Date published: 2025-10-10

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PHYHIP Activators

The chemical class known as PHYHIP Activators encompasses a diverse range of compounds that can modulate the activity of the protein PHYHIP. These activators include molecules that engage with various cellular signaling pathways, such as the Sonic Hedgehog (Shh) pathway, which is integral to cellular communication processes. Given that PHYHIP is associated with these pathways, the chemicals in this class can influence its activity. Some activators in this class can interact directly with components of the Shh pathway, thereby modulating the signaling cascade that can lead to the activation of PHYHIP. Others may affect upstream processes, such as the synthesis of pathway precursors or the regulation of enzymes that modify pathway components, which in turn can alter the activity profile of PHYHIP.

In addition to influencing the Shh pathway, PHYHIP Activators can also encompass molecules that affect peroxisomal function and other cellular processes that are broadly related to PHYHIP activity. These compounds can engage with nuclear receptors to modify gene expression patterns, impacting the function of proteins associated with peroxisomal biogenesis and metabolism. Moreover, some activators can alter the localization and stability of proteins that are part of PHYHIP-related pathways. By affecting the turnover and trafficking of these proteins, the activators can change the signaling dynamics within the cell, which can influence the activity state of PHYHIP. Through these diverse mechanisms, the compounds classified as PHYHIP Activators serve as tools to modulate the functional state of this protein, providing insights into the cellular processes it is involved in.

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Items 11 to 11 of 11 total

Display:

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Simvastatin

79902-63-9sc-200829
sc-200829A
sc-200829B
sc-200829C
50 mg
250 mg
1 g
5 g
$30.00
$87.00
$132.00
$434.00
13
(1)

Simvastatin could possibly activate PHYHIP by impacting cholesterol biosynthesis and potentially other cellular pathways.