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BRAND / VENDOR: Abcam

Abcam, ab264506, Human IRS2 knockout HEK-293 cell lysate

CATALOG NUMBER: ab264506
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Product Description

Size: 1Kit
IRS2 KO cell lysate available now. KO validated by Immunocytochemistry, Next Generation Sequencing, Western blot. Free of charge wild type control included. Knockout achieved by CRISPR/Cas9.
Key facts
Cell type:HEK-293,
Species or organism:Human,
Tissue:Kidney,
Knockout validation:Immunocytochemistry,Next Generation Sequencing,Western blot,
Mutation description:Knockout achieved by CRISPR/Cas9

Product details:
Knockout cell lysate achieved by CRISPR/Cas9.
REACH authorisation
Abcam has not and does not intend to apply for the REACH Authorisation of customers' uses of products that contain European Authorisation list (Annex XIV) substances.
It is the responsibility of our customers to check the necessity of application of REACH Authorisation, and any other relevant authorisations, for their intended uses.
Lysate preparation:
Our lysates are made using RIPA buffer to which we add a protease inhibitor cocktail and phosphatase inhibitor cocktail (ratio: 300:100:10).
This means that the protein of interest is denatured.
If you require a native form of the protein please use the live cell version. Please refer to our lysis protocol for further details on how our lysates are prepared.
User storage instructions:
Lyophilizate may be stored at 4°C. After reconstitution, store at -20°C for short-term storage or -80°C for long-term storage.
This product is subject to limited use licenses from The Broad Institute and ERS Genomics Limited, and is developed with patented technology. For full details of the limited use licenses and relevant patents please refer to our
limited use license
patent pages

Properties and Storage Information:
Gene name-IRS2, Gene editing type-Knockout, Gene editing method-CRISPR technology, Knockout validation-Immunocytochemistry, Next Generation Sequencing, Western blot, Shipped at conditions-Ambient - Can Ship with Ice, Appropriate short-term storage conditions--20°C, Appropriate long-term storage conditions--20°C

Supplementary Information:
This supplementary information is collated from multiple sources and compiled automatically.
Insulin Receptor Substrate 2 (IRS2) is an important cytoplasmic adaptor protein involved in insulin signaling. Alternate names for IRS2 include IRS-2 or HEK293 products IRS2. It plays a role in transducing signals from the insulin receptor tyrosine kinase to downstream effectors. IRS2 has a molecular mass of approximately 180 kDa. Expression of IRS2 occurs in many tissues with significant presence in liver and skeletal muscle indicating its broad physiological role.
Biological function summary
IRS2 acts in signal transduction and is a part of the insulin and insulin-like growth factor signaling pathways. IRS2 does not function alone but interacts with other molecules to propagate signals that regulate cellular processes. It is essential for glucose homeostasis and lipid metabolism playing a critical role in maintaining energy balance within the organism. IRS2 also mediates other biological processes like cell growth and differentiation.
Pathways
With regards to pathways IRS2 is involved in the insulin signaling and mTOR pathways. It serves as an important junction between metabolic and growth-promoting signals. Activation of IRS2 through insulin receptors leads to downstream signaling involving PI3K and Akt essential for mediating metabolic actions of insulin. It also interacts with mTOR a central protein in cell growth regulation. These pathways illustrate the integration of IRS2 in broader cellular responses to growth signals and energy availability.
IRS2 is linked to conditions like type 2 diabetes and obesity. Dysregulation of IRS2-mediated signaling can contribute to insulin resistance a characteristic feature of type 2 diabetes. In such disorders IRS2 signaling may be impaired or altered affecting its interaction with proteins like PI3K and Akt which are also implicated in these conditions. Furthermore chronic imbalance in IRS2 activity may contribute to obesity as it affects key metabolic pathways that regulate fat storage and energy expenditure.


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Collaboration

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