ZNF659 activators comprise a class of biochemical compounds specifically designed to target and enhance the activity of Zinc Finger Protein 659 (ZNF659), a member of the zinc finger protein family characterized by their zinc finger motifs that facilitate binding to DNA, RNA, or other proteins. Zinc finger proteins, including ZNF659, are known to play crucial roles in various biological processes such as DNA recognition, transcriptional regulation, RNA packaging, and the regulation of apoptosis, making them integral components of cellular function and gene expression regulation. The precise biological functions and mechanisms of action of ZNF659 are not fully understood, but it is believed to be involved in transcriptional regulation and possibly in the mediation of cellular responses to environmental or intracellular signals. Activators of ZNF659 are designed to enhance its DNA-binding activity or its interaction with transcriptional machinery, potentially influencing gene expression patterns. The chemical structures of ZNF659 activators can vary widely, including small molecules, peptides, or other biologically active compounds, each tailored to interact specifically with ZNF659, thereby modulating its function within the nucleus.
The investigation of ZNF659 activators involves a multidisciplinary approach that combines elements of molecular biology, biochemistry, and genetics to elucidate their effects on ZNF659 function and the subsequent impact on cellular and molecular processes. Researchers study the interaction between ZNF659 and its activators by examining changes in the protein's ability to bind DNA, its localization within the nucleus, and its interaction with other components of the transcriptional machinery. Techniques such as electrophoretic mobility shift assays (EMSAs), chromatin immunoprecipitation (ChIP), and reporter gene assays are commonly used to assess these interactions and their effects on gene expression. Additionally, gene expression analyses, including quantitative PCR and RNA sequencing, are employed to evaluate the broader impact of ZNF659 activation on the cellular transcriptome. Through these studies, scientists aim to gain insights into the regulatory roles of ZNF659 in gene expression, how its activity is modulated by specific activators, and the potential implications for understanding the complex networks of transcriptional regulation within cells.
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| Product Name | CAS # | Catalog # | QUANTITY | Price | Citations | RATING |
|---|---|---|---|---|---|---|
D,L-Sulforaphane | 4478-93-7 | sc-207495A sc-207495B sc-207495C sc-207495 sc-207495E sc-207495D | 5 mg 10 mg 25 mg 1 g 10 g 250 mg | $150.00 $286.00 $479.00 $1299.00 $8299.00 $915.00 | 22 | |
May activate various cytoprotective pathways, potentially influencing gene expression through the Nrf2 signaling pathway. | ||||||
Quercetin | 117-39-5 | sc-206089 sc-206089A sc-206089E sc-206089C sc-206089D sc-206089B | 100 mg 500 mg 100 g 250 g 1 kg 25 g | $11.00 $17.00 $108.00 $245.00 $918.00 $49.00 | 33 | |
A flavonoid that can modulate gene expression by influencing kinase signaling pathways and transcription factors. | ||||||
(−)-Epigallocatechin Gallate | 989-51-5 | sc-200802 sc-200802A sc-200802B sc-200802C sc-200802D sc-200802E | 10 mg 50 mg 100 mg 500 mg 1 g 10 g | $42.00 $72.00 $124.00 $238.00 $520.00 $1234.00 | 11 | |
A green tea polyphenol that may affect gene expression through epigenetic modifications and signaling pathways. | ||||||
Genistein | 446-72-0 | sc-3515 sc-3515A sc-3515B sc-3515C sc-3515D sc-3515E sc-3515F | 100 mg 500 mg 1 g 5 g 10 g 25 g 100 g | $26.00 $92.00 $120.00 $310.00 $500.00 $908.00 $1821.00 | 46 | |
A soy isoflavone that can modulate gene expression via estrogen receptor signaling and histone acetylation. | ||||||
Retinoic Acid, all trans | 302-79-4 | sc-200898 sc-200898A sc-200898B sc-200898C | 500 mg 5 g 10 g 100 g | $65.00 $319.00 $575.00 $998.00 | 28 | |
Can regulate gene expression by activating retinoic acid receptors, which function as transcription factors. | ||||||
Cholecalciferol | 67-97-0 | sc-205630 sc-205630A sc-205630B | 1 g 5 g 10 g | $70.00 $160.00 $290.00 | 2 | |
Upon activation, it binds to vitamin D receptors, influencing the expression of various target genes. | ||||||
Kaempferol | 520-18-3 | sc-202679 sc-202679A sc-202679B | 25 mg 100 mg 1 g | $97.00 $212.00 $500.00 | 11 | |
A natural flavonoid that might affect gene expression through modulation of signaling pathways and epigenetic mechanisms. | ||||||
Sodium Butyrate | 156-54-7 | sc-202341 sc-202341B sc-202341A sc-202341C | 250 mg 5 g 25 g 500 g | $30.00 $46.00 $82.00 $218.00 | 19 | |
Can influence gene expression by inhibiting histone deacetylases, leading to an open chromatin structure. | ||||||
Theophylline | 58-55-9 | sc-202835 sc-202835A sc-202835B | 5 g 25 g 100 g | $20.00 $31.00 $83.00 | 6 | |
A methylxanthine that can affect gene expression by inhibiting phosphodiesterases, leading to increased cAMP levels. | ||||||
Bisphenol A | 80-05-7 | sc-391751 sc-391751A | 100 mg 10 g | $300.00 $490.00 | 5 | |
Known to interact with estrogen receptors, which might influence the expression of certain genes. | ||||||