MMTAG2 activators belong to a distinct chemical class designed to modulate the activity of a specific molecular target known as MMTAG2, which plays a crucial role in various biological processes. These activators are characterized by their ability to interact with MMTAG2, leading to an alteration in its functional state. The design and development of these compounds involve a deep understanding of the molecular architecture of MMTAG2, including its binding sites, conformational dynamics, and interaction networks within the cellular environment. The chemical structure of MMTAG2 activators is often complex, involving multiple functional groups that are strategically positioned to facilitate effective binding and activation. These functional groups may include hydrogen bond donors and acceptors, hydrophobic moieties, and charged entities, each contributing to the compound's affinity, specificity, and overall interaction profile with MMTAG2.
The development of MMTAG2 activators also involves sophisticated chemical synthesis techniques, aiming to achieve high purity and structural integrity of the compounds. Researchers employ various strategies such as combinatorial chemistry, structure-based drug design, and high-throughput screening to identify and optimize these activators. The interaction between MMTAG2 activators and their target is studied using advanced biochemical and biophysical methods, including X-ray crystallography, nuclear magnetic resonance (NMR) spectroscopy, and surface plasmon resonance (SPR), which provide insights into the binding mechanism and the conformational changes induced upon activation. These studies are crucial for understanding how MMTAG2 activators exert their modulatory effects at the molecular level, shedding light on the intricate balance between compound structure and biological function. Through a combination of chemical innovation and biological insight, MMTAG2 activators represent a fascinating area of research with the potential to elucidate fundamental aspects of molecular regulation and interaction.
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Product Name | CAS # | Catalog # | QUANTITY | Price | Citations | RATING |
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Forskolin | 66575-29-9 | sc-3562 sc-3562A sc-3562B sc-3562C sc-3562D | 5 mg 50 mg 1 g 2 g 5 g | $76.00 $150.00 $725.00 $1385.00 $2050.00 | 73 | |
Forskolin stimulates adenylyl cyclase, increasing cAMP levels, which can modulate gene expression. | ||||||
5-Azacytidine | 320-67-2 | sc-221003 | 500 mg | $280.00 | 4 | |
This compound inhibits DNA methyltransferase, potentially leading to the demethylation and activation of gene expression. | ||||||
Trichostatin A | 58880-19-6 | sc-3511 sc-3511A sc-3511B sc-3511C sc-3511D | 1 mg 5 mg 10 mg 25 mg 50 mg | $149.00 $470.00 $620.00 $1199.00 $2090.00 | 33 | |
Trichostatin A is an HDAC inhibitor that can alter chromatin structure, influencing gene transcription. | ||||||
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 | |
Retinoic acid acts as a ligand for retinoic acid receptors, which may impact gene regulatory networks. | ||||||
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 | |
Sodium butyrate, an HDAC inhibitor, can affect chromatin remodeling and gene expression. | ||||||
Dibutyryl-cAMP | 16980-89-5 | sc-201567 sc-201567A sc-201567B sc-201567C | 20 mg 100 mg 500 mg 10 g | $45.00 $130.00 $480.00 $4450.00 | 74 | |
This cAMP analog can mimic the action of cAMP and potentially affect gene expression pathways. | ||||||
PMA | 16561-29-8 | sc-3576 sc-3576A sc-3576B sc-3576C sc-3576D | 1 mg 5 mg 10 mg 25 mg 100 mg | $40.00 $129.00 $210.00 $490.00 $929.00 | 119 | |
PMA activates protein kinase C, which may lead to the modulation of transcription factors and gene expression. | ||||||
β-Estradiol | 50-28-2 | sc-204431 sc-204431A | 500 mg 5 g | $62.00 $178.00 | 8 | |
Beta-Estradiol binds estrogen receptors, potentially influencing gene regulatory mechanisms. | ||||||
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 | |
Sulforaphane can influence transcription factors and gene expression through its effects on oxidative stress pathways. | ||||||
(−)-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 | |
EGCG modulates signal transduction pathways that could indirectly affect gene expression. |