Date published: 2025-12-12

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pan NOS Inhibitors

Santa Cruz Biotechnology now offers a broad range of pan NOS Inhibitors for use in various applications. Pan NOS Inhibitors target nitric oxide synthases (NOS), a family of enzymes responsible for the production of nitric oxide (NO), a crucial signaling molecule involved in numerous physiological processes. By inhibiting all three isoforms of NOSneuronal (nNOS), inducible (iNOS), and endothelial (eNOS)these inhibitors provide researchers with powerful tools to study the regulatory mechanisms and cellular functions of NO. This category of chemicals is essential for investigating the role of nitric oxide in cellular communication, immune responses, and the regulation of vascular tone. Researchers utilize pan NOS Inhibitors to dissect the complex pathways of NO synthesis and its impact on various biological processes, including neurotransmission, cell signaling, and metabolic regulation. The inhibition of NOS activity allows for the exploration of NO's involvement in oxidative stress and its broader implications in cellular redox states. Additionally, pan NOS Inhibitors are used to understand the intricate balance between NO production and degradation, offering insights into how cells maintain homeostasis under different physiological and pathological conditions. These inhibitors are invaluable in experimental setups aiming to study the interplay between NO and other signaling molecules, thereby advancing our knowledge of cellular function and response to environmental stimuli. View detailed information on our available pan NOS Inhibitors by clicking on the product name.
Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

S-Ethyl N-Phenylisothiourea

19801-34-4sc-208326
50 mg
$330.00
(0)

S-Ethyl N-Phenylisothiourea is a versatile compound characterized by its ability to form strong hydrogen bonds and engage in π-π stacking interactions due to its aromatic structure. This facilitates unique reactivity patterns, particularly in nucleophilic substitution reactions. Its distinct electronic properties allow for selective interactions with various substrates, influencing reaction kinetics. The compound's solubility in organic solvents enhances its utility in diverse chemical environments, promoting efficient catalysis and reactivity.