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AB288228

Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free

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Rabbit Recombinant Monoclonal antibody. Carrier free. Suitable for ICC, WB and reacts with Transfected cell line, Zaire ebolavirus samples.

View Alternative Names

Envelope glycoprotein, GP

2 Images
Immunocytochemistry - Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free (AB288228)
  • ICC

Supplier Data

Immunocytochemistry - Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free (AB288228)

Immunocytochemical analysis using ab288228 at 0.156 μg/mL (Red). The nuclear counterstain is DAPI (Blue)

Left panel : U2OS cells transfected with Zaire GP. Right panel : Mock transfected U2OS cells.

Western blot - Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free (AB288228)
  • WB

Supplier Data

Western blot - Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free (AB288228)

Lanes 1 - 3:

Western blot - Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free (ab288228) at 1 µg

Lanes 4 - 6:

Western blot - Anti-Envelope Glycoprotein antibody [7H7] - BSA and Azide free (ab288228) at 1 µg/mL

Lanes 8 - 9:

Rabbit polyclonal to Zaire Ebolavirus envelope glycoprototein at 1 µg/mL

Lane 1:

Zaire Ebolavirus GP2 subunit, 200 ng

Lane 2:

Zaire Ebolavirus GP2 subunit, 100 ng

Lane 3:

Zaire Ebolavirus GP2 subunit, 20 ng

Lane 4:

Sudan Ebolavirus GP2 subunit, 200 ng

Lane 5:

Sudan Ebolavirus GP2 subunit, 100 ng

Lane 6:

Sudan Ebolavirus GP2 subunit, 20 ng

Lane 8:

Zaire Ebola virus GP1 & GP2

Lane 9:

Sudan Ebola virus GP1 & GP2

false

Key facts

Host species

Rabbit

Clonality

Monoclonal

Clone number

7H7

Isotype

IgG

Carrier free

Yes

Reacts with

Zaire ebolavirus

Applications

ICC, WB

applications

Specificity

Zaire Ebola virus

Reactivity data

{ "title": "Reactivity Data", "filters": { "stats": ["", "Species", "Dilution Info", "Notes"], "tabs": { "all-applications": {"fullname" : "All Applications", "shortname": "All Applications"}, "ICC" : {"fullname" : "Immunocytochemistry", "shortname":"ICC"}, "WB" : {"fullname" : "Western blot", "shortname":"WB"} }, "product-promise": { "all": "all", "testedAndGuaranteed": "tested", "guaranteed": "expected", "predicted": "predicted", "notRecommended": "not-recommended" } }, "values": { "Transfected cell line": { "ICC-species-checked": "testedAndGuaranteed", "ICC-species-dilution-info": "0.156-5 µg/mL", "ICC-species-notes": "<p></p>", "WB-species-checked": "notRecommended", "WB-species-dilution-info": "", "WB-species-notes": "" }, "Zaire ebolavirus": { "ICC-species-checked": "guaranteed", "ICC-species-dilution-info": "", "ICC-species-notes": "", "WB-species-checked": "testedAndGuaranteed", "WB-species-dilution-info": "0.5-1 µg/mL", "WB-species-notes": "<p></p>" } } }

Product details

Partially humanised (rabbit scFv, human IgG1 Fc).

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.

Properties and storage information

Form
Liquid
Purification technique
Affinity purification Protein A
Storage buffer
pH: 6 Constituents: PBS
Shipped at conditions
Blue Ice
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
+4°C

Supplementary information

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

The envelope glycoprotein also known as the viral envelope protein plays an important role in the life cycle of viruses. This glycoprotein sometimes referred to as HSV glycoprotein is essential for the viral entry into host cells. The envelope glycoprotein has a mass that typically ranges between 70 to 180 kDa depending on the virus species. It is expressed on the surface of various viruses where it facilitates the fusion between the virus and the host cell at a critical entry point for infection.
Biological function summary

The function of membrane-bound proteins like the envelope glycoprotein involves mediating interactions between the virus and host cell receptors. This glycoprotein is a component of the viral envelope complex which includes other proteins necessary for proper viral assembly and release. It assists in the recognition and binding of specific receptors on the host cell membrane initiating the fusion process. This fusion is a necessary step for the entry of viral nucleic acids into the host cell therefore beginning the infection process.

Pathways

Scientists study how proteins like the envelope glycoprotein participate in viral pathogenicity pathways. The viral entry pathway involves the interaction of envelope glycoproteins with host cell surface receptors such as heparan sulfate proteoglycans. This interaction triggers a cascade of events leading to endocytosis and subsequent release of viral genetic material into the cell. Other proteins such as the G-protein-coupled receptor (GPCR) also play roles in modulating the cellular environment to benefit the virus.

Research identifies the envelope glycoprotein as important in the pathogenesis of conditions like herpes simplex virus (HSV) infections and other virus-caused disorders. HSV glycoproteins help the virus to evade the immune system contributing to the persistent nature of the infection. The envelope glycoprotein also connects to various viral proteins that modulate immune signaling pathways like the latency-associated nuclear antigen (LANA) in specific viral strains cementing its role in ongoing and chronic infection.

Product protocols

For this product, it's our understanding that no specific protocols are required. You can visit:

Target data

Envelope glycoprotein. Trimeric GP1,2 complexes form the virion surface spikes and mediate the viral entry processes, with GP1 acting as the receptor-binding subunit and GP2 as the membrane fusion subunit. At later times of infection, down-regulates the expression of various host cell surface molecules that are essential for immune surveillance and cell adhesion. Down-modulates several integrins including ITGA1, ITGA2, ITGA3, ITGA4, ITGA5, ITGA6, ITGAV and ITGB1. This decrease in cell adhesion molecules may lead to cell detachment, contributing to the disruption of blood vessel integrity and hemorrhages developed during infection (cytotoxicity). Interacts with host TLR4 and thereby stimulates the differentiation and activation of monocytes leading to bystander death of T-lymphocytes. Down-regulates as well the function of host natural killer cells. Counteracts the antiviral effect of host BST2/tetherin that restricts release of progeny virions from infected cells. However, cooperates with VP40 and host BST2 to activate canonical NF-kappa-B pathway in a manner dependent on neddylation.. Shed GP. Functions as a decoy for anti-GP1,2 antibodies thereby contributing to viral immune evasion. Interacts and activates host macrophages and dendritic cells inducing up-regulation of cytokine transcription. This effect is mediated throught activation of host TLR4.. GP1. Responsible for binding to the receptor(s) on target cells. Interacts with CD209/DC-SIGN and CLEC4M/DC-SIGNR which act as cofactors for virus entry into dendritic cells (DCs) and endothelial cells (By similarity). Binding to the macrophage specific lectin CLEC10A also seems to enhance virus infectivity (By similarity). Interaction with FOLR1/folate receptor alpha may be a cofactor for virus entry in some cell types, although results are contradictory (By similarity). Members of the Tyro3 receptor tyrosine kinase family also seem to be cell entry factors in filovirus infection (By similarity). Once attached, the virions are internalized through clathrin-dependent endocytosis and/or macropinocytosis. After internalization of the virus into the endosomes of the host cell, proteolysis of GP1 by two cysteine proteases, CTSB/cathepsin B and CTSL/cathepsin L removes the glycan cap and allows GP1 binding to the host entry receptor NPC1. NPC1-binding, Ca(2+) and acidic pH induce a conformational change of GP2, which unmasks its fusion peptide and permit membranes fusion (By similarity).. GP2. Acts as a class I viral fusion protein. Under the current model, the protein has at least 3 conformational states : pre-fusion native state, pre-hairpin intermediate state, and post-fusion hairpin state. During viral and target cell membrane fusion, the coiled coil regions (heptad repeats) assume a trimer-of-hairpins structure, positioning the fusion peptide in close proximity to the C-terminal region of the ectodomain. The formation of this structure appears to drive apposition and subsequent fusion of viral and target cell membranes. Responsible for penetration of the virus into the cell cytoplasm by mediating the fusion of the membrane of the endocytosed virus particle with the endosomal membrane. Low pH in endosomes induces an irreversible conformational change in GP2, releasing the fusion hydrophobic peptide.
See full target information GP

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