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AB206566

Anti-V5 tag antibody [SV5-P-K]

5

(1 Review)

|

(16 Publications)

Anti-V5 tag antibody [SV5-P-K] (ab206566) is a rabbit monoclonal antibody detecting V5 tag in Western Blot, IP, IHC-Fr, ICC/IF, ELISA.

- Recombinant format for unrivalled batch-batch consistency

View Alternative Names

GKPIPNPLLGLDST epitope tag, GKPIPNPLLGLDST tag, Protein Rev, Regulator of expression of viral proteins, V5 epitope tag

2 Images
Indirect ELISA - Anti-V5 tag antibody [SV5-P-K] (AB206566)
  • I-ELISA

Supplier Data

Indirect ELISA - Anti-V5 tag antibody [SV5-P-K] (AB206566)

ELISA analysis of multi-tag protein labeling V5 tag using ab206566. Plate coated with 5 μg/mL of Multi-tag protein. Primary antibody loaded at 1000 ng/mL in first well and an 11 point serial dilution performed in duplicate for each antibody with last well left blank. Signal detection was performed using HRP-conjugated Goat anti-Mouse secondary antibody.

Western blot - Anti-V5 tag antibody [SV5-P-K] (AB206566)
  • WB

Lab

Western blot - Anti-V5 tag antibody [SV5-P-K] (AB206566)

Anti-V5 tag antibody [SV5-P-K] staining at 1/1000 dilution, shown in black. In Western blot, ab206566 was shown to bind specifically to V5 tag. First, samples were run on an SDS-PAGE gel then transferred onto a nitrocellulose membrane. Membranes were blocked in 3 % milk in TBS-0.1 % Tween$®$ 20 (TBS-T) before incubation with primary antibodies overnight at 4 °C. Blots were washed four times in TBS-T, incubated with secondary antibodies for 1 h at room temperature, washed again four times before development with Optiblot (ECL reagent ab133456) and imaged with 3 minutes exposure time. Secondary antibodies used were HRP conjugated Goat anti-Rabbit (H+L) at 1/50000 dilution.

All lanes:

Western blot - Anti-V5 tag antibody [SV5-P-K] (ab206566) at 1/1000 dilution

Lane 1:

Western blot - Recombinant E. coli Multi Tag protein (<a href='/en-us/products/proteins-peptides/recombinant-e-coli-multi-tag-protein-ab36791'>ab36791</a>) at 0.2 µg

Lane 2:

Western blot - Recombinant Human coronavirus SARS-CoV-2 nucleocapsid protein (His tag) (<a href='/en-us/products/proteins-peptides/recombinant-human-coronavirus-sars-cov-2-nucleocapsid-protein-his-tag-ab273530'>ab273530</a>) at 0.2 µg

Observed band size: 45 kDa

false

Exposure time: 3min

Key facts

Host species

Rabbit

Clonality

Monoclonal

Clone number

SV5-P-K

Isotype

IgG

Light chain type

kappa

Carrier free

No

Applications

IP, IHC-Fr, I-ELISA, WB, RIA, ICC/IF

applications

Specificity

ab206566 recognises a 14 amino acid sequence (GKPIPNPLLGLDST) derived from the P and V proteins of the Paramyxo Virus simian virus 5.

Reactivity data

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Product details

What is this antibody validated in?
Anti-V5 tag antibody [SV5-P-K] (ab206566) is a rabbit recombinant monoclonal antibody and is validated for use in Western Blot (WB), Immunoprecipitation (IP), Immunohistochemistry (IHC-Fr), Immunocytochemistry/immunofluorescence (ICC/IF), ELISA. Tagged protein detection
V5 tag antibodies are used to visualize proteins labelled with this tag in a variety of applications.

Other related products
We have a range of other formats of antibody clone [SV5-P-K] also available for your convenience: ab206557, ab206558, ab206559, ab206560, ab206561, ab206562, ab206565, ab206566, ab206571

Properties and storage information

Form
Liquid
Purification technique
Affinity purification Protein A
Storage buffer
Preservative: 0.02% Proclin 300 Constituents: PBS
Shipped at conditions
Blue Ice
Appropriate short-term storage duration
1-2 weeks
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
-20°C
Aliquoting information
Upon delivery aliquot
Storage information
Avoid freeze / thaw cycle

Supplementary information

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

The V5 tag is an epitope tag derived from the P and V fusion proteins of the paramyxovirus. It typically measures around 14 amino acids in length and is often used in molecular biology for tagging and protein expression studies. In terms of mechanical function the V5 tag facilitates the detection characterization and purification of recombinant proteins. Scientists commonly use it in various hosts such as bacteria yeast and mammalian cells due to its convenient integration into larger protein complexes. Unlike native proteins it serves as a non-disruptive label for identifying proteins without affecting their functionality.
Biological function summary

Researchers employ the V5 tag to decipher protein localization expression and role within cellular environments. It allows easy tracking in situ by using antibodies that target the V5 epitope such as the anti-V5 antibody. The V5 tag proves effective in dual-tagging systems useful in elucidating protein interactions and complex formations for instance when combined with other tags like biotin tag or APC tag. This assists in isolating and identifying components of complex cellular machinery.

Pathways

The tag is frequently utilized in studies exploring functional pathways of various proteins across metabolic and signaling pathways. It aids in examining the relationship between proteins within signaling cascades by tagging proteins that interact with others such as those in the PK tag-related signaling pathways. Researchers often track proteins across intricate networks to understand cellular processes intricately using V5-tagged proteins as indicators or reporters.

Scientists harness the V5 tag to investigate the expression and interactions of proteins associated with certain conditions such as cancer and neurodegenerative diseases. Through its integration scientists aim to uncover alterations in protein interactions or localizations that contribute to disease progression. For example they may tag proteins linked to cancer pathways observing how disruptions in proteins related to anti-V5 targets could provide insights into tumor biology or pathogenesis.

Product protocols

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

Publications (16)

Recent publications for all applications. Explore the full list and refine your search

Nature communications 16:2622 PubMed40097441

2025

Asgard Arf GTPases can act as membrane-associating molecular switches with the potential to function in organelle biogenesis.

Applications

Unspecified application

Species

Unspecified reactive species

Jing Zhu,Ruize Xie,Qiaoying Ren,Jiaming Zhou,Chen Chen,Meng-Xi Xie,You Zhou,Yan Zhang,Ningjing Liu,Jinchao Wang,Zhengwei Zhang,Xipeng Liu,Wupeng Yan,Qingqiu Gong,Liang Dong,Jinwei Zhu,Fengping Wang,Zhiping Xie

Molecular & cellular proteomics : MCP 23:100809 PubMed38936775

2024

Proximity Labeling Proteomics Reveals Kv1.3 Potassium Channel Immune Interactors in Microglia.

Applications

Unspecified application

Species

Unspecified reactive species

Christine A Bowen,Hai M Nguyen,Young Lin,Pritha Bagchi,Aditya Natu,Claudia Espinosa-Garcia,Erica Werner,Rashmi Kumari,Amanda Dabdab Brandelli,Prateek Kumar,Brendan R Tobin,Levi Wood,Victor Faundez,Heike Wulff,Nicholas T Seyfried,Srikant Rangaraju

The EMBO journal 43:2453-2485 PubMed38719994

2024

The GATAD2B-NuRD complex drives DNA:RNA hybrid-dependent chromatin boundary formation upon DNA damage.

Applications

Unspecified application

Species

Unspecified reactive species

Zhichao Liu,Kamal Ajit,Yupei Wu,Wei-Guo Zhu,Monika Gullerova

Cell reports 43:113956 PubMed38489267

2024

Relapse to cocaine seeking is regulated by medial habenula NR4A2/NURR1 in mice.

Applications

Unspecified application

Species

Unspecified reactive species

Jessica E Childs,Samuel Morabito,Sudeshna Das,Caterina Santelli,Victoria Pham,Kelly Kusche,Vanessa Alizo Vera,Fairlie Reese,Rianne R Campbell,Dina P Matheos,Vivek Swarup,Marcelo A Wood

Cell 187:692-711.e26 PubMed38262408

2024

DNA-guided transcription factor cooperativity shapes face and limb mesenchyme.

Applications

Unspecified application

Species

Unspecified reactive species

Seungsoo Kim,Ekaterina Morgunova,Sahin Naqvi,Seppe Goovaerts,Maram Bader,Mervenaz Koska,Alexander Popov,Christy Luong,Angela Pogson,Tomek Swigut,Peter Claes,Jussi Taipale,Joanna Wysocka

Nucleic acids research 51:10292-10308 PubMed37650637

2023

A genetic screen identifies BEND3 as a regulator of bivalent gene expression and global DNA methylation.

Applications

Unspecified application

Species

Unspecified reactive species

Lounis Yakhou,Anaelle Azogui,Nikhil Gupta,Julien Richard Albert,Fumihito Miura,Laure Ferry,Kosuke Yamaguchi,Sarah Battault,Pierre Therizols,Frédéric Bonhomme,Elouan Bethuel,Arpita Sarkar,Maxim V C Greenberg,Paola B Arimondo,Gael Cristofari,Olivier Kirsh,Takashi Ito,Pierre-Antoine Defossez

Nature structural & molecular biology 30:1105-1118 PubMed37488355

2023

A genome-wide screen reveals new regulators of the 2-cell-like cell state.

Applications

Unspecified application

Species

Unspecified reactive species

Nikhil Gupta,Lounis Yakhou,Julien Richard Albert,Anaelle Azogui,Laure Ferry,Olivier Kirsh,Fumihito Miura,Sarah Battault,Kosuke Yamaguchi,Marthe Laisné,Cécilia Domrane,Frédéric Bonhomme,Arpita Sarkar,Marine Delagrange,Bertrand Ducos,Gael Cristofari,Takashi Ito,Maxim V C Greenberg,Pierre-Antoine Defossez

Molecular & cellular proteomics : MCP 22:100546 PubMed37061046

2023

Cellular Proteomic Profiling Using Proximity Labeling by TurboID-NES in Microglial and Neuronal Cell Lines.

Applications

Unspecified application

Species

Unspecified reactive species

Sydney Sunna,Christine Bowen,Hollis Zeng,Sruti Rayaprolu,Prateek Kumar,Pritha Bagchi,Eric B Dammer,Qi Guo,Duc M Duong,Sara Bitarafan,Aditya Natu,Levi Wood,Nicholas T Seyfried,Srikant Rangaraju

Nature communications 13:7130 PubMed36414620

2022

Structural basis for activation of DNMT1.

Applications

Unspecified application

Species

Unspecified reactive species

Amika Kikuchi,Hiroki Onoda,Kosuke Yamaguchi,Satomi Kori,Shun Matsuzawa,Yoshie Chiba,Shota Tanimoto,Sae Yoshimi,Hiroki Sato,Atsushi Yamagata,Mikako Shirouzu,Naruhiko Adachi,Jafar Sharif,Haruhiko Koseki,Atsuya Nishiyama,Makoto Nakanishi,Pierre-Antoine Defossez,Kyohei Arita

Cell reports 41:111526 PubMed36288694

2022

DNA double-strand break-derived RNA drives TIRR/53BP1 complex dissociation.

Applications

Unspecified application

Species

Unspecified reactive species

Ruth F Ketley,Federica Battistini,Adele Alagia,Clémence Mondielli,Florence Iehl,Esra Balikçi,Kilian V M Huber,Modesto Orozco,Monika Gullerova
View all publications

Product promise

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