GSK-3
Glycogen synthase kinase-3; Glycogen synthase kinase 3
Glycogen synthase kinase 3 (GSK-3) is a multifunctional serine/threonine kinase consisting of two isoforms, alpha and beta. It is a highly conserved negative regulator of receptor tyrosine kinase, cytokine, and Wnt signaling pathways. Stimulation of these pathways inhibits GSK-3 to modulate diverse downstream effectors that include transcription factors, nutrient sensors, glycogen synthesis, mitochondrial function, circadian rhythm, and cell fate. GSK-3 also regulates alternative splicing in response to T-cell receptor activation, and recent phosphoproteomic studies have revealed that multiple splicing factors and regulators of RNA biosynthesis are phosphorylated in a GSK-3-dependent manner.
The malfunction or aberrant activity of GSK-3 leads to several of disorders, such as Alzheimer's disease (AD) and other neurodegenerative pathologies, and other type of diseases as diabetes, cardiovascular disorders and cancer. GSK-3 is also related to innate immune response against pathogens, which makes GSK-3 an excellent target for therapeutic intervention.
GSK-3 Isoform Specific Products
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GSK-3 Inhibitors
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GSK-3 Agonist
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GSK-3 Activators
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GSK-3 Modulators
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GSK-3 Chemicals
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GSK-3 Degraders
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GSK-3 Ligand
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Glycogen Synthase Kinase-3 (GSK-3) Proteins
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GSK-3 alpha Proteins
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GSK-3 beta Proteins
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GSK-3 Related Products (361)
Related Products (361)
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Recombinant Proteins (6)
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Antibodies (9)
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GSK-3 Signaling Pathway
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GSK-3 Isoform Comparison
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2B-(SP) TFA
0 ImagesCat. No.: HY-P1114A2B-(SP) TFA is a eIF2B-based substrate for glycogen synthase kinase-3 (GSK-3). 2B-(SP) TFA is readily phosphorylated by both the α and β isoforms of GSK-3. -
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PAV-174
0 ImagesCat. No.: HY-180881PAV-174 is a potent antiviral agent that targets a host protein. PAV-174 prevents Herpes simplex virus (HSV-1) infection in cells (IC50 of 0.02 μM in Vero cells) and human brain organoids. PAV-174 inhibits oxidized macrophage migration inhibitory factor (oxMIF)-induced tau phosphorylation in vitro and in vivo independent of infection. PAV-174 reduces HSV-1-induced tau phosphorylation via the Akt/GSK3β signaling pathway. PAV-174 can be used for Alzheimer’s disease research. -
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- MJ34
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GSK3β-IN-4
0 ImagesCat. No.: HY-179723CAS No.: 3083425-61-7GSK3β-IN-4 is a selective, potent, orally active and brain-penetrant ATP-competitive GSK3β inhibitor with an IC50 of 0.37 nM. GSK3β-IN-4 shows an IC50 of 2.75 nM and SI of 7.4 for GSK3α. GSK3β-IN-4 reduces tau phosphorylation at Ser396 by inhibiting GSK3β and imoroves cognitive deficits in Alzheimer's disease models. GSK3β-IN-4 can be used for the research of Alzheimer's disease. -
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SkQR1 hydroxide
0 ImagesCat. No.: HY-W780130CAS No.: 1333381-77-3SkQR1 hydroxide is a mitochondrial targeted antioxidant. SkQR1 hydroxide can inhibit glycogen synthase kinase 3β (GSK3β) in the brain. SkQR1 hydroxide has a significant memory promoting effect. SkQR1 hydroxide can be used for research related to brain memory. -
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GTGKT
0 ImagesCat. No.: HY-P11782CAS No.: 254732-11-1GTGKT is a CAGE inhibitor. GTGKT binds to CAGE and blocks the binding of CAGE to GSK3β. GTGKT alters the localization of CAGE and inhibits the binding of CAGE to the promoter sequence of Cyclin D1. GTGKT enhances the Apoptotic effect of anticancer agents. GTGKT reduces the expression of Cyclin D1. GTGKT decreases the tumorigenic potential of melanoma and hepatocellular carcinoma cells. -
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AChE/GSK-3β-IN-1
0 ImagesCat. No.: HY-150537CAS No.: 2412364-73-7AChE/GSK-3β-IN-1 (compound GT15) is a potent, dual AChE/GSK-3β inhibitor with IC50 values of 1.2, 149.8 and 22.4 nM for hAChE , hBChE and hGSK-3β, respectively. AChE/GSK-3β-IN-1 penetrates the blood-brain barrier (BBB). AChE/GSK-3β-IN-1 has high kinase selectivity profiles for the CMGC kinase family. AChE/GSK-3β-IN-1 occupies the ATP binding site of DYRK1A. AChE/GSK-3β-IN-1 inhibits ROS expression and reduces oxidative stress. AChE/GSK-3β-IN-1 can be used for Alzheimer’s disease research. -
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Multi-kinase-IN-7
0 ImagesCat. No.: HY-178142Multi-kinase-IN-7 is a multikinase inhibitor with IC50s of 2.19, 2.95, 3.59 and 9.31 μM against EGFR, VEGFR2, TrKA and CDK2, respectively. Multi-kinase-IN-7 shows moderate and weaker activity against FAK, AKT1, GSK3β and CDK5 with IC50 values of 6.3, 9.2, 11.7 and 23.4 μM, respectively. Multi-kinase-IN-7 displays broad spectrum antiproliferative potential against NCI cancer cell lines. Multi-kinase-IN-7 induces cell cycle arrest, apoptosis and necrosis. Multi-kinase-IN-7 Inhibitor can be used for the study of breast cancer. -
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GSK-3β inhibitor 7
0 ImagesCat. No.: HY-143261GSK-3β inhibitor 7 is a GSK-3β inhibitor with an IC50 value of 5.25 μM. GSK-3β inhibitor 7 is inserted into the ATP-binding binding pocket of GSK-3β and forms hydrogen-bond. GSK-3β inhibitor 7 shows high hepatocyte glucose uptake (83.5%), and can be used in the research of numerous diseases like diabetes, inflammation, cancer, Alzheimer's disease, and bipolar disorder. -
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(Rac)-BRD0705
0 ImagesCat. No.: HY-116830ACAS No.: 1597440-03-3(Rac)-BRD0705 is a less active racemate of BRD0705. BRD0705 is a potent, paralog selective and orally active GSK3α inhibitor with an IC50 of 66 nM and a Kd of 4.8 μM. BRD0705 displays increased selectivity for GSK3α (8-fold) versus GSK3β (IC50 of 515 nM). BRD0705 can be used for acute myeloid leukemia (AML). -
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TC-G 24
0 ImagesCat. No.: HY-107529CAS No.: 1257256-44-2 -
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3-Methylthienyl-carbonyl-JNJ-7706621
0 ImagesCat. No.: HY-141685CAS No.: 443798-09-23-Methylthienyl-carbonyl-JNJ-7706621 is a potent and selective inhibitor of cyclin-dependent kinase (CDK), with IC50s of 6.4 nM and 2 nM for CDK1/cyclin B and CDK2/cyclin A, respectively. 3-Methylthienyl-carbonyl-JNJ-7706621 also shows potent inhibition of GSK-3 (IC50=0.041 μM) and modest potency against CDK4, VEGF-R2, and FGF-R2 (IC50=0.11, 0.13, 0.22 μM, respectively). 3-Methylthienyl-carbonyl-JNJ-7706621 can be used for the research of cancer. -
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- Protein kinase inhibitor 11
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GSK-3β inhibitor 15
0 ImagesCat. No.: HY-149542GSK-3β inhibitor 15 (Compound 54) is a GSK-3β inhibitor (IC50: 3.4 nM). GSK-3β inhibitor 15 inhibits Aβ1-42-induced GSK-3β and tau protein phosphorylation. GSK-3β inhibitor 15 inhibits LPS-induced iNOS expression. GSK-3β inhibitor 15 has neuroprotective effects on Aβ1-42-induced neurotoxicity. GSK-3β inhibitor 15 can be used for research of Alzheimer’s disease (AD). -
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GSK-3β inhibitor 17
0 ImagesCat. No.: HY-163748CAS No.: 2521624-67-7GSK-3β inhibitor 17 (compound 5 n) is a potent GSK-3β inhibitor. GSK-3β inhibitor 17 decreases cisplatin (HY-17394) induced p-p65, KIM-1 protein and mRNA expression. GSK-3β inhibitor 17 decreases cisplatin induced TNF-α, IL-1β, IL-6 and MCP-1 mRNA expression. GSK-3β inhibitor 17 shows anti-inflammation effect and has the potential for the research of acute kidney injury. -
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- FRATtide
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BChE-IN-49
0 ImagesCat. No.: HY-181248BChE-IN-49 is an orally active BChE inhibitor with IC50 values of 0.73 μM and 6.43 μM against BChE and AChE, respectively. BChE-IN-49 reduces AChE levels to inhibit the degradation of acetylcholine. By inhibiting GSK-3β, BChE-IN-49 potently activates the Wnt/β-catenin signaling pathway, exerting potent anti-Aβ, antioxidant, anti-neuroinflammatory and anti-apoptotic effects. BChE-IN-49 can be used in research related to Alzheimer's disease. -
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Phospho-Glycogen Synthase Peptide-2 (substrate)
0 ImagesCat. No.: HY-P1113CAS No.: 851366-97-7Synonyms: GSK3 substratePhospho-Glycogen Synthase Peptide-2 (substrate) is peptide substrate for glycogen synthase kinase-3 (GSK-3) and can be used for affinity purification of protein-serine kinases. -
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JNK3/Wnt/β-catenin modulator-1
0 ImagesCat. No.: HY-181160JNK3/Wnt/β-catenin modulator-1 is a brain-penetrant JNK3 inhibitor and Wnt/β-catenin activator. JNK3/Wnt/β-catenin modulator-1 decreases Aβ1-42 production and reduced ROS generation. JNK3/Wnt/β-catenin modulator-1 inhibits the activation of JNK and Puma, promotes Beclin-1 expression, reduces GSK-3β and BACE1 expression and activates Wnt/β-catenin signaling. JNK3/Wnt/β-catenin modulator-1 improves cognitive and memory performance, attenuates histopathological brain damage, preserves structure of hippocampal pyramidal cells and cerebral cortical neurons. JNK3/Wnt/β-catenin modulator-1 can be used for the research of Alzheimer's disease. -
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hAChE-IN-5
0 ImagesCat. No.: HY-155365CAS No.: 3007667-15-1hAChE-IN-5 (compound 49) is a potent hAChE and hBuChE inhibitor with IC50 values of 0.17 μM and 0.17 μM, respectively. hAChE-IN-5 shows potent GSK3β inhibition with an IC50 value of 0.21 μM. hAChE-IN-5 is used as tau protein aggregation and Aβ1-42 self-aggregation inhibitor. hAChE-IN-5 can bind virtually with the PAS affecting Aβ aggregation, thus preventing Aβ-dependent neurotoxicity. hAChE-IN-5 can penetrate BBB and has the potential for multi-targeted anti-Alzheimer's agents research. -
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Glycogen synthase kinase 3 (GSK-3) is a multifunctional serine/threonine kinase found in all eukaryotes. GSK-3 is one of the few signaling mediators that play central roles in a diverse range of signaling pathways, including those activated by Wnt, PI3K, growth factors, cytokines, and ligands for G protein-coupled receptors. The PI3K pathway is known for regulating metabolism, cell growth, and cell survival. The PI3K activity is stimulated by diverse oncogenes and growth factor receptors. PI3K-mediated production of PIP3 leads to the activation of Akt. The activation of Akt leads to the phosphorylation of GSK-3, which is active in resting cells, but is inactivated by the phosphorylation. The GSK-3 has been linked to the regulation of an assembly of transcription factors, including β-catenin, NF-κB, c-Jun, CREB, and STAT. Thus, the altered activity of GSK-3 causes various effects on cytokine expression.
In the absence of Wnt signaling, β-catenin is phosphorylated by CK1 and GSK-3. This phosphorylation leads to recognition by β-TrCP, leading to the ubiquitylation of β-catenin and degradation by the proteasome. Upon binding of a lipid-modified Wnt protein to the receptor complex, a signaling cascade is initiated. LRP is phosphorylated by CK1/CK2 and GSK-3, and Axin is recruited to the plasma membrane. The kinases in the β-catenin destruction complex are inactivated and β-catenin translocates to the nucleus to form an active transcription factor complex with TCF, leading to transcription of a large set of target genes.
Some endogenous growth factors could bind to and activate the tyrosine kinase receptor. This facilitates the recruitment of other proteins (SHC, SOS), which results in the activation of the ERK-MAPK cascade and the inhibition of GSK-3. GSK-3 exerts many cellular effects: it regulates cytoskeletal proteins, and is important in determining cell survival/cell death. GSK-3 has also been identified as a target for the actions of lithium. GSK-3 can inhibit glycogen synthase, the enzyme that catalyzes the transfer of glucose from UDPG to glycogen[1][2].
Reference:
[1]. Brenner D, et al. Regulation of tumour necrosis factor signalling: live or let die.Nat Rev Immunol. 2015 Jun;15(6):362-74.
[2]. Conrad M, et al. Regulated necrosis: disease relevance and therapeutic opportunities.Nat Rev Drug Discov. 2016 May;15(5):348-66.
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