Date published: 2026-1-9

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CYP2C6 Substrates

Santa Cruz Biotechnology now offers a broad range of CYP2C6 Substrates for use in various applications. CYP2C6 is an important enzyme within the cytochrome P450 family, which is primarily involved in the metabolism of endogenous compounds and xenobiotics in various species, including rodents. CYP2C6 Substrates are critical tools in scientific research, enabling the detailed study of this enzyme's role in metabolic processes, such as drug metabolism, steroid biosynthesis, and the breakdown of environmental toxins. Researchers use these substrates to explore the enzyme's substrate specificity, catalytic activity, and its regulatory mechanisms within different biological contexts. These substrates are widely employed in enzymatic assays to assess the kinetic properties of CYP2C6, understand the enzyme's role in metabolic pathways, and evaluate the impact of various inhibitors or inducers on its activity. The availability of CYP2C6 Substrates has significantly advanced research in fields such as toxicology, and biochemistry, where understanding the precise metabolic functions of cytochrome P450 enzymes is crucial. By utilizing these substrates, scientists can gain valuable insights into how CYP2C6 contributes to the metabolism of various compounds, providing a deeper understanding of its role in maintaining cellular homeostasis and its potential implications in the study of metabolic diseases and environmental exposures. View detailed information on our available CYP2C6 Substrates by clicking on the product name.
Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Verapamil hydrochloride

152-11-4sc-3590
sc-3590A
sc-3590B
100 mg
1 g
5 g
$51.00
$77.00
$153.00
22
(1)

Verapamil hydrochloride demonstrates unique interactions with CYP2C6, primarily through its stereochemistry, which influences the enzyme's substrate specificity. The compound's aromatic structure facilitates hydrophobic interactions and hydrogen bonding within the active site, enhancing binding affinity. Additionally, its ability to form dynamic conformational changes allows for effective modulation of enzyme kinetics, impacting the rate of metabolic processes and influencing the overall enzymatic activity in biotransformation pathways.