6778 Results for "

Pathways

" in MedChemExpress (MCE) Product Catalog:
Products (6778)

6778 Results for "Pathways" in MCE Product Catalog:

Cat. No.: HY-171881
CAS No.: 864686-48-6
Target:  

GSK-3 DYRK

BI-5521 is an orally active GSK-3 inhibitor with an IC50 of 1.1 nM against GSK-3β. BI-5521 targets the two GSK-3 isoforms with similar potency and exhibits potent inhibitory activity against DYRK1A. By modulating GSK-3 activity, BI-5521 inhibits tumor proliferation and cancer cell growth, exerts cytotoxic effects, and reduces cancer cell viability. It shows consistent chemosensitivity across all subtypes of rhabdomyosarcoma, produces synergistic growth inhibitory effects when combined with SOS1 inhibitors, reduces oral glucose levels, regulates the myofibroblast differentiation pathway, decreases the nuclear localization of YAP/SMAD2/3, and lowers the positive rate of α-SMA in fibroblasts without affecting the apoptosis of CD4 + T cells. BI-5521 can be used in the research of non-small cell lung cancer, pleomorphic rhabdomyosarcoma, type 2 diabetes, pancreatic ductal adenocarcinoma, Alzheimer's disease, bipolar disorder, and metabolic dysfunction-associated steatotic liver disease .
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Cat. No.: HY-183684
Target:  

RET VEGFR PDGFR Akt ERK

Research Areas:  

Endocrinology Cancer

RET-IN-33 is a moderately selective inhibitor of RET mutants. RET-IN-33 potently inhibits G810 mutants, with IC50 values of 4.43 nM (G810R), 3.28 nM (G810C) and 0.51 nM (G810S), respectively. RET-IN-33 also inhibits other RET mutants: V804M (IC50 0.73 nM), V804L (IC50 0.36 nM), Y806H (IC50 0.74 nM) and M918T (IC50 0.55 nM). RET-IN-33 also inhibits other kinases, with an IC50 of 1.50 nM against VEGFR2 and 1.60 nM against PDGFRα. RET-IN-33 blocks the autophosphorylation of RET mutants and the downstream SHC/AKT/ERK signaling pathway. RET-IN-33 selectively inhibits the proliferation of RET-driven cell models without affecting non-RET-dependent or normal cells. RET-IN-33 exhibits dose-dependent antitumor efficacy in RET-driven xenograft models. RET-IN-33 can be used for the research of medullary thyroid carcinoma, papillary thyroid carcinoma and non-small cell lung cancer .
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Cat. No.: HY-18719H
CAS No.: 1032008-71-1
Endoxifen Z-isomer methanesulfonate is an orally active selective PKCβ1 inhibitor with an IC50 of 360 nM against human PKCβ1. It also acts as an estrogen receptor modulator and antiestrogen. Endoxifen Z-isomer methanesulfonate binds to and blocks ERα, ERβ and PKCβ1, inhibits estrogen and PI3K/AKT/mTORC1 signaling pathways, suppresses the expression of genes associated with cell cycle, cell proliferation and extracellular matrix remodeling, and induces apoptosis, reactive oxygen species (ROS) production and hypoxic features. Endoxifen Z-isomer methanesulfonate inhibits tumor growth in breast tumor and glioblastoma models, reduces bone turnover and blood lipid levels, and does not require metabolism via CYP2D6. It can be used in research related to ER + breast cancer, invasive breast cancer, glioblastoma multiforme, type I bipolar disorder, desmoid tumor, gynecological malignancies, melanoma and hormone receptor-positive solid tumors .
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Cat. No.: HY-50896R
CAS No.: 183321-74-6
Synonyms: CP-358774 (Standard); NSC 718781 (Standard); OSI-774 (Standard)
Erlotinib Standard (CP-358774 Standard) is the analytical standard of Erlotinib (HY-50896). This product is intended for research and analytical applications. Erlotinib (CP-358774) is a selective, orally active EGFR tyrosine kinase inhibitor. Erlotinib also acts as a substrate and inhibitor of OATP2B1, with an IC50 of approximately 0.079 μM for inhibiting OATP2B1-mediated uptake of estrone 3-sulfate. Erlotinib blocks EGFR phosphorylation, downstream signal transduction, as well as the growth and proliferation of cancer cells. Erlotinib inhibits MMP-10-mediated renal injury, fibrotic lesions, the ERK1/2, GSK-3β and β-catenin signaling pathways, as well as the deposition of fibronectin, α-SMA, collagen and renal injury markers. Erlotinib is metabolized via CYP3A to produce the active metabolite OSI-420. Erlotinib can be used in research related to non-small cell lung cancer, gastric cancer, papillary renal cell carcinoma, EGFR inhibitor resistance and renal fibrosis .
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Cat. No.: HY-50896S
CAS No.: 1034651-23-4
Synonyms: CP-358774-d6; NSC 718781-d6; OSI-774-d6
Erlotinib-d6 (CP-358774-d6) is the deuterated-labeled Erlotinib (HY-50896). Erlotinib (CP-358774) is a selective, orally active EGFR tyrosine kinase inhibitor. Erlotinib also acts as a substrate and inhibitor of OATP2B1, with an IC50 of approximately 0.079 μM for inhibiting OATP2B1-mediated uptake of estrone 3-sulfate. Erlotinib blocks EGFR phosphorylation, downstream signal transduction, as well as the growth and proliferation of cancer cells. Erlotinib inhibits MMP-10-mediated renal injury, fibrotic lesions, the ERK1/2, GSK-3β and β-catenin signaling pathways, fibronectin, α-SMA, collagen deposition, and renal injury markers. Erlotinib is metabolized via CYP3A to produce the active metabolite OSI-420. Erlotinib can be used in research related to non-small cell lung cancer, gastric cancer, papillary renal cell carcinoma, pancreatic cancer, renal fibrosis, and other conditions .
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Cat. No.: HY-50896S1
CAS No.: 1211107-68-4
Synonyms: CP-358774-13C6; NSC 718781-13C6; OSI-774-13C6
Erlotinib- 13C6 (CP-358774- 13C6) is the 13C-labeled Erlotinib (HY-50896). Erlotinib (CP-358774) is a selective, orally active EGFR tyrosine kinase inhibitor. Erlotinib also acts as a substrate and inhibitor of OATP2B1, with an IC50 of approximately 0.079 μM for inhibiting OATP2B1-mediated uptake of estrone 3-sulfate. Erlotinib blocks EGFR phosphorylation, downstream signal transduction, as well as the growth and proliferation of cancer cells. Erlotinib inhibits MMP-10-mediated renal injury, fibrotic lesions, the ERK1/2, GSK-3β and β-catenin signaling pathways, fibronectin, α-SMA, collagen deposition, and renal injury markers. Erlotinib is metabolized via CYP3A to produce the active metabolite OSI-420. Erlotinib can be used in research related to non-small cell lung cancer, gastric cancer, papillary renal cell carcinoma, pancreatic cancer, renal fibrosis, and other conditions .
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Cat. No.: HY-50896S2
CAS No.: 1130852-41-3
Synonyms: CP-358774-d4; NSC 718781-d4; OSI-774-d4
Erlotinib-d4 (CP-358774-d4) is the deuterated-labeled Erlotinib (HY-50896). Erlotinib (CP-358774) is a selective, orally active EGFR tyrosine kinase inhibitor. Erlotinib also acts as a substrate and inhibitor of OATP2B1, with an IC50 of approximately 0.079 μM for inhibiting OATP2B1-mediated uptake of estrone 3-sulfate. Erlotinib blocks EGFR phosphorylation, downstream signal transduction, as well as the growth and proliferation of cancer cells. Erlotinib inhibits MMP-10-mediated renal injury, fibrotic lesions, the ERK1/2, GSK-3β and β-catenin signaling pathways, fibronectin, α-SMA, collagen deposition, and renal injury markers. Erlotinib is metabolized via CYP3A to produce the active metabolite OSI-420. Erlotinib can be used in research related to non-small cell lung cancer, gastric cancer, papillary renal cell carcinoma, pancreatic cancer, renal fibrosis, and other conditions .
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Cat. No.: HY-50896S3
CAS No.: 1266656-97-6
Synonyms: CP-358774-d8; NSC 718781-d8; OSI-774-d8
Erlotinib-d8 (CP-358774-d8) is the deuterated-labeled Erlotinib (HY-50896). Erlotinib (CP-358774) is a selective, orally active EGFR tyrosine kinase inhibitor. Erlotinib also acts as a substrate and inhibitor of OATP2B1, with an IC50 of approximately 0.079 μM for inhibiting OATP2B1-mediated uptake of estrone 3-sulfate. Erlotinib blocks EGFR phosphorylation, downstream signal transduction, as well as the growth and proliferation of cancer cells. Erlotinib inhibits MMP-10-mediated renal injury, fibrotic lesions, the ERK1/2, GSK-3β and β-catenin signaling pathways, as well as the deposition of fibronectin, α-SMA, collagen and renal injury markers. Erlotinib is metabolized via CYP3A to produce the active metabolite OSI-420. Erlotinib can be used in research related to non-small cell lung cancer, gastric cancer, papillary renal cell carcinoma, EGFR inhibitor resistance and renal fibrosis .
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Cat. No.: HY-D2465
Target:  

Fluorescent Dye

Research Areas:  

Infection

CY5-Dextran (MW60-80k) is a fluorescent probe formed by covalent conjugation of the cyanine dye Cy5 to dextran. It is a pH-insensitive fluid-phase endocytosis tracer (the pH of endosomal lumen is precisely quantified by the fluorescence ratio of FITC/Cy5). CY5-Dextran (MW60-80k) is internalized by cells via a clathrin-independent fluid-phase pinocytosis pathway, and is sequentially evidenced by early endosomes, late endosomes are transported to lysosomes. CY5-D I cannot pass through the limited pore size formed by uncoating of human rhinovirus type 2 (HRV2), but can be released into the neutral cytoplasm upon adenovirus-mediated endosomal rupture, thus distinguishing between the two viral modes of "pore-forming escape" and "lysis escape". CY5-Dextran (MW60) -80k) has an excitation wavelength of 635 nm, and it can also be used for time-lapse imaging of endocytosis dynamics of stromal cells in tissues such as rat salivary glands under in vivo two-photon microscopy .
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Cat. No.: HY-N0448A
CAS No.: 107257-18-1
(±)-10-Gingerol is the racemic form of 10-Gingerol (HY-N0448). 10-Gingerol is an AMPK agonist, which is found in the ginger oleoresin from fresh rhizome with anti-inflammatory, antioxidant and anti-proliferative activities. 10-Gingerol suppresses neointimal hyperplasia and inhibits vascular smooth muscle cell proliferation. 10-Gingerol exhibits substantial scavenging activities with an IC50 value of 10.47 μM against DPPH radical, an IC50 value of 1.68 μM against superoxide radical and an IC50 value of 1.35 μM against hydroxyl radical. 10-Gingerol inhibits the proliferation of MDA-MB-231 tumor cell line with an IC50 of 12.1 μM. 10-Gingerol suppresses the proliferation, migration, invasion, and induced apoptosis through targeting the PI3K/Akt signaling pathway in MDA-MB-231/IR cells. 10-Gingerol can be used in research on various common cancers such as ovarian cancer and colon cancer, as well as colitis and neurodegenerative diseases .
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Cat. No.: HY-P11242
Cm-CATH2 is an antimicrobial peptide discovered from Chelonia mydas. Cm-CATH2 has a potent, broad-spectrum and rapid bactericidal ability by rapidly destroying the integrity of bacterial cell membranes. It shows strong activity against Gram-positive bacteria (such as VREF, Staphylococcus aureus), Gram-negative bacteria (such as Escherichia coli, Klebsiella pneumoniae), and fungi (such as Candida albicans) with MICs ranges from 1.17 to 18.75 μg/mL. Cm-CATH2 is also effective against various aquatic pathogenic bacteria. Cm-CATH2 not only inhibits biofilm formation but can also remove the formed biofilms. Cm-CATH2 has immunomodulatory functions and chemotactic effects on immune cells, and can inhibit the production of pro-inflammatory cytokines by macrophages stimulated by LPS (HY-D1056). Cm-CATH2 prevents the activation of NF-κB by inhibiting the degradation of IκBα, and also inhibits the phosphorylation of MAPK signaling pathways (p38, JNK, ERK). Cm-CATH2 demonstrates strong anti-infective ability in mouse peritonitis models and pneumonia models .
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Cat. No.: HY-W075770
CAS No.: 1313-99-1
Synonyms: Nickel monoxide
Nickel(II) oxide (nickel monoxide) is a chemical warfare agent that can enter the body through the respiratory tract and other routes, distributing to organs such as the lungs and testes. The nanoparticle form of nickel(II) oxide (NiO NPs) exhibits antibacterial, anti-leishmanial, anti-diabetic, and anti-cancer activities. NiO NPs can be activated by ultraviolet and visible light, generating reactive oxygen species (ROS). Nickel(II) oxide induces oxidative stress by generating reactive oxygen species, activating the TGF-β1-mediated MAPK and PI3K/AKT pathways, disrupting the MMPs/TIMPs balance, and upregulating the expression of inflammatory factors (IL-1β, IL-6) and apoptosis-related molecules (Bax, caspase-3, p53), while inhibiting the activity of the anti-apoptotic molecule Bcl-2. Nickel(II) oxide induces cytotoxicity, promotes fibrosis, triggers inflammatory responses, and causes apoptosis. Nickel(II) oxide can be applied in research on the safety assessment of nanomaterials, such as in the context of pulmonary fibrosis and reproductive system toxicity .
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Cat. No.: HY-W509797
CAS No.: 21618-92-8
5-(3',4'-Dihydroxyphenyl)-γ-valerolactone is an intestinal microbiota metabolite of (-)-Epicatechin (HY-N0001). 5-(3',4'-Dihydroxyphenyl)-γ-valerolactone downregulates TNF-α-stimulated phosphorylation of IKK and IκBα, inhibits the transcriptional activation of NF-κB, and suppresses the expression of adhesion molecules and chemokines. 5-(3',4'-Dihydroxyphenyl)-γ-valerolactone promotes autophagy, alleviates oxidative stress, maintains osteoblast differentiation, induces G1 phase arrest, inhibits adipogenesis, and scavenges ABTS free radicals. 5-(3',4'-Dihydroxyphenyl)-γ-valerolactone inhibits the adhesion of uropathogenic Escherichia coli to bladder epithelial cells; when used in combination with Curcumin (HY-N0005), it downregulates the NLRP3 and NOX2/Nrf2 signaling pathways, thereby reducing microglial activation. 5-(3',4'-Dihydroxyphenyl)-γ-valerolactone can be used in research related to diabetes, atherosclerosis, osteoporosis, obesity, neurodegenerative diseases involving microglial activation, and urinary tract infections .
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Cat. No.: HY-W923189
CAS No.: 106-26-3
Neral is a plant-derived anti-inflammatory, antioxidant and anticancer agent. Neral inhibits the phosphorylation of ERK1/2, p38 MAPK and IκB in macrophages induced by LPS (HY-D1056), suppresses the secretion of TNF-α and IL-6, as well as the expression of pro-IL-1β, iNOS and COX-2 in cells, and reduces the production of ROS in cells. Neral inhibits the activation of the NLRP3 inflammasome, and decreases the activation of caspase-1 and the secretion of IL-1β in mouse macrophages. Neral induces autophagy, and exhibits antiproliferative activity both in in vitro breast cancer cell models and mouse xenograft models. Neral regulates brassinosteroid, jasmonic acid and ethylene signaling pathways, and induces the expression of AP2/ERF-ERF and bHLH family genes in rice roots. Neral acts as a herbicide safener, alleviates the damage induced by Fenoxaprop-P-ethyl (HY-B2013), and promotes the elongation of rice roots. Neral can be used in research related to breast cancer, inflammatory and immune system diseases, and herbicide safeners .
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Cat. No.: HY-L133
446 compounds

Copper is an important co-factor of all biological enzymes, but if the concentration exceeds the threshold of maintaining the homeostasis mechanism, copper will lead to cytotoxicity. This death mechanism has been named "Cuproptosis".

The mechanism of cuproptosis distinct from all other known mechanisms of regulated cell death, including apoptosis, pyroptosis, necroptosis, and ferroptosis.

Copper combine with the lipoylated components of the tricarboxylic acid cycle (TCA), leading to lipoylated protein aggregation and subsequent loss of iron-sulfur cluster proteins, ultimately resulting in protein toxicity stress and cell death. Studies have shown that the necessary factors for cuproptosis include the presence of glutathione, mitochondrial metabolism of galactose and pyruvate, and glutamine metabolism.

Targeted regulation of cuproptosis is a potential choice to treat cancer, rheumatoid arthritis, and other diseases. For example, up-regulation of LIPT1 may inhibit the occurrence and development of tumors by destroying TCA in mitochondria and then inducing cuproptosis.

MCE supplies a unique collection of 446 cuproptosis-related compounds, all of which act on the targets or signaling pathways related to cuproptosis and may have in inhibitory or activated effect on cuproptosis. MCE Cuproptosis Library is a useful tool for drug research related to cancer, rheumatoid arthritis, and other diseases.

Cat. No.: HY-109061A
CAS No.: 2411549-88-5
Synonyms: YH25448 mesylate hydrate; GNS-1480 mesylate hydrate
Research Areas:  

Cancer

Lazertinib (YH25448; GNS-1480) mesylate hydrate is an orally active, blood-brain barrier permeable third-generation EGFR tyrosine kinase inhibitor, as well as an ABCB1/ABCG2 inhibitor and a TRPA1 activator. Lazertinib mesylate hydrate exhibits IC50 values of 0.4 mM and 0.2 mM against human ABCB1 and ABCG2, respectively. By inhibiting mutant EGFR signaling, EGFR phosphorylation and the downstream ERK/AKT pathway, as well as upregulating surface expression of EGFR/MET, Lazertinib mesylate hydrate induces cell cycle arrest, apoptosis, spontaneous calcium responses, hyperexcitability of dorsal root ganglion (DRG) neurons, and TRPA1-dependent pain-like behaviors. Lazertinib mesylate hydrate competitively binds to the substrate-binding sites of ABCB1/ABCG2, stimulates their ATPase activity without altering their expression or plasma membrane localization, thereby enhancing ADCC activity, acting as a chemosensitizer, and reversing ABCB1-mediated multidrug resistance. It exerts antitumor activity as a single agent or in combination with other drugs. Lazertinib mesylate hydrate is applicable to research related to non-small cell lung cancer, multidrug-resistant cancers, and paresthesia .
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Cat. No.: HY-13689G
CAS No.: 133053-19-7
Go 6983 GMP is Go 6983 (HY-13689) produced by using GMP guidelines. GMP small molecules works appropriately as an auxiliary reagent for cell therapy manufacture. Go 6983 is a dual inhibitor targeting Suv39h1/2 (KMT1A/KMT1B) and PKC, as well as a transcriptional activator capable of inducing DNA hypomethylation. Go 6983 stimulates the transcription of Prdm14 by reducing Suv39h1/2 protein levels, decreasing histone modifications in the Prdm14 promoter region, and increasing the recruitment of RNA polymerase II. Go 6983 induces genome-wide DNA hypomethylation by inhibiting de novo methyltransferase expression and increasing Tet1/Tet2 levels, thereby promoting self-renewal and pluripotency maintenance of stem cells. Meanwhile, Go 6983 can block PKC-mediated signaling pathways to reduce the expression of EMT-related genes and eliminate the upregulation of antioxidant genes downstream of NRF2. Go 6983 is mainly used in mechanism studies related to myocardial ischemia/reperfusion injury .
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Cat. No.: HY-174469
CAS No.: 3070438-79-5
PROTAC PI3K/110β degrader-2 is a VHL-recruiting PI3K/110β PROTAC degrader, with DC50 values of 1.258 μM and 2.185 μM in MCF-7/ADM and A549/DDP cells, respectively. PROTAC PI3K/110β degrader-2 induces proteasomal degradation of PI3K/110β, inhibits phosphorylation of AKT and expression of Bcl-2, while suppressing the activity and expression of P-gp. It also induces endoplasmic reticulum stress and mitochondrial apoptosis via the PERK/CHOP pathway. PROTAC PI3K/110β degrader-2 exerts anti-tumor activity against multidrug-resistant cancer cells both in vitro and in vivo, and produces a synergistic effect when combined with Doxorubicin (HY-15142A) or Cisplatin (HY-17394), making it applicable for the research of multidrug-resistant cancers .
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Cat. No.: HY-187340
Target:  

c-Kit c-Fms

CSF1R/c-Kit-IN-1 is a CSF-1R and c-Kit inhibitor, with an IC50 of 5.88 nM against human CSF-1R and an IC50 of 1.47 nM against human c-Kit. CSF1R/c-Kit-IN-1 binds to the ATP-binding pocket of CSF-1R, forming a hinge interaction with Cys666 via the oxazole nitrogen atom and adjacent amino group, and binds to residues in the hydrophobic binding pocket. CSF1R/c-Kit-IN-1 binds to the ATP-binding pocket of c-Kit, maintains a hinge interaction through its 2-amino-oxazole core, and binds to a broader hydrophobic surface near the solvent-exposed region via its morpholine substituent. CSF1R/c-Kit-IN-1 inhibits CSF-1-induced phosphorylation of ERK, which is a downstream readout of the CSF-1R signaling pathway. CSF1R/c-Kit-IN-1 can be used in the research of neuroinflammation-related neurodegenerative diseases .
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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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