Date published: 2026-4-1

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PGP Substrates

Santa Cruz Biotechnology now offers a broad range of PGP Substrates for use in various applications. PGP Substrates are crucial tools for studying the function and activity of P-glycoprotein (PGP), a membrane-bound transporter protein that plays a key role in the efflux of xenobiotics and endogenous compounds out of cells. By utilizing PGP Substrates, researchers can investigate the mechanisms of drug transport, resistance, and cellular detoxification mediated by PGP. These substrates are essential for evaluating the transport activity of PGP in various cell types and understanding how this protein influences cellular homeostasis. In scientific research, PGP Substrates are employed to explore the role of PGP in protecting cells from toxic compounds, as well as its involvement in the transport of hormones, lipids, and metabolic byproducts. Researchers use these substrates to study the regulation of PGP expression and activity, and to identify factors that modulate its function. Additionally, PGP Substrates are valuable for screening potential inhibitors or activators of PGP, providing insights into the modulation of transporter activity and its impact on cellular processes. The use of PGP Substrates also supports the development of experimental models to investigate the interplay between PGP and other transporters, contributing to a comprehensive understanding of cellular transport mechanisms. By facilitating these studies, PGP Substrates enhance our knowledge of transporter biology and its implications in health and disease. View detailed information on our available PGP Substrates by clicking on the product name.
Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Vinblastine Sulfate

143-67-9sc-201447
sc-201447A
sc-201447B
sc-201447C
10 mg
50 mg
100 mg
1 g
$109.00
$412.00
$561.00
$2244.00
9
(1)

Vinblastine Sulfate is a complex alkaloid that exhibits unique interactions with microtubules, disrupting their polymerization and leading to cell cycle arrest. Its distinct structural features allow for specific binding to tubulin, influencing the dynamics of cytoskeletal organization. The compound's reaction kinetics demonstrate a rapid onset of action, with a notable affinity for the P-glycoprotein transport system, impacting cellular efflux mechanisms and contributing to its pharmacokinetic profile.

Vincristine Sulfate

2068-78-2sc-201434
sc-201434A
5 mg
25 mg
$122.00
$342.00
15
(2)

Vincristine Sulfate is a potent alkaloid characterized by its intricate binding affinity to tubulin, which alters microtubule dynamics and impedes cellular mitosis. Its unique stereochemistry facilitates selective interactions with the P-glycoprotein transport system, enhancing its role in modulating drug resistance. The compound's kinetic behavior reveals a swift engagement with cellular targets, influencing intracellular transport and contributing to its distinct biochemical pathways.

12β-Hydroxydigitoxin

20830-75-5sc-213604
sc-213604A
1 g
5 g
$143.00
$694.00
(0)

12β-Hydroxydigitoxin exhibits a remarkable affinity for P-glycoprotein, influencing its transport dynamics across cellular membranes. This compound's unique structural features enable it to engage in specific hydrogen bonding and hydrophobic interactions, which modulate its bioavailability. Its reaction kinetics suggest a complex interplay with efflux mechanisms, potentially altering the pharmacokinetic profiles of co-administered compounds. The distinct molecular interactions highlight its role in cellular transport processes.

Mevinolinic acid, monoammonium salt

77550-67-5sc-221939
100 mg
$1980.00
(0)

Mevinolinic acid, monoammonium salt, demonstrates intriguing interactions with P-glycoprotein, impacting its transport efficiency. The compound's unique ionic and polar characteristics facilitate specific binding to the protein, influencing substrate recognition and efflux activity. Its kinetic behavior reveals a nuanced relationship with membrane permeability, potentially affecting the distribution of various compounds. These molecular dynamics underscore its significance in modulating transport pathways within cellular environments.