76 Results for "

initial

" in MedChemExpress (MCE) Product Catalog:
Products (76)

76 Results for "initial" in MCE Product Catalog:

Cat. No.: HY-B0317H
CAS No.: 914941-70-1
Target:  

Calcium Channel

Research Areas:  

Cardiovascular Disease Cancer

Amlodipine orotate, an antianginal agent and an orally active dihydropyridine calcium channel blocker, works by blocking the voltage-dependent L-type calcium channels, thereby inhibiting the initial influx of calcium. Amlodipine orotate can be used for the research of high blood pressure and cancer .
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Cat. No.: HY-185764
CAS No.: 2614310-11-9
Target:  

HSP

Research Areas:  

Others

TCI 18 is a ligand of HSP72 with a Ki value of 4.7 μM. TCI 18 forms a covalent bond with Lys56 residue of HSP72 via a process involving initial reversible binding, conversion to a pre-covalent complex, and subsequent covalent bond formation. TCI 18 addresses the undruggable target HSP72 .
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Cat. No.: HY-182428
CAS No.: 2589736-94-5
Target:  

SARS-CoV

Research Areas:  

Infection

UAWJ248 is a SARS-CoV-2 main protease (M pro) inhibitor with an IC50 of 0.012 μM. UAWJ248 inhibits activity via initial reversible binding followed by irreversible inactivation. UAWJ248 inhibits SARS-CoV-2 replication and can be used for the research of SARS-CoV-2 infection .
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Cat. No.: HY-108294R
CAS No.: 3055-99-0
Synonyms: Nonaoxyethylene monododecyl ether (Standard)
Research Areas:  

Others

Nonaethylene glycol monododecyl ether (Standard) is the analytical standard of Nonaethylene glycol monododecyl ether (HY-108294). This product is intended for research and analytical applications. Nonaethylene glycol monododecyl ether (Nonaoxyethylene monododecyl ether) is a nonionic surfactant and polyethylene glycol (PEG) detergent that can be used to form initial coalesced O/W emulsion droplets, as well as for protein separation and purification .
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Cat. No.: HY-118558
CAS No.: 51308-54-4
Synonyms: S-1358
Research Areas:  

Others

Buthiobate (S-1358) is a fungicide. Buthiobate is a cytochrome P-450 inhibitor with an IC50 of 0.4 μM. Buthiobate binds to the heme iron of cytochrome P-450 (low-spin state) via its pyridine group, thereby blocking the initial hydroxylation of the 14α-methyl group. Buthiobate is used in research on powdery mildew in agricultural and horticultural crops .
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Cat. No.: HY-W327840
CAS No.: 4088-22-6
Synonyms: Dioctadecylmethylamine; MDOA
Target:  

Liposome

Research Areas:  

Others

N-Methyldioctadecylamine (Dioctadecylmethylamine; MDOA) is a surfactant and an ionizable cationic helper lipid that can be used for the preparation of lipid nanoparticles. When used in combination with iPhos 9A1P9 (HY-W590683) in ionizable lipid nanoparticles (iPLNPs), N-Methyldioctadecylamine enables liver-selective mRNA expression. N-Methyldioctadecylamine supports initial in vitro and in vivo mRNA delivery screening for iPhos lipids .
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Cat. No.: HY-D3188
CAS No.: 2730023-28-4
gGlu-2OMe SiR600 is a γ-glutamyl transpeptidase (GGT) responsive fluorescent probe. gGlu-2OMe SiR600 can be converted into a highly fluorescent molecule via reaction with GGT, and its initial fluorescence is quenched through a photoinduced electron transfer (PeT) mechanism. gGlu-2OMe SiR600 exhibits fluorescence activation in malignant breast cancer and benign breast fibroadenoma tissues, enabling lesion visualization. gGlu-2OMe SiR600 can be used for research related to breast cancer and fibroadenoma .
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Cat. No.: HY-D3170
C-HBrO-GGT is a dual-target fluorescent indicator with specificity for γ-glutamyl transpeptidase (GGT) and hypobromous acid (HBrO). C-HBrO-GGT acts as a substrate for GGT and HBrO, undergoing enzymatic or chemical modification to trigger channel-specific fluorescence, with sequential activation requiring initial GGT hydrolysis. C-HBrO-GGT enables simultaneous in vitro and in vivo fluorescence detection of GGT and HBrO. C-HBrO-GGT identifies mature atherosclerotic plaque positions and provides early warning of plaque formation before visual or classical immunofluorescent detection. C-HBrO-GGT can be used for the research of atherosclerosis (Ex/Em = 370 nm/500 nm) .
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Cat. No.: HY-L935
1039 compounds

POI (Protein of Interest) refers to the target protein, namely the disease-causing protein or key functional protein that undergoes degradation or functional modulation in molecular glue-mediated processes. The Molecular Glue POI Library consists of a series of fragments that can specifically bind to different types of POIs. As key components of molecular glues, these ligands form stable interactions with target proteins, laying the foundation for molecular glues to induce the interaction between POIs and E3 ubiquitin ligases. The covered POIs include various types such as cancer-associated GSPT1, androgen receptors, and abnormally aggregated proteins linked to neurodegenerative diseases.

This fragment library can be applied to the screening and optimization of targeted protein degraders. By screening ligands with high affinity and strong selectivity for specific POIs from the library, core structures can be identified to develop novel molecular glues. For instance, optimization of ligands targeting GSPT1 has yielded molecular glue degraders with enhanced degradation activity. Since many POIs are difficult to drug due to the lack of traditional small-molecule binding pockets, some ligands in the POI Ligand Library can modulate such POIs by inducing protein-protein interactions, thereby further expanding the scope of drug discovery for undruggable targets.

MCE has compiled a POI Fragment Library comprising thousands of POI fragments with molecular weights ranging from 150 to 400. This compound library can be widely applied in Molecular Glue research and development.

Cat. No.: HY-W968308
CAS No.: 691-81-6
Research Areas:  

Metabolic Disease

H-Gly-D-Ala-OH is a dipeptide containing D-amino acid. H-Gly-D-Ala-OH can be specifically hydrolyzed by renal dipeptidase, which acts on peptide segments with a D-amino acid at the carboxyl terminus. H-Gly-D-Ala-OH enables highly specific detection of renal dipeptidase activity without interference from other serum or urine aminopeptidases. When used in combination with low-dose Sodium nitrite (HY-N11218), H-Gly-D-Ala-OH inhibits the initial spore growth of Clostridium botulinum in pork homogenate, whereas it has no such effect on its own. H-Gly-D-Ala-OH can be used in research related to chronic renal failure, diabetes mellitus and botulism .
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Cat. No.: HY-187204
Target:  

ROCK

Research Areas:  

Neurological Disease

RX-044 is a ROCK1/ROCK2 inhibitor with ROCK1 IC50 10.01 nM and ROCK2 IC50 9.68 nM, and demonstrates kinase selectivity. RX-044 induces reversible cell retraction, modulates cytoskeletal organization via F-actin depolymerization, inhibits cell contractility, and attenuates TGF-β2-induced cell migration. RX-044 preserves retinal ganglion cell survival, restores electroretinography responses, and ameliorates histopathological changes. RX-044 lowers intraocular pressure in a mouse ocular hypertension model. RX-044 shows no cytotoxicity in target cells. RX-044 exhibits initial ocular irritation that subsides with extended dosing. RX-044 can be used for the research of glaucoma .
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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-134096
CAS No.: 78323-98-5
Synonyms: DNS-M
Target:  

Fluorescent Dye

Research Areas:  

Others

Dansyl-morpholine (DNS-M) is a Fluorescent probe for lipid droplet imaging, cancer cell discrimination, and real-time tracking of lipid droplet dynamics. As a solvatochromic probe with a donor-π-acceptor structure, it relies on hydrophobic interaction for its mechanism of action: its good lipophilicity, confirmed by an oil-water partition coefficient LogP = 2.35, allows it to rapidly penetrate cell membranes, and it specifically localizes to the hydrophobic core of lipid droplets; its fluorescence is strongly enhanced in the nonpolar environment of lipid droplets, while it emits very weak fluorescence in polar environments like PBS buffer, and it exhibits a bathochromic shift in emission wavelength with increasing solvent polarity. It has negligible cytotoxicity, with cell viability remaining over 95% after 24-hour incubation with 100 μM of the probe, and it possesses excellent photostability, retaining over 97% of initial fluorescence intensity after 60 continuous laser scans. For cell imaging applications, its excitation/emission wavelengths for lipid droplet labeling are Ex/Em = 405/480−540 nm, and in a simulative lipid environment O/W emulsion, it has an excitation wavelength of ~346 nm and emission wavelength of ~500 nm, giving a Stokes shift of 154 nm[1].
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Cat. No.: HY-L135
3,540 compounds

With the progress of modern cancer therapy, the life of cancer patients has been extended. However, after initial treatment and recovery, the development of secondary tumors often leads to cancer recurrence. Cancer stem cells are a small number of cells that tumor growth and reproduction depend on.

Cancer stem cells have strong self-renewal ability, which is the direct cause of tumor occurrence. In addition, cancer stem cells also have the ability to differentiate into different cell types, playing a crucial role in tumor metastasis and development. Chemotherapy and radiotherapy induced DNA damage and apoptosis are common cancer treatments. However, cancer stem cells can effectively protect cancer cells from apoptosis by activating DNA repair ability. Cancer stem cells are regarded as the key "seed" of tumor occurrence, development, metastasis and recurrence. Since its first discovery in leukemia in 1994, cancer stem cells have been considered a promising therapeutic target for cancer treatment.

MCE supplies a unique collection of 3,540 compounds targeting key proteins in cancer stem cells. MCE Cancer Stem Cells Compound Library is a useful tool for cancer stem cells related research and anti-cancer drug development.

Cat. No.: HY-L064
1,827 compounds

Glutamine is an important metabolic fuel that helps rapidly proliferating cells meet the increased demand for ATP, biosynthetic precursors, and reducing agents. Glutamine Metabolism pathway involves the initial deamination of glutamine by glutaminase(GLS), yielding glutamate and ammonia. Glutamate is converted to the TCA cycle intermediate α-ketoglutarate (α-KG) by either glutamate dehydrogenase (GDH) or by the alanine or aspartate transaminases (TAs), to produce both ATP and anabolic carbons for the synthesis of amino acids, nucleotides and lipids. During periods of hypoxia or mitochondrial dysfunction, α-KG can be converted to citrate in a reductive carboxylation reaction catalyzed by IDH2. The newly formed citrate exits the mitochondria where it is used to synthesize fatty acids and amino acids and produce the reducing agent, NADPH.

Cancer cells display an altered metabolic circuitry that is directly regulated by oncogenic mutations and loss of tumor suppressors. Mounting evidence indicates that altered glutamine metabolism in cancer cells has critical roles in supporting macromolecule biosynthesis, regulating signaling pathways, and maintaining redox homeostasis, all of which contribute to cancer cell proliferation and survival. Thus, intervention in glutamine metabolic processes could provide novel approaches to improve cancer treatment.

MCE owns a unique collection of 1,827 compounds targeting the mainly proteins and enzymes involved in glutamine metabolism pathway. Glutamine Metabolism compound library is a useful tool for intervention in glutamine metabolic processes.

Cat. No.: HY-D3133
CAS No.: 2410296-16-9
Target:  

Fluorescent Dye

Research Areas:  

Others

HS-CyBz is a Fluorescent probe for H₂S detection, enabling ratiometric optical/photoacoustic dual-modality in/ex vivo imaging. Its detection mechanism relies on nucleophilic substitution of its benzoic ester group by HS⁻, which releases an enolic meso-hydroxyltricarboheptamethine cyanine that then undergoes keto-enol tautomerization to form Cy-ketone; this tautomerization causes distinct shifts in absorption and emission spectra, producing a ratiometric response that reduces interferences from tissue scattering, autofluorescence, and probe concentration. In its initial state, HS-CyBz has an excitation wavelength of 595 nm, with emission bands centered at 805 nm (main) and 630 nm (minor); upon reaction with H₂S, the 805 nm emission band decreases while the 630 nm band drastically increases, and its absorption spectrum shows a sharp band at 775 nm and a shoulder band at 708 nm, which decrease upon H₂S reaction with a minor increase at 850 nm and an isosbestic point at 825 nm. For in vivo optical imaging, excitation at 560 nm is used with emission channels at 620 nm and 790 nm, while in vivo photoacoustic imaging uses excitation at 775 nm and 825 nm. The detection limit of HS-CyBz for H₂S is 0.5 μM, and it shows high selectivity, with only H₂S inducing a distinct enhancement of the emission ratio F₆₃₀/F₈₀₅ and PA ratio PA₈₂₅/PA₇₇₅, while other biochemical species including cations, anions, reactive oxygen species, biothiols, and carboxylesterase trigger only minor changes and do not interfere with H₂S sensing. Tail intravenous injection of HS-CyBz leads to accumulation in the liver of mice, and it can be used to verify endogenous H₂S upregulation triggered by S-adenosyl-L-methionine via ratiometric optical/photoacoustic imaging .
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