Date published: 2026-4-5

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AdipoR Activators

Santa Cruz Biotechnology now offers a broad range of AdipoR Activators for use in various applications. AdipoR Activators are a vital class of compounds in scientific research, primarily used to study the functions of adiponectin receptors, which play crucial roles in regulating glucose and lipid metabolism, as well as maintaining energy homeostasis. These receptors, AdipoR1 and AdipoR2, are involved in various signaling pathways that influence cellular processes such as fatty acid oxidation, insulin sensitivity, and inflammation. By selectively activating these receptors, researchers can delve into the molecular mechanisms underlying metabolic regulation and the complex interactions between adiponectin signaling and other metabolic pathways. AdipoR Activators are indispensable tools in the exploration of metabolic diseases, such as obesity and type 2 diabetes, providing insights into how adiponectin receptor activation can modulate cellular responses and metabolic outcomes. In the scientific community, these activators are utilized in various experimental models, including in vitro studies with cell lines and in vivo models, to study the effects of adiponectin signaling on metabolic health and disease progression. The ability to modulate AdipoR activity with these activators is critical for advancing our understanding of metabolic regulation and for developing new experimental approaches in the study of energy balance and metabolic disorders. Researchers rely on AdipoR Activators to uncover new pathways and targets that could be crucial for understanding and manipulating metabolic processes. View detailed information on our available AdipoR Activators by clicking on the product name.
Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Compound 112254

949745-75-9sc-396660
sc-396660A
10 mg
50 mg
$105.00
$410.00
(0)

Compound 112254 functions as an adipor by engaging in selective binding with adipocyte receptors, modulating lipid metabolism pathways. Its unique structural features facilitate specific interactions with lipid bilayers, promoting enhanced membrane fluidity. The compound exhibits distinctive reaction kinetics, characterized by rapid association and slower dissociation rates, which influence its bioavailability. Furthermore, its hydrophobic characteristics contribute to its stability in lipid-rich environments, affecting cellular distribution.