Gene Ontology annotation through association of InterPro records with GO terms
Annotation inferences using phylogenetic trees
Gene Ontology annotation based on UniProtKB/Swiss-Prot Subcellular Location vocabulary mapping, accompanied by conservative changes to GO terms applied by UniProt
Electronic Gene Ontology annotations created by ARBA machine learning models
Nuclear localization of the Arabidopsis blue light receptor cryptochrome 2.
Functional interaction of phytochrome B and cryptochrome 2.
Hierarchical coupling of phytochromes and cryptochromes reconciles stability and light modulation of Arabidopsis development.
Direct interaction of Arabidopsis cryptochromes with COP1 in light control development.
Circadian clock-regulated expression of phytochrome and cryptochrome genes in Arabidopsis.
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Cryptochromes are involved in circadian light input.
"Photoreceptors, phytochromes, and cryptochromes are involved in setting the clock by transducing the light signal to the central oscillator."
Second positive phototropism results from coordinated co-action of the phototropins and cryptochromes.
The vegetative vacuole proteome of Arabidopsis thaliana reveals predicted and unexpected proteins.
N-terminal domain-mediated homodimerization is required for photoreceptor activity of Arabidopsis CRYPTOCHROME 1.
From The Cover: A role for Arabidopsis cryptochromes and COP1 in the regulation of stomatal opening.
Analysis of autophosphorylating kinase activities of Arabidopsis and human cryptochromes.
CRYPTOCHROME2 in vascular bundles regulates flowering in Arabidopsis.
Derepression of the NC80 motif is critical for the photoactivation of Arabidopsis CRY2.
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CRY2 mediates blue-light inhibition of hypocotyl elongation and photoperiodic flowering.
"Arabidopsis cryptochrome 2 (CRY2) mediates blue light inhibition of hypocotyl elongation and photoperiodic control of floral initiation."
Light-regulated large-scale reorganization of chromatin during the floral transition in Arabidopsis.
Distinct light and clock modulation of cytosolic free Ca2+ oscillations and rhythmic CHLOROPHYLL A/B BINDING PROTEIN2 promoter activity in Arabidopsis.
Distinct light-initiated gene expression and cell cycle programs in the shoot apex and cotyledons of Arabidopsis.
Photoexcited CRY2 interacts with CIB1 to regulate transcription and floral initiation in Arabidopsis.
Differential petiole growth in Arabidopsis thaliana: photocontrol and hormonal regulation.
Cryptochrome 2 and phototropin 2 regulate resistance protein-mediated viral defense by negatively regulating an E3 ubiquitin ligase.
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CRY2 contributes to TCV defense by maintaining HRT stability through COP1 regulation.
"The blue-light photoreceptors, cryptochrome (CRY) 2 and phototropin (PHOT) 2, are required for the stability of the R protein HRT"
Photoreceptors CRYTOCHROME2 and phytochrome B control chromatin compaction in Arabidopsis.
Double loss-of-function mutation in EARLY FLOWERING 3 and CRYPTOCHROME 2 genes delays flowering under continuous light but accelerates it under long days and short days: an important role for Arabidopsis CRY2 to accelerate flowering time in continuous light.
Blue-light-dependent interaction of cryptochrome 1 with SPA1 defines a dynamic signaling mechanism.
Blue light-dependent interaction of CRY2 with SPA1 regulates COP1 activity and floral initiation in Arabidopsis.
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Blue light stimulates CRY2-SPA1 interaction and CRY2-dependent control of CO/FT and floral initiation.
"SPA1 acts as a signaling molecule to mediate CRY2-dependent control of CO protein stability, FT transcription, and floral initiation in response to blue light."
Arabidopsis cryptochrome 2 (CRY2) functions by the photoactivation mechanism distinct from the tryptophan (trp) triad-dependent photoreduction.
A study of the blue-light-dependent phosphorylation, degradation, and photobody formation of Arabidopsis CRY2.
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CRY2 forms nuclear photobodies and undergoes blue-light-dependent phosphorylation, ubiquitination, and degradation.
"CRY2 is a constitutive nuclear protein that undergoes blue-light-dependent phosphorylation, ubiquitination, photobody formation, and degradation in the nucleus"
Degradation of Arabidopsis CRY2 is regulated by SPA proteins and phytochrome A.
Network balance via CRY signalling controls the Arabidopsis circadian clock over ambient temperatures.
Strigolactone-regulated hypocotyl elongation is dependent on cryptochrome and phytochrome signaling pathways in Arabidopsis.
Multiple bHLH proteins form heterodimers to mediate CRY2-dependent regulation of flowering-time in Arabidopsis.
Quantitative real-time kinetics of optogenetic proteins CRY2 and CIB1/N using single-molecule tools.
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CRY2 photoactivation drives association with CIB1.
"Upon illumination, CRY2 is photoactivated to contact and associate with CIB1."
Cellular metabolites enhance the light sensitivity of Arabidopsis cryptochrome through alternate electron transfer pathways.
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Cellular metabolites affect Arabidopsis cryptochrome light sensitivity through electron-transfer routes.
"Cellular metabolites enhance the light sensitivity of Arabidopsis cryptochrome through alternate electron transfer pathways."
The blue light-dependent phosphorylation of the CCE domain determines the photosensitivity of Arabidopsis CRY2.
Blue-light dependent ROS formation by Arabidopsis cryptochrome-2 may contribute toward its signaling role.
Cryptochromes Interact Directly with PIFs to Control Plant Growth in Limiting Blue Light.
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CRY1/CRY2 directly contact PIF4 and PIF5 to control growth under limiting blue light.
"CRY1 and CRY2 perceive this change and respond by directly contacting two bHLH transcription factors, PIF4 and PIF5."
Photoactivation and inactivation of Arabidopsis cryptochrome 2.
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Blue-light-dependent CRY2 homodimerization is required for physiological activation.
"Arabidopsis cryptochrome 2 (CRY2) undergoes blue light-dependent homodimerization to become physiologically active."
Molecular basis for blue light-dependent phosphorylation of Arabidopsis cryptochrome 2.
The asparagine-rich protein NRP interacts with the Verticillium effector PevD1 and regulates the subcellular localization of cryptochrome 2.
Structural insights into BIC-mediated inactivation of Arabidopsis cryptochrome 2.
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Crystal structures of the CRY2 PHR (photolyase-homology) domain with bound FAD and of the BIC2-CRY2N complex reveal how BIC inactivates the FAD-bound photoreceptor.
"Here, we report crystal structures of CRY2N (CRY2 PHR domain) and the BIC2-CRY2N complex with resolutions of 2.7 and 2.5 Å, respectively."
Photoexcited Cryptochrome2 Interacts Directly with TOE1 and TOE2 in Flowering Regulation.
CRY2 interacts with CIS1 to regulate thermosensory flowering via FLM alternative splicing.
A role for brassinosteroid signalling in decision-making processes in the Arabidopsis seedling.
Cryptochrome blue-light photoreceptors of Arabidopsis implicated in phototropism.
Falcon deep research summary for Arabidopsis CRY2
UniProtKB record for Arabidopsis CRY2 (Q96524)
PANTHER PTHR11455 cryptochrome family notes