A Database of Drosophila Genes & Genomes

FB2013_03, released May 7th, 2013
 

Recombinant construct P{matα4-GAL-VP16}

General Information
Symbol P{matα4-GAL-VP16} FlyBase ID FBtp0009293
Feature type transgenic_transposon
Size Expression data GAL4 reporter/driver
Associated insertions 4 available
Molecular map
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Description
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FB2013_03
FB2013_02
Controlled Vocabulary Terms
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All updates Click here to see a list of all updates to this record from FB2010_08 and on.
hide Description & Uses
Species synthetic construct
Location-dependent
role
Description
CV term
Qualifiers & info
Reference
transposon
Uses
CV term
Qualifiers & info
Reference
binary system (regulatory)
Cloning Sites
Location
Restriction sites
Reference
hide Sequence Data
Sequence (FB)
Associated Sequence Data
DDBJ /
EMBL /
GenBank
DNA sequence
Extent
 
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Total Size
Left end
Right end
Segments
Number
Orientation
Symbol
Reference
hide Features
CV term
Qualifiers & info
Reference
molecular
reporter
hide Component Alleles
Allele Scer\GAL4mat.αTub67C.T:Hsim\VP16
Reference(s) (Chen et al., 2000, Albertson and Doe, 2003, Minestrini et al., 2002, Sapir et al., 2005, Kaltschmidt et al., 2000, Lu et al., 1999, Hunter et al., 2002, Dawes-Hoang et al., 2005, Renault et al., 2003, Wodarz et al., 1999, Januschke et al., 2002, Hartmann et al., 2001, Reich et al., 1999, Betschinger et al., 2003, Goodliffe et al., 2005, Hong et al., 2001, Li et al., 2005, Pitsouli and Delidakis, 2005, Lecuit et al., 2002, Ahmed et al., 2002, Brown et al., 2003, Forrest and Gavis, 2003, Baum and Perrimon, 2001, Brown et al., 2001, Schaefer et al., 2001, Chen et al., 2002, Kambris et al., 2003, Kolsch et al., 2007, Chen et al., 2003, Petritsch et al., 2003, Takashima et al., 2002, Januschke et al., 2002, Martin and St. Johnston, 2003, Raff et al., 2002, Eldar et al., 2002, Martin and St Johnston, 2003, Bossing et al., 2002, Minestrini et al., 2003, Dienemann and Sprenger, 2004, Bauer et al., 2004, Wang et al., 2004, Carrera et al., 2003, Bertet et al., 2004, Herzig et al., 2002, Yoo et al., 2002, Estella et al., 2003, Izumi et al., 2004, Schnorrer et al., 2002, Zallen and Wieschaus, 2004, Peel et al., 2007, Baum et al., 2000, Benton and St. Johnston, 2003, Morel and Schweisguth, 2000, Dorfman and Shilo, 2001, Lu et al., 2001, McGill et al., 2009, Wodarz et al., 2000, Petronczki and Knoblich, 2001, Hunter and Wieschaus, 2000, Hacker and Perrimon, 1998, Grosshans and Wieschaus, 2000, Maxton-Kuchenmeister et al., 1999, Jazwinska et al., 1999, Mirouse et al., 2005, Xu et al., 2005, von Stein et al., 2005, Wakefield, 2000, Noll et al., 2000, Sotillos et al., 2004, Ratnaparkhi et al., 2006, Yan and Macdonald, 2004, Mathe et al., 2004, Tolwinski and Wieschaus, 2001, Lee et al., 2001, Glazer and Shilo, 2001, Cleghon et al., 1998, Axelrod et al., 1998, Sun et al., 2001, Barros et al., 2003, Hamaguchi et al., 2004, Fuse et al., 2003, Grosshans et al., 2003, Farge, 2003, Benton and St. Johnston, 2003, Wasser and Chia, 2003, Bokel et al., 2006, Doerflinger et al., 2006, Doerflinger, 2006, Wehr et al., 2006, Pilot et al., 2006, Pilot, 2006, Carneiro et al., 2006, Siegrist and Doe, 2005, Betschinger et al., 2006, Padash Barmchi et al., 2005, Bossing and Brand, 2006, Pilot et al., 2006, Althoff et al., 2009, de las Heras and Casanova, 2006, Langevin et al., 2005, Lin et al., 2006, Meyer et al., 2006, Lin et al., 2006, Okumura et al., 2007, Harris and Peifer, 2005, Jordan et al., 2006, Rodrigues-Martins et al., 2007, Coutelis and Ephrussi, 2007, Lancaster et al., 2007, Staudt et al., 2006, Bardin and Schweisguth, 2006, Geng and MacDonald, 2007, Wang et al., 2005, Hampoelz et al., 2005, Zimyanin et al., 2007, Zimyanin et al., 2007, Shapira et al., 2011, Fan et al., 2011, Archambault et al., 2007, Taniguchi et al., 2011, Uddin et al., 2011, Yamakawa et al., 2012, Turki-Judeh and Courey, 2012, Gates et al., 2007, Shravage et al., 2007, Roberts et al., 2012, Tamada et al., 2012, McKinley et al., 2012, Marek and Kagan, 2012, Neumüller et al., 2012, Eissenberg et al., 2011, Siegrist and Doe, 2006, Kessler and Müller, 2009, Tian and Deng, 2009, Tzortzopoulos and Skoulakis, 2007, Pentek et al., 2009, De Renzis et al., 2006, Singh et al., 2006, Pauli et al., 2008, Pauli et al., 2008, Sung et al., 2008, Nie et al., 2009, Tian and Deng, 2008, Gervais et al., 2008, Tanaka and Nakamura, 2008, Wainman et al., 2009, Krauss et al., 2009, Gates et al., 2009, Krauss et al., 2009, Boylan et al., 2008, Lu et al., 2009, Eivers et al., 2009, Liu et al., 2009, Besse et al., 2009, Brunk et al., 2007, Suyama et al., 2009, Schittenhelm et al., 2009, Fontenele et al., 2009, Bertet et al., 2009, Hutterer and Knoblich, 2005, Morais-de-Sá et al., 2010, Ogawa et al., 2009, Shcherbata et al., 2007, Doerflinger et al., 2010, Yatsenko et al., 2007, Reich et al., 2009, Reveal et al., 2010, Compagnon et al., 2009, Sokac and Wieschaus, 2008, Becalska and Gavis, 2010, Zhang et al., 2009, Archambault et al., 2008, Goodliffe et al., 2007, Lucas and Raff, 2007, Nezis et al., 2008, Miles et al., 2008, Schittenhelm et al., 2010, Guichard et al., 2006, Wenzl et al., 2010, Bakhrat et al., 2010, Venkei et al., 2011, Hain et al., 2010, Parra-Peralbo and Culi, 2011, van Uden et al., 2011, Klusza and Deng, 2010, Grillo et al., 2011, Singh et al., 2011, Yu et al., 2011, Wang et al., 2010, Abreu-Blanco et al., 2011, Simões et al., 2010, Stevens et al., 2010, Tanaka et al., 2011, Windler and Bilder, 2010, Wang et al., 2011, Vazquez-Pianzola et al., 2011, Xie et al., 2010, Dubin-Bar et al., 2011, Di Talia and Wieschaus, 2012, Slack et al., 2011, Muyrers-Chen et al., 2004, Di Talia and Wieschaus, 2012, Rauzi et al., 2010, Sanghavi et al., 2012, Venkei et al., 2012, Althoff et al., 2012, Mathew et al., 2011, Yao et al., 2012, Radford et al., 2012, Rodrigues-Martins et al., 2008, Yatsenko et al., 2009, Belacortu et al., 2011, Urwyler et al., 2012, Pearson et al., 2006, Ratnaparkhi et al., 2008, Benetka et al., 2008, Hudson and Cooley, 2010, Juhász et al., 2012, Lund et al., 2010)
Molecular data
Construct: DNA binding domain of Scer\GAL4 (amino acids 1-144) fused to the T:Hsim\VP16 transcriptional activation domain is expressed from αTub67C promoter.
Phenotypic class
Phenotype manifest in
actin filament & nurse cell, with gnuScer\UAS.T:Avic\GFP-EGFP
embryonic neuroblast & spindle, with GαiScer\UAS.cLa
filamentous actin & oocyte, with oskbcd.3'UTR.Scer\UAS.P\T
microtubule & oocyte, with l(2)gl3A.Scer\UAS.P\T
microtubule & oocyte | oogenesis stage S9, with oskScer\UAS.P\T.cZa
neuroblast & spindle, with GαoII.Scer\UAS
neuroblast & spindle, with jarΔATP.Scer\UAS
nurse cell & actin filament, with enaScer\UAS.cCa
nurse cell & nucleus, with gnuScer\UAS.T:Avic\GFP-EGFP
sensory mother cell & mesothoracic tergum & third instar larva | ectopic, with DlScer\UAS.cLa
Other information
hide Expression Data
Reporter Expression
distribution deduced from reporter (Gal4 UAS)
Stage
Tissue/Position (including subcellular localization)
Reference
Additional Information
Statement
Reference
Marker for
Reflects expression of
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progenitor(s)
descendant(s)
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Bloomington
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Other Crossreferences
Linkouts
hide Synonyms & Secondary IDs
Reported As
Symbol Synonym
67;15 driver
alphaTub67C::Gal4-VP16
Gal4/VP16
Gal4\VP16
mat15G4
mat67-GAL4
mat::Gal4
mat(Tub-Gal4VP16
Mata4-tubulin-Gal4-VP16
mata-GAL4
mata-Gal4VP16
mata Gal4 VP16 V32
matalpha4-GAL4
mat-alpha4-GALVP16
matalpha4-GALVP16
matalpha4-GAL-VP16
Mat-alpha4-Tub
maternal 67C α-tubulin-GAL4
maternal alpha4tubulin>GAL4:VP16
maternalGal4
maternal-Gal4
Maternal-Gal4-V32
maternal-GAL4 V32
Maternal-GAL4VP16
Maternal-Gal4 VP16
maternal GAL4-VP16
maternal tubulin:Gal4-VP16
maternal tubulin-Gal4
maternal-α4-tubulin-GAL4-VP16
maternal-αtub67C Gal4::VP16
maternal-α-tub-Gal4:VP16
maternal α-tubulin
Maternal α-Tubulin Gal4
maternal α-Tubulin Gal-4
maternal α-tubulin-Gal4
mat-GAL4(V32)
Mat-Gal4VP16
mattub::Gal4Vp16
MatTub-Gal4
Mat Tub Gal4
MatTubGal4
matTubGAL4
matTub-GAL4VP16
matTub-Gal4VP16
mattubGal4VP16
mattubGal4Vp16
mat-tubulin-GAL4
MatVP16V67-Gal4
matα4-GAL4:VP16 )V32)
matα4-Gal4VP16
matα4-GAL4VP16
matα4GAL4-VP16
mat-α4-GAL4VP16
matα4-GALVP16
Matα4-GAL-VP16
matα4-Gal-VP16
matα4Gal-VP16
mat-α4tub:Gal4-VP16
Mat-α4-tub>Gal4-VP16
matα4-tub-GAL4
mat-α4-tub-Gal4VP16
Mat-α4-TubGal4-VP16
Matα4-tubulin-Gal4-VP16
matα-Gal4
matα-Gal4VP16
matαTub67::Gal4VP16
mat-α-tub67C-Gal4-VP16
Mat α-Tub Gal4
matαtub-GAL4
matαtubGal4VP16
matαTub-Gal4VP16
mat αTub-gal4 VP16 (67c)
mat αTub-gal4 VP16 (67c); mat αTub-gal4 VP16(15)
matα-tubulin-GAL-VP16
mat-α-tubulin-VP16 GAL4
Mqttub::Gal4Vp16
P[w+,Gal4U32a]
P{w+,mata4-tub-Gal4-VP16}
Pmatα4-GAL-VP16
Pmat-αtub-GAL4::VP16
Pmat-α-tubulin-GAL4VP16
ptubα4-GAL4VP16
P<up>w+;mat-α4-tub-GAL4VP16 V37</up>
tub67C-gal4
tub-GAL4
tubGal4
tub-GAL4-VP16
tub-Gal4VP16
tub-Gal4-VP16
tubGAL4VP16
tubulin 67c-GAL4:VP16
tubulin-Gal4
tubulin Gal4
tubulin-GAL-4
tubulin-Gal4::VP16
V32A-GAL4
V32Gal4
V37-Gal4
α4-tub-GAL4/VP16
α4tub-Gal4-VP16
α4-tubulin64C::Gal4
α4tubulin67c GAL4
α4tubulin67c-Gal4
α4tubulin67cGAL4
α4-tubulin-GAL4
α4-tubulin-GAL4-VP16
α4-tubulin-Gal4VP16
αTub67::Gal4VP16
αTub67C::Gal4VP16
α-tubGal4:VP16
α-tubulin 67C-GAL4:VP16
α-tubulin4-GAL4-VP16
α-tubulin-driven Gal4
α-Tubulin Gal4
Secondary FlyBase IDs
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hide Recent research papers ( 33 )
Althoff et al., 2012, Mol. Biol. Cell 23(12): 2275--2291
Spindle checkpoint-independent inhibition of mitotic chromosome segregation by Drosophila Mps1. [FBrf0218626]
Di Talia and Wieschaus, 2012, Dev. Cell 22(4): 763--774
Short-Term Integration of Cdc25 Dynamics Controls Mitotic Entry during Drosophila Gastrulation. [FBrf0218101]
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]
Marek and Kagan, 2012, Immunity 36(4): 612--622
Phosphoinositide Binding by the Toll Adaptor dMyD88 Controls Antibacterial Responses in Drosophila. [FBrf0218122]
McKinley et al., 2012, J. Cell Sci. 125(5): 1177--1190
Assembly of Bazooka polarity landmarks through a multifaceted membrane-association mechanism. [FBrf0217991]
Neumüller et al., 2012, Genetics 190(3): 931--940
Stringent analysis of gene function and protein-protein interactions using fluorescently tagged genes. [FBrf0217811]
Radford et al., 2012, Genetics 192(2): 431--440
Microtubule-Depolymerizing Kinesin KLP10A Restricts the Length of the Acentrosomal Meiotic Spindle in Drosophila Females. [FBrf0219556]
Roberts et al., 2012, PLoS ONE 7(2): e31284
Defining Components of the ßcatenin Destruction Complex and Exploring Its Regulation and Mechanisms of Action during Development. [FBrf0217546]
Sanghavi et al., 2012, Dev. Biol. 367(1): 66--77
A functional link between localized Oskar, dynamic microtubules, and endocytosis. [FBrf0218511]
Tamada et al., 2012, Dev. Cell 22(2): 309--319
Abl Regulates Planar Polarized Junctional Dynamics through β-Catenin Tyrosine Phosphorylation. [FBrf0217502]
Turki-Judeh and Courey, 2012, PLoS ONE 7(2): e30610
The unconserved groucho central region is essential for viability and modulates target gene specificity. [FBrf0217447]
Urwyler et al., 2012, Biol. Open 1(10): 994--1005
Drosophila sosie functions with β(H)-Spectrin and actin organizers in cell migration, epithelial morphogenesis and cortical stability. [FBrf0220121]
Venkei et al., 2012, Open Biol. 2(2): 110032
Spatiotemporal dynamics of Spc105 regulates the assembly of the Drosophila kinetochore. [FBrf0218508]
Yamakawa et al., 2012, Development 139(3): 558--567
Deficient Notch signaling associated with neurogenic pecanex is compensated for by the unfolded protein response in Drosophila. [FBrf0217160]
Yao et al., 2012, Mol. Biol. Cell 23(18): 3532--3541
A nuclear-derived proteinaceous matrix embeds the microtubule spindle apparatus during mitosis. [FBrf0219434]
Abreu-Blanco et al., 2011, J. Cell Biol. 193(3): 455--464
Cell wound repair in Drosophila occurs through three distinct phases of membrane and cytoskeletal remodeling. [FBrf0213583]
Belacortu et al., 2011, Gene Expr. Patterns 11(3-4): 190--201
Expression of Drosophila Cabut during early embryogenesis, dorsal closure and nervous system development. [FBrf0213309]
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]
Eissenberg et al., 2011, Traffic 12(12): 1821--1838
Drosophila GGA Model: An Ultimate Gateway to GGA Analysis. [FBrf0216574]
Fan et al., 2011, PLoS ONE 6(5): e20612
Drosophila Ge-1 Promotes P Body Formation and oskar mRNA Localization. [FBrf0213914]
Grillo et al., 2011, Genetics 187(2): 513--521
Control of Germline torso Expression by the BTB/POZ Domain Protein Pipsqueak Is Required for Embryonic Terminal Patterning in Drosophila. [FBrf0213010]
Mathew et al., 2011, Mol. Cell. Biol. 31(24): 4978--4993
Role for traf4 in polarizing adherens junctions as a prerequisite for efficient cell shape changes. [FBrf0216703]
Parra-Peralbo and Culi, 2011, PLoS Genet. 7(2): e1001297
Drosophila Lipophorin Receptors Mediate the Uptake of Neutral Lipids in Oocytes and Imaginal Disc Cells by an Endocytosis-Independent Mechanism. [FBrf0213038]
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]
Singh et al., 2011, Dev. Biol. 352(1): 104--115
The Bin3 RNA methyltransferase is required for repression of caudal translation in the Drosophila embryo. [FBrf0213172]
Slack et al., 2011, Aging Cell 10(5): 735--748
dFOXO-independent effects of reduced insulin-like signaling in Drosophila. [FBrf0215229]
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]
Uddin et al., 2011, Int. J. Dev. Biol. 55(10-11-12): 945--952
The drumstick gene acts cell-non-autonomously and triggers specification of the small intestine in the Drosophila hindgut. [FBrf0217187]
van Uden et al., 2011, PLoS Genet. 7(1): e1001285
Evolutionary Conserved Regulation of HIF-1β by NF-κB. [FBrf0212948]
Vazquez-Pianzola et al., 2011, Dev. Biol. 357(2): 404--418
Pabp binds to the osk 3'UTR and specifically contributes to osk mRNA stability and oocyte accumulation. [FBrf0214798]
Venkei et al., 2011, Genetics 187(1): 131--140
Drosophila mis12 complex acts as a single functional unit essential for anaphase chromosome movement and a robust spindle assembly checkpoint. [FBrf0212773]
Wang et al., 2011, PLoS Genet. 7(8): e1002227
PP2A-Twins Is Antagonized by Greatwall and Collaborates with Polo for Cell Cycle Progression and Centrosome Attachment to Nuclei in Drosophila Embryos. [FBrf0214683]
Yu et al., 2011, BMC Cell Biol. 12: 9
Targeting the motor regulator Klar to lipid droplets. [FBrf0213230]