GSK3227634
GSK3227634 is a non-covalent inhibitor of the KEAP1-NRF2 protein-protein interaction. GSK3227634 binds to the Kelch domain of KEAP1, disrupts the KEAP1-NRF2 protein-protein interaction, and thereby activates the NRF2 antioxidant cytoprotective pathway. In a rat model of acute lung injury, intratracheal administration of GSK3227634 dose-dependently upregulates the expression of NRF2 downstream target genes such as NQO1, TXNRD1, and SRXN1, and elevates glutathione levels in lung tissue. GSK3227634 can be used for research on chronic obstructive pulmonary disease.
For research use only. We do not sell to patients.
- CAS No.: 1799977-30-2
- Formula: C29H33N5O5S
- Molecular Weight:563.67
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
Biological Activity
Description
IC50 & Target
[1]|
NQO1 |
In Vitro
GSK3227634 (compound 5) inhibits the KEAP1-NRF2 interaction with a pIC50 of 7.8 in the FP assay; inhibits the full-length KEAP1-NRF2 interaction with a pIC50 of 9.0 in the LP TR-FRET assay; and induces NQO1 activity in BEAS-2B cells with a pEC50 of 8.7[1].
GSK3227634 binds tightly to the Kelch domain of KEAP1 with a pKd of 10.9, confirming reversible but very slow dissociation[1].
GSK3227634 binds to the KEAP1 complex with a pKdapp of 9.4 and exhibits dose-dependent competition against multiple proteins[1].
GSK3227634 potently binds KEAP1 in HepG2 cells with a pEC50 > 7.7 and exhibits dose-dependent stabilization of FABP1, YIPF3, and TUBB[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. Further protocols information, click here.
In Vivo
GSK3227634 (0.3-10 μmol/kg; administered intratracheally at a dose volume of 67 μL/kg) shows target engagement and efficacy in a paraquat-induced rat model of pulmonary oxidative stress[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only.
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Animal Model:Han Wistar rats[1]
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Dosage:1, 10, 30, 100 μmol/kg
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Administration:i.v. infusion; over 6 h at 1.5 mL/h
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Result:In the lung, Increased NQO1 expression occurred in a dose-dependent manner from 1 to 100 μmol/kg upon GSK3227634 treatment, while expression levels of TXNRD1 and SRXN1 reached a maximum at 5 μmol/kg.
In the kidney, Elevated NQO1 expression achieved a maximal response at 10 μmol/kg, while the expression levels of TXNRD1 and SRXN1 reached a maximum at 5 μmol/kg.
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Animal Model:Lewis rats (Paraquat (0.05 mg/kg) was instilled into the trachea 24 h after GSK3227634 dosing)[1]
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Dosage:0.3, 1, 3, 10 μmol/kg
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Administration:i.t. administration in a dose volume of 67 μL/kg
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Result:Increased both NQO1 expression and protein levels in the lung occurred in a dose-dependent manner from 0.3 to 10 μmol/kg. This activated NRF2 pathway correlated well with a dose-dependent increase in total lung glutathione levels.
Chemical Information
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CAS No. 1799977-30-2
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Molecular Weight 563.67
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Formula C29H33N5O5S
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SMILES
OC(C[C@@H](C1=CC(CN2C[C@@H](CC)OC(N=CC=C3)=C3S2(=O)=O)=C(C)C=C1)C4=C(C)C5=C(N(CC)N=N5)C=C4)=O
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Shipping
Room temperature in continental US; may vary elsewhere.
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Storage
Please store the product under the recommended conditions in the Certificate of Analysis.
Protocols
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RNA extraction experimental
By lysing cells, releasing RNA, and removing impurities such as proteins and DNA, high-purity RNA products are finally obtained. The commonly used traditional method is the guanidine isothiocyanate/phenol/chloroform method (Trizol), which is suitable for a variety of animal materials including animal tissues, microorganisms, cultured cells, etc., and most plant materials.
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Pull-down
The pull-down assay is an in vitro technique used to detect physical interactions between two or more proteins and an invaluable tool for confirming a predicted protein-protein interaction or identifying novel interacting partners. This method typically involves the use of affinity purification with various wash and elution steps.
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Immunoprecipitation
Immunoprecipitation (IP) is an experimental method that uses the principle of antibody specific binding to purify and enrich target proteins.
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How to Select a Suitable Non-Mouse Animal Model
Selecting a suitable non-mouse animal model is a structured decision based on the research question, required anatomy or physiology, disease mechanism, endpoint feasibility, translational relevance, and ethical justification. Non-mouse models are preferred when mice cannot reproduce key human-relevant features, such as organ size, surgical anatomy, cardiovascular physiology, neuroanatomy, immune features, pharmacology, toxicology, or long-term clinical procedures. Candidate species may include rats, rabbits, guinea pigs, ferrets, zebrafish, pigs, sheep, goats, dogs, cats, horses, and non-human primates, but each species must be justified by its specific scientific advantage rather than convenience or tradition. Unresolved questions include how to quantify translational superiority across species, how to balance increased biological relevance against higher ethical burden, and when human-derived systems or new approach methodologies should replace animal use.
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Protocol for Bimolecular Fluorescence Complementation (BiFC) Assay
Bimolecular fluorescence complementation detects protein-protein proximity in living or fixed cells by fusing two candidate interaction partners to nonfluorescent N- and C-terminal fragments of a fluorescent protein; when the partners interact or remain close enough, the fluorescent fragments complement, mature, and generate a fluorescent signal at the site of the protein complex. The BiFC readout is fluorescence intensity and subcellular localization of the reconstituted fluorophore, which reflects formation or stabilization of a protein complex rather than direct biochemical binding kinetics; BiFC is therefore useful for mapping where interactions occur in cancer cells, neurons, macrophages, organoid-derived cells, or drug-screening systems, but results should be validated by independent assays such as co-IP or Western blot. BiFC signal formation is delayed by fluorophore maturation and can stabilize otherwise transient complexes, so it is not a real-time reversible interaction assay
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Inhalation Toxicity Study
Inhalation toxicity studies expose rodents to a controlled aerosol, vapor, gas, or smoke atmosphere and assess respiratory and systemic toxicity using exposure-atmosphere characterization, clinical observations, body and organ weights, bronchoalveolar lavage fluid, histopathology, blood chemistry, hematology, and, when included, molecular endpoints such as transcriptomics, proteomics, lipidomics, or tissue burden analysis. The primary biological readouts are airway irritation, pulmonary inflammation, cytotoxicity, altered surfactant or lipid homeostasis, impaired particle clearance, and tissue remodeling, reflected by BALF cell differentials, BALF protein, LDH, phosphatase activities, cytokines, lung weight, microscopic respiratory-tract lesions, and retained lung burden.
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Co-Immunoprecipitation
Co-immunoprecipitation technology can verify protein interaction based on the specific immune reaction between antibodies and antigens.
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Protocol for Yeast Two-Hybrid (Y2H) Assay
The yeast two-hybrid assay detects binary protein-protein interactions by separating a transcription factor into a DNA-binding domain fused to a "bait" protein and a transcriptional activation domain fused to a "prey" protein; if bait and prey interact in yeast, the transcription factor is reconstituted and activates reporter genes such as HIS3, ADE2, lacZ, MEL1, or other selectable/readable reporters. The readout is yeast growth on selective medium and/or reporter activity, which reflects proximity-dependent transcriptional activation in the yeast nucleus rather than direct biochemical binding in the original mammalian, tumor, neuronal, macrophage, or organoid context. Because yeast two-hybrid can generate false positives and false negatives, interaction claims should be validated using independent assays such as co-immunoprecipitation, Western blot, immunofluorescence colocalization, BiFC, pull-down, or mammalian two-hybrid assays.
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How to Choose the Right Model Animal
Choosing the right model animal is a validity-driven decision in which the species, strain, sex, age, genetic background, disease-induction method, outcome measures, and welfare burden must match the scientific question rather than laboratory tradition or convenience. A model should be selected by judging face validity, construct validity, and predictive validity: whether it resembles the human phenotype, whether it reproduces relevant mechanisms, and whether results are likely to predict human biology or treatment response. Animal studies often fail to translate because of species differences, weak disease resemblance, poor experimental design, inadequate reporting, publication bias, and underuse of randomization, blinding, and sample-size justification. Unresolved questions include how to rank competing models objectively, how much human-disease complexity must be reproduced for a given objective, and when non-animal systems such as organoids, ex vivo tissue, or computational models
Purity & Documentation
References
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)
Keywords
- GSK3227634
- 1799977-30-2
- GSK 3227634
- GSK-3227634
- Keap1-Nrf2
- Quinone Reductase
- rat kidney
- BEAS-2B cells
- human bronchial epithelial cells
- rat lung
- paraquat-induced lung oxidative stress
- NQO1
- NRF2
- KEAP1-NRF2 protein-protein interaction
- chronic obstructive pulmonary disease
- KEAP1 Kelch domain inhibitor
- Inhibitor
- inhibitor
- inhibit