- 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 (8)View all products
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TNFRSF3/
CD18 (1)View all products
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TNFRSF4
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TNFRSF5/
CD40 (126)View all products
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TNFRSF6/
Fas/ (2)CD95 View all products
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TNFRSF7/
CD27 (2)View all products
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TNFRSF8/
CD30 (3)View all products
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TNFRSF9/
4-1BB/ (3)CD137 View all products
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TNFRSF10B/
DR5/ (1)CD262 View all products
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TNFRSF12A/
TWEAK (5)View all products
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TNFRSF16/
NGF Receptor/ (1)CD271 View all products
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TNFRSF18/
GITR/ (6)CD357 View all products
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TNF Receptor Inhibitors
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TNF Receptor Superfamily Proteins
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TNF Receptor Related Products (1232)
Related Products (1232)
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Recombinant Proteins (282)
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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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BIIB036
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- Fosimdesonide
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Anti-CD30L Antibody
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CSF1R-IN-27
0 ImagesCat. No.: HY-183569CAS No.: 3034296-91-5CSF1R-IN-27 is a CSF1R inhibitor with oral effectiveness, kinome-wide selective profile, low cellular cytotoxicity, and CSF1R IC50 values of 19 nM, 88 nM, 173 nM, 797 nM, 1448 nM, and >3000 nM. CSF1R-IN-27 suppresses M-CSF-induced phosphorylation of CSF1R, AKT, and ERK in macrophages, and inhibits hepatic p-CSF1R/p-AKT/p-ERK signaling. CSF1R-IN-27 reduces serum transaminase levels, improves hepatic histopathology, alleviates inflammatory cell infiltration, and decreases circulating TNF-α and IL-6 levels. CSF1R-IN-27 can be used for the research of acute liver injury. -
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- Spirohypertone B
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SYLQDSVPDSFQD
0 ImagesCat. No.: HY-P3639CAS No.: 320341-56-8SYLQDSVPDSFQD, anchor-modified for high-affinity binding to DR4, is a DR4-restricted MHC class II peptide Tyrosinase. -
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JAK05
0 ImagesCat. No.: HY-170586JAK05 exhibits inhibitory activity against Helicobacter pylori, inhibits strains J63, J196 and J107 with MIC of 3-5 µg/mL. JAK05 exhibits binding affinity to H+/K+-ATPase, COX-1/2, TNF-α and PGE2, reveals antioxidant and anti-inflammatory activities. JAK05 exhibits anti-ulcer activity in rat ethanol-induced gastric ulcer models. -
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Isoquinoline-15N
0 ImagesCat. No.: HY-W012732S2CAS No.: 769101-49-7Isoquinoline-15N is the 15N-labeled Isoquinoline (HY-W012732). Isoquinoline is an analog of pyridine. Isoquinoline-based alkaloids, such as p-tolyl bisisoquinoline, phthaloyl isoquinoline, and naphthyl isoquinoline, exhibit anticancer activity. Berberine, an isoquinoline alkaloid, exerts anti-inflammatory effects in diabetic mice by downregulating the gene expression ratios of pro-/anti-inflammatory and Th1/Th2 cytokines. Additionally, some isoquinoline-based compounds also possess antidepressant, antibacterial, antimalarial, and anti-HIV activities. -
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MR2938
0 ImagesCat. No.: HY-149087CAS No.: 1044870-65-6 -
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RNP-11
0 ImagesCat. No.: HY-187563RNP-11 is a selective COX-2 inhibitor with an IC50 of 42.85 μg/mL against human COX-2, and also acts as a bactericide and anti-inflammatory agent. RNP-11 inhibits the production of pro-inflammatory cytokines (IL-6, TNF-α, IL-1β, disrupts bacterial cell membranes and induces bacterial cell death. RNP-11 exhibits activity against strains of Staphylococcus and Enterococcus, including Methicillin (HY-121544)-resistant Staphylococcus aureus and Vancomycin (HY-B0671)-resistant Enterococcus faecium. RNP-11 reduces the load of Staphylococcus aureus, exerting dual effects of pathogen clearance and inflammatory response alleviation in a mouse skin infection model,. RNP-11 can be used in research related to infections caused by Staphylococcus, Staphylococcus aureus and Enterococcus faecium. -
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Citronellol-d3
0 ImagesCat. No.: HY-W010201S1Synonyms: (±)-Citronelloll-d3; (±)-β-Citronelloll-d3Citronellol-d3 ( (±)-Citronelloll-d3) is the deuterium labeled Citronellol (HY-W010201). Citronellol ((±)-Citronellol) is an orally active inducer of apoptosis. Citronellol can prevent oxidative stress, mitochondrial dysfunction, and apoptosis in the SH-SY5Y cell Parkinson's disease model induced by 6-OHDA by regulating the ROS-NO, MAPK/ERK, and PI3K/Akt signaling pathways. Citronellol can induce necroptosis in human lung cancer cells through the TNF-α pathway and accumulation of ROS. Citronellol can reduce the levels of LC-3 and p62 to regulate the autophagy pathway, inhibit oxidative stress and neuroinflammation, and thus have neuroprotective effects on Parkinson's rats. Citronellol exhibits anti-fungal activity against Trichophyton rubrum by inhibiting ergosterol synthesis. -
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LY 303511 dihydrochloride
0 ImagesCat. No.: HY-15643BCAS No.: 854127-90-5LY 303511 dihydrochloride is a structural analogue of LY294002. LY 303511 dihydrochloride does not inhibit PI3K. LY 303511 dihydrochloride enhances TRAIL sensitivity of SHEP-1 neuroblastoma cells. LY 303511 dihydrochloride reversibly blocks K+ currents (IC50=64.6±9.1 μM) in MIN6 insulinoma cells. -
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1-(3-Carboxypropyl)-3,7-dimethylxanthine
0 Images1-(3-Carboxypropyl)-3,7-dimethylxanthine is the major circulating oxidative carboxylation metabolite of Pentoxifylline (HY-B0715). 1-(3-Carboxypropyl)-3,7-dimethylxanthine protects fibrosarcoma cells against the cytotoxic effect of TNF-α. -
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Xanthine oxidase-IN-6
0 ImagesCat. No.: HY-146560Xanthine oxidase-IN-6 (Compound 6c) is a potent, orally active, mixed-type xanthine oxidase (XOD) inhibitor with an IC50 value of 1.37 µM. Xanthine oxidase-IN-6 shows strong anti-hyperuricemia and renal protective activity. -
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KSI-028
0 ImagesCat. No.: HY-183537KSI-028 is a STING inhibitor. KSI-028 disrupts STING-mediated signal transduction, reduces IFN-β and pro-inflammatory cytokine (IL-6, IL-1β and TNF-α) production. KSI-028 inhibits the phosphorylation of STING, TBK1, IRF3, and STAT1. KSI-028 attenuates renal and hepatic injury in a Cisplatin (HY-17394)-induced acute kidney injury mouse model. -
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- JAK-IN-39
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AD-35
0 ImagesCat. No.: HY-117710BCAS No.: 1531586-64-7AD-35 is an orally active, blood-brain barrier-permeable acetylcholinesterase inhibitor with an IC50 of 793 nM. AD-35 inhibits metal-induced amyloid-β aggregation and disassembles preformed amyloid-β aggregates. In rat models of cognitive impairment, AD-35 attenuates Aβ25-35-induced astrocyte activation, TNF-α and IL-1β release, inhibits ERK phosphorylation, and alleviates learning and memory deficits. AD-35 can be used for research on Alzheimer's disease. -
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β-Bisabolol
0 ImagesCat. No.: HY-W750980CAS No.: 15352-77-9β-Bisabolol is a potent anti-inflammatory agent that can be found in cotton gin trash. β-Bisabolol inhibits the production of nitric oxide (NO), pGE2, TNF-α, IL-6, and IL-8 in LPS (HY-D1056)-stimulated macrophages and fibroblast cells. β-Bisabolol can be used for the research on inflammatory conditions. -
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ISIS 104838 sodium scrambled negative control
0 ImagesCat. No.: HY-145726CISIS 104838 sodium scrambled negative control is the sequence scrambled negative control of ISIS 104838 sodium. -
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Dendrocandin U
0 ImagesCat. No.: HY-N21802CAS No.: 1922084-93-2Dendrocandin U is a bibenzyl compound found in Dendrobium officinale that exhibits anti-inflammatory activity and α-glucosidase inhibitory effect (IC50 = 9.46 mM). Dendrocandin U inhibits the expression of TLR4 and MyD88 in the TLR4/MyD88/NF-kB pathway, suppresses the phosphorylation of NF-kB p65 and I-kBα, and blocks the nuclear translocation of NF-kB p65. Dendrocandin U inhibits M1 polarization, NO secretion, and TNF-α release in alveolar macrophages, and reduces inflammatory morphological changes in macrophages. Dendrocandin U promotes neurite outgrowth in PC12 cells. Dendrocandin U can be used for research on inflammation-related diseases and type 2 diabetes. -
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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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