24 Results for "

captopril

" in MedChemExpress (MCE) Product Catalog:
Products (24)

24 Results for "captopril" in MCE Product Catalog:

Cat. No.: HY-121796
CAS No.: 156039-69-9
Target:  

Neprilysin

Research Areas:  

Others

Mixanpril is a compound with the ability to modulate insulin sensitivity and has the activity of regulating insulin sensitivity and femoral blood flow in obese Zucker rats. Mixanpril can affect insulin-mediated glucose disposal in obese Zucker rats and also has a regulatory effect on femoral blood flow, with different effects compared to the ACE inhibitor captopril.
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Cat. No.: HY-B0368B
CAS No.: 119238-52-7
D-Captopril is a NDM-1 inhibitor and a competitive BlaB inhibitor, with an IC50 value of 21.8 µM against NDM-1 and a Ki of 70-100 µM against BlaB. D-Captopril synergistically reduces the minimum inhibitory concentration of Meropenem (HY-13678) against NDM-1-expressing bacteria. D-Captopril binds to BcII via its thiolate sulfur atom and carboxylate group, altering metal ion occupancy and modulating Cd 2+ binding affinity. D-Captopril can be used in the research of neonatal meningitis, sepsis and bacterial infections .
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Cat. No.: HY-W699874
CAS No.: 1189969-31-0
3-(Acetylthio)-2-methylpropanoic acid-d5 is the deuterium labeled 3-(Acetylthio)-2-methylpropanoic acid (Captopril Impurity) (HY-Z8318).
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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.