19 Results for "

Lead optimization

" in MedChemExpress (MCE) Product Catalog:
Products (19)

19 Results for "Lead optimization" in MCE Product Catalog:

Cat. No.: HY-153021
CAS No.: 326879-46-3
Purity:  ≥98.0%
Target:  

Parasite

Research Areas:  

Infection

NMT-IN-1 is a Trypanosoma brucei N-myristoyltransferase (TbNMT) inhibitor, with an IC50 of 31 μM against TbNMT and an IC50 of 66 μM against hNMT. As a thiazolidinone hit compound identified via virtual screening, NMT-IN-1 exerts enzymatic inhibitory effects by binding to the active site of TbNMT. NMT-IN-1 adopts a binding mode distinct from that of pyrazole sulfonamide inhibitors and can inhibit the myristoyl transfer reaction catalyzed by TbNMT. NMT-IN-1 is mainly used in the research of anti-parasitic lead compounds for human African trypanosomiasis (African sleeping sickness). It provides a structural basis for the subsequent optimization of TbNMT inhibitors with high activity, high selectivity and blood-brain barrier permeability .
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Cat. No.: HY-116497
CAS No.: 1627843-95-1
Target:  

FAK

Research Areas:  

Cancer

PH11 is a novel focal adhesion kinase (FAK) inhibitor that rapidly induces apoptosis in TRAIL-resistant PANC-1 cells when combined with TRAIL, but has no effect on normal human fibroblasts. The study found that PH11 downregulates c-FLIP through inhibition of FAK and phosphatidylinositol-3-kinase (PI3K)/AKT pathways, thereby restoring the TRAIL apoptotic pathway, suggesting that this combination therapy may provide an attractive therapeutic strategy for the safe and effective treatment of pancreatic cancer. PH11 selectively inhibits c-FLIP expression by modulating upstream signaling pathways and may represent an innovative therapeutic strategy. Although further work is needed to fully elucidate the mechanism of PH11-induced TRAIL sensitization, we believe that our results will provide a new approach to target c-FLIP without the risk of interfering with caspase-8 processing, which could potentially lead to TRAIL resistance. This study also suggests a role for the FAK/AKT signaling pathway in regulating c-FLIP expression in TRAIL-induced apoptosis, and this understanding will provide important clues to control the resistance mechanism to optimize the potential of TRAIL-based pancreatic cancer treatment.
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Cat. No.: HY-147702
CAS No.: 2512200-83-6
Target:  

Prion Protein

Research Areas:  

Infection Neurological Disease

BB 0305179 (compound 59) is a potent anti-prion agent, with an IC50 of 4.7 μM. BB 0305179 inhibits the toxicity of a specific PrP mutant carrying a deletion in the hydrophobic domain . BB 0305179 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-179018
Topoisomerase II-IN-25 (Compound 6a) is a selective inhibitor of topoisomerase II and has no inhibitory activity on topoisomerase I. Topoisomerase II-IN-25 exhibits significant anti-PC-3 cell activity. Topoisomerase II-IN-25 significantly increases intracellular ROS levels, inducing oxidative stress. Topoisomerase II-IN-25 causes depolarization of mitochondrial membrane potential and promotes cell apoptosis. Topoisomerase II-IN-25 blocks PC-3 cells in the G2/M phase. Topoisomerase II-IN-25 can be used for the study of prostate cancer .
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Cat. No.: HY-143499
CAS No.: 2581113-51-9
Target:  

Monoamine Oxidase

Research Areas:  

Neurological Disease

hMAO-B-IN-3 (Compound 15) is a potent inhibitor of hMAO-B with an IC50 of 47.4 nM. hMAO-B-IN-3 is playing favourable agent-like properties and a broad safety window. hMAO-B-IN-3 is thus a suitable candidate for lead optimization and the development of multitarget-directed ligands .
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Cat. No.: HY-175639
ALR2-IN-8 is a potent aldose reductase (ALR2/AKR1B1) inhibitor with a KI of 7.34 nM. ALR2-IN-8 has extremely low toxicity to normal cells and has a weak direct killing effect on cancer cells. ALR2-IN-8 can used for the studies of diabetic and inflammation-linked disorders .
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Cat. No.: HY-145432
CAS No.: 2747100-02-1
Target:  

PI3K

Research Areas:  

Cancer

PI3K-IN-28 (Compound 6c) is a potent inhibitor of PI3K. PI3K-IN-28 displays the most potent activity with lower toxic effects on MCF-10a. PI3K-IN-28 displays half-maximal inhibitory concentration (IC50, μM) values of 5.8, 2.3, and 7.9. PI3K-IN-28 is the most potent one with a selectivity index (SI) of 39 and is considered as a latent lead for further optimization of anticancer agents .
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Cat. No.: HY-L0096V
1,400,000 compounds
Vitas-M Screening Compounds Library (stock) contains about 1,400,000 chemical substances. They are synthetic small molecule organic compounds for biological screening and lead optimization. Select any number of items as a "cherry pick".
Cat. No.: HY-182449
CAS No.: 2647503-59-9
Target:  

Bcl-2 Family

Research Areas:  

Cancer

CCT365386 is a BCL6 inhibitor. CCT365386 serves as an optimized lead compound for cell-active BCL6 degraders (including CCT369260 (HY-129188)). CCT365386 can be used in the research of B-cell lymphoma .
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Cat. No.: HY-181140
CAS No.: 116764-24-0
Target:  

CDK PARP

Research Areas:  

Cancer

UNPD139734 is a CDK-1 inhibitor and PARP-1 inhibitor that forms stable complexes with each target protein. UNPD139734 serves as a lead compound for structural optimization to develop dual-target anticancer agents targeting CDK-1 and PARP-1. UNPD139734 can be used for the research of breast cancer .
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Cat. No.: HY-18746
CAS No.: 1513879-18-9
Target:  

Parasite PI4K

Research Areas:  

Infection

KAI-407 is an orally active inhibitor of Plasmodium PI4K kinase, which can broadly inhibit multiple stages of the parasite lifecycle. KAI-407 exhibits EC50s of for the blood stage of malignant Plasmodium of 81 nM; for the liver schizonts of P. yoelii of 88 nM; and IC50s for the liver schizonts and dormant bodies of P. cynomolgi of 0.64 μM and 0.69 μM respectively. KAI-407 can prevent Plasmodium berghei infection 100%. KAI-407 can be used for the study of vivax malaria .
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Cat. No.: HY-180955
CAS No.: 773886-89-8
Research Areas:  

Neurological Disease

Desfluoro-BMS-694153 (Compound 3) is a calcitonin gene-related peptide receptor (CGRP receptor) antagonist, with a Ki value of 0.01 nM. Desfluoro-BMS-694153 has a significantly reduced risk of CYP3A4 inhibition, and its IC50 values for CYP3A4-BFC and CYP3A4-BZR are 36 and 6 μM respectively. Desfluoro-BMS-694153 can be used for research on migraines .
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Cat. No.: HY-180452
CAS No.: 2998560-77-1
Target:  

Paraptosis

Research Areas:  

Infection

HAT-IN-10 (Compound 12a) is an anti-human African trypanosomiasis (HAT) agent, with an EC50 value of 0.23 μM for T. brucei. HAT-IN-10 can be used for research on HAT .
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Cat. No.: HY-L908
1,248 compounds

Small molecule covalent inhibitors, or irreversible inhibitors, are a type of inhibitors that exert their biological functions by irreversibly binding to target through covalent bonds. Compared with non-covalent inhibitors, covalent inhibitors have obvious advantages in bioactivity, such that covalent warheads can target rare residues of a particular target protein, thus leading to the development of highly selective inhibitors and achieving a more complete and continued target occupancy in living systems. In recent years, the distinct strengths of covalent inhibitors in overcoming drug resistance had been recognized. However, toxicity can be a real challenge related to this class of therapeutics due to their potential for off-target reactivity and has led to these drugs being disfavored as a drug class. The drug design and optimization of covalent inhibitors has become a hot spot in drug discovery.

MCE Lead-like Covalent Screening Library offers a valuable resource of 1,049 lead-like compounds with commonly used covalent warheads. These warheads, such as acrylamide, activated terminal alkyne, acyloxymethyl ketone, and boronic acid, are capable of reacting with specific amino acid residues, including cysteine, lysine, serine, and histidine. The inclusion of these reactive warheads in the library allows researchers to explore the potential of covalent inhibition, a powerful approach in drug discovery.

Cat. No.: HY-L929
2,527 compounds

In drug discovery and development (R&D) area, target binding and druggability optimization are core processes. Among these attributes, high solubility is critical for a compound to achieve druggability, as it directly impacts the progress of drug R&D. Superior solubility ensures the rapid dissolution and uniform distribution of drug molecules in vivo, thereby enhancing bioavailability and effectively mitigating issues such as suboptimal efficacy, increased dosage requirements, or exacerbated toxic and side effects arising from insufficient solubility.

From the perspective of medicinal chemistry, high-solubility drug fragments serve as high-quality "molecular building blocks". Based on these fragments, lead compounds with potential druggability can be rapidly screened out, which significantly shortens the drug R&D cycle and reduces R&D costs. Meanwhile, the high-solubility drug fragment library can provide diverse options for drug development in different therapeutic areas, offer solutions for the solubility defects of existing clinical drugs, and facilitate the development of novel, highly effective targeted drugs with higher bioavailability and better safety profiles.

MCE has collected and compiled 2,527 experimentally validated small-molecule fragments with high solubility. These fragments can be directly used for drug molecular design, providing high-quality pre-validated solubility fragments that significantly improve the efficiency of lead compound screening and accelerate the progress of drug R&D.

Cat. No.: HY-L229
158 compounds

Kidneys are one of the vital organs in the human body. Due to their exposure to higher concentrations of circulating drugs or metabolites, they are highly susceptible to drug-induced renal injury (DIRI). According to statistics, drug-induced kidney injury accounts for approximately 20% of nephrotoxicity reports and can lead to acute kidney injury (AKI), chronic kidney disease (CKD), or even end-stage renal disease (ESRD). Early detection of drug nephrotoxicity is crucial for preventing irreversible kidney damage. Research into its mechanisms can help optimize clinical medication by adjusting dosages or avoiding combinations of nephrotoxic drugs. Additionally, predicting drug-induced nephrotoxicity in early drug development can reduce the risk of late-stage R&D failure.

MCE offers 158 nephrotoxicity compounds that have been clearly reported by the FDA to be associated with kidney injury. This library can be used for studying molecular mechanisms of nephrotoxicity or developing novel biomarkers.

Cat. No.: HY-L922
25000 compounds

A diverse compound library with favorable ADMET properties (Absorption, Distribution, Metabolism, Excretion, and Toxicity) is crucial in drug discovery. Early evaluation of ADMET properties allows for the exclusion of molecules with unfavorable profiles at the initial stages, thereby reducing the risk of late-stage development failures, lowering R&D costs, and accelerating optimization of lead compounds. Based on predictions from ADMET-related AI algorithms, the compounds in this library are predicted to exhibit favorable oral bioavailability (F > 30%), reasonable plasma protein binding (PPB < 98%), minimized CYP3A4 inhibition potential (inhibition probability < 50%, CYP3A4 is the most critical drug-metabolizing enzyme in the cytochrome P450 family) , low toxicity profiles, with 140 potentially toxic substructures pre-identified and excluded via substructure searching to eliminate compounds containing hazardous fragments. The diversity library enables broad applicability in high-throughput screening (HTS) and high-content screening (HCS).

Cat. No.: HY-L0101V
2,244,487 compounds
FCH Group Screening Library Collection contains about 2,244,487 lead-like compounds for biological screening. This brand new collection comprises polar molecules with pharmacologically important groups such as free carboxylic and amino groups.
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.

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