8 Results for "

rational drug design

" in MedChemExpress (MCE) Product Catalog:
Products (8)

8 Results for "rational drug design" in MCE Product Catalog:

Cat. No.: HY-147128
CAS No.: 2378039-23-5
PY109 is an orally active and highly selective aryl hydrocarbon receptor (AHR) agonist. PY109's EC50 values in human-derived HepG2 and mouse Hepa-1c1c7 cells are 1.2 nM and 1.4 nM respectively. PY109 significantly upregulates the expression of CYP1A1 and IL-22, and inhibits the expression of IL-17A. PY109 significantly improves colitis in mice. PY109 can be used for research on colitis .
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Cat. No.: HY-P11260
CAS No.: 3051556-89-6
Research Areas:  

Metabolic Disease

MD5 is a selective TMPRSS6 mimetic peptide inhibitor with an IC50 for recombinant human TMPRSS6 protein of 22 nM and a Ki of 3.4 nM. MD5 exhibits the significantly reduced inhibitory effect on Matriptase, with an IC50 of 352 nM and a Ki of 99.2 nM. MD5 exhibits good target specificity and only has a weak inhibitory effect on thrombin (Thrombin), with Ki of 120 nM. MD5 demonstrates good initial drugability and can be used for the study of iron overload diseases (such as hereditary hemochromatosis, β-thalassemia) .
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Cat. No.: HY-168189
Target:  

HIV

Research Areas:  

Infection

HIV-1 inhibitor-76 (compound 9t-2) is a non-nucleoside reverse transcriptase inhibitor of HIV-1. HIV-1 inhibitor-76 can be used in anti-HIV research .
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Cat. No.: HY-179709
Research Areas:  

Infection

NDM-1-IN-12 (Compound 10c) is an inhibitor of NDM-1 metallo-β-lactamase, with an IC50 value of 9 nM. NDM-1-IN-12 effectively reverses bacterial resistance to β-lactam antibiotics and shows an additive effect when used in combination with antibiotics and SBL inhibitors. NDM-1-IN-12 can be used in the research of anti-multi-drug resistant bacteria .
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Cat. No.: HY-179620
Target:  

Cholinesterase (ChE)

Research Areas:  

Neurological Disease

AChE-IN-99 (Compound 5a) is an AChE inhibitor. AChE-IN-99 can be used for the research of Alzheimer's disease .
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Cat. No.: HY-L236
20,065 compounds

Fragment-based drug discovery (FBDD) offers a strategic advantage by categorizing fragment hits according to their functional groups. This approach facilitates both the further optimization of these hits and the rational design of larger compounds through fragment combination. The amine functional group plays a vital role in drug development, as evidenced by its presence in many marketed drugs like Galantamine, Tacrine, and Rivastigmine. It is instrumental in enhancing solubility, improving bioavailability, and ensuring shelf-life stability—all critical factors for drug efficacy.

MCE offers a collection of 20,065 amine fragments for drug discovery. All of these compounds adhere to the Rule of Three (RO3) criteria for drug-likeness, which MCE offers a collection of 20,065 amine fragments for drug discovery, all of which stipulates a molecular weight ≤ 300 Da, ≤ 3 hydrogen bond donors, ≤ 3 hydrogen bond acceptors, and a cLogP ≤ 3.

Cat. No.: HY-L941
4,236 compounds

Orthosteric sites are highly conserved, leading to poor subtype selectivity, off-target toxicity and drug resistance in traditional drugs. By contrast, allosteric sites show low conservation, high hydrophobicity, weak polarity, confined geometry and dynamic cryptic properties, granting modulators high selectivity, functional tunability and safety. Thus, allosteric therapy has become a major focus in drug discovery.

MCE curated nearly 1,000 clinical-stage allosteric modulators, analyzed PDB complex structures to identify key pharmacophores and privileged scaffolds, then designed and filtered compounds using rational “scaffold derivation + physicochemical screening” with strict property criteria. The resulting compounds show high rigidity and shape complementarity to shallow, dynamic, hydrophobic allosteric pockets.

This library comprises 4,315 diverse, lead-like compounds ideal for allosteric drug discovery and target screening, covering kinases, GPCRs and more. All are analogs of clinical-stage molecules with similarity > 0.6, combining high druggability and allosteric binding potential to support efficient early-stage R&D.

Cat. No.: HY-L949
1279 compounds

Spirocyclic compounds, with rigid 3D structures, high Fsp³ and strong conformational restriction, are highly privileged scaffolds in small-molecule drug screening. They overcome drawbacks of planar aromatic compounds such as poor solubility, high off-target risks and weak druggability. Their orthogonal bicyclic geometry fits well into protein pockets, improving target affinity, subtype selectivity, metabolic stability and membrane permeability, making them ideal for hit identification against kinases, GPCRs, PPIs and other targets.

Spirocyclic scaffolds have been widely applied in oncology, antivirals, hypertension and CNS diseases, leading to many approved drugs and clinical candidates. SAR studies show that spiro-atom chirality, ring size and heteroatom substitution dominate bioactivity and selectivity, with the scaffold mainly serving as a conformational anchor. Azaspirocycles, spirooxindoles and spirosteranes target GPCRs, kinases, MDM2-p53 and PPIs. Approved drugs including irbesartan, spironolactone and rolapitant confirm their druggability, while revumenib and SAR405838 show promise against undruggable targets.

The MCE Spirocyclic Druglike Library contains over 1,000 diverse, stereospecific molecules selected by Lipinski’s rules. It covers privileged cores such as azaspirocycles, oxaspirocycles and spirooxindoles. These molecules bear rich chiral centers and distinct 3D orientations, reducing non-specific binding and enhancing screening efficiency. Featuring novel scaffolds, the library offers a highly innovative starting point for drug discovery.