2876 Results for "

undergoing

" in MedChemExpress (MCE) Product Catalog:
Products (2876)

2876 Results for "undergoing" in MCE Product Catalog:

Cat. No.: HY-184158
HATC is a HIF-1α AUTAC degrader. HATC links HIF-1α to LC3 to form a ternary complex that undergoes degradation via the autophagy-lysosome fusion pathway. HATC induces dose-dependent HIF-1α degradation in multiple cell types. HATC reduces visceral fat accumulation, hepatic lipid deposition, senescent cell aggregation, and bone loss; alleviates age-related intervertebral disc degeneration, liver dysfunction, kyphosis, and alveolar dilation; decreases circulating lactic acid levels; improves physical performance; and reverses age-related changes in granulocyte proportions. HATC extends median and maximum lifespan, reduces transcriptomic age, and causes no obvious persistent toxicity. HATC can be used in the research of age-related diseases (pink: LC3 ligand (HY-50759); blue: HIF-1α ligand (HY-P10426); Linker: (HY-W008264)) .
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Cat. No.: HY-L053
1,534 compounds

From target identification to clinical research, traditional drug discovery and development is a time-consuming and costly process, which also bears high risk. Compared with traditional drug discovery, drug repositioning or repurposing, also known as old drugs for new uses can greatly shorten the development cycle and reduce development cost, which has become a new trend of drug development. After undergoing clinical trials, approved drugs have identified bioactivities, good pharmacokinetic characteristics and safety, which can greatly improve the success rate of drug discovery. A number of successes have been achieved, such as metformin for type 2 diabetes and thalidomide for leprosy and multiple myeloma, etc.

MCE provides a unique collection of 1,534 China NMPA (National Medical Products Administration) approved compounds, which have undergone extensive preclinical and clinical studies and have well-characterized bioactivities, safety and bioavailability properties. MCE NMPA-Approved Drug Library is a good tool for drug repurposing which could dramatically accelerate drug development.

Cat. No.: HY-130086
CAS No.: 1314378-11-4
Purity:  99.29%
Target:  

ADC Linkers

Research Areas:  

Cancer

Bis-PEG4-NHS ester is a crosslinking reagent and amine-reactive modulator .Bis-PEG4-NHS ester reacts with primary amine groups on liposome surfaces via amide bond formation to covalently attach dibenzylcyclooctyne groups, with a hydrophilic PEG4 spacer reducing steric hindrance for subsequent click chemistry .Bis-PEG4-NHS ester enables site-specific antibody coupling to liposome surfaces via copper-free strain-promoted alkyne-azide cycloaddition click chemistry without disrupting liposome structure in minimal organic solvent volumes .Bis-PEG4-NHS ester undergoes hydrolysis during annealing to form -COOH groups that interact with PbI and FAI to enhance perovskite structural integrity, passivate defects, and modulate nucleation kinetics to regulate crystal growth .Bis-PEG4-NHS ester enhances device efficiency and long-term stability when used as an antisolvent additive for p-i-n perovskite solar cells .
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Cat. No.: HY-182517
CAS No.: 2225980-49-2
Target:  

TRP Channel

Research Areas:  

Inflammation/Immunology

AG1529 is a TRPV1 inhibitor and capsaicinoid-based soft agent with a human TRPV1 IC50 of 0.9-0.93 μM. AG1529 reversibly blocks capsaicin-evoked TRPV1 activation, binds to the TRPV1 capsaicin binding site, moderately affects pH-induced TRPV1 gating, and does not alter voltage- or heat-mediated TRPV1 responses. AG1529 suppresses TRPV1-mediated neuronal excitability, reduces capsaicin- and pH-evoked neuronal firing, abolishes histaminergic and inflammation-mediated TRPV1 sensitization. AG1529 exhibits anti-nociceptive and antipruritic effects, attenuates in vivo hyperalgesia and pruritus, dose-dependently reduces acute histaminergic itch in rodents, and mildly blocks hTRPA1 and hTRPM8 channel activity. AG1529 undergoes hydrolysis and dermal deactivation, minimizes TRPV1-associated side reactions, does not evoke capsaicin-like burning sensation, and does not disrupt physiological thermal regulation. AG1529 can be used for the research of inflammatory cutaneous nociception and acute histaminergic pruritus .
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Cat. No.: HY-N10834
CAS No.: 120166-71-4
(6E,12E)-Tetradecadiene-8,10-diyne-1,3-diol is an antibacterial compound. (6E,12E)-Tetradecadiene-8,10-diyne-1,3-diol can be isolated from the roots of Atractylodes japonica. (6E,12E)-Tetradecadiene-8,10-diyne-1,3-diol has anti-methicillin-resistant Staphylococcus aureus (MRSA) activity with MIC values of 4-32 μg/mL. (6E,12E)-Tetradecadiene-8,10-diyne-1,3-diol can be used for the research of bacterial infection . (6E,12E)-Tetradecadiene-8,10-diyne-1,3-diol 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-L258
437 compounds

In modern medicinal chemistry and chemical biology research, alkyne (-C≡C-) structures play an important role in click chemistry, bioorthogonal labeling, and the construction of functional molecules due to their unique linear geometry and high reactivity. In particular, driven by the development of copper-catalyzed azide-alkyne cycloaddition (CuAAC) and copper-free click reactions (SPAAC), terminal alkyne groups have become important “chemical handles” for building complex biomolecular systems.

The MCE Alkyne Compound Library contains 437 compounds designed for the construction of click chemistry reaction systems and the development of diverse functional molecules. In drug discovery, these structures serve as key reactive sites that can efficiently undergo click reactions with azide groups, enabling modular assembly of PROTAC molecules, construction of ADC linkers, and rapid synthesis of bioorthogonal labeling probes. In addition, alkyne groups exhibit high stability, mild reaction conditions, and excellent biocompatibility, allowing them to maintain reactivity in complex biological environments. This contributes to improved efficiency and controllability in drug development, making them indispensable chemical building blocks in modern drug design and functional molecular engineering.

Cat. No.: HY-D3128
CAS No.: 2348351-60-8
Target:  

Fluorescent Dye

Research Areas:  

Others

Mito-RhFe is a Fluorescent probe for mitochondrial labile Fe³⁺ monitoring via imaging and flow cytometry. This probe is a rhodamine-based construct with a spirolactam fluorescence signaling group and an N2-hydroxyethyldiethylenetriamine chelator; its delocalized positive charge enables mitochondria-targeting ability in live cells, and it exhibits fine cell membrane permeability. In its native state, it exists in the non-fluorescent spirolactam form, but upon binding to Fe³⁺, it undergoes a ring-opening conversion to the fluorescent rhodamine form, triggering a turn-on fluorescent response; this process is reversible, as the addition of the metal chelator TPEN removes Fe³⁺ and converts the probe back to its non-fluorescent spirolactam form, and re-addition of Fe³⁺ restores fluorescence. The probe shows high selectivity for Fe³⁺ over most other metal cations present in living systems, with a ~90-fold fluorescence enhancement upon binding to 20 equiv of Fe³⁺. Mito-RhFe has excitation/emission wavelengths of Ex/Em = 540/578 nm, with an ~8 nm bathochromic shift in emission upon Fe³⁺ binding, and it can also be excited at 543 nm for confocal imaging with emission detected at 570-620 nm[1].
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Cat. No.: HY-W1143867
CAS No.: 2226-71-3
4’-Phosphopantetheine is an orally active coenzyme A (CoA) precursor. 4’-Phosphopantetheine is membrane-permeable and acts as a CoA precursor, a prosthetic group, and a reactive oxygen species (ROS) inhibitor. 4’-Phosphopantetheine binds covalently to rat liver fatty acid synthase, modifies the conserved serine residue in the PKS/NRPS carrier protein domain, and serves as a substrate for CoA synthase and PPAT. 4’-Phosphopantetheine undergoes non-catalytic exchange on rat liver fatty acid synthase, with a faster turnover rate than that of the enzyme complex, and restores intracellular CoA levels in cells with impaired de novo biosynthesis. 4’-Phosphopantetheine rescues phenotypes induced by CoA deficiency, normalizes PKAN-related biomarkers, restores mitochondrial enzyme activity, and alleviates vascular endothelial damage. 4’-Phosphopantetheine shows biological stability in serum, acts as a prosthetic group and degradation product of ACP, and inhibits the formation of atherosclerotic plaques. 4’-Phosphopantetheine can be used in the research of brain iron accumulation neurodegenerative diseases, pantothenate kinase-associated neurodegeneration, CoASY protein-associated neurodegenerative diseases, coronary heart disease, and atherosclerosis .
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Cat. No.: HY-L251
93 compounds

Ionizable lipids are a class of specialized, functional lipid molecules with pH-sensitive charge characteristics. They are primarily divided into two major categories: ionizable cationic lipids and ionizable anionic lipids, though the term typically specifies ionizable cationic lipids within the biomedical field. Structurally, these lipids consist of an ionizable hydrophilic headgroup, a biodegradable linker, and hydrophobic tails. Their primary application is serving as the key delivery vehicle in lipid nanoparticles (LNPs) to encapsulate negatively charged nucleic acid macromolecules, such as mRNA vaccines, siRNA therapeutics, and CRISPR gene-editing components. In a physiological, neutral environment, they remain electrically neutral to minimize systemic toxicity and prolong circulation time. Upon entering the acidic microenvironment of cellular endosomes, however, they undergo protonation to become positively charged, thereby inducing membrane fusion and enabling the highly efficient intracellular release of the nucleic acid cargo. Consequently, they serve as the technological cornerstone for bringing nucleic acid therapies into clinical application.

To accelerate the translational process of cutting-edge nucleic acid drugs, MCE has meticulously constructed an ionizable lipid compound library containing 93 high-performance molecules, aiming to provide researchers and pharmaceutical professionals with a high-throughput, multi-dimensional lipid screening platform.

Cat. No.: HY-116028
CAS No.: 85235-11-6
Purity:  ≥98.0%
Synonyms: 15-Deoxy-Δ12,14-PGD2
15-deoxy-Δ12,14-Prostaglandin D2 (15-Deoxy-Δ12,14-PGD2) is a metabolite of prostaglandin D₂ (PGD₂) (HY-101988), which can undergo further dehydration metabolism to 15-deoxy-Δ12,14-PGJ₂. 15-deoxy-Δ12,14-Prostaglandin D2 is a highly selective agonist for DP2 receptor and PPARγ. 15-deoxy-Δ12,14-Prostaglandin D2 causes morphological changes in eosinophils and migration of type II innate lymphoid cells (ILC2). 15-deoxy-Δ12,14-Prostaglandin D2 has a growth inhibitory effect on prostate cancer cells expressing PPARγ, induces cell cycle arrest and promotes apoptosis. 15-deoxy-Δ12,14-Prostaglandin D2 can be used in related research on asthma and prostate cancer .
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Cat. No.: HY-120991
CAS No.: 26662-95-3
Purity:  ≥98.0%
Synonyms: 1-Palmitoyl-2-linoleoyl PE; (1-Palmitoyl, 2-linoleoyl)-phosphatidylethanolamine; (1-Palmitoyl, 2-linoleoyl)-phosphoethanolamine
Target:  

Liposome

Research Areas:  

Others

1-Palmitoyl-2-linoleoyl-sn-glycero-3-PE (1-Palmitoyl-2-linoleoyl PE; (1-Palmitoyl, 2-linoleoyl)-phosphatidylethanolamine; (1-Palmitoyl, 2-linoleoyl)-phosphoethanolamine) is a phosphatidylethanolamine phospholipid with a palmitoyl chain at sn-1 and a linoleoyl chain at sn-2, and an oxidation-prone substrate. 1-Palmitoyl-2-linoleoyl-sn-glycero-3-PE undergoes glycation and subsequent oxidation via Fenton system, forming long-chain and short-chain products at C-7, C-8, C-9, C-12 of its sn-2 acyl chain and glycated polar head. 1-Palmitoyl-2-linoleoyl-sn-glycero-3-PE’s glycated form oxidizes more quickly than non-glycated phosphatidylethanolamines and contributes to increased oxidative stress modifications. 1-Palmitoyl-2-linoleoyl-sn-glycero-3-PE can be used for the research of drug delivery .
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Cat. No.: HY-117947
CAS No.: 1809336-19-3
Research Areas:  

Cancer

(R)-OR-S1 is an isomer of OR-S1. The dual ZH1/2 inhibitors OR-S1 and OR-S2 exhibit strong inhibitory activity against both EZH1 and EZH2. OR-S1 and OR-S2 are highly selective methyltransferase inhibitors against EZH1 and EZH2, and they have very similar molecular features. Therefore, we investigated the effect of OR-S1 on acute myeloid leukemia (AML). We found that OR-S1 was able to induce cell differentiation and apoptosis in AML cells. These findings encouraged us to investigate whether functional LT-HSCs could survive PRC2-targeted therapy with OR-S1 or OR-S1 combined with cytarabine. The results showed that OR-S1 did not cause significant myelosuppression, and BM cells treated with the combination therapy were able to undergo normal hematopoiesis even 4 months after treatment. Therefore, temporary inhibition of EZH1 and EZH2 is clinically tolerable, making this combination therapy suitable for AML patients. AML is generally believed to originate from myeloid progenitor cells that inherit a large number of biological properties.
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Cat. No.: HY-131384
CAS No.: 34262-64-1
Synonyms: 8,11,14-Icosatriynoic acid
8,11,14-Eicosatriynoic Acid, as an inhibitor of prostaglandin, leukotriene biosynthesis, and arachidonic acid-induced platelet aggregation, blocks human 12-lipoxygenase (12-LO), cyclooxygenase (COX)and 5-lipoxygenase (5-LO) with IC50 values of 0.46 μM, 14 μMand 25 μM, respectively. In addition, 8,11,14-Eicosatriynoic Acid inhibits the action of slow-reacting substances of allergic reactions, with IC50 value of 10 μM. Lipoxygenase is widely found in fungi, plants and animals. 12-LO involves in many important disease states and may play a role in oxidative glutamate toxicity. COX enzymes play complex roles in human physiology and pathology involving the neuronal, immune, renal, cardiovascular, gastrointestinal and reproductive systems. COX enzymes are blocked by aspirin and a variety of other NSAIDs, which makes them clinically important. 5-LO involves in cancer pathology. It is expressed by a variety of cancer cells, including colon, lung, breast, and prostate cancers, and promotes cancer cell growth and neovascularization . 8,11,14-Eicosatriynoic acid 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-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-116028S1
CAS No.: 2750534-91-7
Synonyms: 15-Deoxy-Δ12,14-PGD2-d4
15-Deoxy-Δ12,14-Prostaglandin D2-d4 (15-Deoxy-Δ12,14-PGD2-d4) is the deuterium labeled 15-deoxy-Δ12,14-Prostaglandin D2. 15-deoxy-Δ12,14-Prostaglandin D2 (15-Deoxy-Δ12,14-PGD2) is a metabolite of prostaglandin D₂ (PGD₂) (HY-101988), which can undergo further dehydration metabolism to 15-deoxy-Δ12,14-PGJ₂. 15-deoxy-Δ12,14-Prostaglandin D2 is a highly selective agonist for DP2 receptor and PPARγ. 15-deoxy-Δ12,14-Prostaglandin D2 causes morphological changes in eosinophils and migration of type II innate lymphoid cells (ILC2). 15-deoxy-Δ12,14-Prostaglandin D2 has a growth inhibitory effect on prostate cancer cells expressing PPARγ, induces cell cycle arrest and promotes apoptosis. 15-deoxy-Δ12,14-Prostaglandin D2 can be used in related research on asthma and prostate cancer.
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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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