Date published: 2026-4-24

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FAS (CD95) Activators

Santa Cruz Biotechnology now offers a broad range of FAS (CD95) Activators for use in various applications. FAS activators are critical components in the study of cellular processes, particularly apoptosis, the programmed cell death mechanism crucial for maintaining cellular homeostasis and development. This category of chemicals plays a pivotal role in basic biological research and is instrumental in explaining the pathways that regulate cell death and survival. By activating the FAS receptor, researchers can trigger apoptosis in a controlled manner, allowing the study of cellular responses in various pathological states and developmental stages without targeting disease directly. The ability to induce apoptosis selectively through FAS activators is invaluable in understanding how cells communicate and die, providing insights into the fundamental processes that govern cell fate. This understanding is critical for fields such as developmental biology, immunology, and cancer biology, where the regulation of cell death is a fundamental aspect of the research. Moreover, FAS activators are used to explore the complex signaling pathways that impact cellular health and longevity, contributing to our knowledge of cellular mechanics in a broader spectrum of scientific inquiry. The tools provided by FAS activators extend beyond mere induction of cell death, offering a window into the intricate network of signals that control cellular functions. View detailed information on our available FAS (CD95) Activators by clicking on the product name.
Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

ET-18-OCH3

77286-66-9sc-201021
sc-201021A
sc-201021B
sc-201021C
sc-201021F
5 mg
25 mg
50 mg
100 mg
1 g
$111.00
$436.00
$843.00
$1576.00
$3756.00
6
(1)

ET-18-OCH3, an acid halide, is distinguished by its capacity to modulate CD95 signaling pathways, facilitating apoptosis through specific molecular interactions. Its unique structure enables it to engage with key cellular components, influencing downstream signaling cascades. The compound's reactivity is characterized by rapid acylation processes, which can alter protein conformation and function. Additionally, its lipophilic nature enhances membrane permeability, impacting cellular uptake and distribution.