246 Results for "

retinal

" in MedChemExpress (MCE) Product Catalog:
Products (246)

246 Results for "retinal" in MCE Product Catalog:

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Cat. No.: HY-184620
Ferric oxide (Fe3O4) is widely used in magnetic resonance imaging (MRI), magnetic separation, targeted drug delivery, tumor hyperthermia, cell labeling and separation, and as a contrast agent and enhancement agent in retinal detachment repair surgery due to its stable material properties, good biocompatibility, high strength, and lack of toxic side effects. It is also used as a catalyst carrier, microwave absorbing material, and magnetic recording material. Xianfeng has developed numerous derivatives of ferric oxide, including oleic acid-modified ferric oxide, PEG-terminated ferric oxide, DMSA-modified ferric oxide, polylysine-modified ferric oxide, carboxylated dextran-modified ferric oxide nanoparticles, streptavidin-modified ferric oxide particles, thiol-modified ferric oxide magnetic nanoparticles, and polyethyleneimine (PEI)-modified magnetic ferric oxide nanoparticles, among others. This wide range of modifications provides numerous options for subsequent experiments.
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Cat. No.: HY-P4890
CAS No.: 1158181-62-4
Relaxin H3 (human) is a relaxin peptide with anti-inflammatory, anti-apoptotic, anti-pyroptotic, anti-migratory, protective and anti-fibrotic activities. Relaxin H3 (human) acts on RXFP1 to generate cAMP and reduce the levels of ATP and ROS. Relaxin H3 (human) inhibits renal inflammatory pyroptosis (pyroptosis), NLRP3 inflammasome activation, caspase-1 activation, IL-1β/IL-18 secretion, collagen synthesis, TGF-β1 signaling pathway, Smad2 phosphorylation, myofibroblast differentiation, TIMP expression, and HRMEC migration. Relaxin H3 (human) activates AMPK, upregulates MFN2 expression, improves mitochondrial quality control and membrane potential, inhibits apoptosis (apoptosis) and pyroptosis, restores retinal ultrastructure, and reverses excessive left ventricular collagen expression. Relaxin H3 (human) can be used in studies related to kidney stones, nephrocalcinosis, diabetic cardiomyopathy, fibrotic cardiomyopathy, and diabetic retinopathy .
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Cat. No.: HY-107543R
CAS No.: 634207-53-7
Synonyms: 8-CPT-2'-O-Me-cAMP sodium (Standard)
Target:  

Reference Standards Ras

Research Areas:  

Cardiovascular Disease

8-pCPT-2′-O-Me-cAMP sodium (Standard) is the analytical standard of 8-pCPT-2′-O-Me-cAMP (sodium) (HY-107543). This product is intended for research and analytical applications. 8-pCPT-2′-O-Me-cAMP (8-CPT-2'-O-Me-cAMP) sodium, an analog of cAMP, is an activator of exchange proteins activated by cAMP (Epac). 8-pCPT-2′-O-Me-cAMP sodium activates Epac1 (EC50 = 2.2 μM), but not PKA (EC50 >10 μM). 8-pCPT-2′-O-Me-cAMP sodium stimulates Epac-mediated Ca2+ release in pancreatic β-cells in vitro. 8-pCPT-2′-O-Me-cAMP sodium is a Rap1 activator. 8-pCPT-2′-O-Me-cAMP sodium enhances the retinal pigment epithelium barrier against the pathological choroidal endothelial cell invasion that occurs in macular degeneration .
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Cat. No.: HY-P4890A
Relaxin H3 (human) TFA is a relaxin peptide with anti-inflammatory, anti-apoptotic, anti-pyroptotic, anti-migratory, protective and anti-fibrotic activities. Relaxin H3 (human) TFA acts on RXFP1 to generate cAMP and reduce the levels of ATP and ROS. Relaxin H3 (human) TFA inhibits renal inflammatory pyroptosis (pyroptosis), NLRP3 inflammasome activation, caspase-1 activation, IL-1β/IL-18 secretion, collagen synthesis, TGF-β1 signaling pathway, Smad2 phosphorylation, myofibroblast differentiation, TIMP expression, and HRMEC migration. Relaxin H3 (human) TFA activates AMPK, upregulates MFN2 expression, improves mitochondrial quality control and membrane potential, inhibits apoptosis (apoptosis) and pyroptosis, restores retinal ultrastructure, and reverses excessive left ventricular collagen expression. Relaxin H3 (human) TFA can be used in studies related to kidney stones, nephrocalcinosis, diabetic cardiomyopathy, fibrotic cardiomyopathy, and diabetic retinopathy .
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Cat. No.: HY-N0819R
CAS No.: 89412-79-3
Raddeanin A (Standard) is the analytical standard of Raddeanin A (HY-N0819). This product is intended for research and analytical applications. Raddeanin A is an oleanane-type triterpenoid saponin with oral activity. Raddeanin A inhibits SRC, mTOR, JNK, VEGFR2, NLRP3 inflammasome, Wnt/β-catenin, Wee1, PI3K/AKT signaling pathway, MAPK/ERK signaling pathway, AR-FL, AR-Vs, and downregulates the expression of p-PI3K and p-AKT. Raddeanin A inhibits osteoclast formation, bone resorption, osteolysis, cancer cell invasion, migration, proliferation, angiogenesis and epithelial-mesenchymal transition, while induces apoptosis, cell cycle arrest, ROS production, immunogenic cell death and dendritic cell maturation. Raddeanin A improves blood-retinal barrier function, alleviates inflammation, regulates the tumor microenvironment, and enhances the activity of anti-PD-1 antibody. Raddeanin A is applicable to the research of breast cancer-associated osteolysis, human osteosarcoma, colorectal cancer, glioblastoma, Alzheimer's disease, cholangiocarcinoma, melanoma, non-small cell lung cancer, castration-resistant prostate cancer and multiple myeloma.
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Cat. No.: HY-N20674
CAS No.: 76472-89-4
Chalcomoracin is an orally active anticancer agent. Chalcomoracin exhibits anticancer, antibacterial, and α-glucosidase inhibitory activities, with an IC50 of 14.23 µM against yeast α-glucosidase and an IC50 of 5.5 μM against FabI of Staphylococcus aureus. Chalcomoracin reduces the phosphorylation levels of ERK, JNK, and P38; enhances the phosphorylation level of ERK1/2; regulates the MAPK, mTOR, AKT, and p53 signaling pathways; upregulates the expression of Chop, Bip, PINK1, GRP78, and GADD153; and downregulates the expression of Alix. Chalcomoracin induces apoptosis (apoptosis), endoplasmic reticulum stress (endoplasmic reticulum stress), paraptosis (paraptosis), ROS production, mitophagy (mitophagy), and autophagy (autophagy); it inhibits cancer cell viability, colony-forming ability, migration, invasion, proliferation, tumorigenesis, fatty acid synthesis, S. aureus growth, vitreous-stimulated retinal cell activity, and cell cycle progression at the G0/G1 phase. Chalcomoracin can be used in research related to hepatocellular carcinoma, non-small cell lung cancer, triple-negative breast cancer, prostate cancer, proliferative vitreoretinopathy, pancreatic cancer, diabetes, and bacterial infections .
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