392 Results for "

Source

" in MedChemExpress (MCE) Product Catalog:
Products (392)

392 Results for "Source" in MCE Product Catalog:

Cat. No.: HY-78086R
CAS No.: 620-23-5
Synonyms: 3-Methylbenzaldehyde (Standard)
m-Tolualdehyde (Standard) is the analytical standard of m-Tolualdehyde (HY-78086). This product is intended for research and analytical applications. m-Tolualdehyde (3-Methylbenzaldehyde) is an aldehyde metabolite produced by m-xylene metabolism, and it bidirectionally regulates the CYP 2B1, CYP 2E1, and CYP 4B1 isoenzymes in the respiratory tract of rats. m-Tolualdehyde serves as an oxidation substrate and carbon source for Pseudomonas Pxy, and it can be oxidized to m-toluic acid in an NAD + -dependent manner. m-Tolualdehyde exerts a dose-dependent inhibitory effect on CYP 2B1 and CYP 2E1 in the nasal mucosa and lungs of rats, and a dose-dependent activating effect on pulmonary CYP 4B1. m-Tolualdehyde can form aldehyde-heme adducts with the heme group of cytochrome P450. m-Tolualdehyde can be used in studies related to metabolic enzymes in the respiratory tract of rats .
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Cat. No.: HY-N1033
CAS No.: 140631-27-2
Research Areas:  

Infection

12-Hydroxyjasmonic acid is a metabolite of Jasmonic acid (HY-122464A) and an inducer of defense responses. 12-Hydroxyjasmonic acid can be isolated from potato leaflets. During the response of sugar beet plants to Cercospora beticola infection, 12-Hydroxyjasmonic acid is released through deglycosylation of its glucoside form and participates in the Jasmonic acid-mediated defense signaling pathway. 12-Hydroxyjasmonic acid mediates changes in source-sink relationships during pathogen infection, prioritizing the activation of defense processes over growth processes. 12-Hydroxyjasmonic acid serves as a substrate for salicylic acid Glycosyltransferases in tobacco and rice. 12-Hydroxyjasmonic acid can induce leaflet closure in Samanea saman. 12-Hydroxyjasmonic acid acts as a potato tuber-inducing substance. 12-Hydroxyjasmonic acid does not induce protoplast shrinkage in extensor motor cells of Samanea saman. 12-Hydroxyjasmonic acid can be used in studies related to brown spot disease .
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Cat. No.: HY-W012832
CAS No.: 15707-23-0
2-Ethyl-3-methylpyrazine is a GABAA receptor potentiator, Antibacterial agent and Antifungal agent, with a Kp of 1.14 mM for GABAA. 2-Ethyl-3-methylpyrazine forms via the Maillard reaction in sunflower seeds and also exists in the crust of wheat bread. 2-Ethyl-3-methylpyrazine regulates mood or states of consciousness via central GABAA receptors. 2-Ethyl-3-methylpyrazine inhibits the growth of Ralstonia solanacearum and Magnaporthe oryzae. 2-Ethyl-3-methylpyrazine acts as an anxiolytic. 2-Ethyl-3-methylpyrazine is one of the sources of cocoa aroma, imparting nutty, corn-like, burnt, cereal, roasted and earthy flavors to foods. 2-Ethyl-3-methylpyrazine can be used in studies related to anxiety disorders and plant bacterial, fungal and oomycete infections .
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Cat. No.: HY-W127434A
CAS No.: 1466461-81-3
Synonyms: (12R)-Octadecane-1,12-diol
Research Areas:  

Others

(12R)-1,12-Octadecanediol ((12R)-Octadecane-1,12-diol) is a compound characterized by a linear chain of 18 carbon atoms with two hydroxyl groups (C18H38O2). This colorless substance has unique properties owing to the presence of two hydroxyl groups in its molecular structure. Whether derived from natural sources or synthesized chemically, 12-Octadecanediol finds applications in various industries. It is often utilized in the formulation of cosmetics, personal care products, and pharmaceuticals due to its emollient properties, enhancing moisturization and conditioning effects in different formulations. The compound's distinctive structure may make it suitable for specific uses in research or industrial processes. In industrial contexts, 12-Octadecanediol serves as a valuable chemical intermediate for synthesizing other compounds. Its specialized structure and adaptability in formulations make it a significant component across diverse industries, contributing to the development of products for various purposes.
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Cat. No.: HY-Y0837S
CAS No.: 352438-84-7
Synonyms: (S)-2-Amino-1-propanol-d3; (S)-2-Aminopropanol-d3; (S)-Alaninol-d3
L-Alaninol-d3 ((S)-2-Amino-1-propanol-d3; (S)-2-Aminopropanol-d3; (S)-Alaninol-d3) is the deuterated-labeled L-Alaninol (HY-Y0837). L-Alaninol ((S)-2-Amino-1-propanol; (S)-2-Aminopropanol; (S)-Alaninol) is a chiral amino alcohol that serves as a precursor for Levofloxacin (HY-B0330) and Metolachlor (HY-B1871). L-Alaninol acts as the sole carbon source for Pseudomonas sp. strain KIE171, and it is a metabolite produced by the hydrolysis of γ-glutamyl-L-alaninol. L-Alaninol functions as a substrate for oxidative/deaminative degradation and undergoes enzymatic glutamylation via IpuC. It is used as a synthetic building block in the fields of agriculture, pharmaceuticals, and peptide chemistry, and also serves as a chiral auxiliary .
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Cat. No.: HY-L168
707 compounds

Extracellular vesicles (EVs) are small membrane binding structures that are released from cells into the surrounding environment and play a crucial role in mediating and regulating intercellular communication related to physiological and pathological processes. EVs are lipid membrane vesicles composed of proteins, lipids, and nucleic acids. EVs can be divided into several types based on their source, such as extracellular vesicles, microcapsules, and apoptotic vesicles. The size range of exosomes is 30-150nm, which are endocrine in multi vesicular endosomes (MVEs); microvesicles (50-1000nm) are secreted directly through extracellular interactions, thereby releasing plasma membrane vesicles. In contrast, apoptotic bodies are usually larger, ranging in size from 1 to 5 μ m. This is generated during programmed cell death. EV plays a crucial role in transmitting information between cells and influencing the behavior and function of receptor cells.

MCE designs a unique collection of 707 small molecules related to extracellular vesicles (EVs). It is a good tool to be used for research on metabolize, cancer and other diseases.

Cat. No.: HY-146248
CAS No.: 2412923-11-4
TFMU-ADPr is a selective reporter substrate of SARS-CoV-2 Macro1 (IC50=0.59 μM), with an excitation wavelength (λEx) of 385 nm, and an emission wavelength (λEm) of 502 nm (or 495 nm). TFMU-ADPr can also undergo enzymatic hydrolysis with Poly(ADP-ribose) Glycohydrolase (PARG) sourced from human, Tetrahymena thermophila and ADP-ribosylhydrolase 3 from human to release fluorophores, thereby directly reporting total poly (ADP-ribose) hydrolase activity. TFMU-ADPr binds to the ADPr-binding site of SARS-CoV-2 Macro1, and its TFMU moiety inserts into the narrow hydrophobic groove of this protein. TFMU-ADPr can thus be used to evaluate small-molecule inhibitors targeting PAR hydrolases under in vitro conditions, to investigate the regulatory mechanisms of ADP-ribosyl catabolic enzymes, or to detect PAR hydrolase activity in whole-cell lysate assays. TFMU-ADPr is also applicable to COVID-19-related research .
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Cat. No.: HY-146248A
TFMU-ADPr triethylamine is a selective reporter substrate of SARS-CoV-2 Macro1 (IC50=0.59 μM), with an excitation wavelength (λEx) of 385 nm, and an emission wavelength (λEm) of 502 nm (or 495 nm). TFMU-ADPr triethylamine can also undergo enzymatic hydrolysis with Poly(ADP-ribose) Glycohydrolase (PARG) sourced from human, Tetrahymena thermophila and ADP-ribosylhydrolase 3 from human to release fluorophores, thereby directly reporting total poly (ADP-ribose) hydrolase activity. TFMU-ADPr triethylamine binds to the ADPr-binding site of SARS-CoV-2 Macro1, and its TFMU moiety inserts into the narrow hydrophobic groove of this protein. TFMU-ADPr triethylamine can thus be used to evaluate small-molecule inhibitors targeting PAR hydrolases under in vitro conditions, to investigate the regulatory mechanisms of ADP-ribosyl catabolic enzymes, or to detect PAR hydrolase activity in whole-cell lysate assays. TFMU-ADPr triethylamine is also applicable to COVID-19-related research .
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Cat. No.: HY-146248B
Purity:  98.02%
TFMU-ADPr diammonium is a selective reporter substrate of SARS-CoV-2 Macro1 (IC50=0.59 μM), with an excitation wavelength (λEx) of 385 nm, and an emission wavelength (λEm) of 502 nm (or 495 nm). TFMU-ADPr diammonium can also undergo enzymatic hydrolysis with Poly(ADP-ribose) Glycohydrolase (PARG) sourced from human, Tetrahymena thermophila and ADP-ribosylhydrolase 3 from human to release fluorophores, thereby directly reporting total poly (ADP-ribose) hydrolase activity. TFMU-ADPr diammonium binds to the ADPr-binding site of SARS-CoV-2 Macro1, and its TFMU moiety inserts into the narrow hydrophobic groove of this protein. TFMU-ADPr diammonium can thus be used to evaluate small-molecule inhibitors targeting PAR hydrolases under in vitro conditions, to investigate the regulatory mechanisms of ADP-ribosyl catabolic enzymes, or to detect PAR hydrolase activity in whole-cell lysate assays. TFMU-ADPr diammonium is also applicable to COVID-19-related research .
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Cat. No.: HY-N2160
CAS No.: 77690-92-7
6'''-Feruloylspinosin is an orally active RORα activator that crosses the blood-brain barrier, with a Kd of 0.308 μM, and is found in natural sources. 6'''-Feruloylspinosin modulates AMPK and mTOR phosphorylation. 6'''-Feruloylspinosin promotes autophagy through the AMPK/mTOR signaling pathway, inhibits GSK3β phosphorylation at Tyr216, and activates the PGC-1α/Nrf2/HO-1 pathway. 6'''-Feruloylspinosin regulates neurotransmitter levels, enhances mRNA expression of GABAA α1, α5, and GABAB R1 receptor subunits, increases brain 5-HT and GABA, restores melatonin levels, and ameliorates anxiety-like behaviors. 6'''-Feruloylspinosin regulates oxidative stress homeostasis, inhibits mitochondrial dysfunction, decreases MDA while increasing GSH. 6'''-Feruloylspinosin can be used for research on Alzheimer's disease, acute myocardial infarction, heart failure with insomnia, and insomnia .
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Cat. No.: HY-Y0317I
CAS No.: 7757-82-6
Synonyms: Disodium sulfate, meets analytical specification of Ph. Eur. BP USP
Sodium sulfate anhydrous (Disodium sulfate), meets analytical specification of Ph. Eur. BP USP is an orally active multifunctional ionic salt that serves as a protein precipitant, collagen fibril bundling inducer, and chlorine-free sodium source. Sodium sulfate anhydrous, meets analytical specification of Ph. Eur. BP USP promotes collagen fibril bundling to increase matrix pore size, alters cancer cell morphology and regulates their migration direction via geometric signals, and separates plasma/serum proteins or concentrates proteins at 37°C without causing thermal denaturation. In poultry farming applications, Sodium sulfate anhydrous, meets analytical specification of Ph. Eur. BP USP improves laying performance and eggshell quality, and is safe and effective at an addition level of 0.3-1.5%, while a high concentration of 3.0% causes negative physiological effects. Sodium sulfate anhydrous, meets analytical specification of Ph. Eur. BP USP can be widely applied in scientific research on cervical cancer and related fields .
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Cat. No.: HY-L200
2,818 compounds

Natural products are small molecular compounds that occur in nature and come from any organism, including primary and secondary metabolites. Natural products have potential biological activity and can be used as lead compounds for drug discovery. Nature has been a source of medicines for thousands of years, and a large number of drugs have been isolated from nature, many based on their use in traditional medicine. With the development of compound targets, there is an increasing need to screen for compound diversity. Through ongoing research into natural biodiversity, much of which remains to be exploited, natural products will play a key role in meeting this demand. The Lipinski rule of 5 is used to describe the drug-like properties of a molecule, molecules that adhere to the rule of 5 have higher drug potential. Based on MCE natural product library, MCE selects the molecules that obey the rule of 5, which makes the efficiency of drug screening higher.

MCE designs a unique collection of 2,818 RO5 drug-like natural products, which is an important tool for drug discovery.

Cat. No.: HY-L181
30,147 compounds

Bioactive small molecules are important sources of lead compounds and effective tools for drug screening. Because the target of active small molecules is clear, it is conducive to the study of mechanism. In addition, due to the large structural differences between the individual active molecules, it is easier to obtain a greater variety of lead compounds.

MCE integrates the Bioactive Compound Library (HY-L001) and Novel Bioactive Compound Library (HY-L111) to form the Bioactive Compound Library Max. Bioactive Compound Library Max contains novel active small molecules, molecules that have entered the clinical stage and the market, and small molecules that have been verified by cell experiments or biochemical experiments, which fundamentally expands the number of compound libraries in the library and improves the structural diversity, and is an effective tool to start drug screening and mechanism research.

MCE can provide a library of 30,147 mitophagy compounds, which can be used for drug development and mechanism research in cancer, immunity, infection and other hot research fields.

Cat. No.: HY-L058
1,379 compounds

Glycolysis is a series of metabolic processes by which one molecule of glucose is catabolized to two molecules of pyruvate with a net gain of two ATP. Glycolysis takes place in 10 steps and catalyzed by a series of enzyme, such as hexokinase, Glucose-6-phosphate isomerase, Phosphofructokinase, etc. Glycolysis is used by all cells in the body for energy generation.

Most cancer cells exhibit increased glycolysis and use this metabolic pathway for generation of ATP as a main source of their energy supply. This phenomenon is known as the Warburg effect and is considered as one of the most fundamental metabolic alterations during malignant transformation. Because increased aerobic glycolysis is commonly seen in a wide spectrum of human cancers, development of novel glycolytic inhibitors as a new class of anticancer agents is likely to have broad therapeutic applications.

MCE provides a unique collection of 1,379 glycolysis compounds that mainly target hexokinase, glucokinase, enolase, pyruvate kinase, PDHK, etc. MCE Glycolysis Compound Library is a useful tool for glucose metabolism research and anti-cancer drug discovery.

Cat. No.: HY-L163
306 compounds

Traditional Chinese medicine provides abundant natural resources for medicinal compounds, which are often considered effective and safe for drug discovery. Traditional Chinese medicine is based on the principle of "multiple components, multiple targets, and multiple pathways", and naturally has multiple pharmacological effects. As herbal medicine, the secondary plant metabolites in Chinese herbal medicine play an important role in alleviating many diseases in Traditional medicine and folk use. Therefore, the identification of traditional Chinese medicine derived compounds is also an important process in drug development and a necessary factor in dissecting the overall mechanism of action of traditional Chinese medicine. FDA listed compounds have completed extensive preclinical and clinical studies, exhibiting good biological activity, safety, and bioavailability.

MCE designs a unique collection of 306 FDA/EMA/NMPA/PMDA etc-approved traditional Chinese medicine active compounds, including flavonoids, polyphenols, alkaloids, terpenoids, and other structural types. It is a good tool for drug reuse and screening drugs from traditional Chinese medicine sources.

Cat. No.: HY-L220
91 compounds

Biotoxins, also referred to as natural toxins, are chemical substances produced by plants, animals, or microorganisms that exert toxic effects on other living organisms. Due to unique biological activities, biotoxins have been widely applied in molecular biology, physiology, pharmacology, and the clinical diagnosis and treatment of various human diseases, becoming an important source of natural drug development. Biotoxins can specifically bind to and interfere with intracellular signaling molecules or receptors, thereby altering cellular signaling processes. Leveraging this characteristic, biotoxins can be used to study the regulatory mechanisms of cellular signaling pathways. For example, neurotoxins such as snake venom peptides can be used to investigate the functional regulation of neurotransmitter receptors and ion channels. Additionally, biotoxins have demonstrated significant potential in drug development across various fields, including neurological diseases, cardiovascular diseases, anticoagulation, and anti-cancer therapies. With advancements in high throughput screening, structural optimization, and antibody-toxin conjugation technologies, numerous biotoxins or their structural analogs have been successfully brought to market, such as Ziconotide, Captopril, Bivalirudin, and Eptifibatide.

MCE offers 91 types of biotoxins, including neurotoxins, cardiotoxins, mycotoxins, and more.

Cat. No.: HY-L193
1,006 compounds

Since ancient times, promoting blood circulation for removing blood stasis (PBCRBS) has been one of the most popular research contents in the area of traditional Chinese medicine (TCM) and integrated medicine. Rhizoma, Persicae Semen, Carthami Flos, Curcumae Longae Rhizoma and so on are common TCM with PBCRBS characteristic. Studies have shown that the mechanism of action of PBCRBS TCM is to promote blood circulation (improving cardiovascular and cerebrovascular functions, physical and chemical properties of blood, platelet and coagulation system and other physiological functions) and remove blood stasis (anti-myocardial ischemia, cerebral ischemia, inhibition of platelet aggregation, anti-coagulation, anti-thrombosis, etc.). Not only that, PBCRBS TCM has anti-infection, inhibit inflammation, regulate immune function, inhibit immune response, inhibit abnormal tissue proliferation and other functions. Therefore, PBCRBS TCM has high research value in all- field disease research fields.

MCE can supply 1,006 monomer component from more than a hundred sources of PBCRBS TCM, which can be used in TCM studies, drug development and mechanism-based studies.

Cat. No.: HY-L055
1,824 compounds

Medicine Food Homology (MFH) means that some food themselves are medicines and there is no absolute boundary between them. MFH theory combines the function of food and medicine together scientifically and MFH materials can be used both for food and medicine. Besides nutritional value, MFH materials also have the functions in the prevention and treatment of disease and many other healthcare effects. Food as medicines has many benefits because of their safety while taking drugs will bring inevitable side effect to people. In order to ensure the safe use of functional food, National Health Commission of People's Republic of China made specific provisions on MFH items. More than 100 kinds of widely used MFH materials have been released.

Based on MFH items released by National Health Commission, PRC, MCE carefully designs a unique collection of 1,824 Medicine Food Homology Compounds with high safety that can be used for high throughput and high content screening for drug discovery.

Cat. No.: HY-145473S
Synonyms: 15(S)-HETE-SAPE; 15(S)-Hydroxyeicosatetraenoic acid-SAPE-d11; 1-Stearoyl-2-15(S)-HETE-sn-glycero-3-Phosphatidylethanolamine-d11
1-Stearoyl-2-15(S)-HETE-sn-glycero-3-PE-d11 (15(S)-HETE-SAPE-d11) is deuterium labeled 1-Stearoyl-2-15(S)-HETE-sn-glycero-3-PE. 1-Stearoyl-2-15(S)-HETE-sn-glycero-3-PE is a phospholipid that contains stearic acid (HY-B2219) at the sn-1 position and 15(S)-HETE at the sn-2 position. It is formed in human peripheral monocytes activated by the calcium ionophore A23187 (HY-N6687) by direct oxidation of 1-stearoyl-2-arachidonoyl-sn-glycero-3-PE (SAPE) by 15-LO. Phosphoethanolamine (PE) HETEs (PE-HETEs), including 1-stearoyl-2-15(S)-HETE-sn-glycero-3-PE, are the main source of esterified HETE in ionophore-activated monocytes .
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Cat. No.: HY-L194
1,282 compounds

Heat-clearing and detoxification is a specific treatment method in the research of traditional Chinese medicine (TCM), which is clinically used to treat infectious diseases with remarkable effect. Over the past decades, the research of heat-clearing and detoxification treatment has been one of the most active fields of combining traditional Chinese and western medicines, and has made remarkable achievements. Nowadays, the application field of heat-clearing and detoxification traditional Chinese medicine is not only limited to antibacterial and antiviral, but also has made progress in the research fields of anti-inflammatory reaction, anti-endotoxin, anti-peroxidative damage, anti-inflammatory cytokines, enhancement of immune function, protection of cellular organelles, and maintenance of calcium homeostasis. In addition to this, clearing heat and removing toxins has also made significant research progress in non-infectious diseases, for example, in tumors, cardiovascular diseases, renal diseases, blood diseases, geriatrics, and diabetes, all of which have shown good curative effect.

MCE can supply 1,282 monomer component from more than a hundred sources of heat-clearing and detoxification TCM, which can be used in TCM studies, drug development and mechanism-based studies.