20 Results for "

Macrocycle

" in MedChemExpress (MCE) Product Catalog:
Products (20)

20 Results for "Macrocycle" in MCE Product Catalog:

5
5 Cited Publications
Cat. No.: HY-111999A
CAS No.: 2242635-03-4
Purity:  99.48%
Target:  

STING

Research Areas:  

Cancer

E7766 diammonium salt is a macrocycle-bridged STING agonist with a Kd of 40 nM. E7766 diammonium salt shows potent pan-genotypic and antitumor activities .
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4
4 Cited Publications
Cat. No.: HY-15591A
Purity:  99.82%
Target:  

HCV

Research Areas:  

Infection

TMC647055 (Choline salt) is a potent nonnucleoside NS5B polymerase inhibitor of HCV replication. TMC647055 Choline salt has potent HCV combine activity with an IC50 value of 82 nM. TMC647055 Choline salt can be used for the research of Hepatitis C virus (HCV) .
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2
2 Cited Publications
Cat. No.: HY-P4210
CAS No.: 1451199-98-6
Synonyms: ALRN-6924; MP-4897
Target:  

MDM-2/p53

Research Areas:  

Cancer

Sulanemadlin (ALRN-6924) is a potent and cell-permeating p53-based peptidomimetic macrocycles. Sulanemadlin is a inhibitor of the p53-MDM2, p53-MDMX, or both p53 and MDM2 and MDMX protein-protein interactions. Sulanemadlin can be used for cancers research .
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Cat. No.: HY-111999B
CAS No.: 2242636-28-6
Target:  

STING

Research Areas:  

Cancer

E7766 disodium is a macrocycle-bridged STING agonist with a Kd of 40 nM. E7766 disodium shows potent pan-genotypic and antitumor activities .
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Cat. No.: HY-P3566
CAS No.: 494750-52-6
Research Areas:  

Others

(D-Lys16)-ACTH (1-24) (human, bovine, mouse, ovine, porcine, rabbit, rat) is the reaction product with gadolinium tetraazacyclododecanetriacetate derivative. (D-Lys16)-ACTH (1-24) (human, bovine, mouse, ovine, porcine, rabbit, rat) involves in preparation of tetraazacyclododecane macrocycle metal complexes for production of conjugates with biomolecules and for use as NMR contrast agents, radiodiagnostic agents and for radioresearch .
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Cat. No.: HY-19932
CAS No.: 1193902-95-2
Target:  

HCV Protease HCV

Research Areas:  

Infection

MK-2748 is a hepatitis C virus (HCV) NS3/4a protease inhibitor. MK-2748 exhibits broad-spectrum and potent antiviral activity, with nanomolar-level activity against all genotypes (gt1a-gt6) (IC₅₀ < 0.115 nM), showing only slightly weaker activity against gt3a (1.212 nM), and maintaining high inhibitory activity against drug-resistant mutant strains such as gt1b R155K (IC₅₀ = 0.032 nM) and D168Y (IC₅₀ = 0.057 nM). MK-2748 can be used in the research of HCV infection .
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Cat. No.: HY-15591
CAS No.: 1204416-97-6
Target:  

HCV

Research Areas:  

Infection

TMC647055 is a potent nonnucleoside NS5B polymerase inhibitor of HCV replication. TMC647055 has potent HCV combine activity with an IC50 value of 82 nM. TMC647055 can be used for the research of Hepatitis C virus (HCV) .
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Cat. No.: HY-161571
CAS No.: 3032733-17-5
Target:  

LRRK2

Research Areas:  

Neurological Disease

LRRK2-IN-13 (Compound 13) is an inhibitor of LRRK2 (IC50=0.57 nM). LRRK2-IN-13 has brain penetrating properties .
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Cat. No.: HY-151738
CAS No.: 1935981-35-3
Target:  

ADC Linkers

Research Areas:  

Others

Fmoc-Aeg(N3)-OH is a click chemistry reagent containing an Azide. Alkylating the Nitrogen of an amide bond results in peptoid structures, which leads to conformational restrains, like N-methylation and allows backbone derivatisation. Altering cytotoxicity, bacterial cell selectivity and receptor pharmacology through formation of peptoid derivatives have been published for Cilengitide, Piscidin 1, and MC3, MC4 and MC5 receptor agonist. This building block enables design of macrocycles through intermolecular crosslinking or backbone stabilization through intermolecular ring-closure. This compound is a potential building block for the construction of (customized) peptide nucleic acids (PNAs) and for peptoid synthesis . Fmoc-Aeg(N3)-OH is a click chemistry reagent, it contains an Azide group and can undergo copper-catalyzed azide-alkyne cycloaddition reaction (CuAAc) with molecules containing Alkyne groups. It can also undergo strain-promoted alkyne-azide cycloaddition (SPAAC) reactions with molecules containing DBCO or BCN groups.
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Cat. No.: HY-146152
CAS No.: 2052968-88-2
Target:  

Others

Research Areas:  

Others

ASGPR modulator-1 (Compound 5TJX) is a macrocycle compound that can be uesd for protein-protein interaction study .
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Cat. No.: HY-155184
A3AR agonist 2 (Compound 19) a selective A3AR agonist (Ki: 22.1 nM). A3AR agonist 2 stimulates β-arrestin2 recruitment, with EC50 value of 4.36 nM. A3AR agonist 2 can be used for research of inflammatory diseases, ischemia, cancer, neuropathic pain, liver diseases, and other chronic conditions . A3AR agonist 2 is a click chemistry reagent, it contains an Alkyne group and can undergo copper-catalyzed azide-alkyne cycloaddition (CuAAc) with molecules containing Azide groups.
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Cat. No.: HY-161463
CAS No.: 3025006-64-5
Target:  

CDK

Research Areas:  

Cancer

CDK2-IN-28 (compound 22) is a CDK2 inhibitor with good selectivity and cellular effects against other CDKs. CDK2-IN-28 has anti-proliferative effects on MKN1 cells (EC50: 0.31 μM) .
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Cat. No.: HY-L0116V
1,065 compounds

Macrocycles are promising scaffolds for the design of novel RNA targeting molecules. This collection of macrocycles for RNA consists of very diverse, drug-like molecules which incorporate certain known RNA-recognition elements (e.g. nucleobase ring systems and analogs) distributed within macrocyclic rings or peripheral fragments. As macrocyclic molecules tend to be larger than traditional screening molecules, it is vital to carefully assess and control their physicochemical properties. All macrocycles have been tested for aqueous and DMSO solubility with cutoffs applied at 10 mM in DMSO and 50 µM in PBS (pH 7.4); PAMPA permeability has also been tested for representative set of macrocycles.

Cat. No.: HY-L0115V
10,091 compounds

ASINEX has elaborated a library of diverse macrocycles using an effective tool box of synthetic methods. The resulting scaffolds are novel, tremendously diverse, medchem-relevant, macrocyclic frameworks.

Macrocyles tend to be larger than traditional screening molecules which make them perfect discovery tools for targets with shallow or extended binding sites. At the same time, their unique character based on restricted flexibility and ability to form intra-molecular hydrogen bonds allows for design approaches effectively optimizing properties such asaqueous solubility and membrane permeability. Many of these macrocycles have been tested for aqueous and DMSO solubility with cut-offs applied at 10 mM in DMSO and 50 µM in PBS (pH 7.4) followed by PAMPA permeability assay.

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-L0118V
942 compounds

A unique set of molecules containing mild electrophilic moieties that covalently interact with amino acid residues in the target protein. The diversity of our compounds for covalent drug discovery ranges from natural product-like scaffolds to macrocycles, creating multiple opportunities in hit generation for a selected target.

Cat. No.: HY-L041
459 compounds

Macrocycles, molecules containing 12-membered or larger rings, are receiving increased attention in small-molecule drug discovery. The reasons are several, including providing access to novel chemical space, challenging new protein targets, showing favorable ADME- and PK-properties. Macrocycles have demonstrated repeated success when addressing targets that have proved to be highly challenging for standard small-molecule drug discovery, especially in modulating macromolecular processes such as protein–protein interactions (PPI). Otherwise, the size and complexity of macrocyclic compounds make possible to ensure numerous and spatially distributed binding interactions, thereby increasing both binding affinity and selectivity.

MCE offers a unique collection of 459 macrocyclic compounds which can be used for drug discovery for high throughput screening (HTS) and high content screening (HCS). MCE Macrocyclic Compound Library is a useful tool for discovering new drugs, especially for “undruggable” targets and protein–protein interactions.

Cat. No.: HY-L0122V
1,122 compounds
Several CNS multi-parameter scoring approaches have been reported: CNS-MPO, CNS-MPO V.2, CNS-TEMPO, which suggesting an algorithm to predict CNS-ike properties of new chemical entities. We have applied these scoring algorithms to select macrocycles satisfying multiple cut-offs and structural desirability criteria. The resulting set consists of 1,122 macrocyclic compounds with CNS-MPO > 4, CNS-MPO.v2 > 4, and CNS-TEMPO < 4 for CNS-related drug discovery and research.
Cat. No.: HY-L0117V
1,412 compounds

Glycomimetics are designed to mimic the structure of natural carbohydrates and modulate their disease-related functions. Macrocyclic glycomimetics are an extremely interesting class of glycomimetics as they occupy space between small and macro molecules. Macrocyclic glycomimetics are mostly represented by naturally occurring molecules derived from marine microorganisms and bacterial or fungal metabolites.

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