A Database of Drosophila Genes & Genomes

FB2013_03, released May 7th, 2013
 

Allele Scer\GAL4tub.PU

General Information
SymbolScer\GAL4tub.PUSpeciesS. cerevisiae
Nametubulin promoter construct of UnknownFlyBase IDFBal0181584
Feature typealleleAssociated geneScer\GAL4
Allele class
Mutagenin vitro construct - regulatory fusion
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Description
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FB2013_03
FB2013_02
Controlled Vocabulary Terms
All updates Click here to see a list of all updates to this record from FB2010_08 and on.
hide Nature of the Allele
Allele class
Mutagen
Mutations Mapped to the Genome
Type
Location
Additional Notes
References
Associated Sequence Data
DDBJ /
EMBL /
GenBank
DNA sequence
Protein sequence
Name
 
UniProtKB/Swiss-Prot
UniProtKB/TrEMBL
Progenitor genotype
Nature of the lesion
Statement
Reference
 
 
Carried in construct
(Lee et al., 2007, Simons et al., 2009, Acar et al., 2008, Huang et al., 2005, Cygnar et al., 2005, Nern et al., 2005, Huang et al., 2005, Werz et al., 2005, Arama et al., 2006, Perez-Garijo et al., 2005, Bellosta et al., 2005, Hsu et al., 2007, Ahmad et al., 2009, Chang et al., 2008, Mao et al., 2009, Alvarado et al., 2006, Sinclair et al., 2009, Balan et al., 2008, Sinclair et al., 2009, Akbar et al., 2009, Patel et al., 2009, Caygill and Johnston, 2008, Zhang et al., 2008, Gibson and Perrimon, 2005, Wandall et al., 2005, Lee and Treisman, 2004, Porsch et al., 2005, Castillejo-Lopez and Haecker, 2005, Moussian et al., 2006, Thompson and Cohen, 2006, Mao et al., 2006, Jafar-Nejad et al., 2006, Matusek et al., 2006, Strutt et al., 2006, Akasaka et al., 2006, Herz et al., 2006, Crickmore and Mann, 2006, Crickmore and Mann, 2006, Augustin et al., 2007, Ramel et al., 2007, Culi et al., 2006, Stevens and Mann, 2007, Fluegel et al., 2006, Hietakangas and Cohen, 2007, Ganguly et al., 2008, Seto and Bellen, 2006, Hughes and Fehon, 2006, Acevedo et al., 2007, Cheng et al., 2011, Baumann et al., 2010, Hallson et al., 2012, Johnson et al., 2011, Abdou et al., 2011, McKechnie et al., 2010, Bader et al., 2011, Laflamme et al., 2012, Duan et al., 2011, Mast et al., 2011, Caussinus et al., 2011, Legent et al., 2012, Estella and Mann, 2010, Song et al., 2007, Rodriguez-Jato et al., 2011, Herr and Basler, 2012, Yakubovich et al., 2010, David et al., 2005, Peretz et al., 2007, Krieser et al., 2007, Legan et al., 2008, Angus et al., 2012, Cho et al., 2006, Perdigoto et al., 2011, Yue et al., 2012, Reddy and Irvine, 2011, Bayat et al., 2012, Nabel-Rosen et al., 2002, Tang and Presgraves, 2009, Matakatsu and Blair, 2008, Chan et al., 2008, Grusche et al., 2009, Schauer et al., 2009, Yan et al., 2008, Spasić et al., 2008, Carrera et al., 2008, Deddouche et al., 2008, Kaplan et al., 2008, Suyari et al., 2009, Kaplan et al., 2008, Huang et al., 2007, Palgi et al., 2009, Colombelli et al., 2009, Urwyler et al., 2007, Miller et al., 2009, Mandalaywala et al., 2008, Andrews et al., 2009, Lee et al., 2009, Corl et al., 2009, Vied and Kalderon, 2009, Mitchell et al., 2008, González et al., 2008, Sopko et al., 2009, Yang and Fan, 2008, Qi et al., 2009, Oishi et al., 2009, Barry et al., 2008, Kang and Ryoo, 2009, Bretman et al., 2010, Wang and Kalderon, 2009, Szuplewski et al., 2009, Haines et al., 2007, Zhang et al., 2009, Lyulcheva et al., 2008, Rallis et al., 2010, Khaliullina et al., 2009, Steinhauer et al., 2009, Besse et al., 2007, Gonsalvez et al., 2008, Zielke et al., 2006, Zimmermann et al., 2006, Kanwar and Fortini, 2008, Ratnaparkhi et al., 2008, Chen et al., 2008, Johnson et al., 2008, Shcherbata et al., 2007, Jaekel and Klein, 2006, Hua et al., 2010, Usha and Shashidhara, 2010, Funakoshi et al., 2010, Chen et al., 2010, Genevet et al., 2010, Mauvezin et al., 2010, Tamori et al., 2010, Fergestad et al., 2010, Bardet et al., 2008, Corrigall et al., 2007, Ekas et al., 2010, Hamel et al., 2010, Verdier et al., 2006, Betz et al., 2008, Finelli et al., 2004, Haberman et al., 2010, Ni et al., 2009, Anne, 2010, Voolstra et al., 2010, Gause et al., 2010, Park et al., 2010, Neto-Silva et al., 2010, Schroder-Lang et al., 2007, Sekine et al., 2010, Kelley et al., 2008, Bennett et al., 2010, Rendina et al., 2010, Guittard et al., 2011, Nicholson et al., 2011, Kushner et al., 2010, Giraudo et al., 2010, Fridell et al., 2005, Zhang et al., 2011, Kasuya et al., 2009, Zhang and Megraw, 2007, Wang et al., 2011, Morante et al., 2011, Ajuria et al., 2011, Nisoli et al., 2010, Rival et al., 2011, Francis et al., 2010, Tian et al., 2011, Xue et al., 2007, Li et al., 2008, Lin et al., 2009, Feng and Irvine, 2009, Eddison et al., 2011, Rauskolb et al., 2011, Tselykh et al., 2005, Maruyama et al., 2011, Schulte, 2011.9.16, Schulte, 2011.9.16, Anh et al., 2011, Burnett et al., 2011, Clark et al., 2011, Badouel et al., 2009, Wakabayashi-Ito et al., 2011, Herz et al., 2010, Bardin et al., 2010, Wu et al., 2008, Bhandari et al., 2006, Okajima et al., 2008, Tie et al., 2012, McDermott et al., 2012, Isaji et al., 2011, Wang et al., 2012, Baradaran-Heravi et al., 2012, Kaspar et al., 2008, Bricker et al., 2012, Chen et al., 2012, Kong et al., 2010, Singh and Mlodzik, 2012, Christiansen et al., 2012, Dorn et al., 2011, Oishi et al., 2006, Jin et al., 2012, Palm et al., 2012, Chen et al., 2012, Ardehali et al., 2009, Dornier et al., 2012, Bi et al., 2012, Yatsenko et al., 2009, Weng et al., 2012, Penalva and Mirouse, 2012, Okamoto et al., 2013, Gomez et al., 2012, Gaur et al., 2013, Dickman et al., 2012, Tomlinson, 2012, Lerner et al., 2013, Kumar et al., 2009, Miller et al., 2012, Gupta et al., 2008, Chan et al., 2011, Juhász et al., 2012, Azzam and Liu, 2013)
Cytology
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axon & photoreceptor cell R7 | somatic clone, with sensScer\UAS.cNa
larval neuromuscular junction & postsynaptic membrane, with gbdsRNA.Scer\UAS
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Statement
Reference
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Linkouts
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hideEnhanced by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, enhanceable by E(spl)m8-HLHrv1/E(spl)m8-HLH[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, enhanceable by lace[+]/lace2
hideNOT Enhanced by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-enhanceable by dos[+]/dosP115
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-enhanceable by phl7/phl[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-enhanceable by spi1/spi[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-enhanceable by spi259/spi[+]
hideSuppressed by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by dppd6/dpp[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by E(spl)m8-HLH1/E(spl)m8-HLH[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by Egfr[+]/Egfrt1
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by Hsp83[+]/Hsp83e6A
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by Hsp83e6D/Hsp83[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by Ras85De1B/Ras85D[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by Su(H)[+]/Su(H)1
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by tkv1/tkv[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, suppressible by tkv7/tkv[+]
Scer\GAL4tub.PU, SnooGS-C517T has visible phenotype, suppressible | partially by dppd5/dpp[+]
Scer\GAL4tub.PU, SnooGS-C517T has visible phenotype, suppressible | partially by dppd6/dpp[+]
Scer\GAL4tub.PU, SnooGS-C517T has visible phenotype, suppressible | partially by dpps11/dpp[+]
hideNOT suppressed by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-suppressible by CblKG03080/Cbl[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-suppressible by dos[+]/dosP115
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-suppressible by phl7/phl[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-suppressible by spi1/spi[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has visible phenotype, non-suppressible by spi259/spi[+]
hideNOT Enhancer of
Statement
Reference
hideSuppressor of
Statement
Reference
Atf6[+], Atf6c05057, Scer\GAL4tub.PU is a suppressor of lethal | recessive phenotype of Smn73Ao
CG10561f06260, CG10561[+], Scer\GAL4tub.PU is a suppressor of lethal | recessive phenotype of Smn73Ao
CG13775[+], Scer\GAL4tub.PU, CG13775f05549 is a suppressor of lethal | recessive phenotype of Smn73Ao
ctpf02345, ctp[+], Scer\GAL4tub.PU is a suppressor of lethal | recessive phenotype of Smn73Ao
Moee02369, Scer\GAL4tub.PU, Moe[+] is a suppressor of lethal | recessive phenotype of Smn73Ao
Scer\GAL4tub.PU, CG12214[+], mlte00818 is a suppressor of lethal | recessive phenotype of Smn73Ao
Scer\GAL4tub.PU, P{XP}d03478, + is a suppressor of lethal | recessive phenotype of Smn73Ao
Scer\GAL4tub.PU, P{XP}d10763, + is a suppressor of lethal | recessive phenotype of Smn73Ao
hideNOT Suppressor of
Statement
Reference
hide Phenotype Manifest In
hideEnhanced by
Statement
Reference
hideNOT Enhanced by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has wing vein | ectopic phenotype, non-enhanceable by phl7/phl[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has wing vein | ectopic phenotype, non-enhanceable by spi1/spi[+]
hideSuppressed by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has wing vein | ectopic phenotype, suppressible by E(spl)m8-HLH1/E(spl)m8-HLH[+]
Scer\GAL4tub.PU, SnooGS-C517T has wing vein | ectopic phenotype, suppressible | partially by dppd5/dpp[+]
Scer\GAL4tub.PU, SnooGS-C517T has wing vein | ectopic phenotype, suppressible | partially by dppd6/dpp[+]
hideNOT suppressed by
Statement
Reference
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has wing vein | ectopic phenotype, non-suppressible by phl7/phl[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has wing vein | ectopic phenotype, non-suppressible by spi1/spi[+]
Scer\GAL4tub.PU, cswN308D.Scer\UAS.P\T has wing vein | ectopic phenotype, non-suppressible by spi259/spi[+]
hideEnhancer of
Statement
Reference
hideNOT Enhancer of
Statement
Reference
Scer\GAL4tub.PU/BacA\p35Scer\UAS.cHa is a non-enhancer of cell & larval salivary gland | somatic clone phenotype of miΔEY22
Scer\GAL4tub.PU/BacA\p35Scer\UAS.cHa is a non-enhancer of nucleus & cell & larval salivary gland | somatic clone phenotype of miΔEY22
hideSuppressor of
Statement
Reference
hideNOT Suppressor of
Statement
Reference
Scer\GAL4tub.PU/BacA\p35Scer\UAS.cHa is a non-suppressor of cell & larval salivary gland | somatic clone phenotype of miΔEY22
Scer\GAL4tub.PU/BacA\p35Scer\UAS.cHa is a non-suppressor of nucleus & cell & larval salivary gland | somatic clone phenotype of miΔEY22
Scer\GAL4tub.PU/daScer\UAS.cGa is a non-suppressor of adult thorax & microchaeta | somatic clone phenotype of sensE2
Scer\GAL4tub.PU/osScer\UAS.cZa is a non-suppressor of eye phenotype of WGMR.PG/WGMR.PG
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Reference
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Statement
Reference
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Rescues
Partially rescues
Fails to rescue
Comments
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Discoverer
hide Comments
Carried in plasmid "ptub-GAL4", transfected into S2 cells and used as a driver construct.
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hide Synonyms & Secondary IDs ( 3 )
Reported As
Symbol Synonym
Scer\GAL4tub.PU
 
Scer\GAL4tub
 
Name Synonym
tubulin promoter construct of Unknown
 
Secondary FlyBase IDs
hide References ( 237 )
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hide Recent research papers ( 61 )
Azzam and Liu, 2013, PLoS Genet. 9(2): e1003256
Only One Isoform of Drosophila melanogaster CTP Synthase Forms the Cytoophidium. [FBrf0220954]
Gaur et al., 2013, Hum. Mol. Genet. 22(2): 284--299
The Birt-Hogg-Dube tumor suppressor Folliculin negatively regulates ribosomal RNA synthesis. [FBrf0220369]
Lerner et al., 2013, Dev. Cell 24(2): 159--168
A Rab10-Dependent Mechanism for Polarized Basement Membrane Secretion during Organ Morphogenesis. [FBrf0220718]
Okamoto et al., 2013, Genes Dev. 27(1): 87--97
A secreted decoy of InR antagonizes insulin/IGF signaling to restrict body growth in Drosophila. [FBrf0220509]
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]
Bayat et al., 2012, PLoS Biol. 10(3): e1001288
Mutations in the Mitochondrial Methionyl-tRNA Synthetase Cause a Neurodegenerative Phenotype in Flies and a Recessive Ataxia (ARSAL) in Humans. [FBrf0217845]
Bi et al., 2012, J. Cell Sci. 125(15): 3568--3577
Opposite and redundant roles of the two Drosophila perilipins in lipid mobilization. [FBrf0219622]
Bricker et al., 2012, Science 337(6090): 96--100
A mitochondrial pyruvate carrier required for pyruvate uptake in yeast, Drosophila, and humans. [FBrf0218824]
Broderick et al., 2012, PLoS ONE 7(9): e44567
Drosophila ninjurin a induces nonapoptotic cell death. [FBrf0219544]
Chen et al., 2012, Development 139(12): 2170--2176
Crossveinless d is a vitellogenin-like lipoprotein that binds BMPs and HSPGs, and is required for normal BMP signaling in the Drosophila wing. [FBrf0218386]
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]
Christiansen et al., 2012, Mech. Dev. 129(5-8): 98--108
Ligand-independent activation of the Hedgehog pathway displays non-cell autonomous proliferation during eye development in Drosophila. [FBrf0219046]
Dickman et al., 2012, J. Neurosci. 32(25): 8716--8724
Snapin is Critical for Presynaptic Homeostatic Plasticity. [FBrf0218676]
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]
Fletcher et al., 2012, Curr. Biol. 22(12): 1116--1122
Positive feedback and mutual antagonism combine to polarize crumbs in the Drosophila follicle cell epithelium. [FBrf0218646]
Gomez et al., 2012, J. Cell Biol. 199(7): 1131--1143
Tao controls epithelial morphogenesis by promoting Fasciclin 2 endocytosis. [FBrf0220436]
Hallson et al., 2012, Genetics 190(1): 91--100
dSet1 Is the Main H3K4 Di- and Tri-Methyltransferase Throughout Drosophila Development. [FBrf0217167]
Herr and Basler, 2012, Dev. Biol. 361(2): 392--402
Porcupine-mediated lipidation is required for Wnt recognition by Wls. [FBrf0217047]
Jin et al., 2012, J. Biol. Chem. 287(8): 5784--5796
Dimerization and cytoplasmic localization regulate Hippo kinase signaling activity in organ size control. [FBrf0217990]
Juhász et al., 2012, Gene 509(1): 60--67
High Fcp1 phosphatase activity contributes to setting an intense transcription rate required in Drosophila nurse and follicular cells for egg production. [FBrf0219440]
Laflamme et al., 2012, PLoS Genet. 8(1): e1002435
The Drosophila melanogaster Seminal Fluid Protease "Seminase" Regulates Proteolytic and Post-Mating Reproductive Processes. [FBrf0217192]
Legent et al., 2012, Genetics 190(2): 601--616
A screen for x-linked mutations affecting Drosophila photoreceptor differentiation identifies casein kinase 1α as an essential negative regulator of wingless signaling. [FBrf0217484]
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]
Miller et al., 2012, J. Neurogenet. 26(3-4): 317--327
A mutation in Drosophila Aldolase Causes Temperature-Sensitive Paralysis, Shortened Lifespan, and Neurodegeneration. [FBrf0220234]
Palm et al., 2012, PLoS Genet. 8(7): e1002828
Lipoproteins in Drosophila melanogaster-Assembly, Function, and Influence on Tissue Lipid Composition. [FBrf0219024]
Penalva and Mirouse, 2012, Development 139(24): 4549--4554
Tissue-specific function of Patj in regulating the Crumbs complex and epithelial polarity. [FBrf0220038]
Singh and Mlodzik, 2012, Dev. Cell 23(1): 82--96
Hibris, a Drosophila Nephrin Homolog, Is Required for Presenilin-Mediated Notch and APP-like Cleavages. [FBrf0218978]
Sujkowski et al., 2012, Aging Cell 11(6): 921--932
dFatp regulates nutrient distribution and long-term physiology in Drosophila. [FBrf0220246]
Tie et al., 2012, Mol. Cell. Biol. 32(12): 2323--2334
Histone Demethylase UTX and Chromatin Remodeler BRM Bind Directly to CBP and Modulate Acetylation of Histone H3 Lysine 27. [FBrf0218406]
Tomlinson, 2012, J. Comp. Neurol. 520(12): 2676--2682
The origin of the Drosophila subretinal pigment layer. [FBrf0218541]
Wang et al., 2012, Mol. Cell. Biol. 32(12): 2203--2213
LST8 Regulates Cell Growth via Target-of-Rapamycin Complex 2 (TORC2). [FBrf0218417]
Weng et al., 2012, Dev. Neurobiol. 72(11): 1376--1390
Changes in Notch signaling coordinates maintenance and differentiation of the Drosophila larval optic lobe neuroepithelia. [FBrf0219799]
Yue et al., 2012, Dev. Cell 22(2): 255--267
The cell adhesion molecule echinoid functions as a tumor suppressor and upstream regulator of the hippo signaling pathway. [FBrf0217474]
Abdou et al., 2011, Insect Biochem. Mol. Biol. 41(12): 938--945
Drosophila Met and Gce are partially redundant in transducing juvenile hormone action. [FBrf0216586]
Ajuria et al., 2011, Development 138(5): 915--924
Capicua DNA-binding sites are general response elements for RTK signaling in Drosophila. [FBrf0212975]
Anh et al., 2011, J. Biol. Chem. 286(38): 33244--33251
Essential role of duox in stabilization of Drosophila wing. [FBrf0215569]
Bader et al., 2011, Cell 145(3): 371--382
A conserved f box regulatory complex controls proteasome activity in Drosophila. [FBrf0213568]
Burnett et al., 2011, Nature 477(7365): 482--485
Absence of effects of Sir2 overexpression on lifespan in C. elegans and Drosophila. [FBrf0215823]
Caussinus et al., 2011, Nat. Struct. Mol. Biol. 19(1): 117--121
Fluorescent fusion protein knockout mediated by anti-GFP nanobody. [FBrf0217163]
Chan et al., 2011, Curr. Biol. 21(20): 1704--1715
Systematic discovery of rab GTPases with synaptic functions in Drosophila. [FBrf0216517]
Cheng et al., 2011, J. Cell Biol. 194(6): 921--935
S6 kinase localizes to the presynaptic active zone and functions with PDK1 to control synapse development. [FBrf0216911]
Clark et al., 2011, Curr. Biol. 21(19): 1672--1677
Multiple TGF-β Superfamily Signals Modulate the Adult Drosophila Immune Response. [FBrf0216429]
Dorn et al., 2011, Circulation Res. 108(1): 12--17
MARF and Opa1 Control Mitochondrial and Cardiac Function in Drosophila. [FBrf0212708]
Duan et al., 2011, EMBO J. 30(15): 3120--3133
Insensitive is a corepressor for Suppressor of Hairless and regulates Notch signalling during neural development. [FBrf0214638]
Eddison et al., 2011, Neuron 70(5): 979--990
arouser Reveals a Role for Synapse Number in the Regulation of Ethanol Sensitivity. [FBrf0213908]
Guittard et al., 2011, Dev. Biol. 349(1): 35--45
CYP18A1, a key enzyme of Drosophila steroid hormone inactivation, is essential for metamorphosis. [FBrf0212396]
Isaji et al., 2011, PLoS ONE 6(8): e22755
Myosin VI Regulates Actin Structure Specialization through Conserved Cargo-Binding Domain Sites. [FBrf0214724]
Johnson et al., 2011, Mol. Biol. Cell 22(23): 4513--4526
Role for a Cindr-Arf6 axis in patterning emerging epithelia. [FBrf0216708]
Maruyama et al., 2011, PLoS ONE 6(6): e20901
Genome-Wide Analysis Reveals a Major Role in Cell Fate Maintenance and an Unexpected Role in Endoreduplication for the Drosophila FoxA Gene Fork Head. [FBrf0214025]
Mast et al., 2011, Dis. Model Mech. 4(5): 659--672
A Drosophila model for the Zellweger spectrum of peroxisome biogenesis disorders. [FBrf0215017]
Morante et al., 2011, Development 138(4): 687--693
Cell migration in Drosophila optic lobe neurons is controlled by eyeless/Pax6. [FBrf0212874]
Nicholson et al., 2011, Development 138(2): 251--260
Notch-dependent expression of the archipelago ubiquitin ligase subunit in the Drosophila eye. [FBrf0212669]
Perdigoto et al., 2011, Development 138(21): 4585--4595
Distinct levels of Notch activity for commitment and terminal differentiation of stem cells in the adult fly intestine. [FBrf0216374]
Rauskolb et al., 2011, PLoS Biol. 9(6): e1000624
Zyxin links fat signaling to the hippo pathway. [FBrf0213900]
Reddy and Irvine, 2011, Development 138(23): 5201--5212
Regulation of Drosophila glial cell proliferation by Merlin-Hippo signaling. [FBrf0216584]
Rodriguez-Jato et al., 2011, PLoS ONE 6(12): e27479
Drosophila melanogaster dHCF Interacts with both PcG and TrxG Epigenetic Regulators. [FBrf0216958]
Tian et al., 2011, PLoS Genet. 7(4): e1001364
Tissue-autonomous function of Drosophila seipin in preventing ectopic lipid droplet formation. [FBrf0213596]
Wakabayashi-Ito et al., 2011, PLoS ONE 6(10): e26183
dtorsin, the Drosophila Ortholog of the Early-Onset Dystonia TOR1A (DYT1), Plays a Novel Role in Dopamine Metabolism. [FBrf0216459]
Wang et al., 2011, Dev. Biol. 351(1): 146--155
The cholesterol trafficking protein NPC1 is required for Drosophila spermatogenesis. [FBrf0212972]
Zhang et al., 2011, Chromosoma 120(1): 97--108
Drosophila melanogaster heterochromatin protein HP1b plays important roles in transcriptional activation and development. [FBrf0212898]
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All reviews listed in FlyBase were published before 2011