A Database of Drosophila Genes & Genomes

FB2013_03, released May 7th, 2013
 

Gene Avic\T:Avic\GFP

General Information
SymbolAvic\T:Avic\GFPSpeciesA. victoria
NameGreen Fluorescent ProteinAnnotation symbol
Feature typeengineered_foreign_geneFlyBase IDFBgn0016110
Gene Model StatusNot Applicable Stock availability 7 publicly available
Also Known AsGFP
Genomic Location
Chromosome (arm)Recombination map
Cytogenetic mapSequence location
hide Summary Information
Automatically generated summary

See sections below for more information
The gene Green Fluorescent Protein is referred to in FlyBase by the symbol T:Avic\GFP (FBgn0016110). It is a engineered_foreign_gene from T:Avic. Its molecular function is unknown. The biological processes in which it is involved are not known. 35 alleles are reported. No phenotypic data is available. It has no annotated transcripts. Gene has not been localized to the genome sequence.

hide Recent Updates
Description
What does this section display?
This section contains items that were added to this record for each release. It currently only tracks new links between this FlyBase report and other FlyBase data classes (e.g. genes, references, stocks) or controlled vocabulary terms (e.g. GO, anatomy terms).
What does this section not display?
This section does not currently display links that were removed or gene model changes.
Update Feed
Click the icon below to subscribe to this FlyBase record and receive updates automatically through your feed reader.
FB2013_03
FB2013_02
All updates Click here to see a list of all updates to this record from FB2010_08 and on.
hide Detailed Mapping Data
FlyBase Computed Cytological Location
Cytogenetic map
Evidence for location
Experimentally Determined Cytological Location
Cytogenetic map
Notes
References
Experimentally Determined Recombination Data
Location
Left of (cM)
Right of (cM)
Notes
hide Gene Model & Products
Comments on Gene Model
hide Transcript Data
Annotated Transcripts
Name
FlyBase ID
RefSeq ID
Length (nt)
Associated CDS (aa)
Additional Transcript Data & Comments
Reported size (kB)
Comments
External Data
Crossreferences
hide Polypeptide Data
Annotated Polypeptides
Name
FlyBase ID
Predicted MW (kDa)
Length (aa)
Theoretical pI
RefSeq ID
GenBank protein
Additional Polypeptide Data & Comments
Reported size (kDa)
Comments
External Data
Linkouts
Crossreferences
hide Sequences Consistent with the Gene Model
DDBJ /
EMBL /
GenBank
DNA sequence
Protein sequence
Name
 
UniProtKB/Swiss-Prot
UniProtKB/TrEMBL
hide Mapped Features
Type
Symbol & Location
Additional Notes
References
hide External Data
Linkouts
Crossreferences
hide Expression Data
hideTranscript Expression
Additional Descriptive Data
Marker for
Subcellular Localization
CV Term
hide Polypeptide Expression
Additional Descriptive Data
Marker for
Subcellular Localization (GO Cellular Component)
CV term
References
hide Expression Deduced from Reporters
hide High-Throughput Expression Data
Associated Tools
Reference
See Gelbart and Emmert, 2010.10.13 for analysis details and data files for all genes.
hide FlyAtlas Anatomy Microarray
hide modENCODE Anatomy RNA-Seq
hide modENCODE Development RNA-Seq
hide modENCODE Cell Lines RNA-Seq
hide modENCODE Treatments RNA-Seq
hide Expression Clusters
hide External Data & Images
Linkouts
hide Alleles & Phenotypes
hide Summary of Allele Phenotypes
Phenotype manifest in
Allele
hide Classical Alleles ( 1 )
For All Classical Alleles Show

Allele of T:Avic\GFPClassMutagenStocksKnown lesion
T:Avic\GFPmCitrine
0 Yes
hide Alleles Carried on Transgenic Constructs ( 34 )
For All Alleles Carried on Transgenic Constructs Show

Allele of T:Avic\GFPClassMutagenStocksKnown lesion
T:Avic\GFPECFP3 Yes
T:Avic\GFPEYFP2 --
T:Avic\GFPsg2 Yes
T:Avic\GFPEMD1 Yes
T:Avic\GFPYSm61 --
T:Avic\GFPBFP0 --
T:Avic\GFPCC0 Yes
T:Avic\GFPCFP0 Yes
T:Avic\GFPCN0 Yes
T:Avic\GFPcpEGFP0 Yes
T:Avic\GFPcpEYFP0 Yes
T:Avic\GFPECFP.Cer0 Yes
T:Avic\GFPEGFP0 Yes
T:Avic\GFPEV0 Yes
T:Avic\GFPGL0 Yes
T:Avic\GFPm50 --
T:Avic\GFPm60 Yes
T:Avic\GFPPA0 Yes
T:Avic\GFPpHluorinE0 Yes
T:Avic\GFPpHluorinR0 Yes
T:Avic\GFPpHluorinSE0 Yes
T:Avic\GFPrs0 Yes
T:Avic\GFPS65C0 Yes
T:Avic\GFPS65T.I167T0 Yes
T:Avic\GFPS65T0 Yes
T:Avic\GFPSF0 Yes
T:Avic\GFPSYFP20 Yes
T:Avic\GFPtd0 Yes
T:Avic\GFPVC0 Yes
T:Avic\GFPVisGreen0 Yes
T:Avic\GFPVN0 Yes
T:Avic\GFPYFP.Venus0 Yes
T:Avic\GFPYFP0 --
T:Avic\GFPYPet0 Yes
hide Aneuploid Aberrations
hide Transgenic Constructs & Insertions
Transgenic Constructs
Type of construct
Name
Expression data
Insertions
Type of insertions
Name
Expression data
hide Gene Ontology: Function, Process & Cellular Component ( 0 unique terms )
hide Terms Based on Experimental Evidence ( 0 terms )
hide Terms Based on Predictions or Assertions ( 0 terms )
hide Sequence Ontology: Class of Gene
hide Interactions & Pathways
hide Summary of Physical Interactions
hide Summary of Genetic Interactions
Interacts with
Please look at the allele data for full details of the genetic interactions
T:Avic\GFP allele
Gene
References
hide External Data
Linkouts
hide Orthologs
hide OrthoDB Orthologs (0) - based on analysis using Dmel annotation version 5.41
OrthoDB Ortholog Groups
Drosophila inclusive ortholog search
No orthologs identified
Dipteran inclusive ortholog search
No orthologs identified
Insect inclusive ortholog search
No orthologs identified
Arthropod inclusive ortholog search
No orthologs identified
Metazoa inclusive ortholog search
No orthologs identified
Ortholog(s) in Drosophila melanogaster (None identified)
No D. melanogaster orthologies identified
hide Human Orthologs (0)
Gene
OMIM
HGNC
hideAAA Orthologs (0) based on analysis using Dmel annotation version 4.3
No orthologs identified
hide Stocks & Reagents
hide Stocks Listed in FlyBase ( 7 )
Bloomington
Kyoto
hide Genomic Clones ( 0 )
hide cDNA Clones ( 0 )
cDNA Clones, Fully Sequenced
BDGP DGC clones
Other clones
cDNA Clones, End Sequenced (ESTs)
BDGP DGC clones
Other clones
hide RNAi & Array Information
Linkouts
hide Antibody Information
hide Other Information
hide Discoverer
hide Etymology
hide Identification
hide Relationship to Other Genes
Source for database identity of
Source for database merge of
Tags
(Lee and Luo, 1999, Lee et al., 1999, Luo et al., 1999, Lee et al., 2000, Sung and Robinow, 2000, Martini et al., 2000, Boquet et al., 2000, Kiger et al., 2000, Liu et al., 2000, Williams et al., 2000, Bai et al., 2000, Lee et al., 2000, Scott et al., 2001, Winter et al., 2001, Hitier et al., 2001, Billuart et al., 2001, Maurel-Zaffran et al., 2001, Pascual and Preat, 2001, Jefferis et al., 2001, Jefferis et al., 2002, Malpel et al., 2002, Kurusu et al., 2002, Wang et al., 2002, Wong et al., 2002, Marin et al., 2002, Cohen et al., 2002, Sweeney et al., 2002, Grueber et al., 2002, Morales et al., 2002, Rulifson et al., 2002, Ng et al., 2002, Williams and Shepherd, 2002, Rulifson et al., 2002, Behan et al., 2002, Xu et al., 2002, Ponzielli et al., 2002, Dubruille et al., 2002, Kango-Singh et al., 2002, Lohr et al., 2002, Moore et al., 2002, Duffy, 2002, Presente et al., 2002, Hrdlicka et al., 2002, Komiyama et al., 2003, Reuter et al., 2003, Ang et al., 2003, Bello et al., 2003, Hummel et al., 2003, Murthy et al., 2003, Grueber et al., 2003, Justice et al., 2003, Somers and Saint, 2003, Van Doren et al., 2003, Kueppers et al., 2003, Scott et al., 2003, Sugimura et al., 2003, Dobritsa et al., 2003, Fabrizio et al., 2003, Landgraf et al., 2003, Li and Gao, 2003, Subramanian et al., 2003, Watts et al., 2003, Jenkins et al., 2003, Schubiger et al., 2003, Peng et al., 2003, Han et al., 2003, Sarpal et al., 2003, Eldar et al., 2003, Fujioka et al., 2003, Lee et al., 2003, Jefferis et al., 2004, Gendre et al., 2004, Brumby and Richardson, 2003, Voas and Rebay, 2003, Rolls et al., 2003, Zelhof and Hardy, 2004, Nicolai et al., 2003, De Joussineau et al., 2003, Chyb et al., 2003, Wilson et al., 2004, Canamasas et al., 2003, Ye et al., 2004, Tanaka et al., 2004, Rival et al., 2004, Awasaki and Ito, 2004, Watts et al., 2004, Acebes et al., 2004, Kuppers-Munther et al., 2004, Dearborn and Kunes, 2004, Moore et al., 2004, Neves et al., 2004, Zhu and Luo, 2004, Hummel and Zipursky, 2004, Lee and Park, 2004, Alvarado et al., 2004, Comas et al., 2004, Baker et al., 2004, Geisbrecht and Montell, 2004, Martinez-Campos et al., 2004, Thorne et al., 2004, Xu et al., 2004, Rival et al., 2004, Kim and Rulifson, 2004, Sinenko et al., 2004, Wojtowicz et al., 2004, Emoto et al., 2004, Sykes et al., 2004, Pan et al., 2004, Apitz et al., 2004, Shandala et al., 2004, Truman et al., 2004, Tayler et al., 2004, Adam and Montell, 2004, Lee and Treisman, 2004, Larsson et al., 2004, Ng and Luo, 2004, Yang and Kunes, 2004, Carhan et al., 2004, Davidson et al., 2005, Kuzin et al., 2005, Kuzin et al., 2005, Pascual et al., 2005, Taillebourg et al., 2005, Marin et al., 2005, Ting et al., 2005, Rosenzweig et al., 2005, Lee et al., 2005, Tsuda et al., 2005, Fishilevich and Vosshall, 2005, Ramaekers et al., 2005, Rawson et al., 2005, Chen et al., 2005, Orihara-Ono et al., 2005, Cenci and Gould, 2005, Denholm et al., 2005, Ditch et al., 2005, Wang and Struhl, 2005, Williams and Truman, 2005, Leyssen et al., 2005, Cole et al., 2005, Manoli et al., 2005, Nern et al., 2005, Hsiung et al., 2005, Fishilevich et al., 2005, Mirth et al., 2005, Fan et al., 2005, Rodriguez Moncalvo and Campos, 2005, Sanchez-Soriano et al., 2005, Sykes and Condron, 2005, Brown et al., 2006, Monier et al., 2005, Zheng et al., 2006, Sokol and Ambros, 2005, Kimura et al., 2005, Kuo et al., 2005, Masuda-Nakagawa et al., 2005, Inoshita and Tanimura, 2006, Goldstein et al., 2005, Rawson, 2005)
Additional comments
hide Other Comments
FlyBase curator comment: FBrf0151816 has been retracted, see Struhl, 2004, Cell 116(3): 481.
hide Tag or Foreign Gene Data
  • Foreign sequence; species == Aequorea victoria; epitope tag == 'GFP'; UniProt:P42212.
hide External Crossreferences & Linkouts
Sequence Crossreferences
Other Crossreferences
Linkouts
hide Synonyms & Secondary IDs ( 4 )
Reported As
Symbol Synonym
T:Avic\GFP
 
T:GFP
 
Name Synonym
Green Fluorescent Protein
 
Secondary FlyBase IDs
hide References ( 1124 )
Generate a list of
List References by type
hide Recent research papers ( 112 )
Cabrero et al., 2013, Proc. Biol. Sci. 280(1757): 20122943
A biogenic amine and a neuropeptide act identically: tyramine signals through calcium in Drosophila tubule stellate cells. [FBrf0220948]
Dong et al., 2013, Nat. Commun. 4: 1358
Rab9 and retromer regulate retrograde trafficking of luminal protein required for epithelial tube length control. [FBrf0220559]
Hara et al., 2013, Dev. Biol. 374(1): 127--141
Ecdysone-dependent and ecdysone-independent programmed cell death in the developing optic lobe of Drosophila. [FBrf0220563]
McNerney et al., 2013, Blood 121(6): 975--983
CUX1 is a haploinsufficient tumor suppressor gene on chromosome 7 frequently inactivated in acute myeloid leukemia. [FBrf0220783]
Uchino et al., 2013, Dev. Biol. 373(1): 216--227
Loss of Drosophila A-type lamin C initially causes tendon abnormality including disintegration of cytoskeleton and nuclear lamina in muscular defects. [FBrf0220052]
Ahmad et al., 2012, Dev. Cell 23(1): 97--111
Two forkhead transcription factors regulate the division of cardiac progenitor cells by a polo-dependent pathway. [FBrf0218973]
Angus et al., 2012, Oncogene 31(2): 238--250
Willin/FRMD6 expression activates the Hippo signaling pathway kinases in mammals and antagonizes oncogenic YAP. [FBrf0217212]
Baradaran-Heravi et al., 2012, Hum. Mol. Genet. 21(11): 2572--2587
Penetrance of biallelic SMARCAL1 mutations is associated with environmental and genetic disturbances of gene expression. [FBrf0218299]
Bateman et al., 2012, Genetics 191(4): 1143--1155
Comparing enhancer action in cis and in trans. [FBrf0219131]
Bosco-Drayon et al., 2012, Cell Host Microbe 12(2): 153--165
Peptidoglycan Sensing by the Receptor PGRP-LE in the Drosophila Gut Induces Immune Responses to Infectious Bacteria and Tolerance to Microbiota. [FBrf0219236]
Bossing et al., 2012, Dev. Cell 23(2): 433--440
Disruption of Microtubule Integrity Initiates Mitosis during CNS Repair. [FBrf0219196]
Boukhatmi et al., 2012, Development 139(19): 3572--3582
Tup/Islet1 integrates time and position to specify muscle identity in Drosophila. [FBrf0219376]
Burgess et al., 2012, Development 139(16): 3040--3050
Type II phosphatidylinositol 4-kinase regulates trafficking of secretory granule proteins in Drosophila. [FBrf0219013]
Carvalho-Santos et al., 2012, Dev. Cell 23(2): 412--424
BLD10/CEP135 Is a Microtubule-Associated Protein that Controls the Formation of the Flagellum Central Microtubule Pair. [FBrf0219225]
Chen et al., 2012, EMBO J. 31(12): 2798--2809
Reshaping of global gene expression networks and sex-biased gene expression by integration of a young gene. [FBrf0218712]
Chinta et al., 2012, BMC Bioinformatics 13 Suppl 17: S14
The study of muscle remodeling in Drosophila metamorphosis using in vivo microscopy and bioimage informatics. [FBrf0220485]
Couturier et al., 2012, Nat. Cell Biol. 14(2): 131--139
Endocytosis by Numb breaks Notch symmetry at cytokinesis. [FBrf0217937]
Dornier et al., 2012, J. Cell Biol. 199(3): 481--496
TspanC8 tetraspanins regulate ADAM10/Kuzbanian trafficking and promote Notch activation in flies and mammals. [FBrf0219816]
Elhanany-Tamir et al., 2012, J. Cell Biol. 198(5): 833--846
Organelle positioning in muscles requires cooperation between two KASH proteins and microtubules. [FBrf0219334]
Enjolras et al., 2012, J. Cell Biol. 197(2): 313--325
Drosophila chibby is required for basal body formation and ciliogenesis but not for Wg signaling. [FBrf0218054]
Gailite et al., 2012, Mol. Biol. Cell 23(3): 433--447
The phosphoinositide-associated protein Rush hour regulates endosomal trafficking in Drosophila. [FBrf0217308]
Giagtzoglou et al., 2012, J. Cell Biol. 196(1): 65--83
dEHBP1 Controls Exocytosis and Recycling of Delta During Asymmetric Divisions. [FBrf0217836]
Ile et al., 2012, Development 139(14): 2535--2546
Wunen, a Drosophila lipid phosphate phosphatase, is required for septate junction-mediated barrier function. [FBrf0218686]
Inaki et al., 2012, Proc. Natl. Acad. Sci. U.S.A. 109(6): 2027--2032
Effective guidance of collective migration based on differences in cell states. [FBrf0217439]
Jafari et al., 2012, PLoS Biol. 10(3): e1001280
Combinatorial activation and repression by seven transcription factors specify Drosophila odorant receptor expression. [FBrf0217822]
Jean et al., 2012, Mol. Biol. Cell 23(14): 2723--2740
Sbf/MTMR13 coordinates PI(3)P and Rab21 regulation in endocytic control of cellular remodeling. [FBrf0218866]
Kadir et al., 2012, PLoS ONE 7(5): e38010
Localization of the Drosophila rad9 protein to the nuclear membrane is regulated by the C-terminal region and is affected in the meiotic checkpoint. [FBrf0218513]
Krüttner et al., 2012, Neuron 76(2): 383--395
Drosophila CPEB Orb2A Mediates Memory Independent of Its RNA-Binding Domain. [FBrf0219767]
Kókai et al., 2012, BMC Dev. Biol. 12: 20
CalpB modulates border cell migration in Drosophila egg chambers. [FBrf0219464]
Lee and Fischer, 2012, PLoS ONE 7(9): e46357
Drosophila Tel2 Is Expressed as a Translational Fusion with EpsinR and Is a Regulator of Wingless Signaling. [FBrf0219532]
Lewis et al., 2012, Mol. Cell. Biol. 32(16): 3218--3227
Drosophila Lin-52 Acts in Opposition to Repressive Components of the Myb-MuvB/dREAM Complex. [FBrf0219063]
Lloyd et al., 2012, Neuron 74(2): 344--360
The p150(Glued) CAP-Gly Domain Regulates Initiation of Retrograde Transport at Synaptic Termini. [FBrf0218160]
Masuyama et al., 2012, J. Neurogenet. 26(1): 89--102
Mapping neural circuits with activity-dependent nuclear import of a transcription factor. [FBrf0217864]
McDermott et al., 2012, Biol. Open 1(5): 488--497
Drosophila Syncrip binds the gurken mRNA localisation signal and regulates localised transcripts during axis specification. [FBrf0218722]
Mouri et al., 2012, Genes Cells 17(6): 509--524
Cohesin controls planar cell polarity by regulating the level of the seven-pass transmembrane cadherin Flamingo. [FBrf0218403]
Nie et al., 2012, Dev. Biol. 371(2): 312--320
Cross species analysis of Prominin reveals a conserved cellular role in invertebrate and vertebrate photoreceptor cells. [FBrf0219508]
Penalva and Mirouse, 2012, Development 139(24): 4549--4554
Tissue-specific function of Patj in regulating the Crumbs complex and epithelial polarity. [FBrf0220038]
Pfeiffer et al., 2012, Proc. Natl. Acad. Sci. U.S.A. 109(17): 6626--6631
Using translational enhancers to increase transgene expression in Drosophila. [FBrf0218136]
Rahman et al., 2012, Nat. Neurosci. 15(6): 871--875
Visual neurotransmission in Drosophila requires expression of Fic in glial capitate projections. [FBrf0219393]
Reeves et al., 2012, Dev. Cell 22(3): 544--557
Dorsal-ventral gene expression in the Drosophila embryo reflects the dynamics and precision of the dorsal nuclear gradient. [FBrf0217797]
Roberts et al., 2012, Mol. Biol. Cell 23(11): 2041--2056
Regulation of Wnt signaling by the tumor suppressor adenomatous polyposis coli does not require the ability to enter the nucleus or a particular cytoplasmic localization. [FBrf0218500]
Sadananda et al., 2012, Traffic 13(7): 979--991
Interaction with a Kinesin-2 tail propels choline acetyltransferase flow towards synapse. [FBrf0218568]
Schmidt et al., 2012, J. Neurosci. 32(22): 7466--7476
Kinesin heavy chain function in Drosophila glial cells controls neuronal activity. [FBrf0218491]
Sienski et al., 2012, Cell 151(5): 964--980
Transcriptional silencing of transposons by piwi and maelstrom and its impact on chromatin state and gene expression. [FBrf0220033]
Sitaram et al., 2012, Development 139(16): 2945--2954
Regulation of dynein localization and centrosome positioning by Lis-1 and asunder during Drosophila spermatogenesis. [FBrf0219060]
Song and Lu, 2012, J. Biol. Chem. 287(21): 17716--17728
Interaction of Notch Signaling Modulator Numb with α-Adaptin Regulates Endocytosis of Notch Pathway Components and Cell Fate Determination of Neural Stem Cells. [FBrf0218342]
Tran et al., 2012, Science 338(6107): 679--682
Asymmetric division of Drosophila male germline stem cell shows asymmetric histone distribution. [FBrf0219854]
Troost et al., 2012, J. Cell Sci. 125(3): 763--776
The tumour suppressor Lethal (2) giant discs is required for the function of the ESCRT-III component Shrub/CHMP4. [FBrf0217584]
Vakaloglou et al., 2012, J. Cell Sci. 125(13): 3221--3232
Functional analysis of parvin and different modes of IPP-complex assembly at integrin sites during Drosophila development. [FBrf0219290]
Weiss et al., 2012, Genetics 190(2): 581--600
Huntingtin Aggregation Kinetics and Their Pathological Role in a Drosophila Huntington's Disease Model. [FBrf0217529]
Wu et al., 2012, FEBS Lett. 586(22): 4052--4060
Drosophila miR-5 suppresses Hedgehog signaling by directly targeting Smoothened. [FBrf0219894]
Xie et al., 2012, Dev. Biol. 363(2): 399--412
Drosophila Epsin's role in Notch ligand cells requires three Epsin protein functions: The lipid binding function of the ENTH domain, a single Ubiquitin interaction motif, and a subset of the C-terminal protein binding modules. [FBrf0217494]
Yao et al., 2012, Mol. Biol. Cell 23(18): 3532--3541
A nuclear-derived proteinaceous matrix embeds the microtubule spindle apparatus during mitosis. [FBrf0219434]
Yao et al., 2012, Chromosoma 121(2): 209--220
The chromodomain-containing NH(2)-terminus of Chromator interacts with histone H1 and is required for correct targeting to chromatin. [FBrf0218885]
Zanet et al., 2012, J. Cell Biol. 197(4): 477--486
Fascin promotes filopodia formation independent of its role in actin bundling. [FBrf0218285]
Zhou and Hong, 2012, Development 139(16): 2891--2896
Drosophila Patj plays a supporting role in apical-basal polarity but is essential for viability. [FBrf0219035]
Atanesyan et al., 2011, J. Biol. Inorg. Chem. 16(7): 1047--1056
Characterization of MtnE, the fifth metallothionein member in Drosophila. [FBrf0215591]
Banks et al., 2011, PLoS ONE 6(3): e18259
The functions of auxilin and rab11 in Drosophila suggest that the fundamental role of ligand endocytosis in notch signaling cells is not recycling. [FBrf0213386]
Barry et al., 2011, Development 138(9): 1759--1769
The Drosophila STUbL protein Degringolade limits HES functions during embryogenesis. [FBrf0213458]
Barth et al., 2011, Cell Death Differ. 18(6): 915--924
Autophagy in Drosophila ovaries is induced by starvation and is required for oogenesis. [FBrf0213616]
Besson et al., 2011, J. Comp. Neurol. 519(14): 2734--2757
Involvement of the drosophila taurine/aspartate transporter dEAAT2 in selective olfactory and gustatory perceptions. [FBrf0214574]
Chang et al., 2011, Genetics 188(4): 883--896
Anterior-Posterior Axis Specification in Drosophila Oocytes: Identification of Novel bicoid and oskar mRNA Localization Factors. [FBrf0214626]
Christiansen et al., 2011, J. Neurosci. 31(26): 9696--9707
Presynapses in Kenyon Cell Dendrites in the Mushroom Body Calyx of Drosophila. [FBrf0214059]
Djiane et al., 2011, J. Cell Biol. 192(1): 189--200
Su(dx) E3 ubiquitin ligase-dependent and -independent functions of Polychaetoid, the Drosophila ZO-1 homologue. [FBrf0212737]
Dubin-Bar et al., 2011, Development 138(21): 4661--4671
Drosophila javelin-like encodes a novel microtubule-associated protein and is required for mRNA localization during oogenesis. [FBrf0216406]
Dunipace et al., 2011, Development 138(18): 4075--4084
Complex interactions between cis-regulatory modules in native conformation are critical for Drosophila snail expression. [FBrf0214809]
Eissenberg et al., 2011, Traffic 12(12): 1821--1838
Drosophila GGA Model: An Ultimate Gateway to GGA Analysis. [FBrf0216574]
Emre et al., 2011, J. Cell Sci. 124(10): 1664--1671
A mitotic role for Mad1 beyond the spindle checkpoint. [FBrf0213557]
Estes et al., 2011, Hum. Mol. Genet. 20(12): 2308--2321
Wild-type and A315T mutant TDP-43 exert differential neurotoxicity in a Drosophila model of ALS. [FBrf0213802]
Fiedler et al., 2011, Proc. Natl. Acad. Sci. U.S.A. 108(5): 1937--1942
Dishevelled interacts with the DIX domain polymerization interface of Axin to interfere with its function in down-regulating {beta}-catenin. [FBrf0212953]
Gao et al., 2011, Proc. Natl. Acad. Sci. U.S.A. 108(12): 4932--4937
Paternal imprint essential for the inheritance of telomere identity in Drosophila. [FBrf0213318]
Geiger et al., 2011, PLoS ONE 6(11): e28349
Hole-in-One Mutant Phenotypes Link EGFR/ERK Signaling to Epithelial Tissue Repair in Drosophila. [FBrf0216857]
Gontijo et al., 2011, Nat. Commun. 2: 323
Intron retention in the Drosophila melanogaster Rieske iron sulphur protein gene generated a new protein. [FBrf0213743]
Guan et al., 2011, Learn. Mem. 18(4): 191--206
Altered gene regulation and synaptic morphology in Drosophila learning and memory mutants. [FBrf0213277]
Hadjieconomou et al., 2011, Nat. Methods 8(3): 260--266
Flybow: genetic multicolor cell labeling for neural circuit analysis in Drosophila melanogaster. [FBrf0213120]
Han et al., 2011, Proc. Natl. Acad. Sci. U.S.A. 108(23): 9673--9678
Enhancer-driven membrane markers for analysis of nonautonomous mechanisms reveal neuron-glia interactions in Drosophila. [FBrf0213916]
Handler et al., 2011, EMBO J. 30(19): 3977--3993
A systematic analysis of Drosophila TUDOR domain-containing proteins identifies Vreteno and the Tdrd12 family as essential primary piRNA pathway factors. [FBrf0216344]
Hatan et al., 2011, J. Cell Biol. 192(2): 307--319
The Drosophila blood brain barrier is maintained by GPCR-dependent dynamic actin structures. [FBrf0212807]
Henthorn et al., 2011, Mol. Biol. Cell 22(21): 4038--4046
A role for kinesin heavy chain in controlling vesicle transport into dendrites in Drosophila. [FBrf0216511]
Isaji et al., 2011, PLoS ONE 6(8): e22755
Myosin VI Regulates Actin Structure Specialization through Conserved Cargo-Binding Domain Sites. [FBrf0214724]
Jana et al., 2011, Mol. Biol. Cell 22(6): 769--781
Heterotrimeric kinesin-II is necessary and sufficient to promote different stepwise assembly of morphologically distinct bipartite cilia in Drosophila antenna. [FBrf0213262]
Jin et al., 2011, Dev. Cell 20(5): 623--638
Competition between Blown Fuse and WASP for WIP Binding Regulates the Dynamics of WASP-Dependent Actin Polymerization In Vivo. [FBrf0213682]
Laplante and Nilson, 2011, J. Cell Biol. 192(2): 335--348
Asymmetric distribution of Echinoid defines the epidermal leading edge during Drosophila dorsal closure. [FBrf0212838]
Lee et al., 2011, Int. J. Biochem. & Cell Biol. 43(9): 1392--1401
Drosophila arf72A acts as an essential regulator of endoplasmic reticulum quality control and suppresses autosomal-dominant retinopathy. [FBrf0214528]
Marinho et al., 2011, Development 138(2): 349--357
The Drosophila Nol12 homologue viriato is a dMyc target that regulates nucleolar architecture and is required for dMyc-stimulated cell growth. [FBrf0212565]
Mendoza-Topaz et al., 2011, Open Biol. 1(3): 110013
The Adenomatous polyposis coli tumour suppressor is essential for Axin complex assembly and function and opposes Axin's interaction with Dishevelled. [FBrf0218486]
Mirkovic et al., 2011, Nat. Struct. Mol. Biol. 18(6): 665--672
Nemo kinase phosphorylates β-catenin to promote ommatidial rotation and connects core PCP factors to E-cadherin-β-catenin. [FBrf0213849]
Miśkiewicz et al., 2011, Neuron 72(5): 776--788
ELP3 Controls Active Zone Morphology by Acetylating the ELKS Family Member Bruchpilot. [FBrf0216903]
Morawe et al., 2011, J. Cell Biol. 193(1): 71--80
Loss of the extraproteasomal ubiquitin receptor Rings lost impairs ring canal growth in Drosophila oogenesis. [FBrf0213374]
Nguyen et al., 2011, Neural Dev. 6: 38
Microtubules are organized independently of the centrosome in Drosophila neurons. [FBrf0217384]
Ouyang et al., 2011, Development 138(11): 2185--2196
Dronc caspase exerts a non-apoptotic function to restrain phospho-Numb-induced ectopic neuroblast formation in Drosophila. [FBrf0213702]
Pinto et al., 2011, EMBO J. 30(12): 2431--2444
RNA polymerase II kinetics in polo polyadenylation signal selection. [FBrf0213944]
Popova et al., 2011, J. Cell Sci. 124(24): 4203--4212
Rb deficiency during Drosophila eye development deregulates EMC, causing defects in the development of photoreceptors and cone cells. [FBrf0217175]
Richter et al., 2011, Nat. Cell Biol. 13(9): 1029--1039
The tumour suppressor L(3)mbt inhibits neuroepithelial proliferation and acts on insulator elements. [FBrf0215050]
Rodal et al., 2011, J. Cell Biol. 193(1): 201--217
A presynaptic endosomal trafficking pathway controls synaptic growth signaling. [FBrf0213353]
Rossetto et al., 2011, Hum. Mol. Genet. 20(21): 4248--4257
Defhc1.1, a homologue of the juvenile myoclonic gene EFHC1, modulates architecture and basal activity of the neuromuscular junction in Drosophila. [FBrf0216330]
Rotkopf et al., 2011, Development 138(13): 2729--2739
The WASp-based actin polymerization machinery is required in somatic support cells for spermatid maturation and release. [FBrf0213892]
Sabino et al., 2011, J. Cell Sci. 124(7): 1156--1166
Drosophila Ajuba is not an Aurora-A activator but is required to maintain Aurora-A at the centrosome. [FBrf0213223]
Sanders and Smith, 2011, PLoS ONE 6(8): e24151
LUMP Is a Putative Double-Stranded RNA Binding Protein Required for Male Fertility in Drosophila melanogaster. [FBrf0215206]
Schulz et al., 2011, EMBO Rep. 12(10): 1039--1046
Drosophila syndecan regulates tracheal cell migration by stabilizing Robo levels. [FBrf0216287]
Shapira et al., 2011, Mol. Cell. Biol. 31(22): 4582--4592
The Drosophila javelin Gene Encodes a Novel Actin-Associated Protein Required for Actin Assembly in the Bristle. [FBrf0216490]
Strukov et al., 2011, PLoS Biol. 9(1): e1000574
Evidence of Activity-Specific, Radial Organization of Mitotic Chromosomes in Drosophila. [FBrf0212852]
Szuperák et al., 2011, Development 138(4): 715--724
Feedback regulation of Drosophila BMP signaling by the novel extracellular protein Larval Translucida. [FBrf0212881]
Tanaka et al., 2011, Development 138(12): 2523--2532
Drosophila Mon2 couples Oskar-induced endocytosis with actin remodeling for cortical anchorage of the germ plasm. [FBrf0213769]
Tennessen et al., 2011, Cell Metab. 13(2): 139--148
The Drosophila Estrogen-Related Receptor Directs a Metabolic Switch that Supports Developmental Growth. [FBrf0212927]
Trivigno and Haerry, 2011, PLoS ONE 6(2): e16799
The Drosophila Mitochondrial Translation Elongation Factor G1 Contains a Nuclear Localization Signal and Inhibits Growth and DPP Signaling. [FBrf0213194]
White et al., 2011, J. Cell Biol. 193(4): 677--694
Drosophila histone locus bodies form by hierarchical recruitment of components. [FBrf0213662]
Wu et al., 2011, Neuron 70(2): 281--298
A combinatorial semaphorin code instructs the initial steps of sensory circuit assembly in the Drosophila CNS. [FBrf0213571]
Zhang et al., 2011, Chromosoma 120(1): 97--108
Drosophila melanogaster heterochromatin protein HP1b plays important roles in transcriptional activation and development. [FBrf0212898]
Zheng et al., 2011, Dev. Biol. 357(1): 202--210
magu is required for germline stem cell self-renewal through BMP signaling in the Drosophila testis. [FBrf0214645]
Zhou et al., 2011, Development 138(6): 1111--1120
Auxilin is required for formation of Golgi-derived clathrin-coated vesicles during Drosophila spermatogenesis. [FBrf0213068]
Zhu et al., 2011, Proc. Natl. Acad. Sci. U.S.A. 108(51): 20615--20620
Ets transcription factor Pointed promotes the generation of intermediate neural progenitors in Drosophila larval brains. [FBrf0216951]
hide Recent reviews (0)
All reviews listed in FlyBase were published before 2011