Rabbit anti-HdmX/MDM4 Recombinant Monoclonal Antibody [BL-3-2F2]
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Bethyl Laboratories

Rabbit anti-HdmX/MDM4 Recombinant Monoclonal Antibody [BL-3-2F2] −50%

ValidatedPrimary Antibody
Catalog #A700-000
TargetHdmX/MDM4
HostRabbit
CloneBL-3-2F2
ReactivityHuman
ApplicationWB, IP, Cytometry, SW-Size

Product Description

Bethyl Laboratories’ A700-000 is a recombinant rabbit monoclonal antibody for detection of human HdmX/MDM4. Clone BL-3-2F2 is a purified recombinant rabbit IgG produced from mammalian cells expressing the antibody. The antibody recognizes an epitope within residues 125–175 of human HdmX/MDM4, based on RefSeq NP_002384.2 (Gene ID 4194; UniProt O15151).

A700-000 supports Western blot, immunoprecipitation, flow cytometry, and Simple Western™-Size applications, making it suitable for HdmX/MDM4 detection across multiple protein analysis workflows. Application-specific working conditions are established for each method, with optimal working dilutions determined experimentally according to the application and experimental system.

For biotech, biopharma, academic, and other life-science research programs, A700-000 provides a defined recombinant monoclonal antibody format with documented application conditions and supporting technical information to facilitate experimental planning and assay development.

Specifications

ClonalityRecombinant Monoclonal
CloneBL-3-2F2
HostRabbit
ImmunogenBetween 125 and 175
IsotypeIgG
ReactivityHuman
FormatWhole IgG
ConjugateUnconjugated
PurityPurified
Concentration100 µg/ml
Target Identity
TargetHdmX / MDM4
Antigen SpeciesHuman
Gene ID4194
Gene SymbolMDM4
Gene NameMDM4, p53 regulator
Uniprot IDO15151
Protein NameProtein Mdm4
Alternate Names
Double minute 4 protein  •  Double minute 4, human homolog of  •  HDMX  •  mdm2-like p53-binding protein  •  Mdm4 p53 binding protein homolog  •  MDM4 protein variant G  •  MDM4 protein variant Y  •  MDM4-related protein 1  •  MDMX  •  MRP1  •  p53-binding protein  •  p53-binding protein Mdm4  •  protein Mdm4  •  protein Mdmx
Product Information
ApplicationsCytometry, IP, WB, SW-Size
BufferBorate Buffered Saline (BBS) pH 8.2
Preservative0.1% BSA and 0.09% Sodium Azide
Storage Conditions2 - 8 °C
Physical StateLiquid
Shelf Life1 year from date of receipt
Country of OriginUSA

Production & Epitope

Cell culture supernatant was harvested from mammalian cells expressing recombinant rabbit monoclonal antibody. The epitope recognized by A700-000 maps to a region between residues 125 and 175 of human ortholog of mouse double minute 4 using the numbering given in entry NP_002384.2 (GeneID 4194).

Applications

All western blot analysis is performed using 5% Milk-TBST for blocking and as antibody diluent. Primary antibody is incubated overnight. Western blots of cell lysates are performed using Goat anti-Rabbit IgG Heavy and Light Chain Antibody (A120-101P). Western blots of immunoprecipitates are performed using an anti-Rabbit IgG Light Chain HRP-conjugated antibody with 5% Normal Pig Serum (Cat. No. S100-020) added to the blocking buffer.

Western Blot (WB)1:1000
Immunoprecipitation
(IP)
20 µl / mg lysate
Flow CytometryFixed and permeabilized cells were stained with 2 µl per 1 × 10⁶ cells.
SW-Size1:10 - 1:250

Citations / Publications

01

Inhibition of the mTOR pathway and reprogramming of protein synthesis by MDM4 reduce ovarian cancer metastatic properties.

In Cell Death & Disease on 29 May 2021 by Lucà, R., Assenza, M. R., et al.
Epithelial ovarian cancer (EOC) is a highly heterogeneous disease with a high death rate mainly due to the metastatic spread. The expression of MDM4, a well-known p53-inhibitor, is positively associated with chemotherapy response and overall survival (OS) in EOC. However, the basis of this association remains elusive. We show that in vivo MDM4 reduces intraperitoneal dissemination of EOC cells, independently of p53 and an immune-competent background. By 2D and 3D assays, MDM4 impairs the early steps of the metastatic process. A 3D-bioprinting system, ad hoc developed by co-culturing EOC spheroids and endothelial cells, showed reduced dissemination and intravasation into vessel-like structures of MDM4-expressing cells. Consistent with these data, high MDM4 levels protect mice from ovarian cancer-related death and, importantly, correlate with increased 15 y OS probability in large data set analysis of 1656 patients. Proteomic analysis of EOC 3D-spheroids revealed decreased protein synthesis and mTOR signaling, upon MDM4 expression. Accordingly, MDM4 does not further inhibit cell migration when its activity towards mTOR is blocked by genetic or pharmacological approaches. Importantly, high levels of MDM4 reduced the efficacy of mTOR inhibitors in constraining cell migration. Overall, these data demonstrate that MDM4 impairs EOC metastatic process by inhibiting mTOR activity and suggest the usefulness of MDM4 assessment for the tailored application of mTOR-targeted therapy.
IPCancer Research
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02

Cisplatin in Combination with MDM2 Inhibition Downregulates Rad51 Recombinase in a Bimodal Manner to Inhibit Homologous Recombination and Augment Tumor Cell Kill.

In Molecular Pharmacology on 1 April 2020 by Xie, X., He, G., et al.
Dysfunction of p53 and resistance to cancer drugs can arise through mutually exclusive overexpression of MDM2 or MDM4. Cisplatin-resistant cells, however, can demonstrate increased binding of both MDM2 and MDM4 to p53 but in absence of cellular overexpression. Whether MDM2 inhibitors alone can activate p53 in these resistant cells was investigated with the goal to establish the mechanism for potential synergy with cisplatin. Thus, growth inhibition by individual drugs and combinations was assessed by a colorimetric assay. Drug-treated parental A2780 and resistant tumor cells were also examined for protein expression using immunoblot and reverse phase protein array (RPPA) and then subjected to Ingenuity Pathway Analysis (IPA). Gene expression was assessed by real-time polymerase chain reaction, DNA damage by confocal microscopy, cell cycle by flow cytometry, and homologous recombination (HR) by a GFP reporter assay. Our results demonstrate that Nutlin-3 but not RITA (reactivation of p53 and induction of tumor cell apoptosis) effectively disrupted the p53-MDM2-MDM4 complex to activate p53, which increased robustly with cisplatin/Nutlin-3 combination and enhanced antitumor effects more than either agent alone. RPPA, IPA, and confocal microscopy provided evidence for an "apparent" increase in DNA damage resulting from HR inhibition by cisplatin/Nutlin-3. Molecularly, the specific HR protein Rad51 was severely downregulated by the combination via two mechanisms: p53-dependent transrepression and p53/MDM2-mediated proteasomal degradation. In conclusion, Nutlin-3 fully destabilizes the p53-MDM2-MDM4 complex and synergizes with cisplatin to intensify p53 function, which then downregulates Rad51 through a bimodal mechanism. As a result, HR is inhibited and antitumor activity enhanced in otherwise HR-proficient sensitive and resistant tumor cells. SIGNIFICANCE STATEMENT: Rad51 downregulation by the combination of cisplatin and Nutlin-3 inhibits homologous recombination (HR), which leads to persistence in DNA damage but not an increase. Thus, inhibition of HR enhances antitumor activity in otherwise HR-proficient sensitive and resistant tumor cells.Copyright © 2020 by The American Society for Pharmacology and Experimental Therapeutics.
Biochemistry and Molecular biologyPharmacologyCancer Research
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03

High Mdm4 levels suppress p53 activity and enhance its half-life in acute myeloid leukaemia.

In Oncotarget on 28 February 2014 by Tan, B. X., Khoo, K. H., et al.
Although p53 is found mutated in almost 50% of all cancers, p53 mutations in leukaemia are relatively rare. Acute myeloid leukaemia (AML) cells employ other strategies to inactivate their wild type p53 (WTp53), like the overexpression of the p53 negative regulators Mdm2 and Mdm4. As such, AMLs are excellent candidates for therapeutics involving the reactivation of their WTp53 to restrict and destroy cancer cells, and the Mdm2 antagonist nutlin-3 is one such promising agent. Using AML cell lines with WTp53, we identified stable and high levels of p53 in the OCI/AML-2 cell lines. We demonstrate that this nutlin-3 sensitive cell line overexpressed Mdm4 to sequester, stabilise and inhibit p53 in the cytoplasm. We also show that elevated Mdm4 competed with Mdm2-p53 interaction and therefore extended p53 half-life while preventing p53 transcriptional activity. Our results provide biochemical evidence on the dynamics of the p53-Mdm2-Mdm4 interactions in affecting p53 levels and activity, and unlike previously reported findings derived from genetically manipulated systems, AML cells with naturally high levels of Mdm4 remain sensitive to nutlin treatment.
Endogenously high levels of Mdm4 inhibit and sequester p53 in AML. High levels of Mdm4 do not block function of Mdm2 inhibitors in AML.
WBHomo sapiens (Human)
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