JAK
- [1]. Lin CM, et al. Basic Mechanisms of JAK Inhibition. Mediterr J Rheumatol. 2020 Jun 11;31(Suppl 1):100-104. [Content Brief]
- [2]. Pérez-Jeldres T, et al. Targeting Cytokine Signaling and Lymphocyte Traffic via Small Molecules in Inflammatory Bowel Disease: JAK Inhibitors and S1PR Agonists. Front Pharmacol. 2019 Mar 13;10:212. [Content Brief]
- [3]. Luo Y, et al. JAK-STAT signaling in human disease: From genetic syndromes to clinical inhibition. J Allergy Clin Immunol. 2021 Oct;148(4):911-925. [Content Brief]
- [4]. Zhou Y, et al. Novel Small Molecule Tyrosine Kinase 2 Pseudokinase Ligands Block Cytokine-Induced TYK2-Mediated Signaling Pathways. Front Immunol. 2022 May 20;13:884399. [Content Brief]
- [5]. Sarapultsev A, et al. JAK-STAT signaling in inflammation and stress-related diseases: implications for therapeutic interventions. Mol Biomed. 2023;4(1):40. [Content Brief]
- [6]. Doktorova SA, et al. JAK-inhibitors: clinical pharmacology and application perspectives. Reviews on Clinical Pharmacology and Drug Therapy. 2022;20(4):421-434.
- [7]. Angelini J, et al. JAK-Inhibitors for the Treatment of Rheumatoid Arthritis: A Focus on the Present and an Outlook on the Future. Biomolecules. 2020 Jul 5;10(7):1002. [Content Brief]
- [8]. Moura RA, et al. JAK Inhibitors and Modulation of B Cell Immune Responses in Rheumatoid Arthritis. Front Med (Lausanne). 2021 Feb 5;7:607725. [Content Brief]
- [9]. Moresi V, et al. The JAK/STAT Pathway in Skeletal Muscle Pathophysiology. Front Physiol. 2019 Apr 30;10:500. [Content Brief]
- [10]. Djidjik R, et al. JAK/STAT in human diseases: a common axis in immunodeficiencies and hematological disorders. Front Immunol. 2025 Dec 8;16:1669688. [Content Brief]
- [11]. Gadina M. JAK inhibitors: Is specificity at all relevant? Semin Arthritis Rheum. 2024 Feb;64S:152327. doi: 10.1016/j.semarthrit.2023.152327. Epub 2023 Nov 21. PMID: 38007359; PMCID: PMC10939910. et al. JAK inhibitors: Is specificity at all relevant? Semin Arthritis Rheum. 2024 Feb;64S:152327. [Content Brief]
- [12]. Raivola J, et al. Characterization of JAK1 Pseudokinase Domain in Cytokine Signaling. Cancers (Basel). 2019 Dec 27;12(1):78. [Content Brief]
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JAK Related Products (290)
Related Products (290)
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Antibodies (1)
- JAK-IN-5 hydrochloride
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Ifidancitinib
0 ImagesSynonyms: ATI-50002; ATI-502 -
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- Tyk2-IN-19
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Isotoosendanin
0 ImagesIsotoosendanin is an orally active TGFβR1 inhibitor and abrogating its kinase activity (IC50 = 6732 nM). Isotoosendanin inhibits the JAK/STAT3 signaling pathway by directly targeting SHP-2, enhancing its stability, and reducing its ubiquitination. Isotoosendanin inhibits TGF-β-induced reduces the migration, invasion, and metastasis in triple-negative breast cancer (TNBC) cells. Isotoosendanin exhibits anti-tumor efficacy in TNBC xenograft models and A549 xenograft tumors. Isotoosendanin exhibits significant anti-inflammatory effects in acetic acid-induced vascular permeability and λ-carrageenan-induced hind paw edema tests. Isotoosendanin can be used for the study of non-small cell lung cancer (NSCLC), TNBC and inflammation. -
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Cycloartenyl ferulate
0 ImagesSynonyms: Cycloartenol ferulate; Cycloartenol ferulic acid esterCycloartenyl ferulate (Cycloartenol ferulate; Cycloartenol ferulic acid ester) is a derivative of γ-oryzanol (HY-B2194) with multiple biological activities including antioxidant, anti-inflammatory, and anti-tumor properties. Cycloartenyl ferulate selectively binds to IFNγR1 (binding affinity Kd = 0.5 μM) to activate the canonical JAK1/2-STAT1 signaling pathway. Cycloartenyl ferulate inhibits paraquat (PQ)-triggered apoptosis and ROS in HK2 cells. Cycloartenyl ferulate enhances the activation and cytolytic activity of natural killer (NK) cells by upregulating the expression of NK cell activation receptors (NKG2D, NKp30, NKp44) and the release of cytotoxic molecules and cytokine IFNγ. Cycloartenyl ferulate exerts anti-cancer effects in tumor mice models. Cycloartenyl ferulate can be used for the study of cancer and allergic inflammation intervention. -
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Lorpucitinib
0 ImagesSynonyms: JNJ-64251330Lorpucitinib (JNJ-64251330) is an orally active pan-JAK inhibitor with good enteric selectivity and safety. Lorpucitinib can inhibit the JAK/STAT pathway and reduce the levels of inflammatory biomarkers in serum. Lorpucitinib can be used in the research of familial adenomatous polyposis and gastrointestinal inflammatory diseases. -
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CT-1
0 ImagesCat. No.: HY-168894Purity: 99.90%CT-1 is a secreted protein belonging to the IL-6 cytokine family. Overexpression of CT-1 enhances cell proliferation, migration and angiogenesis via the ADMA/DDAH pathway. CT-1 inhibits the growth of triple-negative breast cancer cells by simultaneously inducing Ferroptosis in N2-type tumor-associated neutrophils and cancer cells. CT-1 activates the Jak/STAT-3, p42/p44 MAPK and AMPK pathways, and inhibits GSK-3β activity through phosphorylation to induce cardiomyocyte hypertrophy. CT-1 enhances the viability of cardiomyocytes and neurons, reduces cell Apoptosis, induces the expression of heat shock proteins (HSP) and BNP, and inhibits TNF levels. CT-1 exerts anti-tumor activity in mouse models of triple-negative breast cancer. CT-1 improves cognitive impairment in mice. CT-1 is applicable to the research of ischemic heart disease, triple-negative breast cancer, myocardial hypertrophy, Parkinson's disease, hypertensive heart disease, myocardial infarction, acute Chagas cardiomyopathy, high-fat diet-induced cognitive impairment and diabetes-related cognitive impairment. -
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WCY-8-67 TFA
0 ImagesCat. No.: HY-178500APurity: 99.40%WCY-8-67 TFA is an orally active and selective USP5 inhibitor, with an IC50 value of 1.33 μM. WCY-8-67 TFA induces apoptosis and suppresses JAK/STAT3 and PI3K/AKT signaling pathways. WCY-8-67 TFA inhibits proliferation of AE-positive AML cells, induces G1 phase arrest and differentiation of AML cells. WCY-8-67 TFA demonstrates potent anti-leukemic efficacy in mice. WCY-8-67 TFA can be used for the study of acute myeloid leukemia. -
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- JAK1-IN-11
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Clifutinib
0 ImagesClifutinib is an orally active and selective internal tandem duplication mutation of FMS-like tyrosine kinase 3 (FLT3-ITD) inhibitor with an IC50 value of 15.1 nM. Clifutinib exerts strong antiproliferative effects on FLT3-ITD acute myeloid leukemia (AML) cell lines (MV-4-11: IC50 = 1.5 nM; MOLM-13: IC50 = 1.4 nM). Clifutinib inhibits the activity of FLT3-ITD kinase and blocks the downstream RAS/MAPK, PI3K/AKT, and JAK/STAT5 signaling pathways of FLT3. Clifutinib induces apoptosis of acute myeloid leukemia (AML) cells with FLT3-ITD mutations. Clifutinib demonstrates significant antitumor efficacy in mice bearing MV-4-11 or MOLM-13 xenografts. Clifutinib is promising for research of relapsed/refractory FLT3-ITD-positive acute myeloid leukemia. -
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Pacritinib citrate
0 ImagesSynonyms: SB1518 citratePacritinib (SB1518) citrate is a potent inhibitor of both wild-type JAK2 (IC50=23 nM) and JAK2V617F mutant (IC50=19 nM). Pacritinib citrate also inhibits FLT3 (IC50=22 nM) and its mutant FLT3D835Y (IC50=6 nM). Pacritinib citrate can be used for the research of acute myeloid leukemia (AML) and myelofibrosis (MF). -
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(Rac)-Ruxolitinib-d9
0 ImagesCat. No.: HY-W062703SCAS No.: 2469553-67-9Synonyms: (Rac)-INCB18424-d9; Ruxotinib racemate-d9(Rac)-Ruxolitinib D9 ((Rac)-INCB18424 D9) is the deuterium labeled (Rac)-Ruxolitinib. (Rac)-Ruxolitinib is a JAK2 inhibitor. -
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Iridin
0 ImagesIridin is an orally active natural isoflavone. Iridin inhibits the PI3K/AKT and PKM2 signaling pathways, and downregulates the JAK/STAT and NF-κB pathways. Iridin induces Fas-mediated extrinsic apoptosis, G2/M cell cycle arrest, and inhibits cell proliferation. Iridin reduces inflammation, inhibits ROS production, suppresses glycolysis, and also exhibits antioxidant and antidiabetic activities. Iridin can be used in research related to gastric cancer and acute lung injury. -
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Demethylasterriquinone B1
0 ImagesSynonyms: DAQ B1; L-783281; DimethylasterriquinoneDemethylasterriquinone B1 (DAQ B1; L-783281) is an orally active insulin receptor (insulin receptor) agonist and AKT activator. By activating AKT, Demethylasterriquinone B1 upregulates the expression and activity of eNOS to increase NO production, while downregulating the expression of the NADPH oxidase subunit p22phox to reduce oxidative stress and improve vascular endothelial dysfunction in hypertensive rats. Demethylasterriquinone B1 combind with an AKT inhibitor targets the insulin signaling pathway to activate two antiviral pathways, RNA interference and JAK/STAT, in mosquitoes, thereby reducing Zika virus infection. -
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JAK-IN-24
0 ImagesJAK-IN-24 is a JAK inhibitor, with IC50s of 0.534 and 24 nM at the presence of 4 μM or 1mM ATP, respectively. JAK-IN-24 also inhibits PBMC IL-15 induced STAT5 phosphorylation with an IC50 of 86.171 nM. JAK-IN-24 is a click chemistry reagent, it contains an Alkyne group and can undergo copper-catalyzed azide-alkyne cycloaddition (CuAAc) with molecules containing Azide groups. -
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Pentadecanoic acid (Standard)
0 Imagesα-Linolenic acid (Standard) is the analytical standard of α-Linolenic acid. This product is intended for research and analytical applications. α-Linolenic acid, isolated from Perilla frutescens, is an essential fatty acid that cannot be synthesized by humans. α-Linolenic acid can affect the process of thrombotic through the modulation of PI3K/Akt signaling. α-Linolenic acid possess the anti-arrhythmic properties and is related to cardiovascular disease and cancer. -
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- (3S,4S)-Tofacitinib
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Povorcitinib phosphate
0 ImagesSynonyms: INCB54707 phosphatePovorcitinib (INCB54707) phosphate is a potent and selective JAK1 inhibitor that effectively reduces abscesses and inflammatory nodules. Povorcitinib phosphate can be used to study cutaneous lupus erythematosus (CLE) and lichen planus (LP) (information extracted from patent WO2021076124A1). -
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- JAK-IN-1
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Agrimonolide
0 ImagesAgrimonolide is a phenethyl isocoumarin compound discovered from Agrimonia pilosa, exhibiting anti-inflammatory, antioxidant, and anticancer activities. Agrimonolide inhibits NF-κB, MAPK, and TLR4-mediated neuroinflammatory signaling, suppresses Notch and JAK2/STAT3 signaling to modulate Th17/Treg balance and maintain the intestinal barrier. Agrimonolide decreases HIF1A expression, inhibits glycolysis, and induces ferroptosis and cell cycle arrest via the mTOR pathway in tumor models, thereby suppressing cancer cell viability, proliferation, and metastasis. Agrimonolide exerts hepatoprotective and anti-fibrotic effects by regulating bile acid transporter expression and reducing hepatic bile acid accumulation. Agrimonolide is used for research on ulcerative colitis, ovarian cancer, non-small cell lung cancer, cholestatic liver injury, and neuroinflammation. -
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