDING PROTEIN2 promoter activity in Arabidopsis. Plant Cell (2007) 1.03
LOV domain-containing F-box proteins: light-dependent protein degradation modules in Arabidopsis. Mol Plant (2012) 1.02
Maize global transcriptomics reveals pervasive leaf diurnal rhythms but rhythms in developing ears are largely limited to the core oscillator. PLoS One (2010) 1.01
Multiple layers of posttranslational regulation refine circadian clock activity in Arabidopsis. Plant Cell (2014) 0.99
HSP90 functions in the circadian clock through stabilization of the client F-box protein ZEITLUPE. Proc Natl Acad Sci U S A (2011) 0.99
Reciprocal interaction of the circadian clock with the iron homeostasis network in Arabidopsis. Plant Physiol (2012) 0.98
Plant blue-light receptors. Planta (2004) 0.97
The Arabidopsis F-box protein CORONATINE INSENSITIVE1 is stabilized by SCFCOI1 and degraded via the 26S proteasome pathway. Plant Cell (2013) 0.97
Overall alteration of circadian clock gene expression in the chestnut cold response. PLoS One (2008) 0.97
Functional analysis of amino-terminal domains of the photoreceptor phytochrome B. Plant Physiol (2010) 0.96
LIGHT-REGULATED WD1 and PSEUDO-RESPONSE REGULATOR9 form a positive feedback regulatory loop in the Arabidopsis circadian clock. Plant Cell (2011) 0.96
A receptor for auxin. Plant Cell (2005) 0.94
Does the core circadian clock in the moss Physcomitrella patens (Bryophyta) comprise a single loop? BMC Plant Biol (2010) 0.94
Light signal transduction pathway from flavin chromophore to the J alpha helix of Arabidopsis phototropin1. Biophys J (2009) 0.94
Adaptation to seasonality and the winter freeze. Front Plant Sci (2013) 0.93
CUL1 regulates TOC1 protein stability in the Arabidopsis circadian clock. Plant J (2008) 0.93
BROTHER OF LUX ARRHYTHMO is a component of the Arabidopsis circadian clock. Plant Cell (2011) 0.93
Ordered changes in histone modifications at the core of the Arabidopsis circadian clock. Proc Natl Acad Sci U S A (2012) 0.93
Alternative splicing and nonsense-mediated decay of circadian clock genes under environmental stress conditions in Arabidopsis. BMC Plant Biol (2014) 0.92
Distinct roles of FKF1, Gigantea, and Zeitlupe proteins in the regulation of Constans stability in Arabidopsis photoperiodic flowering. Proc Natl Acad Sci U S A (2014) 0.92
Transcriptome sequencing and comparative analysis of Saccharina japonica (Laminariales, Phaeophyceae) under blue light induction. PLoS One (2012) 0.91
Arabidopsis CRY2 and ZTL mediate blue-light regulation of the transcription factor CIB1 by distinct mechanisms. Proc Natl Acad Sci U S A (2013) 0.91
Regulated proteolysis and plant development. Plant Cell Rep (2004) 0.89
The F-box protein ZEITLUPE controls stability and nucleocytoplasmic partitioning of GIGANTEA. Development (2013) 0.88
Structural insights into the function of the core-circadian factor TIMING OF CAB2 EXPRESSION 1 (TOC1). J Circadian Rhythms (2008) 0.87
Rethinking transcriptional activation in the Arabidopsis circadian clock. PLoS Comput Biol (2014) 0.87
Mathematical modeling of an oscillating gene circuit to unravel the circadian clock network of Arabidopsis thaliana. Front Plant Sci (2013) 0.87
Plant flavoprotein photoreceptors. Plant Cell Physiol (2014) 0.87
Regulatory principles and experimental approaches to the circadian control of starch turnover. J R Soc Interface (2013) 0.86
Circadian clock and photoperiodic response in Arabidopsis: from seasonal flowering to redox homeostasis. Biochemistry (2014) 0.86
Ubiquitin-specific proteases UBP12 and UBP13 act in circadian clock and photoperiodic flowering regulation in Arabidopsis. Plant Physiol (2013) 0.86
Disassembly of synthetic Agrobacterium T-DNA-protein complexes via the host SCF(VBF) ubiquitin-ligase complex pathway. Proc Natl Acad Sci U S A (2012) 0.85
Silencing Nicotiana attenuata LHY and ZTL alters circadian rhythms in flowers. New Phytol (2015) 0.84
Plant photoreceptors: phylogenetic overview. J Mol Evol (2005) 0.84
Coordinated transcription of key pathways in the mouse by the circadian clock. Cell (2002) 14.07
A functional genomics strategy reveals Rora as a component of the mammalian circadian clock. Neuron (2004) 5.71
Circadian rhythms from flies to human. Nature (2002) 4.95
Intercellular coupling confers robustness against mutations in the SCN circadian clock network. Cell (2007) 4.87
FKF1 and GIGANTEA complex formation is required for day-length measurement in Arabidopsis. Science (2007) 4.64
Bioluminescence imaging of individual fibroblasts reveals persistent, independently phased circadian rhythms of clock gene expression. Curr Biol (2004) 4.49
A functional genomics approach reveals CHE as a component of the Arabidopsis circadian clock. Science (2009) 4.49
Suprachiasmatic nucleus: cell autonomy and network properties. Annu Rev Physiol (2010) 4.38
Melanopsin (Opn4) requirement for normal light-induced circadian phase shifting. Science (2002) 4.24
Molecular basis of seasonal time measurement in Arabidopsis. Nature (2002) 4.24
Melanopsin is required for non-image-forming photic responses in blind mice. Science (2003) 4.22
Genome-wide single-nucleotide polymorphism analysis defines haplotype patterns in mouse. Proc Natl Acad Sci U S A (2003) 3.93
FKF1 F-box protein mediates cyclic degradation of a repressor of CONSTANS in Arabidopsis. Science (2005) 3.56
FKF1 is essential for photoperiodic-specific light signalling in Arabidopsis. Nature (2003) 3.47
Overlapping and distinct roles of PRR7 and PRR9 in the Arabidopsis circadian clock. Curr Biol (2005) 3.36
Network discovery pipeline elucidates conserved time-of-day-specific cis-regulatory modules. PLoS Genet (2008) 3.35
Genome-wide expression analysis in Drosophila reveals genes controlling circadian behavior. J Neurosci (2002) 3.34
Photoperiodic control of flowering: not only by coincidence. Trends Plant Sci (2006) 3.34
Global transcriptome analysis reveals circadian regulation of key pathways in plant growth and development. Genome Biol (2008) 3.33
A genome-wide RNAi screen for modifiers of the circadian clock in human cells. Cell (2009) 3.27
The ELF4-ELF3-LUX complex links the circadian clock to diurnal control of hypocotyl growth. Nature (2011) 3.09
Redundant function of REV-ERBalpha and beta and non-essential role for Bmal1 cycling in transcriptional regulation of intracellular circadian rhythms. PLoS Genet (2008) 3.07
LUX ARRHYTHMO encodes a Myb domain protein essential for circadian rhythms. Proc Natl Acad Sci U S A (2005) 3.04
ZEITLUPE is a circadian photoreceptor stabilized by GIGANTEA in blue light. Nature (2007) 3.00
Clocks not winding down: unravelling circadian networks. Nat Rev Mol Cell Biol (2010) 2.95
Dual role of TOC1 in the control of circadian and photomorphogenic responses in Arabidopsis. Plant Cell (2003) 2.86
Critical role for CCA1 and LHY in maintaining circadian rhythmicity in Arabidopsis. Curr Biol (2002) 2.82
Feedback repression is required for mammalian circadian clock function. Nat Genet (2006) 2.73
Cryptochrome mediates circadian regulation of cAMP signaling and hepatic gluconeogenesis. Nat Med (2010) 2.65
A novel computational model of the circadian clock in Arabidopsis that incorporates PRR7 and PRR9. Mol Syst Biol (2006) 2.48
A chemical biology approach reveals period shortening of the mammalian circadian clock by specific inhibition of GSK-3beta. Proc Natl Acad Sci U S A (2008) 2.39
Genome-wide patterns of single-feature polymorphism in Arabidopsis thaliana. Proc Natl Acad Sci U S A (2007) 2.29
Living by the calendar: how plants know when to flower. Nat Rev Mol Cell Biol (2003) 2.21
Positive and negative factors confer phase-specific circadian regulation of transcription in Arabidopsis. Plant Cell (2005) 2.21
Arabidopsis circadian clock protein, TOC1, is a DNA-binding transcription factor. Proc Natl Acad Sci U S A (2012) 2.19
A morning-specific phytohormone gene expression program underlying rhythmic plant growth. PLoS Biol (2008) 2.12
Rapid array mapping of circadian clock and developmental mutations in Arabidopsis. Plant Physiol (2005) 2.07
Universality and flexibility in gene expression from bacteria to human. Proc Natl Acad Sci U S A (2004) 2.03
PRR3 Is a vascular regulator of TOC1 stability in the Arabidopsis circadian clock. Plant Cell (2007) 1.97
Identification of small molecule activators of cryptochrome. Science (2012) 1.95
Emergence of noise-induced oscillations in the central circadian pacemaker. PLoS Biol (2010) 1.94
A genomic analysis of the shade avoidance response in Arabidopsis. Plant Physiol (2003) 1.91
Protein interaction analysis of SCF ubiquitin E3 ligase subunits from Arabidopsis. Plant J (2003) 1.89
An expanding universe of circadian networks in higher plants. Trends Plant Sci (2010) 1.85
Circadian control of global gene expression patterns. Annu Rev Genet (2010) 1.85
Linking photoreceptor excitation to changes in plant architecture. Genes Dev (2012) 1.80
The F-box protein ZEITLUPE confers dosage-dependent control on the circadian clock, photomorphogenesis, and flowering time. Plant Cell (2004) 1.79
LUX ARRHYTHMO encodes a nighttime repressor of circadian gene expression in the Arabidopsis core clock. Curr Biol (2011) 1.78
Bioluminescence imaging in living organisms. Curr Opin Biotechnol (2005) 1.75
A mouse forward genetics screen identifies LISTERIN as an E3 ubiquitin ligase involved in neurodegeneration. Proc Natl Acad Sci U S A (2009) 1.74
Post-translational regulation of the Arabidopsis circadian clock through selective proteolysis and phosphorylation of pseudo-response regulator proteins. J Biol Chem (2008) 1.68
The SUMO E3 ligase, AtSIZ1, regulates flowering by controlling a salicylic acid-mediated floral promotion pathway and through affects on FLC chromatin structure. Plant J (2007) 1.68
GIGANTEA directly activates Flowering Locus T in Arabidopsis thaliana. Proc Natl Acad Sci U S A (2011) 1.66
Mammalian circadian signaling networks and therapeutic targets. Nat Chem Biol (2007) 1.64
Complexity in the wiring and regulation of plant circadian networks. Curr Biol (2012) 1.58
Real-time reporting of circadian-regulated gene expression by luciferase imaging in plants and mammalian cells. Methods Enzymol (2005) 1.49
F-box proteins FKF1 and LKP2 act in concert with ZEITLUPE to control Arabidopsis clock progression. Plant Cell (2010) 1.48
A model of the cell-autonomous mammalian circadian clock. Proc Natl Acad Sci U S A (2009) 1.46
CIRCADIAN CLOCK-ASSOCIATED 1 regulates ROS homeostasis and oxidative stress responses. Proc Natl Acad Sci U S A (2012) 1.44
PRR5 regulates phosphorylation, nuclear import and subnuclear localization of TOC1 in the Arabidopsis circadian clock. EMBO J (2010) 1.43
tej defines a role for poly(ADP-ribosyl)ation in establishing period length of the arabidopsis circadian oscillator. Dev Cell (2002) 1.40
High-throughput chemical screen identifies a novel potent modulator of cellular circadian rhythms and reveals CKIα as a clock regulatory kinase. PLoS Biol (2010) 1.38
Formation of an SCF(ZTL) complex is required for proper regulation of circadian timing. Plant J (2004) 1.35
Circadian phase-specific degradation of the F-box protein ZTL is mediated by the proteasome. Proc Natl Acad Sci U S A (2003) 1.34
Circadian clocks in daily and seasonal control of development. Science (2003) 1.30
Gene arrays are not just for measuring gene expression. Trends Plant Sci (2003) 1.30
Forward genetic analysis of the circadian clock separates the multiple functions of ZEITLUPE. Plant Physiol (2006) 1.27
Global profiling of rice and poplar transcriptomes highlights key conserved circadian-controlled pathways and cis-regulatory modules. PLoS One (2011) 1.25
Activation of the plasma membrane Na/H antiporter Salt-Overly-Sensitive 1 (SOS1) by phosphorylation of an auto-inhibitory C-terminal domain. Proc Natl Acad Sci U S A (2011) 1.21
High-throughput screening and chemical biology: new approaches for understanding circadian clock mechanisms. Chem Biol (2009) 1.21
Independent roles for EARLY FLOWERING 3 and ZEITLUPE in the control of circadian timing, hypocotyl length, and flowering time. Plant Physiol (2005) 1.20
Divergent perspectives on GM food. Nat Biotechnol (2002) 1.19
Transcriptional corepressor TOPLESS complexes with pseudoresponse regulator proteins and histone deacetylases to regulate circadian transcription. Proc Natl Acad Sci U S A (2012) 1.19
Exploring the transcriptional landscape of plant circadian rhythms using genome tiling arrays. Genome Biol (2009) 1.19
Arabidopsis FHY3 specifically gates phytochrome signaling to the circadian clock. Plant Cell (2006) 1.19
PRR7 protein levels are regulated by light and the circadian clock in Arabidopsis. Plant J (2007) 1.18
A constitutive shade-avoidance mutant implicates TIR-NBS-LRR proteins in Arabidopsis photomorphogenic development. Plant Cell (2006) 1.17
Rapid assessment of gene function in the circadian clock using artificial microRNA in Arabidopsis mesophyll protoplasts. Plant Physiol (2010) 1.13
Second messenger and Ras/MAPK signalling pathways regulate CLOCK/CYCLE-dependent transcription. J Neurochem (2006) 1.12
Enhanced Y1H assays for Arabidopsis. Nat Methods (2011) 1.10
BRANCHED1 interacts with FLOWERING LOCUS T to repress the floral transition of the axillary meristems in Arabidopsis. Plant Cell (2013) 1.09
The F box protein AFR is a positive regulator of phytochrome A-mediated light signaling. Curr Biol (2003) 1.08
ELF3 recruitment to the PRR9 promoter requires other Evening Complex members in the Arabidopsis circadian clock. Plant Signal Behav (2012) 1.07
HY5, Circadian Clock-Associated 1, and a cis-element, DET1 dark response element, mediate DET1 regulation of chlorophyll a/b-binding protein 2 expression. Plant Physiol (2003) 1.05
Impaired clock output by altered connectivity in the circadian network. Proc Natl Acad Sci U S A (2007) 1.04
TsHKT1;2, a HKT1 homolog from the extremophile Arabidopsis relative Thellungiella salsuginea, shows K(+) specificity in the presence of NaCl. Plant Physiol (2012) 1.01
ELF4 regulates GIGANTEA chromatin access through subnuclear sequestration. Cell Rep (2013) 1.01
Regulation of nucleocytoplasmic trafficking in plants. Curr Opin Plant Biol (2011) 1.00
SUMO and SUMOylation in plants. Mol Cells (2011) 0.99
Circadian light input in plants, flies and mammals. Novartis Found Symp (2003) 0.99
HSP90 functions in the circadian clock through stabilization of the client F-box protein ZEITLUPE. Proc Natl Acad Sci U S A (2011) 0.99
Automated analysis of hypocotyl growth dynamics during shade avoidance in Arabidopsis. Plant J (2011) 0.98
DNA arrays: applications and implications for circadian biology. J Biol Rhythms (2003) 0.97
Overexpression of Arabidopsis YUCCA6 in potato results in high-auxin developmental phenotypes and enhanced resistance to water deficit. Mol Plant (2012) 0.96
Spatiotemporal separation of PER and CRY posttranslational regulation in the mammalian circadian clock. Proc Natl Acad Sci U S A (2014) 0.91
Circadian transcription depends on limiting amounts of the transcription co-activator nejire/CBP. J Biol Chem (2007) 0.91
Cytochrome P450 monooxygenases as reporters for circadian-regulated pathways. Plant Physiol (2009) 0.91