17 Results for "

accessibility

" in MedChemExpress (MCE) Product Catalog:
Products (17)

17 Results for "accessibility" in MCE Product Catalog:

6
6 Cited Publications
Cat. No.: HY-147214
CAS No.: 2648450-42-2
Purity:  99.54%
Target:  

YAP

Research Areas:  

Cancer

GNE-7883 is a pan-TEAD inhibitor that blocks the association of YAP/TAZ with TEAD. GNE-7883 effectively reduces chromatin accessibility at TEAD motifs, inhibits cell proliferation in multiple cell line models, and achieves strong anti-tumor efficacy in vivo. In addition, GNE-7883 effectively overcomes intrinsic and acquired resistance to KRAS (Kirsten rat sarcoma viral oncogene homolog) G12C inhibitors in multiple preclinical models by inhibiting YAP/TAZ activation .
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Cat. No.: HY-159607
CAS No.: 2755761-78-3
Target:  

PROTACs SWI/SNF Complex

Research Areas:  

Cancer

PRT3789 is a selective SMARCA2 PROTAC degrader (DC50 in HeLa cell: 0.72 nM for SMARCA2, 14 nM for SMARCA4). PRT3789 forms a stable ternary complex with Von Hippel-Lindau (VHL) E3 ligase, induces polyubiquitination at SMARCA2-specific lysine residues, and drives proteasome-dependent SMARCA2 degradation. PRT3789 disrupts SWI/SNF chromatin remodeling complex integrity, induces dissociation of specific subunits, suppresses oncogenic gene expression, reduces chromatin accessibility, and upregulates antigen processing/presentation-related gene expression. PRT3789 induces synthetic lethality, inhibits proliferation and colony formation, and drives tumor growth inhibition and regression in SMARCA4-deficient contexts. PRT3789 can be used for the research of SMARCA4-mutated solid tumors, non-small cell lung cancer, endometrial cancer, colorectal cancer, bladder cancer, esophageal cancer, ovarian cancer, and gastric cancer .
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Cat. No.: HY-153361
CAS No.: 2951015-29-3
Purity:  98.80%
Target:  

PROTACs SWI/SNF Complex

Research Areas:  

Inflammation/Immunology Cancer

YD23 is a selective SMARCA2 PROTAC degrader with DC50 values of 64 nM and 297 nM in H1792 cells and H1975 cells. YD23 induces degradation of SMARCA2, which is synthetic lethal to SMARCA4. YD23 reduces chromatin accessibility only in SMARCA4 deficient cells, including cell cycle and cell growth regulatory genes. YD23 selectively inhibits growth of SMARCA4 mutant lung cancer cells. YD23 has potent tumor growth inhibitory activity in SMARCA4-mutant xenografts. YD23 can be used for the study of non-small cell lung cancer (NSCLC) .
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Cat. No.: HY-W012472
CAS No.: 717-74-8
1,3,5-Triisopropylbenzene is a symmetric aromatic hydrocarbon compound. 1,3,5-Triisopropylbenzene serves as a saturated crosslinker to participate in the "inverse vulcanization" reaction of elemental sulfur. 1,3,5-Triisopropylbenzene acts as a probe molecule to evaluate the external surface acidity and accessibility of zeolite materials. 1,3,5-Triisopropylbenzene is also used as fuel and fuel additive, lubricant and lubricant additive, as well as micelle swelling agent .
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Cat. No.: HY-141551
CAS No.: 2369048-69-9
Purity:  98.00%
Target:  

Estrogen Receptor/ERR

Research Areas:  

Cancer

GNE-274 is a structural analog of the ER degrader GDC-0927 and is a non-degrader. GNE-274 does not induce conversion of ER in breast cancer cell lines and functions as a partial ER agonist (partial ER agonist). GNE-274 increases the chromatin accessibility of ER-DNA binding sites, whereas GDC-0927 does not. GNE-274 is an effective ER ligand binding domain (LBD) inhibitor. GNE-274 can be used in cancer research.
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Cat. No.: HY-L912V0
10,000,000 compounds
With MCE's 40,662 BBs, covering around 273 reaction types, more than 40 million molecules were generated. Compounds which comply with Ro5 criteria were selected. Inappropriate chemical structures, such as PAINS motifs and synthetically difficult accessible, were removed. Based on Morgan Fingerprint, molecular clustering analysis was carried out, and molecules close to each clustering center were extracted to form this drug-like and synthesizable diversity library. These selected molecules have 805,822 unique Bemis-Murcko Scaffolds (BMS) with diversified chemical space. This library is highly recommended for AI-based lead discovery, ultra-large virtual screening and novel lead discovery.
Cat. No.: HY-L912V
10,000,000 compounds
With MCE's 40,662 BBs, covering around 273 reaction types, more than 40 million molecules were generated. Compounds which comply with Ro5 criteria were selected. Inappropriate chemical structures, such as PAINS motifs and synthetically difficult accessible, were removed. Based on Morgan Fingerprint, molecular clustering analysis was carried out, and molecules close to each clustering center were extracted to form this drug-like and synthesizable diversity library. These selected molecules have 805,822 unique Bemis-Murcko Scaffolds (BMS) with diversified chemical space. This library is highly recommended for AI-based lead discovery, ultra-large virtual screening and novel lead discovery.
Cat. No.: HY-L910V
50,000 compounds
MegaUni 50K Virtual Diversity Library consists of 50,000 novel, synthetically accessible, lead-like compounds. With MCE's 40,662 Building Blocks, covering around 273 reaction types, more than 40 million molecules were generated. Based on Morgan Fingerprint and Tanimoto Coefficient, molecular clustering analysis was carried out, and molecules closest to each clustering center were extracted to form a drug-like and synthesizable diversity library. The selected 50,000 drug-like molecules have 46,744 unique Bemis-Murcko Scaffolds (BMS), each containing only 1-3 compounds. This diverse library is highly recommended for virtual screening and novel lead discovery.
Cat. No.: HY-181421
CAS No.: 2929223-36-7
Target:  

SF3B1

Research Areas:  

Cancer

WX-02-43 is a weak covalent inhibitor of SF3B1, and is the (1S,3R) enantiomer of WX-02-23 (HY-168534). WX-02-43 cannot effectively covalently modify the C258 site in the DNA-binding domain of FOXA1, and its inhibitory activity against SF3B1 is also weaker than that of WX-02-23. WX-02-43 serves as a negative control probe that fails to remodel the chromatin binding pattern and transcriptional activity of FOXA1. WX-02-43 can be used in studies on cancers such as prostate cancer to verify the specific effects of WX-02-23 on FOXA1 and SF3B1 targets .
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Cat. No.: HY-183022
CAS No.: 896465-45-5
Research Areas:  

Others

1-(3-Azidopropyl)-1H-pyrrole-2,5-dione is a maleimide derivative with a 3-azidopropyl substituent, used to introduce an azide functional group to bovine serum albumin (BSA). 1-(3-Azidopropyl)-1H-pyrrole-2,5-dione reacts with the free, solvent-accessible thiol group of BSA to produce azide-functionalized BSA, which is used in click chemistry to form a TLL-BSA hetero-dimer .
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Cat. No.: HY-182057
CAS No.: 3111011-76-5
Research Areas:  

Cancer

ALK degrader 4 is a ALK HyT degrader with an IC50 of 0.74 nM. ALK degrader 4 inhibits ALK kinase activity, increases the solvent-accessible surface area of hydrophobic residues near the ALK binding pocket, promotes ALK to form a partially unfolded conformation, and induces proteasomal degradation of ALK. ALK degrader 4 inhibits cancer cell proliferation. ALK degrader 4 can be used in research related to non-small cell lung cancer (ALK ligand: Brigatinib (HY-12857); hydrophobic tag: Norbornene (HY-W013021)) .
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Cat. No.: HY-182087
Research Areas:  

Cancer

ALK degrader 3 is a ALK HyT degrader with an IC50 of 1.2 nM. ALK degrader 3 inhibits ALK kinase activity, increases the solvent-accessible surface area of hydrophobic residues near the ALK binding pocket, promotes ALK to form a partially unfolded conformation, and drives ALK degradation via the proteasomal pathway. ALK degrader 3 inhibits the proliferation of tumor cells. ALK degrader 3 can be used for the research of non-small cell lung cancer. (ALK ligand: Brigatinib (HY-12857); hydrophobic tag: Tetraasterane (HY-W1139353)) .
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Cat. No.: HY-182702
CAS No.: 1214405-38-5
Target:  

TREM receptor Syk

Research Areas:  

Neurological Disease

As48 is a selective TREM2 agonist with a KD value of 12.48 μM in TRIC binding assay. As48 binds near the TREM2 cleavage region, forms hydrogen bonds with Gly68, reduces conformational flexibility in regions 58-102, restricts protease accessibility to the cleavage site. As48 activates SYK phosphorylation, enhances microglial phagocytosis, and induces downstream calcium signaling in TREM2-expressing cells. As48 inhibits TREM2 ectodomain shedding without affecting ADAM10/17 protease activities. As48 can be used for the research of Alzheimer's disease .
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Cat. No.: HY-L932V0
2,000,000 compounds

Macrocyclic compounds (≥12-atom cyclic small molecules/peptides) have unique physicochemical properties. They form preorganized conformations with high binding affinity/selectivity, target traditional small-molecule-inaccessible proteins, and bridge small-molecule drugs and biological agents. As key protein phosphorylation enzymes, kinases are linked to tumors, COPD, etc., and are critical therapeutic targets. Traditional small-molecule kinase inhibitors lack selectivity, causing off-target toxicity, low bioavailability, and acquired resistance. Macrocycles’ semi-rigid structure restricts conformations, boosts binding selectivity, optimizes pharmacokinetics, and makes macrocyclization a core kinase inhibitor optimization strategy.

Thousands of bioactive macrocycles were curated from ChEMBL. Via Transformer, macrocyclization was converted into a chemical language translation task, enabling end-to-end macrocycle generation from linear precursors with simplified inputs. Macformer achieves efficient, automated linear molecule macrocyclization via deep learning; generated macrocycles have diversity, novelty, biocompatibility, and cover broader chemical space.

MCE collected thousands of marketed/clinical kinase inhibitors, using their fragments for macrocyclization to generate derivatives. After evaluating synthetic accessibility and physicochemical properties, a million-scale virtual macrocyclic library was built for kinase-related virtual and AI-driven screening.

Cat. No.: HY-L932V
2,000,000 compounds

Macrocyclic compounds (≥12-atom cyclic small molecules/peptides) have unique physicochemical properties. They form preorganized conformations with high binding affinity/selectivity, target traditional small-molecule-inaccessible proteins, and bridge small-molecule drugs and biological agents. As key protein phosphorylation enzymes, kinases are linked to tumors, COPD, etc., and are critical therapeutic targets. Traditional small-molecule kinase inhibitors lack selectivity, causing off-target toxicity, low bioavailability, and acquired resistance. Macrocycles’ semi-rigid structure restricts conformations, boosts binding selectivity, optimizes pharmacokinetics, and makes macrocyclization a core kinase inhibitor optimization strategy.

Thousands of bioactive macrocycles were curated from ChEMBL. Via Transformer, macrocyclization was converted into a chemical language translation task, enabling end-to-end macrocycle generation from linear precursors with simplified inputs. Macformer achieves efficient, automated linear molecule macrocyclization via deep learning; generated macrocycles have diversity, novelty, biocompatibility, and cover broader chemical space.

MCE collected thousands of marketed/clinical kinase inhibitors, using their fragments for macrocyclization to generate derivatives. After evaluating synthetic accessibility and physicochemical properties, a million-scale virtual macrocyclic library was built for kinase-related virtual and AI-driven screening.

Cat. No.: HY-L913
104 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.

Cat. No.: HY-L936V0
11412 compounds

Molecular Glue Virtual Library is constructed using generative AI technology, integrating the structural features, activity data of known molecular glues, and interaction information of ternary complexes (target protein-E3-molecular glue). Endowed with structural novelty, drug-likeness, diversity and synthesizability, it is applicable to molecular glue-based AI drug screening and large-scale virtual screening.

MCE builds this library based on high-quality molecular building blocks by virtue of robust computing power, coupled with rigorous reaction rules and optimized compound generation strategies. To ensure library quality, molecules with high synthetic difficulty, poor drug-likeness, PAINS and other undesirable molecules are excluded first. Subsequently, scaffold-based compound analysis is performed to screen drug-like diverse molecules for synthesizability evaluation; those with excessively high synthetic difficulty are removed, ultimately forming a large-scale molecular glue virtual library with structural diversity, synthesizability and drug-likeness.

Compounds in the library can be synthesized in only 1-2 chemical reaction steps. With MCE’s experienced chemical synthesis team, custom synthesis of different scales from milligram to kilogram can be easily achieved to meet diverse customer needs.

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