2829 Results for "

intermediate.

" in MedChemExpress (MCE) Product Catalog:
Products (2829)

2829 Results for "intermediate." in MCE Product Catalog:

Cat. No.: HY-173703
CAS No.: 3025108-11-3
β-Glu-PAB (CH2NH2)-Exatecan is a linker-payload conjugate composed of Exatecan (HY-13631) and β-Glu-PAB (CH2NH2). β-Glu-PAB (CH2NH2)-Exatecan also serves as an intermediate of Mal ((3S,3aR,6S,6aR)-Hexahydrofuro[3,2-b]furan-3,6-diamine-PEG12)-β-Glu-PAB-Exatecan (HY-173634). β-Glu-PAB (CH2NH2)-Exatecan is specifically cleaved by β-glucuronidase, which is highly expressed in the tumor microenvironment, to release Exatecan that exerts cytotoxic effects. β-Glu-PAB (CH2NH2)-Exatecan can be used in cancer research .
loading...
    loading...
Cat. No.: HY-L081
185 compounds

Protein phosphorylation is a key post-translational modification underlying the regulation of many cellular processes. Phosphatases and kinases contribute to the regulation of protein phosphorylation homeostasis in the cell. This reversible regulation of protein phosphorylation is critical for the proper control of a wide range of cellular activities, including cell cycle, proliferation and differentiation, metabolism, cell-cell interactions, etc.

Protein phosphatases have evolved in separate families that are structurally and mechanistically distinct. Based on substrate specificity and functional diversity, protein phosphatases are classified into two superfamilies: Protein serine/threonine phosphatases and Protein tyrosine phosphatases. Ser/Thr phosphatases are metalloenzymes belonging to two major gene families termed PPP (phosphoprotein phosphatase) and PPM (metal-dependent protein phosphatases), whereas protein tyrosine phosphatases (PTPs) belong to distinct classes of enzymes that utilize a phospho-cysteine enzyme intermediate as a part of their catalytic action.

MCE supplies a unique collection of 185 phosphatase inhibitors that mainly targeting protein tyrosine phosphatases (PTPs) and serine/threonine-specific protein phosphatases. MCE Phosphatase Inhibitor Library is a useful tool for phosphatase drug discovery and related research.

Cat. No.: HY-162775
CAS No.: 50566-97-7
Target:  

Bacterial Antibiotic

Research Areas:  

Infection

TST1N-224 is a potent response regulator VraRC inhibitor. TST1N-224 can disrupt VraRC-DNA complex formation (IC50=60.2 μM). TST1N-224 exhibits interference with VraRC binding to its cognate DNA through a fast-on-fast-off binding mechanism (KD=23.4 μM). TST1N-224 predominantly interacts with the α9- and α10-helixes of the DNA-binding domain of VraR. TST1N-224 inhibits the growths of S. aureus (SA; MIC>126 μM), Methicillin-resistant S. aureus (MRSA; MIC>126 μM), and Vancomycin-intermediate S. aureus (VISA; MIC=63 μM). TST1N-224, an antimicrobial agent, evidently enhances the susceptibility of VISA to both Vancomycin (HY-B0671) and Methicillin (HY-B0974) .
loading...
    loading...
Cat. No.: HY-N22017
CAS No.: 2341324-20-5
(4,5-Dichloro-1H-pyrrol-2-yl)(3-hexyl-2,4-dihydroxyphenyl) methanone is an antibacterial agent discovered from Streptomyces armeniacus. (4,5-Dichloro-1H-pyrrol-2-yl)(3-hexyl-2,4-dihydroxyphenyl) methanone inhibits the growth of Gram-positive bacteria and shows no activity against the tested Gram-negative bacteria. (4,5-Dichloro-1H-pyrrol-2-yl)(3-hexyl-2,4-dihydroxyphenyl) methanone is a biosynthetic intermediate of Armeniaspirol A-C (HY-N15548) (HY-N15550) (HY-N15551). (4,5-Dichloro-1H-pyrrol-2-yl)(3-hexyl-2,4-dihydroxyphenyl) methanone can be used in studies related to infections caused by Gram-positive bacteria such as Staphylococcus aureus, Enterococcus faecalis, and Bacillus subtilis .
loading...
    loading...
Cat. No.: HY-W016480R
CAS No.: 943-80-6
Synonyms: H-Phe(4-NH2)-OH (Standard)
4-Amino-L-phenylalanine (Standard) (H-Phe(4-NH2)-OH (Standard)) is the analytical standard of 4-Amino-L-phenylalanine (HY-W016480). This product is intended for research and analytical applications. 4-Amino-L-phenylalanine (H-Phe(4-NH2)-OH) is a metabolic intermediate and an α-carbonic anhydrase (TcCA) activator with a Ka value of 0.75 μM. 4-Amino-L-phenylalanine acts through active site cavity entrance binding and a proton shuttle mechanism to enhance the catalytic rate of CO2 hydration. 4-Amino-L-phenylalanine serves as a diamine monomer for bio-based polymer synthesis and is produced in Escherichia coli via the shikimate pathway. 4-Amino-L-phenylalanine constitutes a structural component of haptens used in immunoassay development. 4-Amino-L-phenylalanine is used for the production of Chloramphenicol (HY-B0239) and Pristinamycin I in Streptomyces venezuelae and S. pristinaespiralis, respectively. 4-Amino-L-phenylalanine is used in research related to Trypanosoma cruzi infection .
loading...
    loading...
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.

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-L252
76 compounds

Carbohydrate metabolism serves as a central hub for energy supply and biosynthesis in living organisms and plays a critical role in the onset and progression of various diseases. In recent years, studies have shown that tumor cells reprogram their energy metabolism through aerobic glycolysis (the Warburg effect) to support rapid proliferation. Immune cells also rely on specific carbohydrate metabolic pathways to regulate their activation and differentiation states, while disorders such as diabetes and metabolic syndrome arise directly from dysregulation of carbohydrate metabolism. In addition, enzymes and key metabolic nodes involved in carbohydrate metabolism have become important targets for drug discovery, and therapeutic strategies targeting glycolysis, the pentose phosphate pathway, and energy metabolism are continuously advancing the treatment of cancer and metabolic diseases. Therefore, systematic analysis of carbohydrate metabolic networks and their associated metabolites is of great significance for elucidating disease mechanisms and developing novel therapeutic approaches.

The MCE Carbohydrate Metabolism Metabolite Library is constructed based on classical carbohydrate metabolic pathways and contains 76 metabolites. It systematically integrates key metabolic networks, including glycolysis, the pentose phosphate pathway, the tricarboxylic acid (TCA) cycle, monosaccharide metabolism, and sugar acid interconversions. The library comprehensively covers core metabolic nodes from glucose uptake and utilization to energy production and biosynthesis, while also incorporating important upstream and downstream intermediates. It enables accurate representation of intracellular metabolic flux dynamics and is well suited for applications such as metabolic flux analysis, target validation, and mechanistic studies. Furthermore, it provides robust support for multi-omics integration and the development of precision intervention strategies.

Cat. No.: HY-42163S
Research Areas:  

Others

3-((2S,5S)-5-(2-((2S,4R,6R)-6-(((2S,3S,4R,5R)-5-((S)-2,3-Bis((tert-butyldimethylsilyl)oxy)propyl)-4-methoxy-3-(tosylmethyl)te trahydrofuran-2-yl)methyl)-4-methyl-5-methylenetetrahydro-2H-pyran-2-yl)ethyl)-4-methylenetetrahydrofuran-2-yl)propan-1-ol-d3 It is a deuterated substance. 3-((2S,5S)-5-(2-((2S,4R,6R)-6-(((2S,3S,4R,5R)-5-((S)-2,3-Bis((tert-butyldimethylsilyl)oxy)propyl)-4-methoxy-3-(tosylmethyl)tetrahydrofuran-2-yl)methyl)-4-methyl-5-methylenetetrahydro-2H-pyran-2-yl)ethyl)-4-methylenetetrahydrofuran-2-yl)propan-1-ol is a complex organic molecule and a high-order synthetic intermediate.
loading...
    loading...