Date published: 2026-2-4

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PGF2alphaR Inhibitors

Santa Cruz Biotechnology now offers a broad range of PGF2alphaR Inhibitors for use in various applications. PGF2alphaR Inhibitors are essential tools for studying the functions of the prostaglandin F2alpha receptor (PGF2alphaR), which plays a significant role in mediating various physiological processes such as smooth muscle contraction, inflammation, and reproductive functions. By inhibiting PGF2alphaR, these compounds allow researchers to investigate the receptor's signaling pathways and the downstream effects of its inhibition. In scientific research, PGF2alphaR Inhibitors are utilized to explore the mechanisms of receptor-mediated signal transduction and how blocking these pathways influences cellular behavior and gene expression. These inhibitors are particularly valuable for studying the role of PGF2alphaR in regulating smooth muscle function, including the modulation of uterine contractions and vascular tone. Researchers also employ PGF2alphaR Inhibitors to examine the receptor's involvement in inflammatory responses and its interaction with other signaling molecules and pathways. Additionally, these inhibitors are used to investigate the regulation of reproductive processes, such as ovulation and luteolysis, providing insights into the complex hormonal control mechanisms in reproductive biology. By using PGF2alphaR Inhibitors, scientists can develop experimental models to study the intricate networks of cellular signaling and their broader implications for understanding fundamental biological processes. View detailed information on our available PGF2alphaR Inhibitors by clicking on the product name.

SEE ALSO...

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Prostaglandin F2α dimethyl amide

68192-15-4sc-205462
sc-205462A
1 mg
5 mg
$56.00
$335.00
(0)

Prostaglandin F2α dimethyl amide acts as a potent inhibitor of PGF2α signaling pathways, showcasing unique molecular interactions that disrupt receptor binding. Its dimethyl amide structure enhances lipophilicity, facilitating membrane permeability and altering cellular uptake kinetics. This compound exhibits distinctive reaction profiles, influencing downstream signaling cascades and modulating enzymatic activity, thereby impacting various physiological processes at the cellular level.