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            VGAT抗原,氨基丁酸轉(zhuǎn)運(yùn)蛋白VGAT抗原

            2024-11-27  閱讀(166)

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            Recombinant human VGAT   

            VGAT; bA122O1.1; GABA and glycine transporter; hVIAAT; SLC32A 1; solute carrier family 32 (GABA vesicular transporter) member 1; Solute carrier family 32 member 1; Vesicular GABA Amino Acid Transporter; Vesicular GABA transporter; Vesicular inhibitory amino acid transporter; VGAT; VIAAT; VIAAT_HUMAN.    

            濃度:1mg/ ml

            來(lái)源:Recombinant Human

            純度:≥95% SDS-PAGE

            表達(dá)系統(tǒng):Yeast

            標(biāo)簽:His tag

            蛋白長(zhǎng)度:Full length protein

            內(nèi)毒素水平:<1.000 Eu/µg

            純化方法:HPLC

            應(yīng)用:SDS-PAGE,Western blot,ELISA

            Biological activity,immunology research

            保存:-20℃

            保質(zhì)期:1年

            Synaptic transmission involves the controlled exocytosis of vesicles containing specific neurotransmitters. Usually, neurotransmitters are synthesized in the cytoplasm of the cell and must be transported into synaptic vesicles for release. The vesicular GABA transporter (VGAT) is responsible for loading gamma-aminobutyric acid (GABA), an inhibitory neurotransmitter, from neuronal cytoplasm into synaptic vesicles and is expressed only in the nerve endings of inhibitory neurons that contain GABA and/or glycine. During neocortical development, VGAT expression barely precedes the maturation of inhibitory synaptogenesis, suggesting that it may contribute to the development of neocortical GABAergic circuitry. VGAT may also play a role in epileptogenesis and the recovery mechanisms that occur after a spontaneous seizure


            產(chǎn)品名稱:Rabbit Anti-VGAT  antibody

            Rabbit Anti-VGAT  

            別名:VGAT; bA122O1.1; GABA and glycine transporter; hVIAAT; SLC32A 1; solute carrier family 32 (GABA vesicular transporter) member 1; Solute carrier family 32 member 1; Vesicular GABA Amino Acid Transporter; Vesicular GABA transporter; Vesicular inhibitory amino acid transporter; VGAT; VIAAT; VIAAT_HUMAN.     

            來(lái)源:Rabbit

            克隆類型:Polyclonal

            濃度:1mg/ml

            亞型:IgG

            應(yīng)用: WB=1:1000-1:2000,Elisa=1:1000-1:2000,IHC-P=1:100-500,IHC-F=1:100-500,ICC/IF=1:100-500,IF=1:100-500

            反應(yīng):(predicted: Human,Mouse,Rat,Rabbit,Pig,Sheep,Cow)

            理論分子量:57kDa

            免疫原:KLH conjugated synthetic peptide derived from human VGAT

            保存:-20
            保質(zhì)期:1

             

            單克隆抗體

            產(chǎn)品名稱:Anti-VGAT antibody

            Mouse Anti-VGAT 

            別名:VGAT; bA122O1.1; GABA and glycine transporter; hVIAAT; SLC32A 1; solute carrier family 32 (GABA vesicular transporter) member 1; Solute carrier family 32 member 1; Vesicular GABA Amino Acid Transporter; Vesicular GABA transporter; Vesicular inhibitory amino acid transporter; VGAT; VIAAT; VIAAT_HUMAN.    

            來(lái)源:Mouse

            克隆類型:Monoclonal

            濃度:1mg/ml

            亞型:IgG

            應(yīng)用: WB=1:1000-1:2000,Elisa=1:1000-1:2000,IHC-P=1:100-500,IHC-F=1:100-500,ICC/IF=1:100-500,IF=1:100-500

            反應(yīng): Human

            理論分子量:57kDa

            免疫原:KLH conjugated synthetic peptide derived from human VGAT

            保存:-20
            保質(zhì)期:1

            Synaptic transmission involves the controlled exocytosis of vesicles containing specific neurotransmitters. Usually, neurotransmitters are synthesized in the cytoplasm of the cell and must be transported into synaptic vesicles for release. The vesicular GABA transporter (VGAT) is responsible for loading gamma-aminobutyric acid (GABA), an inhibitory neurotransmitter, from neuronal cytoplasm into synaptic vesicles and is expressed only in the nerve endings of inhibitory neurons that contain GABA and/or glycine. During neocortical development, VGAT expression barely precedes the maturation of inhibitory synaptogenesis, suggesting that it may contribute to the development of neocortical GABAergic circuitry. VGAT may also play a role in epileptogenesis and the recovery mechanisms that occur after a spontaneous seizure




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