Date published: 2025-11-3

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Enzyme Activators

Santa Cruz Biotechnology now offers a broad range of enzyme activators for use in various applications. Enzyme activators are molecules that increase the activity of enzymes, thereby enhancing their catalytic efficiency. These compounds are vital in scientific research for studying enzyme kinetics, metabolic pathways, and regulatory mechanisms within cells. Researchers utilize enzyme activators to dissect the roles of specific enzymes in biochemical processes, to understand how enzymes are regulated in vivo, and to develop models for metabolic regulation. By modulating enzyme activity, scientists can investigate the effects of increased catalytic activity on cellular functions, providing insights into enzyme-substrate interactions and the overall metabolic flux. Enzyme activators are also used to optimize industrial processes, where enhanced enzyme activity can improve yields and efficiency in biotechnological applications such as fermentation and biocatalysis. In academic and industrial laboratories, these activators help in exploring potential applications in synthetic biology, where engineered metabolic pathways can be fine-tuned for the production of valuable compounds. By offering a comprehensive selection of high-quality enzyme activators, Santa Cruz Biotechnology supports advanced research in biochemistry, molecular biology, and biotechnology, empowering scientists to achieve precise control over enzymatic reactions and to drive innovation in their respective fields. View detailed information on our available enzyme activators by clicking on the product name.

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5-(3,5-Dibromophenyl)-1,2,3,4,7,7-hexachloro-2-norbornene

sc-502579
5 mg
$380.00
(0)

5-(3,5-Dibromophenyl)-1,2,3,4,7,7-hexachloro-2-norbornene exhibits intriguing enzyme-like behavior through its ability to facilitate specific molecular interactions. The compound's unique hexachloro framework enhances its electrophilic character, promoting rapid reaction kinetics in various chemical pathways. Its rigid norbornene structure allows for precise spatial orientation, optimizing substrate binding and catalysis. Additionally, the presence of multiple halogen substituents contributes to its stability and reactivity, influencing its interactions with biological macromolecules.