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FLAG tag antibody,DYKDDDDK Tag

(FLAG)
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  • ¥1250
  • affinity
  • T0003
  • 2025年11月05日
  • WB, IHC, IF/ICC, IP, ELISA
  • All
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    • 详细信息
    • 文献和实验
    • 技术资料
    • 抗体名

      FLAG tag antibody

    • 抗体英文名

      FLAG tag antibody

    • 靶点

      FLAG tag antibody

    • 应用范围

      WB, IHC, IF/ICC, IP, ELISA

    • 宿主

    • 目录编号

      T0003

    • 适应物种

      All

    • 库存

      大量

    • 抗原来源

      其它

    • 供应商

      上海研卉生物科技有限公司

    • 是否单克隆

      0

    • 规格

      50ul

    、FLAG tag antibody,DYKDDDDK Tag(FLAG)
    产品: Flag-Tag 抗体
    货号: T0003
    来源: Mouse
    应用: WB, IHC, IF/ICC, IP, ELISA
    反应: All
    蛋白号:
    RRID: AB_2839412
    来源:
    Mouse
    应用:
    WB 1:3000-1:10000, IF/ICC: 1:200, IP 1:200, IHC 1:50-1:200
    *The optimal dilutions should be determined by the end user.
    反应:
    All
    克隆:
    Monoclonal [T177]
    RRID:
    AB_2839412
    引用格式: Affinity Biosciences Cat# T0003, RRID:AB_2839412.
    纯化:
    Affinity-chromatography.
    保存:
    Mouse IgG1 in phosphate buffered saline (without Mg2+ and Ca2+), pH 7.4, 150mM NaCl, 0.02% sodium azide and 50% glycerol. Store at -20 °C. Stable for 12 months from date of receipt.
    别名:

    展开/折叠

    DDDDK epitope tag; DDDK; ddk; DYKDDDDK; DYKDDDDK epitope tag; DYKDDDDK tag; ECS epitope tag; ECS tag; Enterokinase Cleavage Site epitope tag; Enterokinase Cleavage Site tag; FLAG; FLAG tag antibody

    1). Liu H et al. Psychologic Stress Drives Progression of Malignant Tumors via DRD2/HIF1α Signaling. Cancer Res 2021 Oct 15;81(20):5353-5365. (PubMed: 34321238) [IF=13.312]
    产品细节图片1

    Application: WB Species: mouse Sample:

    Fig. 4 |DRD2 overexpression inhibited the ubiquitin-dependent degradation of HIF1α. N, Effect of DRD2 on the content of ubiquitin binding to HIF1α. DRD2-overexpressing cells treated with MG132, and cellular extracts were prepared for co-IP assay with anti–HIF1α antibody, followed by Western blotting detection of ubiquitin. siRNA, small interfering RNA. ns, nonsignificant; *, P < 0.05; **, P < 0.01

    2). Liu W et al. Micheliolide Ameliorates Diabetic Kidney Disease by Inhibiting Mtdh-mediated Renal Inflammation in Type 2 Diabetic db/db Mice. Pharmacol Res 2019 Oct 24:104506 (PubMed: 31669149) [IF=10.334]

    3). Ye F et al. circFBXW7 Inhibits Malignant Progression by Sponging miR-197-3p and Encoding a 185-aa Protein in Triple-Negative Breast Cancer. Mol Ther Nucleic Acids 2019 Aug 14;18:88-98 (PubMed: 31536884) [IF=10.183]
    产品细节图片2

    Application: WB Species: human Sample: BT549 cells

    Figure 6.| FBXW7-185aa, Encoded by circFBXW7, Inhibited the Proliferation and Metastasis of TNBC Cells through Downregulating c-Myc Expression.s. (H)FBXW7-185aa-FLAG-overexpressing BT549 cells were cotransfected with sh-FBXW7 or USP28 vectors. The FBXW7-185aaFLAG, FBXW7, USP28, and c-Myc expression levels were quantified by western blot analysis.

    4). Matsuoka TA et al. Mafa Enables Pdx1 to Effectively Convert Pancreatic Islet Progenitors and Committed Islet α-Cells Into β-Cells In Vivo. Diabetes 2017 May;66(5):1293-1300 (PubMed: 28223284) [IF=9.337]
    产品细节图片3

    Application: IF/ICC Species: mouse Sample: islet cells

    Supplemental Figure 1| Pdx1 flag is expressed in most P0.5 and 6W Ngn3-Cre;CAT-Pdx1 islet cells. Flag staining (red) was observed in most of Ngn3-Cre;CAT-Pdx1 insulin + (blue) and glucagon + (green) cells at P0.5 and 6W; the Crepenetrance rate was a maintained at approximately 95%. Scale bars: 50 mm.

    5). Ma Y et al. SIRT5-mediated SDHA desuccinylation promotes clear cell renal cell carcinoma tumorigenesis. Free Radic Biol Med 2019 Apr;134:458-467 (PubMed: 30703481) [IF=8.101]
    产品细节图片4

    Application: WB Species: human Sample: HEK293A cells

    Fig. 6.| SIRT5 promotes ccRCC cell proliferation by interacting with and desuccinylating SDHA. (A-B) ACHN cells were transfected with scramble shRNA or SIRT5 shRNA plasmid, SDHA was precipitated and its succinylation level was probed by anti-pan-succinylation antibody. SIRT5 silencing led to hypersuccinylation of SDHA in ccRCC cells and increased activity of SDHA. (C-E) SIRT5 silencing decreased cellular NADPH/NADP+and GSH/GSSG ratio and increased cellular ROS level. (F) Co-IP of SIRT5 and FLAG-tagged WT SDHA in HEK293A cells revealed SIRT5 coimmunoprecipitated with SDHA. (G-J) SIRT5 silencing repressed ACHN and 769-P cell proliferation and colony formation. Methods followed Fig. 5G-J.

    6). Li Y et al. Neuropilin-2 Signaling Modulates Mossy Fiber Sprouting by Regulating Axon Collateral Formation Through CRMP2 in a Rat Model of Epilepsy. Mol Neurobiol 2022 Aug 31. (PubMed: 36044155) [IF=5.682]

    7). Sun L et al. Overexpression of lncRNA-Gm2044 in spermatogonia impairs spermatogenesis in partial seminiferous tubules. Int J Mol Med 2022 Feb;49(2):17. (PubMed: 34935058) [IF=5.314]

    8). Wang C et al. Gankyrin activates the hedgehog signalling to drive metastasis in osteosarcoma. J Cell Mol Med 2021 Jun 5. (PubMed: 34089292) [IF=5.295]
    产品细节图片5

    Application: IHC Species: Human Sample: U2OS and MG63 cells

    FIGURE 1 Gankyrin promotes migration and invasion in OS in vitro. A, Induction of gankyrin in U2OS and MG63 cells was confirmed by Western blot analysis. B, Knockdown of gankyrin in U2OS and MG63 cells was confirmed via Western blot analysis. C, Induction of gankyrin significantly increased OS cell migration ability, as shown by wound healing assays. *P < .05; **P < .01. D, Up‐regulated gankyrin remarkably promoted OS cell invasion, as shown by Transwell invasion assays. *P < .05. E, Knockdown of gankyrin reduced OS cell migration ability. **P < .01. F, Knockdown of gankyrin inhibited OS cell invasion. **P < .01; ***P < .001

    9). Zhang Y et al. Treatment of diabetes mellitus-induced erectile dysfunction using endothelial progenitor cells genetically modified with human telomerase reverse transcriptase. Oncotarget 2016 Jun 28;7(26):39302-39315 (PubMed: 27283992)

    10). Xu F et al. Ablation of Cbl-b and c-Cbl in dendritic cells causes spontaneous liver cirrhosis via altering multiple properties of CD103+ cDC1s. Cell Death Discov 2022 Mar 30;8(1):142. (PubMed: 35354799)

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