9195 Results for "

reducing

" in MedChemExpress (MCE) Product Catalog:
Products (9195)

9195 Results for "reducing" in MCE Product Catalog:

Cat. No.: HY-N3097
CAS No.: 18836-52-7
Pellitorine is a bioactive natural amide compound. Pellitorine can competitively antagonize the activation of TRPV1 by Capsaicin (HY-10448), thereby reducing pain signal transmission. Pellitorine improves cognitive dysfunction by upregulating the BDNF-ERK1/2-CREB and Nrf2-HO-1 pathways. Pellitorine exerts anti-inflammatory and anti-sepsis effects by inhibiting the release of high mobility group protein B1 (HMGB1) and the expression of RAGE/TLR4. Pellitorine exerts its antithrombotic effect by prolonging the clotting time, inhibiting the activity of clotting factors and thrombin. Pellitorine inhibits lipid peroxidation and resists ferroptosis by upregulating GPX4 and DHODH. Pellitorine kills Aedes aegypti mosquito larvae by inhibiting V-type H⁺-ATPase and aquaporin 4 (AaAQP4). Pellitorine exhibits anti-cancer activity (e.g., leukemia and breast cancer) and has inhibitory effects on certain bacteria .
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Cat. No.: HY-N3097R
CAS No.: 18836-52-7
Pellitorine (Standard) is the analytical standard of Pellitorine (HY-N3097). Pellitorine is a bioactive natural amide compound. Pellitorine can competitively antagonize the activation of TRPV1 by Capsaicin (HY-10448), thereby reducing pain signal transmission. Pellitorine improves cognitive dysfunction by upregulating the BDNF-ERK1/2-CREB and Nrf2-HO-1 pathways. Pellitorine exerts anti-inflammatory and anti-sepsis effects by inhibiting the release of high mobility group protein B1 (HMGB1) and the expression of RAGE/TLR4. Pellitorine exerts its antithrombotic effect by prolonging the clotting time, inhibiting the activity of clotting factors and thrombin. Pellitorine inhibits lipid peroxidation and resists ferroptosis by upregulating GPX4 and DHODH. Pellitorine kills Aedes aegypti mosquito larvae by inhibiting V-type H⁺-ATPase and aquaporin 4 (AaAQP4). Pellitorine exhibits anti-cancer activity (e.g., leukemia and breast cancer) and has inhibitory effects on certain bacteria.
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Cat. No.: HY-P1189
CAS No.: 154303-05-6
Echistatin is a naturally derived RGD-containing snake venom peptide. Echistatin exhibits an IC50 of 0.6 nM against mouse αvβ3 integrin, and acts as an antagonist against αvβ3, αII3, α5β1 integrins, pp125 FAK and paxillin. Echistatin reduces the phosphorylation of pp125 FAK and paxillin, inhibits the autophosphorylation and kinase activity of pp125 FAK, and weakens its binding to pp60src and paxillin. Echistatin disrupts the actin cytoskeleton and focal adhesions, induces melanoma cell detachment from fibronectin, and regulates cell adhesion and motility. Echistatin inhibits osteoclast maturation and migration, bone resorption, platelet aggregation, bone loss, as well as adhesion and metastasis of Lewis lung cancer cells; it also increases the number of osteoclasts and bone coverage area in mice with secondary hyperparathyroidism. Echistatin can be used in research related to melanoma, lung cancer and secondary hyperparathyroidism .
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Cat. No.: HY-P1189A
Echistatin TFA is a naturally derived RGD-containing snake venom peptide. Echistatin TFA exhibits an IC50 of 0.6 nM against mouse αvβ3 integrin, and acts as an antagonist against αvβ3, αII3, α5β1 integrins, pp125 FAK and paxillin. Echistatin TFA reduces the phosphorylation of pp125 FAK and paxillin, inhibits the autophosphorylation and kinase activity of pp125 FAK, and weakens its binding to pp60src and paxillin. Echistatin TFA disrupts the actin cytoskeleton and focal adhesions, induces melanoma cell detachment from fibronectin, and regulates cell adhesion and motility. Echistatin TFA inhibits osteoclast maturation and migration, bone resorption, platelet aggregation, bone loss, as well as adhesion and metastasis of Lewis lung cancer cells; it also increases the number of osteoclasts and bone coverage area in mice with secondary hyperparathyroidism. Echistatin TFA can be used in research related to melanoma, lung cancer and secondary hyperparathyroidism .
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Cat. No.: HY-P1248
CAS No.: 99566-27-5
Synonyms: NPFF
Neuropeptide FF (NPFF), an octapeptide belonging to the RF-amide family of peptides, is a NPFF1 and NPFF2 receptors agonist with Ki values of 2.82 nM and 0.21 nM, respectively. Neuropeptide FF induces abstinence syndrome, exerts antiopioid and analgesic effects, releases via calcium-dependent mechanisms from rat spinal cord, regulates memory, autonomic function, and neuroendocrine function, modulates pain and opioid antinociception, reduces food intake, stimulates water intake, alters cardiovascular parameters, and shows differential activity in hypothalamic paraventricular nucleus neurons. Neuropeptide FF is present in mammalian central nervous system and periphery, with NPFF-immunoreactivity increases in rat cerebrospinal fluid during opiate tolerance, and its NPFF gene and NPFF-R2 gene are up-regulated in rat spinal cord and dorsal root ganglia during peripheral inflammation. Neuropeptide FF can be used for the research of opioid tolerance, morphine-induced analgesia, abstinence syndrome, pain, hypertension, nociception, inflammatory pain, and neuropathic pain .
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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-P6292
CAS No.: 2724212-01-3
Research Areas:  

Neurological Disease Cancer

KS-133 is a bicyclic peptide with VIPR2 antagonistic activity that can cross the blood-brain barrier. KS-133 selectively blocks VIPR2-mediated Gq/Ca, Gs/cAMP, cAMP/PKA/ERK and PI3K/AKT/GSK3β signaling pathways. KS-133 inhibits VIPR2 agonist-induced CREB phosphorylation in the prefrontal cortex of mice. KS-133 shifts the polarization direction of macrophages toward M1. KS-133 attenuates cancer cell proliferation and reduces the cell cycle distribution level at the S-M phase. KS-133 exerts antitumor effects in a mouse model of colorectal cancer. KS-133 reverses cognitive decline in mouse models of psychiatric disorders. KS-133 can be used for research related to schizophrenia, colorectal cancer and breast cancer .
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Cat. No.: HY-P990279

Target:  

CD276/B7-H3 Apoptosis STAT

Research Areas:  

Inflammation/Immunology Cancer

Anti-Mouse CD276/B7-H3 Antibody (MJ18) is a rat-derived anti-mouse CD276/B7-H3 IgG1 monoclonal antibody. Anti-Mouse CD276/B7-H3 Antibody (MJ18) can inhibit CD276/B7-H3 and induce tumor cell apoptosis. Anti-Mouse CD276/B7-H3 Antibody (MJ18) enhances anti-tumor immune response by reducing immunosuppressive cells and promoting T cell activation. Anti-Mouse CD276/B7-H3 Antibody (MJ18) can be used for research on cancer such as breast cancer and prostate cancer .
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Cat. No.: HY-P990955
CAS No.: 2839652-75-2
Synonyms: ADX-097

Target:  

CD3 Complement System

Research Areas:  

Inflammation/Immunology

Ebribafusp alfa (ADX-097) comprising a humanized anti-C3d monoclonal antibody linked to two moieties of the first five consensus repeats of factor H (fH1-5). Ebribafusp alfa binds C3d and related fragments, catalyzes AP convertase dissociation, acts as a factor I co-factor for C3b cleavage, and delivers fH1-5 moieties to C3d-deposited tissues for local complement inhibition without systemic blockade. Ebribafusp alfa reduces glomerular C3 deposition, proteinuria, urine albumin-creatinine ratios, and urine soluble C5b-9 levels, preserves podocyte foot-process architecture, inhibits skin complement activation, and localizes to UVB-damaged primate skin. Ebribafusp alfa can be used for the research of membranous nephropathy, bullous pemphigoid, discoid lupus erythematosus, C3 glomerulopathy, IgA nephropathy, and lupus nephritis .
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Cat. No.: HY-P992062

Target:  

PD-1/PD-L1

Research Areas:  

Inflammation/Immunology

Anti-Mouse CD80 Antibody (TKMG48) is an antibody that targets mouse CD80. By specifically binding to and disrupting the CD80:PD-L1 complex to release PD-L1, Anti-Mouse CD80 Antibody (TKMG48) functions as an indirect PD-1 agonist without blocking CD28 co-stimulation or CD80-CTLA4 binding. Anti-Mouse CD80 Antibody (TKMG48) inhibits T cell activation, reduces T cell effector functions and antigen-specific CD8 + T cell populations, and does not interfere with the differentiation, migration, antigen presentation or surface marker expression of dendritic cells. Anti-Mouse CD80 Antibody (TKMG48) significantly attenuates disease severity in mouse models of arthritis, spondyloarthritis, multiple sclerosis and Sjögren's syndrome, and its activity depends on the expression of PD-1 and PD-L1 .
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Cat. No.: HY-W011168
CAS No.: 13389-03-2
8-Bromo-2'-deoxyguanosine is an inflammation-related DNA halogenated adduct and an early biomarker of inflammation-induced oxidative tissue damage. The formation of 8-Bromo-2'-deoxyguanosine precedes that of oxidative and nitrative products, and it can be generated via the MPO-H2O2-Cl --Br - system. 8-Bromo-2'-deoxyguanosine serves as the immunogen for preparing the monoclonal antibody mAb8B3, which can be used to detect early DNA modifications in preclinical models; its urinary level also increases significantly in inflammatory disease models. 8-Bromo-2'-deoxyguanosine can also be produced in the dermis of UV-B irradiated mice, and the extract of Coprinus comatus significantly reduces its level. 8-Bromo-2'-deoxyguanosine finds applications in studies related to inflammatory diseases, diabetes, hepatocellular carcinoma, and UV-B induced skin inflammation .
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Cat. No.: HY-W012846R
CAS No.: 2418-52-2
D-Threitol (Standard) is the analytical standard of D-Threitol (HY-W012846). This product is intended for research and analytical applications. D-Threitol is a naturally occurring four-carbon sugar alcohol and an α-glucosidase (α‑glucosidase) inhibitor with an IC50 of 49 mM against yeast α-glucosidase, and it is orally active. D-Threitol modulates gut microbiota composition, increases microbial diversity, enriches beneficial bacterial genera, and restores fecal short-chain fatty acid levels. D-Threitol reduces body weight gain and fat accumulation, improves glucose tolerance and insulin sensitivity, and alleviates liver, kidney, and pancreatic tissue damage. D-Threitol inhibits hepatic accumulation of ceramides and diacylglycerols. D-Threitol preserves glomerular morphology and islet structure in diabetes models. D-Threitol is also a low-calorie sweetener. D-Threitol serves as a cryoprotective polyol that stabilizes protein structure at low temperatures. D-Threitol is used in research on type 2 diabetes and as an antifreeze agent for the Alaskan beetle .
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Cat. No.: HY-W145481A
CAS No.: 11078-30-1
Synonyms: Carob galactomannan
D-Galacto-D-mannan (Carob galactomannan) is an orally active Dectin-2 agonist. D-Galacto-D-mannan exerts antioxidant activity against hydroxyl radical generation. D-Galacto-D-mannan activates Dectin-2 to trigger downstream signaling pathways, promote the expression of immunoregulatory molecules, coordinate innate and adaptive immune responses, and inhibit excessive inflammatory responses by upregulating the expression of Sirtuin 1. When used as a vaccine adjuvant, D-Galacto-D-mannan induces cellular and humoral immune responses, promotes IFNγ secretion, increases antibody levels and virus neutralization titers, and elevates the levels of immunoglobulin G and A. D-Galacto-D-mannan can serve as an adjuvant for foot-and-mouth disease vaccines, enhance the vaccine-mediated ability of hosts to defend against viral infection in mice, and reduce local side effects at the inoculation site in pigs. D-Galacto-D-mannan can be used in the research of inflammatory and immune diseases, such as foot-and-mouth disease .
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Cat. No.: HY-W720629
CAS No.: 21420-37-1
Cyanamide- 15N2 is the 15N-labeled Cyanamide (HY-Y0070). Cyanamide is a cell division and plant growth inhibitor, as well as an allelochemical derived from Vicia villosa. Cyanamide inhibits root growth and biomass accumulation in a dose-dependent manner by disrupting the formation of mitotic spindles and phragmoplast complexes, reducing the number of mitotic cells and blocking the cell cycle. The effects of Cyanamide are partially reversible after removal from low-concentration environments. Cyanamide is also a specific inhibitor of aldehyde dehydrogenase (ALDH). Although Cyanamide has no direct effect on tumor growth, it can significantly enhance the anti-tumor efficacy of Cyclophosphamide (HY-17420) at non-toxic doses by inhibiting the inactivation of Cyclophosphamide. Cyanamide enables Cyclophosphamide to exert equivalent therapeutic effects at lower doses, effectively inhibiting the growth of primary and metastatic tumors and prolonging the lifespan of tumor-bearing mice. Cyanamide is commonly used in studies related to ha-1 hepatoma and rls lymphosarcoma .
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Cat. No.: HY-Y0106R
CAS No.: 699-83-2
2,6-Dihydroxyacetophenone (Standard) is the analytical standard of 2,6-Dihydroxyacetophenone (HY-Y0106). This product is intended for research and analytical applications. 2,6-Dihydroxyacetophenone, a polyphenolic derivative of Acetophenone (HY-Y0989), is an orally active mTOR inhibitor. 2,6-Dihydroxyacetophenone shows antioxidant activity. 2,6-Dihydroxyacetophenone inhibits cell growth and proliferation in CRC cells. 2,6-Dihydroxyacetophenone arrests at G0/G1 phase of cell cycle, induces apoptosis and suppresses cell migration in CRC cells. 2,6-Dihydroxyacetophenone inhibits xanthine oxidase (XOD) with an IC50 of 1.24 mM. 2,6-dihydroxyacetophenone improves uric acid metabolism in hyperuricemia mice, reduces plasma cholesterol in hypercholesterolemic rats, and inhibits lipid accumulation in HFD-induced obese mice. 2,6-Dihydroxyacetophenone can be used for the study of colorectal cancer (CRC), hyperuricemia and hypercholesterolemia .
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Cat. No.: HY-Y0148
CAS No.: 1679-53-4
Synonyms: NSC 15139; 10-HDAA
10-Hydroxydecanoic acid (10-HDAA) is a saturated fatty acid derived from 10-hydroxy-trans-2-decenoic acid, which can be isolated from royal jelly. 10-Hydroxydecanoic acid exhibits various biological activities, including anti-inflammatory, insecticidal, anti-malarial, and anti-Leishmania properties, as well as enhancing antigen-specific immune responses. The anti-inflammatory effects of 10-Hydroxydecanoic acid are primarily mediated by inhibiting the activation of NF-κB and the translation of interferon regulatory factor 1 (IRF-1), which reduces the production of interleukin 6 (IL-6) and nitric oxide (NO) in inflammatory cells. Additionally, 10-Hydroxydecanoic acid alleviates neuroinflammatory responses through the p53-autophagy pathway and the p53-NLRP3 pathway. Finally, 10-Hydroxydecanoic acid enhances antigen-specific immune responses by promoting the effective uptake of antigens by microfold cells .
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Cat. No.: HY-L221
626 compounds

Cosmetics are complex mixtures formulated through the rational blending and processing of various natural, synthetic, or extracted raw materials. The ingredients used in cosmetics are diverse in type and functionality. Based on their properties and applications, cosmetic ingredients can generally be classified into two main categories: base materials and auxiliary ingredients. The former constitutes the primary component of cosmetics, accounting for a significant proportion in formulations and serving as the key functional substances. Auxiliary ingredients, on the other hand, play roles in shaping the product, ensuring stability, or imparting color, fragrance, and other specific characteristics.Establishing a systematic ingredient database is of great significance for cosmetic research and development. By analyzing the physicochemical properties (such as oil-water partition coefficients and molecular weight distribution), biological activity mechanisms (such as antioxidant pathways and cellular signaling regulation), and compatibility of ingredients, the database can provide precise guidance for formulation design. This approach helps shorten the development cycle of cosmetic/skincare products and reduces trial-and-error costs.

MCE offers 626 types of cosmetic ingredient compounds, including antioxidants, humectants, emulsifiers, film-forming agents, and more.

Cat. No.: HY-L053
1,534 compounds

From target identification to clinical research, traditional drug discovery and development is a time-consuming and costly process, which also bears high risk. Compared with traditional drug discovery, drug repositioning or repurposing, also known as old drugs for new uses can greatly shorten the development cycle and reduce development cost, which has become a new trend of drug development. After undergoing clinical trials, approved drugs have identified bioactivities, good pharmacokinetic characteristics and safety, which can greatly improve the success rate of drug discovery. A number of successes have been achieved, such as metformin for type 2 diabetes and thalidomide for leprosy and multiple myeloma, etc.

MCE provides a unique collection of 1,534 China NMPA (National Medical Products Administration) approved compounds, which have undergone extensive preclinical and clinical studies and have well-characterized bioactivities, safety and bioavailability properties. MCE NMPA-Approved Drug Library is a good tool for drug repurposing which could dramatically accelerate drug development.

Cat. No.: HY-103315R
CAS No.: 68099-86-5
Synonyms: CERM 1978 (Standard); Org 5730 hydrochloride (Standard)
Bepridil hydrochloride (Standard) (CERM 1978 (Standard);Org 5730 hydrochloride (Standard)) is the analytical standard of Bepridil hydrochloride (HY-103315). This product is intended for research and analytical applications. Bepridil hydrochloride is an orally active non-selective calcium channel antagonist with multi-ion channel blocking activity. Bepridil hydrochloride modulates Calmodulin, the 20S proteasome, T-type/L-type calcium channels, cardiac sodium channels, multiple potassium channels, γ-secretase, β-secretase, and mitoKATP/sarcKATP channels. Bepridil hydrochloride acts as a hydroxyl radical scavenger, regulates mitochondrial and intracellular calcium handling, and exerts antiarrhythmic, antianginal, and cardioprotective effects. Bepridil hydrochloride alters amyloid precursor protein processing, reduces β-amyloid and thalamic calcium levels, restores seladin-1/DHCR24 expression, and improves sensorimotor recovery after cerebral ischemia. Bepridil hydrochloride also exhibits potent inhibitory effects on SARS-CoV-2 replication. Bepridil hydrochloride is used in studies related to stable angina, arrhythmias, cerebral ischemia, Alzheimer's disease, and SARS-CoV-2 infection .
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Cat. No.: HY-103430AR
CAS No.: 99295-33-7
SKF-83566 (Standard) is the analytical standard of SKF-83566 (HY-103430A). This product is intended for research and analytical applications. SKF-83566 is an orally active, blood-brain barrier-permeable D1/D5 dopamine receptor antagonist with a Ki value of approximately 0.4-0.56 nM. SKF-83566 modulates locomotor behavior and spatial memory by blocking D1 receptors and inhibits glioblastoma progression by targeting the DRD1/c-Myc/UHRF1 pathway. SKF-83566 acts as an inhibitor of the dopamine transporter (DAT) and adenylyl cyclase 2 (AC2). SKF-83566 competitively binds to DAT to inhibit dopamine reuptake and non-competitively inhibits AC2 activity, thereby reducing cAMP accumulation. SKF-83566 is used in research areas such as dopaminergic system mechanisms, learning and memory, targeted intervention for glioblastoma, AC2 pathophysiology, antiparasitic drug screening, and synaptic plasticity (the "gating effect") .
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