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AB76123

Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade

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(18 Publications)

Rabbit Recombinant Monoclonal RNA polymerase II RPB1 antibody. Suitable for IP, ChIP, WB and reacts with Human samples. Cited in 18 publications.

View Alternative Names

POLR2, POLR2A, DNA-directed RNA polymerase II subunit RPB1, RNA polymerase II subunit B1, 3'-5' exoribonuclease, DNA-directed RNA polymerase II subunit A, DNA-directed RNA polymerase III largest subunit, RNA-directed RNA polymerase II subunit RPB1

3 Images
ChIP - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (AB76123)
  • ChIP

Lab

ChIP - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (AB76123)

Chromatin was prepared from 293T cells according to the Abcam Dual-X-ChIP protocol. Cells were fixed with 1.5 mM EGS for 30mins and then formaldehyde for 10min.
The ChIP was performed with 25 µg of chromatin, 5 µg of ab76123 (red), or 5 µg of rabbit normal IgG ab172730 (gray) and 20 µl of Protein A/G sepharose beads. The immunoprecipitated DNA was quantified by real time PCR (Taqman approach for active and inactive loci, Sybr green approach for heterochromatic loci).
Primers and probes are commercial primers from Paper

Immunoprecipitation - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (AB76123)
  • IP

Lab

Immunoprecipitation - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (AB76123)

RNA polymerase II RPB1 was immunoprecipitated from10 μg of HeLa (human cervix adenocarcinoma epithelial cell) whole cell lysate with ab76123 at 1/1000 dilution. Western blot was performed from the immunoprecipitate using ab76123 at 1/1000 dilution. VeriBlot for IP secondary antibody(HRP)(ab131366) was used at 1/5000 dilution.

Lane 1(Input) : HeLa (human cervix adenocarcinoma epithelial cell) whole cell lysate.
Lane 2(+) : ab76123 IP in HeLa whole cell lysate.
Lane 3(-) : Rabbit monoclonal IgG (ab172730) instead of ab76123 in HeLa whole cell lysate.

Blocking and diluting buffer and concentration : 5% NFDM/TBST.

All lanes:

Immunoprecipitation - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (ab76123) at 1/1000 dilution

All lanes:

HeLa (human cervix adenocarcinoma epithelial cell) whole cell lysate

Secondary

All lanes:

Immunoprecipitation - VeriBlot for IP Detection Reagent (HRP) (<a href='/en-us/products/reagents/veriblot-for-ip-detection-reagent-hrp-ab131366'>ab131366</a>) at 1/5000 dilution

Observed band size: 250 kDa

false

Exposure time: 180s

Western blot - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (AB76123)
  • WB

Unknown

Western blot - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (AB76123)

All lanes:

Western blot - Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - ChIP Grade (ab76123) at 1/2000 dilution

All lanes:

HeLa cell lysate at 10 µg

Secondary

All lanes:

Goat anti-rabbit HRP at 1/2000 dilution

Predicted band size: 217 kDa

Observed band size: 270 kDa

false

  • Carrier free

    Anti-RNA polymerase II RPB1 antibody [EPR1509Y] - BSA and Azide free

Key facts

Host species

Rabbit

Clonality

Monoclonal

Clone number

EPR1509Y

Isotype

IgG

Carrier free

No

Reacts with

Human

Applications

ChIP, WB, IP

applications

Immunogen

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

Reactivity data

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Product details

Species reactivity
Mouse, Rat: We have preliminary internal testing data to indicate this antibody may not react with these species.
Please contact us for more information.

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.

Properties and storage information

Form
Liquid
Purification technique
Affinity purification Protein A
Storage buffer
pH: 7.2 - 7.4 Preservative: 0.01% Sodium azide Constituents: PBS, 40% Glycerol (glycerin, glycerine), 0.05% BSA
Shipped at conditions
Conditional Ambient
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
-20°C
Storage information
Stable for 12 months at -20°C

Supplementary information

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

RNA polymerase II RPB1 also known as POLR2A or polymerase II is a protein that functions as a catalytic core in the transcription machinery. It plays an important role in transcribing DNA into mRNA essential for initiating protein production. RPB1 displays a molecular mass of approximately 220 kDa. It is ubiquitously expressed in eukaryotic cells signifying its extensive involvement across the cellular milieu.
Biological function summary

RNA polymerase II RPB1 orchestrates the assembly of the preinitiation complex collaborating with various transcription factors to enable accurate transcription initiation. It forms an important part of the RNA polymerase II complex which consists of twelve subunits in eukaryotes. This assembly facilitates the synthesis of pre-mRNA and snRNA which are paramount for proper gene expression and RNA processing.

Pathways

RNA polymerase II RPB1 integrates predominantly into the gene expression and regulation pathways including the transcription initiation and elongation processes. It operates alongside transcription factors like TFIIB and TFIIF which assist in positioning RPB1 correctly on the DNA template. It is also associated with signaling pathways such as MAPK which modulates cellular responses including growth and stress.

RNA polymerase II RPB1 has been implicated in conditions like Cockayne syndrome and cancer. Disruptions in its transcriptional functions can lead to defects in DNA repair and cell cycle control contributing to cancer progression. Links with proteins such as p53 a tumor suppressor involved in cell cycle regulation highlight its role in cancer-related pathways. Cockayne syndrome on the other hand arises due to impaired DNA damage response with defects in RNA polymerase II-linked transcription coupling repair.

Product protocols

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

Target data

Catalytic core component of RNA polymerase II (Pol II), a DNA-dependent RNA polymerase which synthesizes mRNA precursors and many functional non-coding RNAs using the four ribonucleoside triphosphates as substrates (By similarity) (PubMed : 23748380, PubMed : 27193682, PubMed : 30190596, PubMed : 9852112). Pol II-mediated transcription cycle proceeds through transcription initiation, transcription elongation and transcription termination stages. During transcription initiation, Pol II pre-initiation complex (PIC) is recruited to DNA promoters, with focused-type promoters containing either the initiator (Inr) element, or the TATA-box found in cell-type specific genes and dispersed-type promoters that often contain hypomethylated CpG islands usually found in housekeeping genes. Once the polymerase has escaped from the promoter it enters the elongation phase during which RNA is actively polymerized, based on complementarity with the template DNA strand. Transcription termination involves the release of the RNA transcript and polymerase from the DNA (By similarity) (PubMed : 23748380, PubMed : 27193682, PubMed : 28108474, PubMed : 30190596, PubMed : 9852112). Forms Pol II active center together with the second largest subunit POLR2B/RPB2. Appends one nucleotide at a time to the 3' end of the nascent RNA, with POLR2A/RPB1 most likely contributing a Mg(2+)-coordinating DxDGD motif, and POLR2B/RPB2 participating in the coordination of a second Mg(2+) ion and providing lysine residues believed to facilitate Watson-Crick base pairing between the incoming nucleotide and template base. Typically, Mg(2+) ions direct a 5' nucleoside triphosphate to form a phosphodiester bond with the 3' hydroxyl of the preceding nucleotide of the nascent RNA, with the elimination of pyrophosphate. The reversible pyrophosphorolysis can occur at high pyrophosphate concentrations (By similarity) (PubMed : 30190596, PubMed : 8381534, PubMed : 9852112). Can proofread the nascent RNA transcript by means of a 3' -> 5' exonuclease activity. If a ribonucleotide is mis-incorporated, backtracks along the template DNA and cleaves the phosphodiester bond releasing the mis-incorporated 5'-ribonucleotide (By similarity) (PubMed : 8381534). Through its unique C-terminal domain (CTD, 52 heptapeptide tandem repeats) serves as a platform for assembly of factors that regulate transcription initiation, elongation and termination. CTD phosphorylation on Ser-5 mediates Pol II promoter escape, whereas phosphorylation on Ser-2 is required for Pol II pause release during transcription elongation and further pre-mRNA processing. Additionally, the regulation of gene expression levels depends on the balance between methylation and acetylation levels of the CTD-lysines. Initiation or early elongation steps of transcription of growth-factor-induced immediate early genes are regulated by the acetylation status of the CTD. Methylation and dimethylation have a repressive effect on target genes expression. Cooperates with mRNA splicing machinery in co-transcriptional 5'-end capping and co-transcriptional splicing of pre-mRNA (By similarity) (PubMed : 24207025, PubMed : 26124092).. RNA-dependent RNA polymerase that catalyzes the extension of a non-coding RNA (ncRNA) at the 3'-end using the four ribonucleoside triphosphates as substrates. An internal ncRNA sequence near the 3'-end serves as a template in a single-round Pol II-mediated RNA polymerization reaction. May decrease the stability of ncRNAs that repress Pol II-mediated gene transcription.. (Microbial infection) Acts as an RNA-dependent RNA polymerase when associated with small delta antigen of Hepatitis delta virus, acting both as a replicase and transcriptase for the viral RNA circular genome.
See full target information POLR2A

Publications (18)

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

Cell death discovery 11:404 PubMed40854914

2025

Multi-omics analysis reveals RNA polymerase II degradation as a novel mechanism of PF-3758309's anti-tumor activity.

Applications

Unspecified application

Species

Unspecified reactive species

Xinglong Jia,Jingdan Zhang,Lulu Pan,Jingliang He,Mingrui Zhu,Lei Zhao,Xingyu Zhang,Wensi Zhao,Dong Xie,Xiaoyan Shen,Bin Liu,Minjia Tan

Molecular cancer 24:170 PubMed40495214

2025

CREPT is required for the metastasis of triple-negative breast cancer through a co-operational-chromatin loop-based gene regulation.

Applications

Unspecified application

Species

Unspecified reactive species

Jianghua Li,Lu Xu,Jiayu Wang,Xuning Wang,Yuting Lin,Alex Yutian Zou,Fangli Ren,Yinyin Wang,Jun Li,Zhijie Chang

Cancer medicine 12:7283-7293 PubMed36567509

2022

Comprehensive optimization of urinary exfoliated tumor cells tests in bladder cancer with a promising microfluidic platform.

Applications

Unspecified application

Species

Unspecified reactive species

Fengbin Gao,Jie Wang,Yanlan Yu,Jing Yan,Guoqing Ding

Gene therapy 30:478-486 PubMed36510002

2022

An ectopic enhancer restores CFTR expression through de novo chromatin looping.

Applications

Unspecified application

Species

Unspecified reactive species

Jenny L Kerschner,Alekh Paranjapye,Nirbhayaditya Vaghela,Michael D Wilson,Ann Harris

Cell death & disease 13:404 PubMed35468873

2022

PRKDC promotes hepatitis B virus transcription through enhancing the binding of RNA Pol II to cccDNA.

Applications

Unspecified application

Species

Unspecified reactive species

Yao Fan,Yi Liang,Yu Liu,Hui Fan

Computational and structural biotechnology journal 20:1860-1875 PubMed35495117

2022

Identifying novel SMYD3 interactors on the trail of cancer hallmarks.

Applications

Unspecified application

Species

Unspecified reactive species

Candida Fasano,Martina Lepore Signorile,Katia De Marco,Giovanna Forte,Paola Sanese,Valentina Grossi,Cristiano Simone

Nucleic acids research 48:8724-8739 PubMed32735645

2020

Transcriptome-wide stability analysis uncovers LARP4-mediated NFκB1 mRNA stabilization during T cell activation.

Applications

Unspecified application

Species

Unspecified reactive species

Yi Tian,Zhouhao Zeng,Xiang Li,Yiyin Wang,Runsen Chen,Sandy Mattijssen,Sergei Gaidamakov,Yuzhang Wu,Richard J Maraia,Weiqun Peng,Jun Zhu

Nucleic acids research 48:3513-3524 PubMed32095812

2020

Looping of upstream cis-regulatory elements is required for CFTR expression in human airway epithelial cells.

Applications

Unspecified application

Species

Unspecified reactive species

Monali NandyMazumdar,Shiyi Yin,Alekh Paranjapye,Jenny L Kerschner,Hannah Swahn,Alex Ge,Shih-Hsing Leir,Ann Harris

Nature communications 10:3761 PubMed31434880

2019

Genotoxic stress-triggered β-catenin/JDP2/PRMT5 complex facilitates reestablishing glutathione homeostasis.

Applications

Unspecified application

Species

Unspecified reactive species

Lixue Cao,Geyan Wu,Jinrong Zhu,Zhanyao Tan,Dongni Shi,Xingui Wu,Miaoling Tang,Ziwen Li,Yameng Hu,Shuxia Zhang,Ruyuan Yu,Shuang Mo,Jueheng Wu,Erwei Song,Mengfeng Li,Libing Song,Jun Li

Nucleic acids research 47:6145-6159 PubMed31076740

2019

Histone H1.5 binds over splice sites in chromatin and regulates alternative splicing.

Applications

Unspecified application

Species

Unspecified reactive species

Ohad Glaich,Yodfat Leader,Galit Lev Maor,Gil Ast
View all publications

Product promise

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