A Database of Drosophila Genes & Genomes

FB2013_03, released May 7th, 2013
 

Recombinant construct P{UAS-GCaMP3.T}

General Information
Symbol P{UAS-GCaMP3.T} FlyBase ID FBtp0055575
Feature type transgenic_transposon
Size Expression data
Associated insertions 1 available
Molecular map
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Description
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FB2013_03
FB2013_02
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hide Description & Uses
Species synthetic construct
Location-dependent
role
Description
CV term
Qualifiers & info
Reference
transposon
P-element
Uses
CV term
Qualifiers & info
Reference
Cloning Sites
Location
Restriction sites
Reference
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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
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CV term
Qualifiers & info
Reference
chimeric
protein
hide Component Alleles
Allele Avic\GFPGCaMP3.Scer\UAS
Reference(s) (Inagaki et al., 2012, Yuan et al., 2011, Tian et al., 2009, Cheng et al., 2010, Hatan et al., 2011, Danjo et al., 2011, Séjourné et al., 2011, Sudhakaran et al., 2012, Liu et al., 2010, Gong et al., 2010, Tsubouchi et al., 2012)
Molecular data
Scer\UAS regulatory sequences drive expression of "GCaMP3", an improved version of "GCaMP". GCaMP3 consists of the M13 fragment of T:Ggal\MLCK, a circularly permuted fluorescent protein (EGFP residues 149-238 containing the mutations M153K and T203V, followed by EGFP residues 1-144) and the calcium binding domain of T:Rat\Cam (residues 2-148, with the mutation N60D).
Phenotypic class
Phenotype manifest in
Other information
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Reporter Expression
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
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Reported As
Symbol Synonym
GCAMP3.0
P{UAS-GCaMP3.T}
UAS-GCAMP3.0
Secondary FlyBase IDs
hide References ( 11 )
Research paper
Inagaki et al., 2012, Cell 148(3): 583--595
Visualizing Neuromodulation In Vivo: TANGO-Mapping of Dopamine Signaling Reveals Appetite Control of Sugar Sensing. [FBrf0217362]
Sudhakaran et al., 2012, J. Neurosci. 32(21): 7225--7231
Plasticity of recurrent inhibition in the Drosophila antennal lobe. [FBrf0218409]
Tsubouchi et al., 2012, Curr. Biol. 22(22): 2124--2134
Dendritic Filopodia, Ripped Pocket, NOMPC, and NMDARs Contribute to the Sense of Touch in Drosophila Larvae. [FBrf0219946]
Danjo et al., 2011, PLoS ONE 6(2): e17131
A tripartite synapse model in Drosophila. [FBrf0213114]
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]
Séjourné et al., 2011, Nat. Neurosci. 14(7): 903--910
Mushroom body efferent neurons responsible for aversive olfactory memory retrieval in Drosophila. [FBrf0214029]
Yuan et al., 2011, Science 333(6048): 1458--1462
Light-induced structural and functional plasticity in Drosophila larval visual system. [FBrf0215276]
Cheng et al., 2010, Neuron 67(3): 373--380
The Role of the TRP Channel NompC in Drosophila Larval and Adult Locomotion. [FBrf0211468]
Gong et al., 2010, Science 330(6003): 499--502
Two pairs of neurons in the central brain control Drosophila innate light preference. [FBrf0212127]
Tian et al., 2009, Nat. Methods 6(12): 875--881
Imaging neural activity in worms, flies and mice with improved GCaMP calcium indicators. [FBrf0209330]
Supplementary material
Liu et al., 2010, Science 330(6003):
Supporting Online Material: Materials and methods. [FBrf0220458]