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Species: Mus musculus
Genetic Insert: RIP3
Vector Backbone Description: Backbone Marker:Clontech; Backbone Size:4700; Vector Backbone:pEGFP-N1; Vector Types:Mammalian Expression; Bacterial Resistance:Kanamycin
References:
Comments:
Proper citation: RRID:Addgene_41384 Copy
Species: Mus musculus
Genetic Insert: RIP3
Vector Backbone Description: Backbone Marker:Clontech; Backbone Size:4700; Vector Backbone:pEGFP-N1; Vector Types:Mammalian Expression; Bacterial Resistance:Kanamycin
References:
Comments:
Proper citation: RRID:Addgene_41383 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41664 Copy
Species: Mus musculus
Genetic Insert: Hes5 Promoter
Vector Backbone Description: Backbone Marker:Promega; Backbone Size:5597; Vector Backbone:pGL2-Basic; Vector Types:Mammalian Expression, Luciferase; Bacterial Resistance:Ampicillin
References:
Comments:
Proper citation: RRID:Addgene_41724 Copy
Species: Mus musculus
Genetic Insert: Hes1 Promoter (-467 to +46)
Vector Backbone Description: Backbone Marker:Promega; Backbone Size:5597; Vector Backbone:pGL2-Basic; Vector Types:Mammalian Expression, Luciferase; Bacterial Resistance:Ampicillin
References:
Comments: Alternate plasmid name: Hes1-Luc
Proper citation: RRID:Addgene_41723 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41682 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41681 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41680 Copy
Species: Mus musculus
Genetic Insert: Numb
Vector Backbone Description: Backbone Marker:Promega; Backbone Size:5472; Vector Backbone:pCI-neo; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments:
Proper citation: RRID:Addgene_41712 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41678 Copy
Species: Mus musculus
Genetic Insert: tet methylcytosine dioxygenase 2
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:6174; Vector Backbone:pEF1a; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments:
Proper citation: RRID:Addgene_41710 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41676 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41675 Copy
Species: Mus musculus
Genetic Insert: Mus musculus GABA transporter 1
Vector Backbone Description: Backbone Marker:Invitrogen; Backbone Size:5428; Vector Backbone:pcDNA3.1(+); Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: To generate the fluorescent mutants mGAT10XFP and mGAT1XFP* through mGAT1XFP45, the wild-type mGAT1 open reading frame (ORF) was subcloned without its original stop codon into the HindIII and EcoRI sites of the pcDNA3.1(+) expression vector multiple cloning site (MCS). XFP ORFs were then subcloned downstream from and in frame with the mGAT1 ORF at the NotI and XbaI sites of the pcDNA3.1(+) MCS. This resulted in a 12–amino acid spacer between the end of the mGAT1 sequence and the beginning of the fluorophore. The depositors modified a method for the integration of PCR fragments without the use of restriction enzymes (Geiser et al., 2001) to add the final 3, 8, 20, 28, or 45 codons of the human GAT1 (hGAT1) ORF. These were amplified from a source plasmid using the proof-reading PfuTurbo Cx Hotstart polymerase with 5′ and 3′ extensions corresponding to the 20–22-nt regions that flanked the intended site of insertion, such that the PCR product integrated in-frame immediately after the fluorophore sequence when used as the primers in a subsequent QuikChange II XL mutagenesis PCR reaction. For mGAT1XFP*, the depositors simply added a GTC codon for Val after the fluorophore ORF.
The attached image displays the protein sequences of the modified regions of mGAT1 for each fluorescent construct. mGAT10CFP and mGAT10YFP repeated the fusion design of mGAT10GFP but with the fluorophore exchanged as annotated. The three C-terminal residues of the mGAT0XFP fusions are -YKI-CO2−, which comprises a broadly defined consensus PDZ class II–interacting motif (X-φ-X-φ, where φ designates a hydrophobic residue and X any residue) (Sheng and Sala, 2001; Hung and Sheng, 2002). The depositors searched the Ensembl databases using Biomart (http://www.ebi.ac.uk/biomart) (Spudich et al., 2007) and applied the GO:0005886 “plasma membrane” cellular component filter. The search identified no known membrane proteins possessing the -YKI-CO2− C-terminal sequence.
In the mGAT1XFP* constructs, the depositors defined the terminal residue P(0) more narrowly, changing the terminal isoleucine residue present in mGAT10XFP to a valine in mGAT1XFP*. The resulting C-terminal sequence, -YKV-CO2−, reconstituted a functional PDZ class II–interacting motif present in Ephrin B receptors, a class that relies on interactions with the PDZ domain–containing proteins for clustering (Torres et al., 1998; Brückner et al., 1999; Lin et al., 1999; Madsen et al., 2005).
Other constructs in the C-terminal XFP fusion series, mGAT1XFP3, mGAT1XFP8, mGAT1XFP20, mGAT1XFP28, and mGAT1XFP45, had the most C-terminal 3, 8, 20, 28, or 45 residues of the hGAT1 appended after the mGAT1XFP fusion. The differences in nucleotide sequence between the hGAT1 and mGAT1 C termini were a useful source of positive identification when the depositors analyzed the clones during construction.
PCR integration was applied to amplify and insert EYFP or ECFP directly between residues R565 and L566, I570 and Q571, or V577 and R578 of mGAT1 to generate the mGAT15xxXFP5xxCT constructs. The site of XFP insertion in GAT1 is highlighted in the nomenclatures for these constructs by residue numbers flanking the fluorophore, and the “CT” denotes that the insertion occurs within the C terminus.
Please see the associated article for more detailed information regarding construct creation and usage.
Proper citation: RRID:Addgene_41667 Copy
Species: Mus musculus
Genetic Insert: Klf5
Vector Backbone Description: Backbone Marker:Oligoengine; Vector Backbone:pSuper-Retro; Vector Types:RNAi; Bacterial Resistance:Ampicillin
References:
Comments:
Proper citation: RRID:Addgene_41740 Copy
Species: Mus musculus
Genetic Insert: Notch-1 Lin-Notch-glp (LNG) repeat-containing construct, CC->SS
Vector Backbone Description: Backbone Size:4352; Vector Backbone:pCS2+MT; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: Alternate plasmid name: pCS2 NLNR CC>SS-6MT
All Notch1 constructs deposited here were cloned into the pCS2+MT vector (Rupp et al., 1994; Turner and Weintraub, 1994) and have the C-terminal 348 residues (aa 2185 to C terminus) of Notch replaced with a hexameric myc tag to facilitate biochemical analysis. PCR mutagenesis was used to create the C1675S and C1682S mutations in LNR (Addgene plasmid #41738).
Proper citation: RRID:Addgene_41739 Copy
Species: Mus musculus
Genetic Insert: Notch-1 Intracellular Domain
Vector Backbone Description: Backbone Size:4352; Vector Backbone:pCS2+MT; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: Alternate plasmid name: pCS2 NICv1744-6MT
To create pCS2+ NICV1744, the primer CCAGGATCCACCATGGTGCTGCTGTCCCGCAAGC was used with primer M95 (5'-TCGAACATTGACATCCATGCA-3') to generate a product that was digested with Bam HI and Bcl I, and ligated into the same sites in NΔE (Addgene plasmid #41737).
Proper citation: RRID:Addgene_41730 Copy
Species: Mus musculus
Genetic Insert: Trp53
Vector Backbone Description: Backbone Size:9364; Vector Backbone:pCE; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments:
Proper citation: RRID:Addgene_41856 Copy
Species: Mus musculus
Genetic Insert: Frizzled 7
Vector Backbone Description: Vector Backbone:pRK5; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments:
Proper citation: RRID:Addgene_42259 Copy
Species: Mus musculus
Genetic Insert: Frizzled 2
Vector Backbone Description: Vector Backbone:pRK5; Vector Types:Mammalian Expression; Bacterial Resistance:Ampicillin
References:
Comments: Fzd2 insert contains S193A compared with NM_020510.2. Mutation has no effect on plasmid function
Proper citation: RRID:Addgene_42254 Copy
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