Date published: 2026-5-9

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PI 3-kinase Substrates

Santa Cruz Biotechnology now offers a broad range of PI 3-kinase Substrates for use in various applications. PI 3-kinase Substrates are crucial tools for studying the function and activity of phosphoinositide 3-kinases (PI3Ks), which are a family of enzymes involved in cellular processes such as growth, proliferation, differentiation, motility, and survival. By providing specific substrates for PI3Ks, researchers can accurately measure and analyze the kinase activity of these enzymes, facilitating a deeper understanding of their role in signal transduction pathways. In scientific research, PI 3-kinase Substrates are employed to investigate the downstream effects of PI3K activation, particularly on signaling molecules like AKT, mTOR, and PDK1, which are critical for mediating cellular responses to various stimuli. These substrates enable researchers to dissect the biochemical pathways regulated by PI3Ks and to explore their implications in cellular homeostasis and function. Additionally, PI 3-kinase Substrates are used in high-throughput screening assays to identify potential modulators of PI3K activity. The use of these substrates supports the development of experimental models that elucidate the complex interactions between PI3Ks and other signaling networks, advancing our knowledge of cellular signaling dynamics. View detailed information on our available PI 3-kinase Substrates by clicking on the product name.

SEE ALSO...

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

L-α-Phosphatidyl-D-myo-inositol 4-monophosphate, dipalmitoyl ammonium salt

sc-300871
100 µg
$249.00
(0)

L-α-Phosphatidyl-D-myo-inositol 4-monophosphate, dipalmitoyl ammonium salt, acts as a potent modulator of cellular signaling pathways, particularly in the activation of PI3-kinase. Its unique amphiphilic structure promotes membrane interactions, facilitating the recruitment of signaling proteins. The compound's ability to form lipid bilayers enhances its role in cellular compartmentalization, influencing reaction kinetics and promoting specific downstream effects in signal transduction.