CIP2A Antibody (2G10) - BSA Free
Novus Biologicals | Catalog # NB110-59722
Key Product Details
Validated by
Species Reactivity
Validated:
Cited:
Applications
Validated:
Cited:
Label
Antibody Source
Format
Product Specifications
Immunogen
Epitope
Reactivity Notes
Localization
Clonality
Host
Isotype
Scientific Data Images for CIP2A Antibody (2G10) - BSA Free
Flow Cytometry: CIP2A Antibody (2G10) [NB110-59722]
Flow Cytometry: CIP2A Antibody (2G10) [NB110-59722] - Intracellular flow cytometric staining of 1 x 10^6 CHO (A) and HEK-293 (B) cells using CIP2A antibody (dark blue). Isotype control shown in orange. An antibody concentration of 1 ug/1x10^6 cells was used.Western Blot: CIP2A Antibody (2G10) [NB110-59722]
Western Blot: CIP2A Antibody (2G10) [NB110-59722] - Detection of CIP2A in HeLa whole cell lysate.Western Blot: CIP2A Antibody (2G10) [NB110-59722]
Western Blot: CIP2A Antibody (2G10) [NB110-59722] - Analysis of CIP2A in NIH/3T3 cell lysate.Immunocytochemistry/ Immunofluorescence: CIP2A Antibody (2G10) [NB110-59722]
Immunocytochemistry/Immunofluorescence: CIP2A Antibody (2G10) [NB110-59722] - CIP2A antibody was tested in U2OS cells with Dylight 488 (green). Nuclei and alpha-tubulin were counterstained with DAPI (blue) and Dylight 550 (red).Immunohistochemistry-Paraffin: CIP2A Antibody (2G10) [NB110-59722]
Immunohistochemistry-Paraffin: CIP2A Antibody (2G10) [NB110-59722] - IHC analysis of formalin fixed paraffin-embedded (FFPE) human colon cancer using CIP2A antibody at 1:200 on a Bond Rx autostainer (Leica Biosystems). The assay involved 20 minutes of heat induced antigen retrieval (HIER) using 10mM sodium citrate buffer (pH 6.0) and endogenous peroxidase quenching with peroxide block. The sections were incubated with primary antibody for 30 minutes and Bond Polymer Refine Detection (Leica Biosystems) with DAB was used for signal development followed by counterstaining with hematoxylin. Whole slide scanning and capturing of representative images was performed using Aperio AT2 (Leica Biosystems). Staining was performed by Histowiz.Western Blot: CIP2A Antibody (2G10) [NB110-59722] -
Western Blot: CIP2A Antibody (2G10) [NB110-59722] - miR-375 increases p21, p53, & RB in HPV16- & 18-positive cancer. (A) Protein levels of p21, p53, & RB in SiHa cells transfected w/ miR-375 inhibitor, -mimic, or NS control measured by Western blot analysis. 25%, 50%, 100% amounts of untreated cell lysates included to calibrate the semiquantitative measurement. (B) Relative endogenous mRNA levels of p21, p53, & RB measured in SiHa cells transfected w/ miR-375 inhibitor, -mimic, or NS control using qRT-PCR. (C) One hundred thousand SiHa cells seeded on 24-well plate & the number of cells counted by trypan blue exclusion staining assay 48 h post-transfection. (D) Protein levels of p21, p53, & RB in HeLa cells transfected w/ miR-375 inhibitor, -mimic, or NS control measured by Western blot analysis. (E) Relative p21 mRNA levels measured in HeLa cells transfected w/ miR-375 inhibitor, -mimic, or NS control. (F) Trypan blue exclusion staining assay used to analyze the proliferation rate of HeLa cells 48 h post-transcfection. (G) Flow cytometry analysis demonstrates G1 arrest of SiHa cells 48 h after transfection w/ miR-375-mimic compared to miR-375 inhibitor or NS control. (H) Protein levels of CIP2A, p53, & p21 in SiHa cells transfected w/ si-CIP2A and/or si-p53 measured by Western blot analysis. (I) Protein levels of CIP2A, p53, & p21 in SiHa cells transfected w/ si-p53 and/or miR-375-mimic measured by Western blot analysis. (J) mRNA levels of p21 in SiHa cells transfected w/ si-p53 and/or miR-375-mimic measured by qRT-PCR. The concentrations of siRNA or miRNA used in panels H, I, & J 10 nM & 25 nM, respectively. Results are expressed as mean ± SD from three independent experiments. *p < 0.05, ***p < 0.001, & ****p < 0.0001. Image collected & cropped by CiteAb from the following publication (https://pubmed.ncbi.nlm.nih.gov/24708873), licensed under a CC-BY license. Not internally tested by Novus Biologicals.Western Blot: CIP2A Antibody (2G10) [NB110-59722] -
Western Blot: CIP2A Antibody (2G10) [NB110-59722] - miR-375 control on CIP2A-MYC pathway also contributes to p21 elevation. (A) p21, p53, RB, CIP2A, & MYC protein levels in MCF7 cells transfected with miR-375 inhibitor, -mimic, or NS control were measured by Western blot analysis. Tubulin expression was used as internal control. 25%, 50%, 100% amounts of untreated cell lysates were included to calibrate the semiquantitative measurement. (B) Transfection with miR-375-mimic significantly upregulated p21 mRNA in MCF7. Relative endogenous p21 mRNA levels were measured in MCF7 cells transfected with miR-375 inhibitor, -mimic, or NS control for 48 h using qRT-PCR. (C) CIP2A & MYC protein levels were effectively silenced by si-CIP2A transfection with 1 & 10 nM concentrations for 48 h. Increased p21 protein levels were detected in si-CIP2A dose-dependent manner. 10 nM of si-GFP was used as a control. (D) Protein levels of CIP2A, p53, & p21 in MCF7 cells transfected with si-p53 and/or miR-375-mimic were measured by Western blot analysis. (E) mRNA levels of p21 in MCF7 cells transfected with si-p53 and/or miR-375-mimic were measured by qRT-PCR. (F) Flow cytometry analysis demonstrates G1 arrest of MCF7 cells 48 h after transfection with miR-375-mimic compared to miR-375 inhibitor or NS control. The concentrations of siRNA or miRNA used in panels D, E, & F were 10 nM & 25 nM, respectively. (G) Schematic depiction of miR-375-mediated repression of CIP2A, E6, E6AP, & E7 in HPV16-positive cells that simultaneously increases tumor suppressor p53, p21, & RB, & causes cell cycle arrest. Results are expressed as mean ± SD from three independent experiments. *p < 0.05, **p < 0.01, & ***p < 0.001. Image collected & cropped by CiteAb from the following publication (https://pubmed.ncbi.nlm.nih.gov/24708873), licensed under a CC-BY license. Not internally tested by Novus Biologicals.Western Blot: CIP2A Antibody (2G10) [NB110-59722] -
Western Blot: CIP2A Antibody (2G10) [NB110-59722] - miR-375-mediated repression of HPV16, E6AP, & CIP2A activates the p53-p21 network & suppresses telomerase activity. (A) miR-375 demonstrates upregulation of p53 & p21 comparable to that of the single or combined CIP2A, E6, & E6AP knockdown. CIP2A, E6AP, p53, & p21 protein levels in SiHa cells transfected with siRNA targeting CIP2A, HPV16-E6, & E6AP (si-CIP2A, si-E6, & si-E6AP, respectively) were analyzed by Western blot. 1 nM & 10 nM siRNA concentrations & 5 nM & 50 nM for miR-375-mimic were used for transfection. si-Three is a combination of the three siRNAs indicated above. 10 nM of si-GFP was used as a control. Tubulin expression was used as internal control. (B) The increase in p21 protein levels correlate to its mRNA levels. Relative endogenous p21 mRNA levels transfected with siRNAs or miR-375 were measured using qRT-PCR. (C) miR-375 exerted a similar or stronger reduction in TERT mRNA levels when compared to E6 & E6AP knockdown in SiHa cells. (D) SiHa cells transfected with miR-375-mimic significantly reduced telomerase activity. Relative telomerase activities in SiHa cells transfected with NS control, miR-375-mimic, & miR-375 inhibitor were measured by SYBR real-time PCR TRAP assay. Heat-inactivated telomerase extracts were used to normalize this data. *p < 0.05, **p < 0.01, ***p < 0.001, & ****p < 0.0001. ns, not significant. Image collected & cropped by CiteAb from the following publication (https://pubmed.ncbi.nlm.nih.gov/24708873), licensed under a CC-BY license. Not internally tested by Novus Biologicals.Western Blot: CIP2A Antibody (2G10) [NB110-59722] -
Western Blot: CIP2A Antibody (2G10) [NB110-59722] - miR-375 control on CIP2A-MYC pathway also contributes to p21 elevation. (A) p21, p53, RB, CIP2A, & MYC protein levels in MCF7 cells transfected with miR-375 inhibitor, -mimic, or NS control were measured by Western blot analysis. Tubulin expression was used as internal control. 25%, 50%, 100% amounts of untreated cell lysates were included to calibrate the semiquantitative measurement. (B) Transfection with miR-375-mimic significantly upregulated p21 mRNA in MCF7. Relative endogenous p21 mRNA levels were measured in MCF7 cells transfected with miR-375 inhibitor, -mimic, or NS control for 48 h using qRT-PCR. (C) CIP2A & MYC protein levels were effectively silenced by si-CIP2A transfection with 1 & 10 nM concentrations for 48 h. Increased p21 protein levels were detected in si-CIP2A dose-dependent manner. 10 nM of si-GFP was used as a control. (D) Protein levels of CIP2A, p53, & p21 in MCF7 cells transfected with si-p53 and/or miR-375-mimic were measured by Western blot analysis. (E) mRNA levels of p21 in MCF7 cells transfected with si-p53 and/or miR-375-mimic were measured by qRT-PCR. (F) Flow cytometry analysis demonstrates G1 arrest of MCF7 cells 48 h after transfection with miR-375-mimic compared to miR-375 inhibitor or NS control. The concentrations of siRNA or miRNA used in panels D, E, & F were 10 nM & 25 nM, respectively. (G) Schematic depiction of miR-375-mediated repression of CIP2A, E6, E6AP, & E7 in HPV16-positive cells that simultaneously increases tumor suppressor p53, p21, & RB, & causes cell cycle arrest. Results are expressed as mean ± SD from three independent experiments. *p < 0.05, **p < 0.01, & ***p < 0.001. Image collected & cropped by CiteAb from the following publication (https://pubmed.ncbi.nlm.nih.gov/24708873), licensed under a CC-BY license. Not internally tested by Novus Biologicals.Applications for CIP2A Antibody (2G10) - BSA Free
Flow Cytometry
Immunocytochemistry/ Immunofluorescence
Immunohistochemistry
Immunohistochemistry-Paraffin
Western Blot
Flow Cytometry Panel Builder
Bio-Techne Knows Flow Cytometry
Save time and reduce costly mistakes by quickly finding compatible reagents using the Panel Builder Tool.
Advanced Features
- Spectra Viewer - Custom analysis of spectra from multiple fluorochromes
- Spillover Popups - Visualize the spectra of individual fluorochromes
- Antigen Density Selector - Match fluorochrome brightness with antigen density
Formulation, Preparation, and Storage
Purification
Formulation
Format
Preservative
Concentration
Shipping
Stability & Storage
Background: CIP2A
Alternate Names
Gene Symbol
Additional CIP2A Products
Product Documents for CIP2A Antibody (2G10) - BSA Free
Certificate of Analysis
To download a Certificate of Analysis, please enter a lot or batch number in the search box below.
Product Specific Notices for CIP2A Antibody (2G10) - BSA Free
This product is for research use only and is not approved for use in humans or in clinical diagnosis. Primary Antibodies are guaranteed for 1 year from date of receipt.
Citations for CIP2A Antibody (2G10) - BSA Free
Customer Reviews for CIP2A Antibody (2G10) - BSA Free
There are currently no reviews for this product. Be the first to review CIP2A Antibody (2G10) - BSA Free and earn rewards!
Have you used CIP2A Antibody (2G10) - BSA Free?
Submit a review and receive an Amazon gift card!
$25/€18/£15/$25CAN/¥2500 Yen for a review with an image
$10/€7/£6/$10CAN/¥1110 Yen for a review without an image
Submit a review
Protocols
View specific protocols for CIP2A Antibody (2G10) - BSA Free (NB110-59722):
Immunocytochemistry Protocol
Culture cells to appropriate density in 35 mm culture dishes or 6-well plates.
1. Remove culture medium and add 10% formalin to the dish. Fix at room temperature for 30 minutes.
2. Remove the formalin and add ice cold methanol. Incubate for 5-10 minutes.
3. Remove methanol and add washing solution (i.e. PBS). Be sure to not let the specimen dry out. Wash three times for 10 minutes.
4. To block nonspecific antibody binding incubate in 10% normal goat serum from 1 hour to overnight at room temperature.
5. Add primary antibody at appropriate dilution and incubate at room temperature from 2 hours to overnight at room temperature.
6. Remove primary antibody and replace with washing solution. Wash three times for 10 minutes.
7. Add secondary antibody at appropriate dilution. Incubate for 1 hour at room temperature.
8. Remove antibody and replace with wash solution, then wash for 10 minutes. Add Hoechst 33258 to wash solution at 1:25,0000 and incubate for 10 minutes. Wash a third time for 10 minutes.
9. Cells can be viewed directly after washing. The plates can also be stored in PBS containing Azide covered in Parafilm (TM). Cells can also be cover-slipped using Fluoromount, with appropriate sealing.
*The above information is only intended as a guide. The researcher should determine what protocol best meets their needs. Please follow safe laboratory procedures.
Western Blot Protocol
1. Perform SDS-PAGE on samples to be analyzed, loading 40 ug of total protein per lane.
2. Transfer proteins to membrane according to the instructions provided by the manufacturer of the membrane and transfer apparatus.
3. Stain according to standard Ponceau S procedure (or similar product) to assess transfer success, and mark molecular weight standards where appropriate.
4. Rinse the blot.
5. Block the membrane using standard blocking buffer for at least 1 hour.
6. Wash the membrane in wash buffer three times for 10 minutes each.
7. Dilute primary antibody in blocking buffer and incubate 1 hour at room temperature.
8. Wash the membrane in wash buffer three times for 10 minutes each.
9. Apply the diluted HRP conjugated secondary antibody in blocking buffer (as per manufacturers instructions) and incubate 1 hour at room temperature.
10. Wash the blot in wash buffer three times for 10 minutes each (this step can be repeated as required to reduce background).
11. Apply the detection reagent of choice in accordance with the manufacturers instructions.
Note: Tween-20 can be added to the blocking or antibody dilution buffer at a final concentration of 0.05-0.2%.
Find general support by application which include: protocols, troubleshooting, illustrated assays, videos and webinars.
- 7-Amino Actinomycin D (7-AAD) Cell Viability Flow Cytometry Protocol
- Antigen Retrieval Protocol (PIER)
- Antigen Retrieval for Frozen Sections Protocol
- Appropriate Fixation of IHC/ICC Samples
- Cellular Response to Hypoxia Protocols
- Chromogenic IHC Staining of Formalin-Fixed Paraffin-Embedded (FFPE) Tissue Protocol
- Chromogenic Immunohistochemistry Staining of Frozen Tissue
- ClariTSA™ Fluorophore Kits
- Detection & Visualization of Antibody Binding
- Extracellular Membrane Flow Cytometry Protocol
- Flow Cytometry Protocol for Cell Surface Markers
- Flow Cytometry Protocol for Staining Membrane Associated Proteins
- Flow Cytometry Staining Protocols
- Flow Cytometry Troubleshooting Guide
- Fluorescent IHC Staining of Frozen Tissue Protocol
- Graphic Protocol for Heat-induced Epitope Retrieval
- Graphic Protocol for the Preparation and Fluorescent IHC Staining of Frozen Tissue Sections
- Graphic Protocol for the Preparation and Fluorescent IHC Staining of Paraffin-embedded Tissue Sections
- Graphic Protocol for the Preparation of Gelatin-coated Slides for Histological Tissue Sections
- ICC Cell Smear Protocol for Suspension Cells
- ICC Immunocytochemistry Protocol Videos
- ICC for Adherent Cells
- IHC Sample Preparation (Frozen sections vs Paraffin)
- Immunocytochemistry (ICC) Protocol
- Immunocytochemistry Troubleshooting
- Immunofluorescence of Organoids Embedded in Cultrex Basement Membrane Extract
- Immunofluorescent IHC Staining of Formalin-Fixed Paraffin-Embedded (FFPE) Tissue Protocol
- Immunohistochemistry (IHC) and Immunocytochemistry (ICC) Protocols
- Immunohistochemistry Frozen Troubleshooting
- Immunohistochemistry Paraffin Troubleshooting
- Intracellular Flow Cytometry Protocol Using Alcohol (Methanol)
- Intracellular Flow Cytometry Protocol Using Detergents
- Intracellular Nuclear Staining Flow Cytometry Protocol Using Detergents
- Intracellular Staining Flow Cytometry Protocol Using Alcohol Permeabilization
- Intracellular Staining Flow Cytometry Protocol Using Detergents to Permeabilize Cells
- Preparing Samples for IHC/ICC Experiments
- Preventing Non-Specific Staining (Non-Specific Binding)
- Primary Antibody Selection & Optimization
- Propidium Iodide Cell Viability Flow Cytometry Protocol
- Protocol for Heat-Induced Epitope Retrieval (HIER)
- Protocol for Liperfluo
- Protocol for Making a 4% Formaldehyde Solution in PBS
- Protocol for VisUCyte™ HRP Polymer Detection Reagent
- Protocol for the Characterization of Human Th22 Cells
- Protocol for the Characterization of Human Th9 Cells
- Protocol for the Fluorescent ICC Staining of Cell Smears - Graphic
- Protocol for the Fluorescent ICC Staining of Cultured Cells on Coverslips - Graphic
- Protocol for the Preparation & Fixation of Cells on Coverslips
- Protocol for the Preparation and Chromogenic IHC Staining of Frozen Tissue Sections
- Protocol for the Preparation and Chromogenic IHC Staining of Frozen Tissue Sections - Graphic
- Protocol for the Preparation and Chromogenic IHC Staining of Paraffin-embedded Tissue Sections
- Protocol for the Preparation and Chromogenic IHC Staining of Paraffin-embedded Tissue Sections - Graphic
- Protocol for the Preparation and Fluorescent ICC Staining of Cells on Coverslips
- Protocol for the Preparation and Fluorescent ICC Staining of Non-adherent Cells
- Protocol for the Preparation and Fluorescent ICC Staining of Stem Cells on Coverslips
- Protocol for the Preparation and Fluorescent IHC Staining of Frozen Tissue Sections
- Protocol for the Preparation and Fluorescent IHC Staining of Paraffin-embedded Tissue Sections
- Protocol for the Preparation of Gelatin-coated Slides for Histological Tissue Sections
- Protocol for the Preparation of a Cell Smear for Non-adherent Cell ICC - Graphic
- Protocol: Annexin V and PI Staining by Flow Cytometry
- Protocol: Annexin V and PI Staining for Apoptosis by Flow Cytometry
- R&D Systems Quality Control Western Blot Protocol
- TUNEL and Active Caspase-3 Detection by IHC/ICC Protocol
- The Importance of IHC/ICC Controls
- Troubleshooting Guide: Fluorokine Flow Cytometry Kits
- Troubleshooting Guide: Immunohistochemistry
- Troubleshooting Guide: Western Blot Figures
- Western Blot Conditions
- Western Blot Protocol
- Western Blot Protocol for Cell Lysates
- Western Blot Troubleshooting
- Western Blot Troubleshooting Guide
- View all Protocols, Troubleshooting, Illustrated assays and Webinars