Date published: 2026-1-9

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TH Substrates

Santa Cruz Biotechnology now offers a broad range of TH Substrates for use in various applications. TH Substrates are essential chemical compounds widely utilized in scientific research for their role in enzyme-catalyzed reactions, particularly involving hydroxylation processes. These substrates serve as crucial starting materials in biochemical assays, enabling researchers to study enzyme activities and mechanisms in detail. In the field of organic chemistry, TH Substrates are often used in synthetic pathways to introduce hydroxyl groups into complex molecules, which can significantly alter their chemical properties and reactivity. This versatility makes them valuable in exploring novel reaction mechanisms and developing new synthetic methodologies. Moreover, TH Substrates are instrumental in the study of metabolic pathways, helping scientists to investigate the function and regulation of enzymes within biological systems. Their use extends to environmental research as well, where they aid in understanding the degradation processes of pollutants and the synthesis of environmentally benign chemicals. By providing high-quality TH Substrates, Santa Cruz Biotechnology supports a wide range of scientific endeavors, from fundamental research to industrial applications. View detailed information on our available TH Substrates by clicking on the product name.

SEE ALSO...

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

L-4-Fluoro-phenyl-alanine

1132-68-9sc-207785
sc-207785A
100 mg
1 g
$48.00
$176.00
(0)

L-4-Fluoro-phenyl-alanine, as a th, showcases unique reactivity due to its fluorinated aromatic ring, which can modulate electronic properties and steric hindrance. This substitution can influence hydrogen bonding and π-π stacking interactions, affecting its stability in various environments. The compound's ability to participate in nucleophilic substitution reactions is enhanced by the electron-withdrawing fluorine, altering reaction kinetics and pathways in synthetic applications.