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Nuclear factor-κB; Nuclear factor-kappaB
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NF-κB Inhibitors
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NF-κB Agonists
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NF-κB Antagonist
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NF-κB Activators
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NF-κB Modulators
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NF-κB Inducers
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NF-κB Ligands
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NF-κB Related Products (1943)
Related Products (1943)
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Antibodies (32)
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NF-κB Signaling Pathway
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NF-κB Isoform Comparison
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Pelubiprofen (Standard)
0 ImagesCat. No.: HY-12383RCAS No.: 69956-77-0Pelubiprofen (Standard) is the analytical standard of Pelubiprofen. This product is intended for research and analytical applications. Pelubiprofen is an orally active anti-inflammatory agent that inhibits COX enzyme activity (with IC50 values of 10.66 and 2.88 μM for COX-1 and COX-2, respectively). Pelubiprofen has significant anti-inflammatory and analgesic effects. -
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Barlerin (Standard)
0 ImagesCat. No.: HY-N0758RCAS No.: 57420-46-9Synonyms: 8-O-Acetyl shanzhiside methyl ester (Standard)Barlerin (Standard) is the analytical standard of Barlerin. This product is intended for research and analytical applications. Barlerin (8-O-Acetyl shanzhiside methyl ester) is an iridoid glucoside isolated from the leaves of Lamiophlomis rotata Kudo, a Chinese folk medicinal plant in Xi-zang. Barlerin (8-O-Acetyl shanzhiside methyl ester) could inhibt NF-κB. -
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Cryptochlorogenic acid (Standard)
0 ImagesSynonyms: 4-Caffeoylquinic acid (Standard); 4-O-Caffeoylquinic acid (Standard)Cryptochlorogenic acid (Standard) is the analytical standard of Cryptochlorogenic acid. This product is intended for research and analytical applications. Cryptochlorogenic acid is a natural product. -
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TRAF-STOP inhibitor 6877002 (Standard)
0 ImagesCat. No.: HY-110247RCAS No.: 433249-94-6TRAF-STOP inhibitor 6877002 (Standard) is the analytical standard of TRAF-STOP inhibitor 6877002 (HY-110247). This product is intended for research and analytical applications. TRAF-STOP inhibitor 6877002 is a selective CD40-TRAF6 interaction inhibitor. TRAF-STOP inhibitor 6877002 exerts anti-atherosclerotic activity by blocKing the CD40-TRAF6 signaling pathway, inhibiting classical monocyte activation, leukocyte recruitment, and macrophage activation and migration. TRAF-STOP inhibitor 6877002 reduces the phosphorylation levels of signaling intermediates in the canonical NF-κB pathway. -
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SC75741 (Standard)
0 ImagesCat. No.: HY-10496RCAS No.: 913822-46-5SC75741 (Standard) is the analytical standard of SC75741 (HY-10496). This product is intended for research and analytical applications. SC75741 is a broad and efficient NF-κB inhibitor with an IC50 of 200 nM for p65. SC75741 blocks influenza viruses (IV) replication. SC75741 impairs DNA binding of the NF-κB subunit p65, resulting in reduced expression of cytokines, chemokines, and pro-apoptotic factors. SC75741 subsequently inhibits caspase activation and blocks caspase-mediated nuclear export of viral ribonucleoproteins. -
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Homoplantaginin (Standard)
0 ImagesCat. No.: HY-N1949RCAS No.: 17680-84-1Homoplantaginin (Standard) is the analytical standard of Homoplantaginin. This product is intended for research and analytical applications. Homoplantaginin is a flavonoid from a traditional Chinese medicine Salvia plebeia with antiinflammatory and antioxidant properties. Homoplantaginin could inhibit TNF-α and IL-6 mRNA expression, IKKβ and NF-κB phosphorylation. -
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2"-O-Galloylhyperin (Standard)
0 ImagesCat. No.: HY-N0526RCAS No.: 53209-27-12"-O-Galloylhyperin (Standard) is the analytical standard of 2"-O-Galloylhyperin (HY-N0526). This product is intended for research and analytical applications. 2''-O-Galloylhyperin is an active natural compound with anti‑inflammatory, antioxidant, anti‑adipogenic, antifibrotic, and cytostatic activities. 2''-O-Galloylhyperin upregulates SIRT1/Nrf2 signaling, inhibits NF-κB and MAPK (ERK1/2, p38, JNK) phosphorylation, suppresses TSHR activation, reduces ROS accumulation, and enhances SOD and GSH-Px activities. 2''-O-Galloylhyperin protects against LPS-induced tissue injury, enhances survival, and inhibits adipogenesis and fibrosis. 2"-O-Galloylhyperin can be used for the research of sepsis, acute lung injury, and thyroid eye disease. -
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Fumaric acid2,3-13C2 disodium
0 ImagesFumaric acid2,3-13C2 disodium is the 13C-labeled Fumaric acid (disodium) (HY-W015883A). Fumaric acid disodium is an unsaturated dicarbonic acid, an intermediate product of the citric acid cycle that provides intracellular energy in the form of ATP. Fumaric acid disodium exerts anti-inflammatory effects by inhibiting the NF-κB signaling pathway dependent on p38 MAPK. Fumaric acid disodium can be used in the study of pregnancy-induced hypertension. -
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TM-233
0 ImagesCat. No.: HY-119009CAS No.: 1103745-28-3TM-233 is an inhibitor of the JAK/STAT and NF-κB signaling pathways, exhibiting significant antitumor activity. TM-233 reduces the expression of the anti-apoptotic protein Mcl-1 by inhibiting the phosphorylation of JAK2 and STAT3, and regulates its transcription by directly binding to the Mcl-1 gene promoter. Additionally, TM-233 prevents the translocation of NF-κB from the cytoplasm to the nucleus by inhibiting its DNA-binding activity, thereby reducing nuclear NF-κB expression. TM-233 shows potential in overcoming Bortezomib (HY-10227) resistance and can be applied in research related to multiple myeloma. -
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Sauchinone (Standard)
0 ImagesCat. No.: HY-N0613RCAS No.: 177931-17-8Sauchinone (Standard) is the analytical standard of Sauchinone. This product is intended for research and analytical applications. Sauchinone is a diastereomeric lignan isolated from Saururus chinensis (Saururaceae). Sauchinone inhibits LPS-inducible iNOS, TNF-α and COX-2 expression through suppression of I-κBα phosphorylation and p65 nuclear translocation. Sauchinone has anti-inflammatory and antioxidant activity. -
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Murrayafoline A (Standard)
0 ImagesCat. No.: HY-W100287RCAS No.: 4532-33-6Murrayafoline A (Standard) is the analytical standard of Murrayafoline A (HY-W100287). This product is intended for research and analytical applications. Murrayafoline A is a carbazole alkaloid that can be extracted from Murraya tetramera. Murrayafoline A directly targets Specificity protein 1 (Sp1), thereby inhibiting NF-κB and MAPK signaling pathways. Murrayafoline a induces a G0/G1-phase arrest in platelet-derived growth factor (PDGF)-stimulated vascular smooth muscle cells. Murrayafoline A attenuates the Wnt/β-catenin pathway by promoting the degradation of intracellular β-catenin proteins. Murrayafoline A enhances the contraction of rat ventricular myocytes and L-type calcium current by activating protein kinase C. Murrayafoline A inhibits LPS (HY-D1056)-induced neuroinflammation in vivo. Murrayafoline A can be used for the study of inflammation, vascular complications and colon cancer. -
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(-)-Maackiain (Standard)
0 Images(-)-Maackiain (Standard) is the analytical standard of (-)-Maackiain. This product is intended for research and analytical applications. (-)-Maackiain is a pterocarpan phytoalexin produced from Sophora flavescens. (-)-Maackiain is toxic to several genera of fungal pathogens of legume and non legume hosts. (-)-Maackiain enhances the activation of NLRP3 inflammasome, inhibits the activation of NF-κB pathway, exhibiting thereby immunostimulatory and anti-inflammatory activities. (-)-Maackiain is orally active. -
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Garlic oil
0 ImagesGarlic oil is an orally effective anti-inflammatory, antioxidant, and anticancer agent. Garlic oil inhibits the activation of NF-κB, NFκB2 and NLRP3 inflammasome, and induces the expression of GSTA1, HO-1 and NQO-1. Garlic oil reduces the Bcl-2/Bax protein ratio and activates NNK-induced apoptosis (apoptosis) in lung tissues. Garlic oil attenuates NNK-induced apoptosis in MRC-5 cells and reduces excessive ROS production. Garlic oil alleviates pyroptosis (pyroptosis) and exerts a protective effect against acute lung injury in mice. Garlic oil inhibits lung tumorigenesis in mice and improves small intestinal motility in rats with type 2 diabetes. Garlic oil can be used in research related to acute lung injury, lung cancer, peptic ulcer, type 2 diabetes and hypertension. -
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Erdosteine (Standard)
0 ImagesSynonyms: RV 144 (Standard)Erdosteine (Standard) is the analytical standard of Erdosteine. This product is intended for research and analytical applications. Erdosteine inhibits lipopolysaccharide (LPS)-induced NF-κB activation. Erdosteine has muco-modulatory, anti-bacterial, anti-inflammatory and anti-oxidant effects. -
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CDKi free base
0 ImagesCat. No.: HY-W259575CAS No.: 70035-83-5CDKi free base is a CDK inhibitor. CDKi free base induces morphological changes, DNA fragmentation, and cell death in vestibular schwannoma cells. CDKi free base downregulates pRb, EGF-R, PI3K, NF-κB, and Shh levels, while upregulating JNK, ASK1, Caspase 3, and p21, and induces PARP-1 cleavage. CDKi free base can be used in research related to vestibular schwannoma. -
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Schisantherin A (Standard)
0 ImagesSynonyms: Gomisin-C (Standard); Schizantherin-A (Standard); Wuweizi ester-A (Standard)Schisantherin A (Standard) is the analytical standard of Schisantherin A. This product is intended for research and analytical applications. Schisantherin A is a dibenzocyclooctadiene lignan. Schisantherin A inhibits p65-NF-κB translocation into the nucleus by IκBα degradation. -
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DMBT
0 ImagesCat. No.: HY-183377CAS No.: 1260071-76-8DMBT is an orally effective anti-tumor metastasis and anti-angiogenesis agent. DMBT downregulates key molecules such as EGFR/p-Akt/HIF-1α/VEGF/MMP-9, inhibits the HIF-1α/VE-cadherin (cadherin)/MMPs and Nrf2/HO-1 signaling pathways, and reduces hypoxia-induced ROS levels as well as the secretion and activity of MMP-9. DMBT inhibits hypoxia-induced vasculogenic mimicry, cancer cell migration, invasion and metastasis, and exhibits no obvious cytotoxicity to normal cells. DMBT reduces the area of laser-induced choroidal neovascularization lesions. DMBT can be used in studies related to breast cancer, melanoma and macular degeneration. -
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ETMTC
0 ImagesCat. No.: HY-183448CAS No.: 117666-86-1ETMTC is an orally active anti-inflammatory and antioxidant agent. ETMTC inhibits IKK-mediated phosphorylation and degradation of IkBα, blocks nuclear translocation and activation of NF-κB, and reduces the expression of ICAM-1, VCAM-1, E-selectin, Th2 cytokines and eosinophil chemokines. ETMTC abrogates neutrophil adhesion to endothelial monolayers and inhibits TNF-α-induced ROS production. ETMTC activates Nrf2, and enhances the activities of mitochondrial complex I and IV. ETMTC reduces lipid peroxidation levels, oxidative DNA damage, cytochrome c and caspase 9 activity, and decreases goblet cell metaplasia and subepithelial fibrosis. ETMTC can be used for the research of inflammatory diseases and asthma. -
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Tenuigenin (Standard)
0 ImagesTenuigenin (Standard) is the analytical standard of Tenuigenin. This product is intended for research and analytical applications. Tenuigenin is a major active component isolated from the root of the Chinese herb Polygala tenuifolia. Tenuigenin protects against S.aureus-induced pneumonia by inhibiting NF-κB activation. Tenuigenin has anti-inflammatory effect. -
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Emavusertib mesylate
0 ImagesCat. No.: HY-135317DCAS No.: 2376399-40-3Synonyms: CA-4948 mesylateEmavusertib mesylate (CA-4948 mesylate) is the mesylate salt form of Emavusertib (HY-135317). Emavusertib mesylate is an orally active inhibitor for IRAK4 (IC50=57 nM) and FLT3. Emavusertib mesylate inhibits NF-κB and MyD88 signaling pathways, reduces the generation of pro-inflammatory cytokines like IL-6 and IL-10, thereby exhibiting anti-inflammatory and anti-proliferative activities against cancer cells, leading to cell apoptosis. Emavusertib mesylate exhibits antitumor activity in mouse model. -
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NF-κB transcription factors are critical regulators of immunity, stress responses, apoptosis and differentiation. In mammals, there are five members of the transcription factor NF-κB family: RELA (p65), RELB and c-REL, and the precursor proteins NF-κB1 (p105) and NF-κB2 (p100), which are processed into p50 and p52, respectively. NF-κB transcription factors bind as dimers to κB sites in promoters and enhancers of a variety of genes and induce or repress transcription. NF-κB activation occurs via two major signaling pathways: the canonical and the non-canonical NF-κB signaling pathways[1].
The canonical NF-κB pathway is triggered by signals from a large variety of immune receptors, such as TNFR, TLR, and IL-1R, which activate TAK1. TAK1 then activates IκB kinase (IKK) complex, composed of catalytic (IKKα and IKKβ) and regulatory (NEMO) subunits, via phosphorylation of IKKβ. Upon stimulation, the IKK complex, largely through IKKβ, phosphorylates members of the inhibitor of κB (IκB) family, such as IκBα and the IκB-like molecule p105, which sequester NF-κB members in the cytoplasm. IκBα associates with dimers of p50 and members of the REL family (RELA or c-REL), whereas p105 associates with p50 or REL (RELA or c-REL). Upon phosphorylation by IKK, IκBα and p105 are degradated in the proteasome, resulting in the nuclear translocation of canonical NF-κB family members, which bind to specific DNA elements, in the form of various dimeric complexes, including RELA-p50, c-REL-p50, and p50-p50. Atypical, IKK-independent pathways of NF-κB induction also provide mechanisms to integrate parallel signaling pathways to increase NF-κB activity, such as hypoxia, UV and genotoxic stress.
The non-canonical NF-κB pathway is induced by certain TNF superfamily members, such as CD40L, BAFF and lymphotoxin-β (LT-β), which stimulates the recruitment of TRAF2, TRAF3, cIAP1/2 to the receptor complex. Activated cIAP mediates K48 ubiquitylation and proteasomal degradation of TRAF3, resulting in stabilization and accumulation of the NFκB-inducing kinase (NIK). NIK phosphorylates and activates IKKα, which in turn phosphorylates p100, triggering p100 processing, and leading to the generation of p52 and the nuclear translocation of p52 and RELB[2][3].
Reference:
[1]. Oeckinghaus A, et al. The NF-kappaB family of transcription factors and its regulation.Cold Spring Harb Perspect Biol. 2009 Oct;1(4):a000034.
[2]. Taniguchi K, et al. NF-κB, inflammation, immunity and cancer: coming of age. Nat Rev Immunol. 2018 May;18(5):309-324.
[3]. Perkins ND,et al. Integrating cell-signalling pathways with NF-kappaB and IKK function. Nat Rev Mol Cell Biol. 2007 Jan;8(1):49-62.
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