615 Results for "

Ligand binding

" in MedChemExpress (MCE) Product Catalog:
Products (615)

615 Results for "Ligand binding" in MCE Product Catalog:

Cat. No.: HY-W668775
CAS No.: 871100-12-8
Quin-C7 is an orally active FPR2/ALX antagonist. Quin-C7 binds to the orthosteric ligand-binding pocket of FPR2/ALX, modulates receptor activation, and inhibits pro-inflammatory ERK signaling mediated by serum amyloid A (SAA). Quin-C7 reduces pro-inflammatory mediators TNF-α levels, increases anti-inflammatory IL-10, decreases inflammatory neutrophils and pro-inflammatory M1 macrophages, downregulates ERK1/2 phosphorylation, and upregulates JNK1/2/3 phosphorylation. Quin-C7 blocks FPR2/mFpr2 signaling, reduces brain lesion volume. Quin-C7 can be used for the research of inflammatory bowel disease and neuromyelitis optica spectrum disorder .
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Cat. No.: HY-L150
7,133 compounds

Membrane receptors, also known cell surface receptors or transmembrane receptors, are transmembrane proteins embedded into the plasma membrane which play an essential role in maintaining communication between the internal processes within the cell and various types of extracellular signals. They act in cell signaling by receiving (binding to) extracellular molecules, which are also called ligands. These extracellular molecules include hormones, cytokines, growth factors, neurotransmitters, lipophilic signaling molecules such as prostaglandins, and cell recognition molecules.

There are three kinds of membrane receptors: ion channel-linked receptors, enzyme-linked receptors and G-protein-linked receptors. They play important roles in keeping human normal physiologic processes. GPCRs and ion channels are important drug targets in drug discovery.

MCE provides a unique collection of 7,133 compounds targeting a variety of membrane receptors. MCE Membrane reeptor-targeted Compound Library can be used for membrane receptor-focused screening and drug discovery.

Cat. No.: HY-L016
1,695 compounds

Protein tyrosine kinases (PTKs) are key signaling molecules and important drug targets. Two classes of PTKs are present in cells: the transmembrane receptor PTKs (RTKs) and the nonreceptor PTKs. The RTK family includes the receptors for insulin and for many growth factors, such as EGFR, FGFR, PDGFR, VEGFR, and NGFR. RTKs are transmembrane glycoproteins that are activated by the binding of their ligands, and they transduce the extracellular signal to the cytoplasm by phosphorylating tyrosine residues on the receptors themselves (autophosphorylation) and on downstream signaling proteins. Their principal functions of PTKs involve the regulation of multicellular aspects of the organism. Cell to cell signals concerning growth, differentiation, adhesion, motility, and death are frequently transmitted through tyrosine kinases. In humans, tyrosine kinases have been demonstrated to play significant roles in the development of many disease states, including diabetes and cancers.

MCE designs a unique collection of 1,695 compounds that act as a useful tool for PTKs-related drug screening and disease research.

Cat. No.: HY-P704521
Purity:  ≥ 90%, as determined by reducing SDS-PAGE.
Synonyms: GPR15LG; Antimicrobial Peptide With 57 Amino Acid Residues; Prev. C10orf99; Antimicrobial Peptide-57; GPR15L; Protein GPR15 Ligand; AP-57; Protein GPR15LG; CSBF; Protein GPR15L; Colon-Derived SUSD2 binding Factor; FLJ21763; RLLV1833; Chromosome 10 Open Re
Species:  
Human
Source:  
E. coli
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Cat. No.: HY-158118
CAS No.: 2088426-96-2
Purity:  97.19%
Target:  

DNA-PK

Research Areas:  

Cancer

Lys(CO-C3-p-I-Ph)-OMe is a pharmacokinetic modifier (PK modifier) that can improve the PK properties of PSMA ligand molecules (such as Ac-PSMA-trillium). Lys(CO-C3-p-I-Ph)-OMe can increase the residence time of Ac-PSMA-trillium in plasma by increasing its binding capacity to albumin. Lys(CO-C3-p-I-Ph)-OMe also reduces salivary gland absorption of Ac-PSMA-trillium, potentially extending its half-life. Ac-PSMA-trillium is a suitable PSMA-targeting compound that has different biological applications after modification with different radioactive isotopes. If labeled with 111In, it can be used as DOTA chelating agent and imaging agent. Or labeled with 225Ac as a Macropa chelator for targeted radionuclide therapy (TRT) in the study of metastatic castration-resistant prostate cancer (mCRPC) .
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Cat. No.: HY-E70700
Target:  

EGFR

Research Areas:  

Cancer

EGFR is a driver of tumorigenesis. EGFR is mainly found in an auto-inhibited, dimerization-incompetent, state at the plasma membrane (PM). Ligand binding promotes receptor dimerization, which determines a series of structural rearrangements that are conveyed to the cytoplasmic domain allowing the formation of asymmetric dimers between the two juxtaposed catalytic domains. EGFR has multiple mutants. EGFR d746-750/T790M/C797S/L858R Recombinant Human Active Protein Kinase is a recombinant EGFR d746-750/T790M/C797S/L858R protein that can be used to study EGFR d746-750/T790M/C797S/L858R-related functions .
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Cat. No.: HY-P11642A
Sialorphin TFA is a neutral endopeptidase (NEP) and aminopeptidase N (APN) inhibitor that responds to androgen signals. Sialorphin TFA blocks the degradation of endogenous opioid peptides and interacts with μ-, δ-, κ-opioid receptors. Sialorphin TFA regulates the ERK/mTOR signaling pathway by inducing cell cycle arrest, enhancing ERK1/2 activity, and reducing the phosphorylation levels of mTOR, 4E-BP1, p70S6K; accordingly, Sialorphin TFA exhibits antiproliferative activity against colorectal cancer, glioma and prostate cancer cells without cytotoxicity. In addition, Sialorphin TFA also produces antinociceptive responses, regulates sexual behavior, relaxes corpus cavernosum smooth muscle, and alleviates experimental colitis. Sialorphin TFA is also a copper (II) ion-binding ligand. Sialorphin TFA has been used in mechanistic studies related to cancer, pain management and inflammatory bowel disease .
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Cat. No.: HY-173033
CAS No.: 2530027-71-3
MI-883 is orally active constitutive androstane receptor (CAR) (EC50 of 73 nM) agonist and pregnane X Receptor (PXR) (IC50 of 100 nM) antagonist. MI-883 binds to CAR and PXR ligand-binding domains, promotes CAR LBD assembly, activates CAR3 variant, stimulates CAR cytoplasmic-nuclear translocation, upregulates CAR target genes, recruits coactivators NCOA1, NCOA2, NCOA3, inhibits basal and agonist-induced PXR activation, downregulates PXR target genes, disrupts PXR-NCOR2 interaction, blocks agonist-mediated PXR-NCOA1 recruitment. MI-883 reduces plasma total cholesterol, LDL cholesterol, and hepatic free cholesterol levels, increases fecal bile acid excretion, regulates genes involved in xenobiotic metabolism, cholesterol homeostasis, and bile acid homeostasis. MI-883 exhibits metabolic stability, liver-predominant distribution, a safety profile with no observed toxicity, and does not stimulate human hepatocyte hypertrophy or hyperplasia. MI-883 can be used for the research of diet-induced hypercholesterolemia .
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Cat. No.: HY-L166
1,751 compounds

Ion channel is a membrane-binding enzyme whose catalytic site is an ion conduction pore, which is opened and closed in response to specific environmental stimuli (voltage, ligand concentration, membrane tension, temperature, etc.). Ion channel provide pores for the passive diffusion of ions on the biofilm. Due to their high selectivity for ion, ion channel are generally classified as sodium (Na+ ), potassium (K+ ), calcium (Ca2+ ), chloride (Cl- ), and non-specific cation channel. Ion channel is an important contributor to cell signal transduction and homeostasis. In addition to electrical signal transduction, ion channel also have many functions: regulating vascular smooth muscle contraction, maintaining normal cell volume, regulating glandular secretion, protein kinase activation, etc. Therefore, dysfunction of ion channel can lead to many diseases, and its mechanism research is particularly important.

MCE designs a unique collection of 1,751 small molecules related to ion channel, mainly targeting Na+ channel, K+ channel, Ca2+ channel, GABA receptor, iGluR, etc. It is an essential tool for research of cardiovascular diseases, Nervous system diseases and other diseases.

Cat. No.: HY-179560
Research Areas:  

Cancer

PMV6-PEG4-BI2536 is an RIPTAC-like bifunctional molecule that promotes the formation of the p53 Y220C-PLK1 ternary complex (EC50 = 1.4 μM). PMV6-PEG4-BI2536 causes PLK1 mislocalization and inhibits PLK1 activity, inducing G2/M phase arrest and apoptosis in p53 Y220C-mutant cells, while sparing cells with wild-type TP53. PMV6-PEG4-BI2536 can be used in research on uterine, gastric, pancreatic, prostate, and breast cancers harboring the p53 Y220C mutation. PMV6-PEG4-BI2536 is composed of PMV6 (a p53 Y220C mutant-binding ligand), PEG4 (a linker), and BI2536 (HY-159493) (a PLK inhibitor) .
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Cat. No.: HY-L018
458 compounds

The transforming growth factor beta (TGF-β) signaling pathway is involved in many cellular processes in both the adult organism and the developing embryo including cell growth, cell differentiation, apoptosis, cellular homeostasis and other cellular functions. The TGF-β superfamily comprises TGF-βs, bone morphogenetic proteins (BMPs), activins and related proteins. Signaling begins with the binding of a TGF beta superfamily ligand to a TGF beta type II receptor. The type II receptor is a serine/threonine receptor kinase, which catalyzes the phosphorylation of the Type I receptor. The type I receptor then phosphorylates receptor-regulated SMADs (R-SMADs) which can now bind the coSMAD (e.g. SMAD4). R-SMAD/coSMAD complexes accumulate in the nucleus where they act as transcription factors and participate in the regulation of target gene expression. Deregulation of TGF-β signaling contributes to developmental defects and human diseases, including cancers, some bone diseases, chronic kidney disease, etc.

MCE designs a unique collection of 458 TGF-beta/Smad signaling pathway compounds. TGF-beta/Smad Compound Library acts as a useful tool for TGF-beta/Smad-related drug screening and disease research.

Cat. No.: HY-134483
CAS No.: 851375-22-9
Target:  

5-HT Receptor

Research Areas:  

Neurological Disease

5-HT7/5-HT2A receptor antagonist 1 is a high-affinity, orally active, brain-penetrant 5-HT7 and 5-HT2A receptor ligand having a pKi = 8.1 at both receptors. 5-HT7/5-HT2A receptor antagonist 1 behaves as an antagonist in an in vitro functional assay for 5-HT2A and as an inverse agonist in an in vitro functional assay for 5-HT7. 5-HT7/5-HT2A receptor antagonist 1 blockade of 5-Carboxamidotryptamine (5-CT) (HY-135555) induced hypothermia in rats, and blockade of 2,5-dimethoxy-4-iodoamphetamine (DOI) induced head-twitches in mice. 5-HT7/5-HT2A receptor antagonist 1 occupied 5-HT2A receptor binding sites in the frontal cortex of the rat brain. 5-HT7/5-HT2A receptor antagonist 1 can be used for the study of Neurological diseases .
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Cat. No.: HY-L918
317 compounds

Targeted Protein Degradation (TPD) is a novel and promising approach to drug development. It shows great potential for targeting proteins traditionally considered "undruggable" due to the lack of enzymatic function and absence of binding sites by tagging them for degradation or recruiting natural degradation mechanisms.

Molecular glues are a type of small-molecule degraders that primarily induce novel interactions between E3 ubiquitin ligases and target proteins, forming ternary complexes that lead to protein ubiquitination and subsequent proteasomal degradation. Compared with PROTACs, molecular glues generally have lower molecular weights, higher cell permeability, and better drug-like properties. Additionally, the design of molecular glues is relatively simple, without the requirements for complex linkers and ligand optimization. As a result, molecular glues have gradually emerged as a promising therapeutic approach for various diseases.

Multiple types of molecular glues have been reported previously. Analysis of co-crystal complex structures reveals that CRBN-related molecular glues are more versatile. Therefore, MCE researchers select active molecules related to these targets as probes for artificial intelligence (AI) screening.Subsequently, molecular docking technology was used to verify whether the screened molecules retained the key pharmacophore features. Ultimately, we obtained 317 molecular glue analogs, and these compounds serve as powerful tools for the research of molecular glues.

Cat. No.: HY-112288R
CAS No.: 432001-19-9
Synonyms: TTI-101 (Standard)
C188-9 (Standard) is the analytical standard of C188-9 (HY-112288). This product is intended for research and analytical applications. C188-9 (TTI-101) is a STAT3 inhibitor with a Kd value of 4.7 nM. C188-9 targets the SH2 domain of STAT3, blocks the processes of STAT3 ligand binding, receptor recruitment, homodimerization and phosphorylation, and regulates STAT3-mediated genes associated with tumorigenesis and radioresistance. C188-9 regulates STAT1-mediated genes related to radioresistance and reduces the activation level of STAT1. C188-9 downregulates the expression of DNMT1, enhances DAC-induced demethylation and re-expression of RASSF1A, and simultaneously potentiates the anti-tumor effect of DAC on pancreatic cancer cells. C188-9 inhibits both anchorage-dependent and anchorage-independent growth of cancer cells, induces Apoptosis, blocks the growth of tumor xenografts, and suppresses muscle atrophy. C188-9 maintains muscle mass, increases body weight and improves grip strength in tumor-bearing mice. C188-9 can be used in research related to head and neck squamous cell carcinoma, pancreatic cancer, sepsis-related skeletal muscle wasting, non-small cell lung cancer, acute myeloid leukemia and cancer cachexia .
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Cat. No.: HY-L913
105 compounds

Recently, significant advancements in tyrosine-targeting electrophiles have primarily occurred in the field of protein-protein interactions (PPIs), where cysteine residues are often underrepresented and novel chemistries are needed to address these interfaces. In this context, tyrosines are frequently more accessible compared to more buried binding sites. Moreover, they are commonly found at "hot spots," which are functional epitopes of PPIs, with 12.3% of the residues consisting of tyrosines. This prevalence is likely due to the hydrophobic nature of tyrosine, its ability to participate in aromatic π-interactions, and its capacity for hydrogen bonding. Beyond PPIs, some progress has also been made in covalent tyrosine targeting in other areas where more commonly addressed side chains are lacking. Even though tyrosine has a slightly lower pKa value compared to the protonated lysine side chain (approximately 10 vs. 10.5 for the unprotected amino acid side chains), significantly less progress has been made in the development of tyrosine-targeted covalent ligands compared to lysine. This is likely due to the reduced flexibility of the tyrosine side chain and the greater steric hindrance of its hydroxy group, which makes it more challenging to adopt suitable reaction geometries.

Through careful selection, we constructed a structural filter containing over 110 electrophilic groups. By analyzing the electrophilic fragments selected by the structural filter, we removed any molecules with trivial or undesirable structural features. Ultimately, we obtained 124 fragment molecules which can target tyrosine residue and can be used for fragment-based covalent drug discovery.