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AB42359

Anti-HIV1 tat antibody [1]

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(13 Publications)

Mouse Monoclonal HIV1 tat antibody. Suitable for WB, ELISA, IHC-P, RipA and reacts with Recombinant fragment - Human immunodeficiency virus samples. Cited in 13 publications.

View Alternative Names

Protein Tat, Transactivating regulatory protein, tat

1 Images
Western blot - Anti-HIV1 tat antibody [1] (AB42359)
  • WB

Supplier Data

Western blot - Anti-HIV1 tat antibody [1] (AB42359)

All lanes:

Western blot - Anti-HIV1 tat antibody [1] (ab42359)

Lane 1:

Recombinant HIV1 Tat (B subtype)

Lane 2:

Protein size marker

false

Key facts

Host species

Mouse

Clonality

Monoclonal

Clone number

1

Isotype

IgG1

Carrier free

No

Reacts with

Human immunodeficiency virus

Applications

IHC-P, RipA, ELISA, WB

applications

Epitope

Mapped to amino acids 2-9 (EPVDPRLE - B subtype consensus).

Specificity

This antibody reacts with the rTat consensus sequences of HIV1 subtypes A (DPVDPNLE), B (EPVDPRLE) and C (EPVDPNLE).

Reactivity data

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Product details

Also known as clone 02-001.

Properties and storage information

Form
Liquid
Purification technique
Affinity purification Protein G
Storage buffer
pH: 7.4 Preservative: 0.1% Sodium azide 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 HIV-1 Tat protein also known as HIV Tat or simply Tat is an important regulatory protein of the Human Immunodeficiency Virus type 1 (HIV-1). It has a mass of approximately 14 to 16 kDa and is important for viral replication. This protein is expressed early in the HIV-1 infection cycle and is localized mainly in the nucleus of infected T-cells. HIV-1 Tat is known for its ability to transactivate the HIV-1 long terminal repeat (LTR) promoter which significantly enhances the production of viral RNA.
Biological function summary

The HIV-1 Tat protein plays an important role in the replication and transcription processes of the HIV-1 virus. It is part of a complex that interacts with other host cellular factors to improve the efficiency of the HIV-1 transcription from the provirus. This interaction is essential for the elongation phase of transcription which results in increased viral gene expression and successful replication of the virus inside host cells.

Pathways

The involvement of the HIV-1 Tat protein extends to interfering with several important biological pathways. It influences the NF-kB pathway which is critical for immune response regulation and interacts with the Cyclin T1 as part of the P-TEFb complex. This interaction is important for the transcriptional activation of the HIV LTR. By affecting the NF-kB pathway Tat protein indirectly modulates inflammatory responses which can lead to altered immune system functions.

HIV-1 Tat protein's primary significance lies in the progression and pathology of HIV/AIDS. Its interactions with host cellular proteins such as CDK9 (a component of P-TEFb) are critical for viral persistence and pathogenesis. Additionally Tat has been implicated in neurological disorders associated with HIV-1 infection often referred to as HIV-associated neurocognitive disorders (HAND). Its influence on the central nervous system arises from its ability to exit infected cells and exert neurotoxic effects in neighboring uninfected neural cells.

Product protocols

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

Target data

Transcriptional activator that increases RNA Pol II processivity, thereby increasing the level of full-length viral transcripts. Recognizes a hairpin structure at the 5'-LTR of the nascent viral mRNAs referred to as the transactivation responsive RNA element (TAR) and recruits the cyclin T1-CDK9 complex (P-TEFb complex) that will in turn hyperphosphorylate the RNA polymerase II to allow efficient elongation. The CDK9 component of P-TEFb and other Tat-activated kinases hyperphosphorylate the C-terminus of RNA Pol II that becomes stabilized and much more processive. Other factors such as HTATSF1/Tat-SF1, SUPT5H/SPT5, and HTATIP2 are also important for Tat's function. Besides its effect on RNA Pol II processivity, Tat induces chromatin remodeling of proviral genes by recruiting the histone acetyltransferases (HATs) CREBBP, EP300 and PCAF to the chromatin. This also contributes to the increase in proviral transcription rate, especially when the provirus integrates in transcriptionally silent region of the host genome. To ensure maximal activation of the LTR, Tat mediates nuclear translocation of NF-kappa-B by interacting with host RELA. Through its interaction with host TBP, Tat may also modulate transcription initiation. Tat can reactivate a latently infected cell by penetrating in it and transactivating its LTR promoter. In the cytoplasm, Tat is thought to act as a translational activator of HIV-1 mRNAs.. Extracellular circulating Tat can be endocytosed by surrounding uninfected cells via the binding to several surface receptors such as CD26, CXCR4, heparan sulfate proteoglycans (HSPG) or LDLR. Neurons are rarely infected, but they internalize Tat via their LDLR. Through its interaction with nuclear HATs, Tat is potentially able to control the acetylation-dependent cellular gene expression. Modulates the expression of many cellular genes involved in cell survival, proliferation or in coding for cytokines or cytokine receptors. Tat plays a role in T-cell and neurons apoptosis. Tat induced neurotoxicity and apoptosis probably contribute to neuroAIDS. Circulating Tat also acts as a chemokine-like and/or growth factor-like molecule that binds to specific receptors on the surface of the cells, affecting many cellular pathways. In the vascular system, Tat binds to ITGAV/ITGB3 and ITGA5/ITGB1 integrins dimers at the surface of endothelial cells and competes with bFGF for heparin-binding sites, leading to an excess of soluble bFGF.
See full target information tat

Publications (13)

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

The EMBO journal 44:1414-1441 PubMed39875724

2025

Micropeptide hSPAR regulates glutamine levels and suppresses mammary tumor growth via a TRIM21-P27KIP1-mTOR axis.

Applications

Unspecified application

Species

Unspecified reactive species

Yan Huang,Hua Lu,Yao Liu,Jiabei Wang,Qingan Xia,Xiangmin Shi,Yan Jin,Xiaolin Liang,Wei Wang,Xiaopeng Ma,Yangyi Wang,Meng Gong,Canjun Li,Chunlei Cang,Qinghua Cui,Ceshi Chen,Tao Shen,Lianxin Liu,Xiangting Wang

Journal of virology 97:e0104423 PubMed37905837

2023

HIV-1 Tat commandeers nuclear export of Rev-viral RNA complex by controlling hnRNPA2-mediated splicing.

Applications

Unspecified application

Species

Unspecified reactive species

Sriram Yandrapally,Satarupa Sarkar,Sharmistha Banerjee

Journal of virology 95:e0135821 PubMed34549986

2021

CRISPR/Cas9 Ablation of Integrated HIV-1 Accumulates Proviral DNA Circles with Reformed Long Terminal Repeats.

Applications

Unspecified application

Species

Unspecified reactive species

Michele Lai,Eyal Maori,Paola Quaranta,Giulia Matteoli,Fabrizio Maggi,Marco Sgarbanti,Stefania Crucitta,Simone Pacini,Ombretta Turriziani,Guido Antonelli,Jonathan L Heeney,Giulia Freer,Mauro Pistello

PloS one 10:e0122919 PubMed25853889

2015

MYB elongation is regulated by the nucleic acid binding of NFκB p50 to the intronic stem-loop region.

Applications

Unspecified application

Species

Unspecified reactive species

Lloyd A Pereira,Honor J Hugo,Jordane Malaterre,Xu Huiling,Secondo Sonza,Alina Cures,Damian F J Purcell,Paul A Ramsland,Steven Gerondakis,Thomas J Gonda,Robert G Ramsay

Viruses 6:1637-53 PubMed24721788

2014

Generation of West Nile virus infectious clones containing amino acid insertions between capsid and capsid anchor.

Applications

WB

Species

Unspecified reactive species

Rianna Vandergaast,Lisa I Hoover,Kang Zheng,Brenda L Fredericksen

PloS one 8:e68665 PubMed23840900

2013

Human DDX3 interacts with the HIV-1 Tat protein to facilitate viral mRNA translation.

Applications

IP

Species

Unspecified reactive species

Ming-Chih Lai,Shainn-Wei Wang,Lie Cheng,Woan-Yuh Tarn,Shaw-Jenq Tsai,H Sunny Sun

The Journal of general virology 94:514-523 PubMed23152365

2012

Effects of Tat proteins and Tat mutants of different human immunodeficiency virus type 1 clades on glial JC virus early and late gene transcription.

Applications

Unspecified application

Species

Unspecified reactive species

Clayton A Wright,Jonas A Nance,Edward M Johnson

The American journal of pathology 177:1397-410 PubMed20651230

2010

Interactive comorbidity between opioid drug abuse and HIV-1 Tat: chronic exposure augments spine loss and sublethal dendritic pathology in striatal neurons.

Applications

IHC-Fr

Species

Unspecified reactive species

Sylvia Fitting,Ruqiang Xu,Cecilia Bull,Shreya K Buch,Nazira El-Hage,Avindra Nath,Pamela E Knapp,Kurt F Hauser

Journal of virology 78:4408-20 PubMed15078922

2004

Human immunodeficiency virus (HIV) type 1 Vpu induces the expression of CD40 in endothelial cells and regulates HIV-induced adhesion of B-lymphoma cells.

Applications

Unspecified application

Species

Unspecified reactive species

Winnie W Henderson,Rebecca Ruhl,Paul Lewis,Matthew Bentley,Jay A Nelson,Ashlee V Moses

Virology 284:46-61 PubMed11352667

2001

Interactions of single and combined human immunodeficiency virus type 1 (HIV-1) DNA vaccines.

Applications

Unspecified application

Species

Unspecified reactive species

A Kjerrström,J Hinkula,G Engström,V Ovod,K Krohn,R Benthin,B Wahren
View all publications

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