12 Results for "

high energy molecule

" in MedChemExpress (MCE) Product Catalog:
Products (12)

12 Results for "high energy molecule" in MCE Product Catalog:

3
3 Cited Publications
Cat. No.: HY-W013707
CAS No.: 81012-87-5
Synonyms: Cytidine triphosphate disodium dihydrate; 5'-CTP disodium dihydrate
Target:  

Endogenous Metabolite

Research Areas:  

Metabolic Disease

Cytidine-5'-triphosphate disodium dihydrate (5'-CTP disodium dihydrate) is a molecule of high energy, and acts as a coenzyme in glycerophospholipid biosynthesis and protein glycosylation .
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1
1 Cited Publications
Cat. No.: HY-132830
CAS No.: 1933514-13-6
Purity:  99.58%
Synonyms: KVD900
Target:  

Kallikrein

Research Areas:  

Cardiovascular Disease

Sebetralstat (KVD900) is an orally active and selective plasma kallikrein inhibitor, with an IC50 of 6.0 nM and a Ki of 3.0 nM against the human target. Sebetralstat binds to the active site of plasma kallikrein, inducing a conformational flip of Trp215 to form a U-shaped conformation; its P1 group interacts with the S1 pocket through hydrophobic interactions and displacement of high-energy water molecules, independent of the Asp189 ionic bond. Sebetralstat inhibits plasma kallikrein-kinin system activation in whole plasma, rapidly relieves laryngeal and abdominal attack symptoms of hereditary angioedema (HAE-C1INH), and reduces attack severity. Sebetralstat can be used in research related to hereditary angioedema (HAE) .
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Cat. No.: HY-W330469
CAS No.: 1189-11-3
Target:  

Parasite

Research Areas:  

Infection

Phospho-L-arginine is a high-energy phosphagen molecule with an energy buffering effect, and it is a product of amino acid phosphorylation. Phospho-L-arginine competes with L-arginine (HY-N0455) for binding to the L-arginine transporter of Leishmania donovani promastigotes, which recognizes guanidyl groups and arginine side chains. Phospho-L-arginine can be used in the research of visceral leishmaniasis .
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Cat. No.: HY-177531
CAS No.: 2796227-17-1
S-Ac7-DOG is a cationic lipid with biodegradability, low immunogenicity and high nucleic acid transfection capacity, which is commonly used to construct lipid nanoparticles for nucleic acid molecule delivery. S-Ac7-DOG can bind to mRNA, microRNA and self-amplifying RNA through electrostatic interaction. Lipid nanoparticles formed by S-Ac7-DOG enter cells via an energy-dependent endocytic pathway, release nucleic acid cargos, induce antigen-specific CD8 + T cell responses, promote the generation of precursor memory T cells, and regulate neuroinflammatory pathways. S-Ac7-DOG can be used in the research of retinal diseases, neuroinflammation and cancer .
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Cat. No.: HY-W879040
CAS No.: 1379761-19-9
Research Areas:  

Others

Sulfo-DBCO-NHS ester is a click chemistry reagent containing an azide group. The DBCO group is commonly used for copper-free Click Chemistry reactions due to its strain promoted high energy. NHS ester can bind to amino acids or other molecules containing amino groups .
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Cat. No.: HY-W192446
CAS No.: 4013-72-3
Target:  

Drug Intermediate

Research Areas:  

Others

Nicotinoyl azide is capable of forming high energy intermediates known to form C-8 adducts with adenosine and guanosine . It contains an azide group and can undergo copper-catalyzed azide-alkyne cycloaddition (CuAAc) with molecules containing alkyne groups. It can also undergo ring strain-promoted alkyne-azide cycloaddition (SPAAC) with molecules containing DBCO or BCN groups.
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Cat. No.: HY-D3277
PE-VF594 is a high-brightness fluorescent dye used in flow cytometry, primarily for labeling antibodies or streptavidin to help identify specific cell subpopulations. PE-VF594 is a tandem dye composed of two covalently linked fluorescent groups: one is phycoerythrin (PE), responsible for absorbing laser energy; the other is the receptor molecule VF594. Energy is transferred from PE to VF594 via fluorescence resonance energy transfer (FRET) mechanism (Ex/Em = 450-500 nm/614 nm) .
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Cat. No.: HY-L263
89 compounds

Energy metabolism is the most fundamental biochemical process in living organisms, encompassing glycolysis, the TCA cycle, oxidative phosphorylation, the pentose phosphate pathway, and fatty acid oxidation. These core pathways directly regulate cell survival, proliferation, differentiation, and apoptosis. Dysregulation of energy metabolism is closely linked to major diseases including cancer, diabetes, obesity, cardiovascular diseases, neurodegenerative disorders, and ischemia‑reperfusion injury. Targeting these metabolic pathways has become a frontier in drug discovery and mechanistic research.

The MCE Energy Metabolite Compound Library features 89 structurally defined small‑molecule compounds. It covers energy substrates, pathway intermediates, coenzymes and redox carriers, nucleotide derivatives, and microenvironmental modulators. This library is applicable to research areas including tumor metabolism, insulin resistance, mitochondrial dysfunction, oxidative stress, neuroprotection, and cardiometabolic diseases, providing a high‑quality tool for mechanistic studies, biomarker discovery, and high‑throughput drug screening.

Cat. No.: HY-132830A
CAS No.: 2163789-76-0
Synonyms: KVD900 hydrochloride
Target:  

Kallikrein

Research Areas:  

Cardiovascular Disease

Sebetralstat hydrochloride (KVD900 hydrochloride) is an orally active and selective plasma kallikrein inhibitor, with an IC50 of 6.0 nM and a Ki of 3.0 nM against the human target. Sebetralstat hydrochloride binds to the active site of plasma kallikrein, inducing a conformational flip of Trp215 to form a U-shaped conformation; its P1 group interacts with the S1 pocket through hydrophobic interactions and displacement of high-energy water molecules, independent of the Asp189 ionic bond. Sebetralstat hydrochloride inhibits plasma kallikrein-kinin system activation in whole plasma, rapidly relieves laryngeal and abdominal attack symptoms of hereditary angioedema (HAE-C1INH), and reduces attack severity. Sebetralstat hydrochloride can be used in research related to hereditary angioedema (HAE) .
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Cat. No.: HY-L011
2,278 compounds

Most of molecules enter or leave cells mainly via membrane transport proteins, which play important roles in several cellular functions, including cell metabolism, ion homeostasis, signal transduction, the recognition process in the immune system, energy transduction, etc. There are three major types of transport proteins, ATP-powered pumps, channel proteins and transporters. Transport proteins such as channels and transporters play important roles in the maintenance of intracellular homeostasis, and mutations in these transport protein genes have been identified in the pathogenesis of a number of hereditary diseases. In the central nervous system, ion channels have been linked to, but not limited to, many diseases such asataxias, paralyses, epilepsies, and deafness. This indicates the roles of ion channels in the initiation and coordination of movement, sensory perception, and encoding and processing of information. Ion channels are a major class of drug targets in drug development.

MCE designs a unique collection of 2,278 smal-molecule modulators that can be used for the research of Ion Channel and Membrane Transporter or high throughput screening (HTS) related drug discovery.

Cat. No.: HY-L164
2,276 compounds

Protein serine/threonine kinases (PSKs) are protein kinases that use ATP as a high-energy donor molecule to transfer phosphate groups to serine/threonine residues of target protein. As an important signal transduction regulator, serine/threonine kinases can affect the function of target proteins by disrupting enzyme activity or binding of target proteins to other proteins. Serine/threonine kinases are involved in the regulation of immune response, cell proliferation, differentiation, apoptosis and other physiological processes. Serine/threonine kinase inhibitors are an important class of compounds that have been widely studied in cancer, chronic inflammation, autoimmune diseases, aging and other diseases.

MCE designs a unique collection of 2,276 serine/threonine kinase inhibitors, mainly targeting the receptor PKA, Akt, PKC, MAPK/ERK, etc, which is an effective tool for development and research of anti-cancer, anti-chronic inflammatory diseases, anti-autoimmune diseases and anti-aging compounds.

Cat. No.: HY-L250
61 compounds

In the progression of various diseases, metabolic reprogramming has emerged as a key hallmark. Lactate, as an important metabolic signaling molecule, is widely involved in tumorigenesis, immune regulation, and inflammatory responses. Particularly within the tumor microenvironment, the abnormal accumulation of lactate not only affects cellular energy metabolism but also promotes disease progression by modulating immune cell functions and mediating protein lactylation, thereby participating in epigenetic regulation and signaling networks. Therefore, systematic investigation of lactate metabolic pathways and their associated metabolites is of great significance for understanding disease mechanisms and developing novel therapeutic strategies.

The MCE lactic acid metabolite compound library contains 61 compounds and is constructed around key metabolic pathways involving lactate production, transport, and utilization. This library systematically includes core intermediates from glycolysis, the tricarboxylic acid (TCA) cycle, and the lactate cycle. Focusing on disease-associated metabolic reprogramming, it is suitable for research in oncology, inflammation, and metabolic disorders. The library can be used to elucidate the roles of lactate in tumor microenvironment regulation, immune evasion, and epigenetic modifications (such as protein lactylation). In addition, it provides high-quality small-molecule resources for drug screening, facilitating the discovery of potential modulators targeting key enzymes (such as LDH) or transporters (such as MCTs) involved in lactate metabolism.

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