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AB317358

重组Alexa Fluor® 647荧光Anti-XBP1抗体[EPR22004]

Alexa Fluor® 647 Anti-XBP1 antibody [EPR22004]

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Rabbit Recombinant Monoclonal XBP1 antibody - conjugated to Alexa Fluor® 647. Suitable for Flow Cyt (Intra) and reacts with Human samples.

查看别名

TREB5, XBP2, XBP1, X-box-binding protein 1, XBP-1, Tax-responsive element-binding protein 5, TREB-5

1 Images
Flow Cytometry (Intracellular) - Alexa Fluor® 647 Anti-XBP1 antibody [EPR22004] (AB317358)
  • Flow Cyt (Intra)

Supplier Data

Flow Cytometry (Intracellular) - Alexa Fluor® 647 Anti-XBP1 antibody [EPR22004] (AB317358)

Flow cytometric analysis of 4% paraformaldehyde fixed 90% methanol permeabilized Huh7 (human hepatocellular carcinoma epithelial cell) treated with 300nM thapsigargin for18hours (Red) / Untreated Huh7 (Dotted Red) cells labelling XBP1 with ab317358 at 1/5000 dilution(0.01ug)/Red and Dotted Red compared with a Rabbit IgG monoclonal [EPR25A] - Isotype Control (Alexa Fluor® 647) (ab199093) (Black) isotype control and an unlabelled control (cells without incubation with primary antibody and secondary antibody) (Blue).

不同偶联物与剂型 (2)

关键信息

宿主种属

Rabbit

克隆

Monoclonal

克隆号

EPR22004

亚型

IgG

偶联物

Alexa Fluor® 647

激发波长/发射波长

Ex: 650nm, Em: 665nm

不含载体蛋白

No

反应种属

Human

应用

Flow Cyt (Intra)

applications

免疫原

The exact immunogen used to generate this antibody is proprietary information.

反应性数据

{ "title": "Reactivity Data", "filters": { "stats": ["", "Species", "Dilution Info", "Notes"], "tabs": { "all-applications": {"fullname" : "All Applications", "shortname": "All Applications"}, "FlowCytIntra" : {"fullname" : "Flow Cytometry (Intracellular)", "shortname":"Flow Cyt (Intra)"}, "ICCIF" : {"fullname" : "Immunocytochemistry/ Immunofluorescence", "shortname":"ICC/IF"} }, "product-promise": { "all": "all", "testedAndGuaranteed": "tested", "guaranteed": "expected", "predicted": "predicted", "notRecommended": "not-recommended" } }, "values": { "Human": { "FlowCytIntra-species-checked": "testedAndGuaranteed", "FlowCytIntra-species-dilution-info": "1/5000", "FlowCytIntra-species-notes": "<p></p>", "ICCIF-species-checked": "notRecommended", "ICCIF-species-dilution-info": "", "ICCIF-species-notes": "<p></p>" } } }

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我们推荐这个产品,因为它经常被用于相同的实验或相关的研究。

我们建议您务必查阅产品说明书,以确认其是否符合您的实验需求;若有疑问,也可联系我们的技术团队获取协助。

产品详情

Patented technology
Our RabMAb® technology is a patented hybridoma-based technology for making rabbit monoclonal antibodies. For details on our patents, please refer to RabMAb® patents.

What are the advantages of a recombinant monoclonal antibody?
This product is a recombinant monoclonal antibody, which offers several advantages including:

  • - High batch-to-batch consistency and reproducibility
  • - Improved sensitivity and specificity
  • - Long-term security of supply
  • - Animal-free batch production

For more information, read more on recombinant antibodies.

Alexa Fluor® is a registered trademark of Molecular Probes, Inc, a Thermo Fisher Scientific Company. The Alexa Fluor® dye included in this product is provided under an intellectual property license from Life Technologies Corporation. As this product contains the Alexa Fluor® dye, the purchase of this product conveys to the buyer the non-transferable right to use the purchased product and components of the product only in research conducted by the buyer (whether the buyer is an academic or for-profit entity). As this product contains the Alexa Fluor® dye the sale of this product is expressly conditioned on the buyer not using the product or its components, or any materials made using the product or its components, in any activity to generate revenue, which may include, but is not limited to use of the product or its components: in manufacturing; (ii) to provide a service, information, or data in return for payment (iii) for therapeutic, diagnostic or prophylactic purposes; or (iv) for resale, regardless of whether they are sold for use in research. For information on purchasing a license to this product for purposes other than research, contact Life Technologies Corporation, 5781 Van Allen Way, Carlsbad, CA 92008 USA or outlicensing@thermofisher.com.

性能和储存信息

形式
Liquid
纯化工艺
Affinity purification Protein A
存储溶液
pH: 7.4 Preservative: 0.02% Sodium azide Constituents: 68% PBS, 30% Glycerol (glycerin, glycerine), 1% BSA
运输条件
Blue Ice
推荐的短期储存时间
1-2 weeks
推荐的短期储存条件
+4°C
推荐的长期储存条件
-20°C
分装信息
Upon delivery aliquot
储存信息
Avoid freeze / thaw cycle|Store in the dark

补充信息

This supplementary information is collated from multiple sources and compiled automatically.

XBP1 also known as X-box binding protein 1 is a transcription factor with a mass of approximately 33 kDa. It is mainly expressed in the endoplasmic reticulum of cells where it plays a significant role in regulating the unfolded protein response (UPR). XBP1 exists in two forms: an unspliced form (XBP1u) and a spliced form (XBP1s). The splicing of XBP1 mRNA is mediated by the endoribonuclease IRE1 and is a response to endoplasmic reticulum stress. This process results in a shift of the reading frame which leads to the production of a new functional transcription factor.
Biological function summary

The action of XBP1 participates in processes critical for cell survival under stress conditions particularly in the UPR. It activates genes involved in protein folding secretion and degradation to alleviate stress within the endoplasmic reticulum. XBP1 acts as part of the larger mechanism that ensures cellular homeostasis by maintaining protein quality control. It forms a complex network with other transcription factors ensuring an integrated response to stress stimuli in various tissues including pancreatic beta cells and immune cells.

Pathways

XBP1 functions intricately within the UPR and is linked to the insulin signaling pathway. It works alongside proteins such as ATF6 and PERK to coordinate the cellular response to endoplasmic reticulum stress and sustain essential cellular processes. The IRE1-XBP1 pathway represents one arm of the UPR and shows interaction with C/EBP homologous protein (CHOP) as part of the stress signaling pathways modulating apoptosis if adaptation fails. XBP1 also influences lipid metabolism and cellular differentiation through its pathway connections impacting wide-ranging physiological processes.

Dysfunctions of XBP1 have associations with metabolic diseases and multiple myeloma. Altered XBP1 activity links to diabetes due to its role in protein homeostasis in pancreatic beta cells involving modulation of insulin secretion and sensitivity. In cancer particularly multiple myeloma XBP1 interacts with proteins such as B-cell maturation antigen (BCMA) influencing cell survival and proliferation. Targeting the XBP1 signaling axis shows potential as a therapeutic strategy for managing disorders resulting from dysregulated protein folding and stress responses.

产品实验方案

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靶点信息

Functions as a transcription factor during endoplasmic reticulum (ER) stress by regulating the unfolded protein response (UPR). Required for cardiac myogenesis and hepatogenesis during embryonic development, and the development of secretory tissues such as exocrine pancreas and salivary gland (By similarity). Involved in terminal differentiation of B lymphocytes to plasma cells and production of immunoglobulins (PubMed : 11460154). Modulates the cellular response to ER stress in a PIK3R-dependent manner (PubMed : 20348923). Binds to the cis-acting X box present in the promoter regions of major histocompatibility complex class II genes (PubMed : 8349596). Involved in VEGF-induced endothelial cell (EC) proliferation and retinal blood vessel formation during embryonic development but also for angiogenesis in adult tissues under ischemic conditions. Functions also as a major regulator of the UPR in obesity-induced insulin resistance and type 2 diabetes for the management of obesity and diabetes prevention (By similarity).. Isoform 1. Plays a role in the unconventional cytoplasmic splicing processing of its own mRNA triggered by the endoplasmic reticulum (ER) transmembrane endoribonuclease ERN1 : upon ER stress, the emerging XBP1 polypeptide chain, as part of a mRNA-ribosome-nascent chain (R-RNC) complex, cotranslationally recruits its own unprocessed mRNA through transient docking to the ER membrane and translational pausing, therefore facilitating efficient IRE1-mediated XBP1 mRNA isoform 2 production (PubMed : 19394296, PubMed : 21233347). In endothelial cells (EC), associated with KDR, promotes IRE1-mediated XBP1 mRNA isoform 2 productions in a vascular endothelial growth factor (VEGF)-dependent manner, leading to EC proliferation and angiogenesis (PubMed : 23529610). Functions as a negative feed-back regulator of the potent transcription factor XBP1 isoform 2 protein levels through proteasome-mediated degradation, thus preventing the constitutive activation of the ER stress response signaling pathway (PubMed : 16461360, PubMed : 25239945). Inhibits the transactivation activity of XBP1 isoform 2 in myeloma cells (By similarity). Acts as a weak transcriptional factor (PubMed : 8657566). Together with HDAC3, contributes to the activation of NFE2L2-mediated HMOX1 transcription factor gene expression in a PI(3)K/mTORC2/Akt-dependent signaling pathway leading to EC survival under disturbed flow/oxidative stress (PubMed : 25190803). Binds to the ER stress response element (ERSE) upon ER stress (PubMed : 11779464). Binds to the consensus 5'-GATGACGTG[TG]N(3)[AT]T-3' sequence related to cAMP responsive element (CRE)-like sequences (PubMed : 8657566). Binds the Tax-responsive element (TRE) present in the long terminal repeat (LTR) of T-cell leukemia virus type 1 (HTLV-I) and to the TPA response elements (TRE) (PubMed : 1903538, PubMed : 2196176, PubMed : 2321018, PubMed : 8657566). Associates preferentially to the HDAC3 gene promoter region in a static flow-dependent manner (PubMed : 25190803). Binds to the CDH5/VE-cadherin gene promoter region (PubMed : 19416856).. Isoform 2. Functions as a stress-inducible potent transcriptional activator during endoplasmic reticulum (ER) stress by inducing unfolded protein response (UPR) target genes via binding to the UPR element (UPRE). Up-regulates target genes encoding ER chaperones and ER-associated degradation (ERAD) components to enhance the capacity of productive folding and degradation mechanism, respectively, in order to maintain the homeostasis of the ER under ER stress (PubMed : 11779464, PubMed : 25239945). Plays a role in the production of immunoglobulins and interleukin-6 in the presence of stimuli required for plasma cell differentiation (By similarity). Induces phospholipid biosynthesis and ER expansion (PubMed : 15466483). Contributes to the VEGF-induced endothelial cell (EC) growth and proliferation in a Akt/GSK-dependent and/or -independent signaling pathway, respectively, leading to beta-catenin nuclear translocation and E2F2 gene expression (PubMed : 23529610). Promotes umbilical vein EC apoptosis and atherosclerotisis development in a caspase-dependent signaling pathway, and contributes to VEGF-induced EC proliferation and angiogenesis in adult tissues under ischemic conditions (PubMed : 19416856, PubMed : 23529610). Involved in the regulation of endostatin-induced autophagy in EC through BECN1 transcriptional activation (PubMed : 23184933). Plays a role as an oncogene by promoting tumor progression : stimulates zinc finger protein SNAI1 transcription to induce epithelial-to-mesenchymal (EMT) transition, cell migration and invasion of breast cancer cells (PubMed : 25280941). Involved in adipocyte differentiation by regulating lipogenic gene expression during lactation. Plays a role in the survival of both dopaminergic neurons of the substantia nigra pars compacta (SNpc), by maintaining protein homeostasis and of myeloma cells. Increases insulin sensitivity in the liver as a response to a high carbohydrate diet, resulting in improved glucose tolerance. Improves also glucose homeostasis in an ER stress- and/or insulin-independent manner through both binding and proteasome-induced degradation of the transcription factor FOXO1, hence resulting in suppression of gluconeogenic genes expression and in a reduction of blood glucose levels. Controls the induction of de novo fatty acid synthesis in hepatocytes by regulating the expression of a subset of lipogenic genes in an ER stress- and UPR-independent manner (By similarity). Associates preferentially to the HDAC3 gene promoter region in a disturbed flow-dependent manner (PubMed : 25190803). Binds to the BECN1 gene promoter region (PubMed : 23184933). Binds to the CDH5/VE-cadherin gene promoter region (PubMed : 19416856). Binds to the ER stress response element (ERSE) upon ER stress (PubMed : 11779464). Binds to the 5'-CCACG-3' motif in the PPARG promoter (By similarity).
See full target information XBP1

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