Date published: 2026-5-30

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SK Activators

Santa Cruz Biotechnology now offers a broad range of SK Activators for use in various applications. SK Activators, or Src kinase activators, are a significant category of chemicals used extensively in biochemical and molecular biology research. These compounds are known to enhance the activity of Src family kinases, which play critical roles in the regulation of various cellular processes, including growth, differentiation, and signal transduction. In scientific research, SK Activators are invaluable tools for studying the signaling pathways and mechanisms that underpin these cellular activities. Researchers utilize these activators to study the functional roles of Src kinases in various contexts, such as cell adhesion, migration, and invasion. Additionally, SK Activators are employed in high-throughput screening assays to identify potential modulators of Src kinase activity, thereby aiding in the understanding of complex signaling networks. The precise manipulation of Src kinase activity using these activators allows for controlled experimental conditions, providing researchers with the means to dissect intricate biological processes and interactions. By offering a broad range of SK Activators, Santa Cruz Biotechnology supports the scientific community in advancing knowledge in cell biology, signal transduction, and related fields. View detailed information on our available SK Activators by clicking on the product name.

SEE ALSO...

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

1-EBIO

10045-45-1sc-201695
sc-201695A
10 mg
50 mg
$87.00
$325.00
1
(1)

1-EBIO acts as a potent activator of SK channels, enhancing calcium-activated potassium currents. Its unique molecular structure allows for specific interactions with channel subunits, promoting conformational changes that facilitate ion flow. The compound exhibits a rapid onset of action, influencing the kinetics of channel opening and closing. Additionally, its hydrophobic nature may enhance membrane integration, potentially affecting channel localization and function within lipid environments.