- Signaling Pathways
- Apoptosis
- TNF Receptor
TNF Receptor
Tumor Necrosis Factor Receptor; TNFR
Tumor necrosis factor (TNF) is a major mediator of apoptosis as well as inflammation and immunity, and it has been implicated in the pathogenesis of a wide spectrum of human diseases, including sepsis, diabetes, cancer, osteoporosis, multiple sclerosis, rheumatoid arthritis, and inflammatory bowel diseases.
TNF-α is a 17-kDa protein consisting of 157 amino acids that is a homotrimer in solution. In humans, the gene is mapped to chromosome 6. Its bioactivity is mainly regulated by soluble TNF-α–binding receptors. TNF-α is mainly produced by activated macrophages, T lymphocytes, and natural killer cells. Lower expression is known for a variety of other cells, including fibroblasts, smooth muscle cells, and tumor cells. In cells, TNF-α is synthesized as pro-TNF (26 kDa), which is membrane-bound and is released upon cleavage of its pro domain by TNF-converting enzyme (TACE).
Many of the TNF-induced cellular responses are mediated by either one of the two TNF receptors, TNF-R1 and TNF-R2, both of which belong to the TNF receptor super-family. In response to TNF treatment, the transcription factor NF-κB and MAP kinases, including ERK, p38 and JNK, are activated in most types of cells and, in some cases, apoptosis or necrosis could also be induced. However, induction of apoptosis or necrosis is mainly achieved through TNFR1, which is also known as a death receptor. Activation of the NF-κB and MAPKs plays an important role in the induction of many cytokines and immune-regulatory proteins and is pivotal for many inflammatory responses.
TNF Receptor Isoform Specific Products
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TNF Receptor
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TNFRSF1A/CD120a
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TNFRSF3/CD18
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TNFRSF4
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TNFRSF5/CD40
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TNFRSF6/Fas/CD95
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TNFRSF7/CD27
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TNFRSF8/CD30
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TNFRSF9/4-1BB/CD137
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TNFRSF10B/DR5/CD262
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TNFRSF12A/TWEAK
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TNFRSF16/NGF Receptor/CD271
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TNFRSF18/GITR/CD357
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TNF Receptor Inhibitors
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TNF Receptor Agonists
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TNF Receptor Antagonists
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TNF Receptor Modulators
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TNF Receptor Inducers
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TNF Receptor Controls
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TNF Receptor Ligands
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TNF Receptor Superfamily Proteins
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TNF Receptor Related Products (1142)
Related Products (1142)
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Recombinant Proteins (283)
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Antibodies (23)
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TNF Receptor Signaling Pathway
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TNF Receptor Isoform Comparison
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BMS-561392
0 ImagesCat. No.: HY-19667CAS No.: 611227-74-8Synonyms: DPC 333BMS-561392 (BMS-561392) is a selective ADAM17(TACE) inhibitor. BMS-561392 inhibits TNF-α secretion by regulating signaling pathways such as p44 MAPK and NF-κB. BMS-561392 also affects the survival of central nervous system-related cells including oligodendrocytes and microglia. BMS-561392 promotes microglial apoptosis, enlarges the injury area and exacerbates astrogliosis in a mouse spinal cord injury model. BMS-561392 can be used in research related to spinal cord injury and inflammatory diseases. -
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Talmapimod hydrochloride
0 ImagesCat. No.: HY-10406ACAS No.: 2387505-88-4Synonyms: SCIO-469 hydrochlorideTalmapimod (SCIO-469) hydrochloride is an orally active and selective inhibitor of p38α MAPK with an IC50 of 9 nM. Talmapimod hydrochloride inhibits the secretion of inflammatory factors (such as TNFα, IL-1β, IL-6, and VEGF) by suppressing the p38α MAPK pathway, and it also inhibits angiogenesis and osteoclast activation. Talmapimod hydrochloride inhibits the growth of multiple myeloma cells and induces apoptosis. Talmapimod hydrochloride can be used to study various hematological malignancies (such as multiple myeloma, myelodysplastic syndrome). -
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Omeprazole magnesium
0 ImagesCat. No.: HY-109546CAS No.: 95382-33-5Omeprazole (H 16868) magnesium is an orally active H+,K+-ATPase inhibitor and a proton pump inhibitor. Omeprazole magnesium competitively inhibits CYP2C19, CYP3A4, and CYP2C9 activity. Omeprazole magnesium inhibits gastric acid secretion and can be used for acid-related gastrointestinal disorders. Omeprazole magnesium inhibits pancreatic cancer cell proliferation, induces apoptosis, autophagosome accumulation (elevated LC3-I and LC3-II levels), oxidative stress, and cytogenetic imbalance, modulates lysosomal transport, reduces inflammatory cytokines. Omeprazole magnesium alters small intestinal morphology and magnesium absorption, and induces gastric mucosa morphologic changes. Omeprazole magnesium aslo has neuroprotective and antibacterial effects. -
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Theophylline (sodium glycinate)
0 ImagesSynonyms: 1,3-Dimethylxanthine (sodium glycinate); Theo-24 (sodium glycinate)Theophylline (1,3-Dimethylxanthine) sodium glycinate is a potent phosphodiesterase (PDE) inhibitor, adenosine receptor antagonist, and histone deacetylase (HDAC) activator. Theophylline sodium glycinate inhibits PDE3 activity to relax airway smooth muscle. Theophylline sodium glycinate has anti-inflammatory activity by increase IL-10 and inhibit NF-κB into the nucleus. Theophylline sodium glycinate induces apoptosis. Theophylline sodium glycinate can be used for asthma and chronic obstructive pulmonary disease (COPD) research. -
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Homovanillyl alcohol (Standard)
0 ImagesOrphenadrine (hydrochloride) (Standard) is the analytical standard of Orphenadrine (hydrochloride). This product is intended for research and analytical applications. Orphenadrine hydrochloride is an orally active and non-competitive NMDA receptor antagonist (crosses the blood-brain barrier) with a Ki of 6.0 μM. Orphenadrine hydrochloride relieves stiffness, pain and discomfort due to muscle strains, sprains or other injuries. Orphenadrine hydrochloride is also used to relieve tremors associated with parkinson's disease. Orphenadrine citrate has good neuroprotective properties, can be used in studies of neurodegenerative diseases. -
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Anti-inflammatory agent 99
0 ImagesCat. No.: HY-183934CAS No.: 1345412-48-7Anti-inflammatory agent 99 is a chalcone derivative. Anti-inflammatory agent 99 inhibits LPS (HY-D1056)-induced NF-κB nuclear translocation and suppress the phosphorylation of JNK, ERK, and p38. Anti-inflammatory agent 99 inhibits the expression of cytoinflammatory factors such as TNF-α and IL-6 induced by LPS. Anti-inflammatory agent 99 can be used for the research of LPS-induced septic shock. -
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Tanfanercept
0 ImagesCat. No.: HY-P99578CAS No.: 2119738-70-2Synonyms: HL036337; HBM9036Tanfanercept (HL036337) is an TNF-α receptor fusion protein that targets TNF-α. Tanfanercept is effective in ameliorating corneal erosions in a dry eye (DE) mouse model. -
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Ingitamig
0 ImagesCat. No.: HY-P991003CAS No.: 2839572-09-5HY-P991003 is an TNFRSF17/KLRK1-targeting (G1_L-κ)_(G1-scFvkh_L-κ) type bispecific antibody. -
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Desipramine-d3
0 ImagesCat. No.: HY-B1272AS1CAS No.: 65100-49-4Desipramine-d3 is the deuterium labeled Desipramine (HY-B1272A). Desipramine is a first-generation tricyclic antidepressant. Desipramine selectively binds to norepinephrine transporter and blocks neuronal norepinephrine reuptake. Desipramine activates MAPK signaling via ERK1/2, JNK, and p38, represses NF-κB and AP-1 activity, and induces apoptosis via ROS elevation, mitochondrial membrane potential reduction, and intracellular calcium increase. Desipramine also shows anyi-inflammatory activity, inhibiting TNF-α production. Desipramine can be used for the research of hepatocellular cancer, inflammation, and neurological diseases. -
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PDE4-IN-28
0 ImagesCat. No.: HY-176234PDE4-IN-28 (Compound G1) is a PDE4D inhibitor (IC50: 29 nM). PDE4-IN-28 inhibits the production of TNF-α and NO (IC50: 13.32 and 2.32 μM, respectively). PDE4-IN-28 exhibits anti-inflammatory, antibacterial and analgesic effects in a rat pressure ulcer (PU) model and promotes HUVEC cell migration, thereby accelerating wound healing. -
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CX-659S
0 ImagesCat. No.: HY-114908CAS No.: 204980-81-4CX-659S is an orally active 5-carboxamide uracil derivative. CX-659S can effectively inhibit lipid peroxidation (IC50 = 5.9 μM). CX-659S can reduce the infiltration of neutrophils and eosinophils. CX-659S inhibits the mRNA expression of pro-inflammatory cytokines IL-1β and TNF-α. CX-659S can be used for research on inflammatory conditions. -
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Variegatic acid
0 ImagesCat. No.: HY-149151CAS No.: 20988-30-1Variegatic acid is a secondary metabolite derived from basidiomycete fungi. Variegatic acid is a PKCβ1 inhibitor with an IC₅₀ of 36.2 μM. Variegatic acid inhibits antigen- or calcium ionophore-induced β-hexosaminidase release (IC₅₀ values of 10.4 μM and 22.2 μM, respectively) and TNF-α secretion (IC₅₀ values of 16.8 μM and 20.1 μM, respectively). Variegatic acid suppresses the enzymatic activity of calcium-activated PKCβ1 and reduces Fe(III) to Fe(II) in a pH-dependent manner, enabling the generation of hydroxyl radicals (·OH) through reaction with H₂O₂, which facilitates the degradation of lignocellulose. Variegatic acid is useful for studying biological degradation and allergic responses. -
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- MB-314
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Anti-TNFSF9/4-1BBL Antibody
0 ImagesCat. No.: HY-P990531The Anti-TNFSF9/4-1BBL Antibody is a CHO-expressed humanized antibody that targets TNFSF9/4-1BBL. The Anti-TNFSF9/4-1BBL Antibody has huIgG1 heavy chain and huκ light chain, with a predicted molecular weight (MW) of 150 kDa. For isotype control of the Anti-TNFSF9/4-1BBL Antibody, you can refer to Human IgG1 kappa, Isotype Control (HY-P99001). -
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Apigenin 7-O-gentiobioside
0 ImagesCat. No.: HY-N20671CAS No.: 50826-94-3Apigenin 7-O-gentiobioside is a flavonoid glycoside. Apigenin 7-O-gentiobioside antagonizes TNF-α-induced cytotoxicity. Apigenin 7-O-gentiobioside can be used in the research of inflammation-related diseases. -
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TNF-α-IN-26
0 ImagesCat. No.: HY-175430CAS No.: 165806-63-3TNF-α-IN-26 (Compound 18) is a TNF-α inhibitor with an IC50 of 0.10 μM for CSBP ligands. TNF-α-IN-26 inhibits LPS (HY-D1056)-stimulated TNF production in mice model. TNF-α-IN-26 can be used for inflammatory diseases research. -
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Maxadilan
0 ImagesCat. No.: HY-P3483CAS No.: 135374-80-0Maxadilan is a specific irreversible PAC1 receptor agonist and a potent vasodilator peptide present in the salivary glands of sand flies. Maxadilan exhibits anti-apoptotic activity in hADSCs. Maxadilan inhibits pro-inflammatory cytokines (TNF-α) and enhances anti-inflammatory mediators (IL-10). Maxadilan can activate leukocytes and inhibit vascular permeability through PAC1 receptors. Maxadilan promotes neural differentiation of human adipose-derived stem cells. Maxadilan can be used to study endotoxin shock, atherosclerosis, and neurodegenerative diseases[1][2][3][4][5]. -
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TNF-α-IN-16
0 ImagesCat. No.: HY-160437CAS No.: 364039-60-1TNF-α-IN-16 is a potent TNFα inhibitor with an IC50 of <0.6 μM. TNF-α-IN-16 has antiinflammatory properties (WO2001072735A2; example 18). -
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Isoquinoline (Standard)
0 ImagesIsoquinoline (Standard) is the analytical standard of Isoquinoline. This product is intended for research and analytical applications. Isoquinoline is an analog of pyridine. Isoquinoline structural-based alkaloids, such as tropoloisoquinoline, phthalideisoquinoline, and naphthylisoquinoline has anti-cancer activities. -
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Anti-Mouse 4-1BBL/CD137L Antibody (TKS-1-Mouse IgG2a)
0 ImagesCat. No.: HY-P990304AAnti-Mouse 4-1BBL/CD137L Antibody (TKS-1-Mouse IgG2a) is a mouse-derived IgG2a κ antibody inhibitor that targets mouse 4-1BBL/CD137L. Anti-Mouse 4-1BBL/CD137L Antibody (TKS-1-Mouse IgG2a) is a chimeric version of the original TKS-1 antibody (HY-P990304). The variable domain sequences are identical to the original TKS-1 but the constant region sequences have been switched from rat IgG2a to mouse IgG2a. Anti-Mouse 4-1BBL/CD137L Antibody (TKS-1-Mouse IgG2a) reacts with mouse 4-1BB ligand (4-1BBL). Anti-Mouse 4-1BBL/CD137L Antibody (TKS-1-Mouse IgG2a) can be used for the researches of cancer, infection, inflammation and immunology. -
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Following the binding of TNF to TNF receptors, TNFR1 binds to TRADD, which recruits RIPK1, TRAF2/5 and cIAP1/2 to form TNFR1 signaling complex I; TNFR2 binds to TRAF1/2 directly to recruit cIAP1/2. Both cIAP1 and cIAP2 are E3 ubiquitin ligases that add K63 linked polyubiquitin chains to RIPK1 and other components of the signaling complex. The ubiquitin ligase activity of the cIAPs is needed to recruit the LUBAC, which adds M1 linked linear polyubiquitin chains to RIPK1. K63 polyubiquitylated RIPK1 recruits TAB2, TAB3 and TAK1, which activate signaling mediated by JNK and p38, as well as the IκB kinase complex. The IKK complex then activates NF-κB signaling, which leads to the transcription of anti-apoptotic factors-such as FLIP and Bcl-XL-that promote cell survival.
The formation of TNFR1 complex IIa and complex IIb depends on non-ubiquitylated RIPK1. For the formation of complex IIa, ubiquitylated RIPK1 in complex I is deubiquitylated by CYLD. This deubiquitylated RIPK1 dissociates from the membrane-bound complex and moves into the cytosol, where it interacts with TRADD, FADD, Pro-caspase 8 and FLIPL to form complex IIa. By contrast, complex IIb is formed when the RIPK1 in complex I is not ubiquitylated owing to conditions that have resulted in the depletion of cIAPs, which normally ubiquitylate RIPK1. This non-ubiquitylated RIPK1 dissociates from complex I, moves into the cytosol, and assembles with FADD, Pro-caspase 8, FLIPL and RIPK3 (but not TRADD) to form complex IIb. For either complex IIa or complex IIb to prevent necroptosis, both RIPK1 and RIPK3 must be inactivated by the cleavage activity of the Pro-caspase 8-FLIPL heterodimer or fully activated caspase 8. The Pro-caspase 8 homodimer generates active Caspase 8, which is released from complex IIa and complex IIb. This active Caspase 8 then carries out cleavage reactions to activate downstream executioner caspases and thus induce classical apoptosis.
Formation of the complex IIc (necrosome) is initiated either by RIPK1 deubiquitylation mediated by CYLD or by RIPK1 non-ubiquitylation due to depletion of cIAPs, similar to complex IIa and complex IIb formation. RIPK1 recruits numerous RIPK3 molecules. They come together to form amyloid microfilaments called necrosomes. Activated RIPK3 phosphorylates and recruits MLKL, eventually leading to the formation of a supramolecular protein complex at the plasma membrane and necroptosis [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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