Emp Inhibitors, also known as enoyl-(acyl carrier protein) reductase inhibitors, are a class of compounds that interfere with a key enzyme in the fatty acid biosynthesis pathway, particularly in prokaryotes and certain eukaryotic organisms. The enzyme targeted by these inhibitors is enoyl-ACP reductase (FabI), which plays a crucial role in the elongation cycle of fatty acid synthesis. By binding to and inhibiting this enzyme, Emp Inhibitors block the reduction of enoyl-ACP substrates to their saturated acyl-ACP forms, effectively halting the synthesis of fatty acids. Since fatty acid synthesis is vital for the growth and maintenance of cellular membranes, the inhibition of this process has profound effects on cell physiology, leading to impaired membrane formation and compromised cell viability. The structural backbone of Emp Inhibitors is often designed to mimic the substrate or intermediate states of the FabI enzyme, facilitating binding to the active site and enhancing their inhibitory efficiency.
Chemically, Emp Inhibitors exhibit structural diversity, but they typically possess a hydrophobic core and functional groups that can form hydrogen bonds with active site residues of the target enzyme. This allows the inhibitors to fit snugly within the binding pocket of the enoyl-ACP reductase, often competing with the natural substrate or stabilizing the enzyme in an inactive conformation. The exact binding affinity and inhibitory potential depend on the molecular structure of each compound and its interactions with the enzyme's active site. Additionally, modifications to the Emp Inhibitors' chemical structures can significantly affect their specificity, binding strength, and overall inhibition capacity. As a class, they represent an important tool for studying fatty acid biosynthesis, elucidating the mechanisms of enzyme function, and understanding cellular lipid metabolism. Their ability to selectively disrupt the function of enoyl-ACP reductase makes them valuable for biochemical research on fatty acid pathways and cellular growth regulation.
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Product Name | CAS # | Catalog # | QUANTITY | Price | Citations | RATING |
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Brefeldin A | 20350-15-6 | sc-200861C sc-200861 sc-200861A sc-200861B | 1 mg 5 mg 25 mg 100 mg | $30.00 $52.00 $122.00 $367.00 | 25 | |
Disrupts protein trafficking in the Golgi apparatus, potentially affecting the processing and expression of membrane proteins like Emp. | ||||||
Tunicamycin | 11089-65-9 | sc-3506A sc-3506 | 5 mg 10 mg | $169.00 $299.00 | 66 | |
Inhibits N-linked glycosylation, essential for the stability and function of many membrane proteins. | ||||||
Cycloheximide | 66-81-9 | sc-3508B sc-3508 sc-3508A | 100 mg 1 g 5 g | $40.00 $82.00 $256.00 | 127 | |
Blocks eukaryotic protein synthesis at the translation step, potentially reducing the production of Emp. | ||||||
Rapamycin | 53123-88-9 | sc-3504 sc-3504A sc-3504B | 1 mg 5 mg 25 mg | $62.00 $155.00 $320.00 | 233 | |
Inhibits mTOR signaling pathway, affecting protein synthesis and potentially Emp expression. | ||||||
Monensin A | 17090-79-8 | sc-362032 sc-362032A | 5 mg 25 mg | $152.00 $515.00 | ||
Acts as an ionophore, disrupting ion gradients and possibly affecting membrane protein expression. | ||||||
Chloroquine | 54-05-7 | sc-507304 | 250 mg | $68.00 | 2 | |
Alters lysosomal pH and function, potentially affecting the degradation pathway of membrane proteins. | ||||||
Etoposide (VP-16) | 33419-42-0 | sc-3512B sc-3512 sc-3512A | 10 mg 100 mg 500 mg | $32.00 $170.00 $385.00 | 63 | |
Inhibits topoisomerase II, potentially affecting DNA replication and transcription processes, including Emp expression. | ||||||
Actinomycin D | 50-76-0 | sc-200906 sc-200906A sc-200906B sc-200906C sc-200906D | 5 mg 25 mg 100 mg 1 g 10 g | $73.00 $238.00 $717.00 $2522.00 $21420.00 | 53 | |
Interacts with DNA and inhibits RNA polymerase, possibly leading to decreased transcription of Emp. | ||||||
5-Azacytidine | 320-67-2 | sc-221003 | 500 mg | $280.00 | 4 | |
A DNA methyltransferase inhibitor that could alter methylation patterns and affect Emp expression. | ||||||
Valproic Acid | 99-66-1 | sc-213144 | 10 g | $85.00 | 9 | |
Histone deacetylase inhibitor that could influence chromatin structure and gene expression, including Emp. |