Date published: 2026-3-15

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NCKX Inhibitors

Santa Cruz Biotechnology now offers a broad range of NCKX Inhibitors for use in various applications. Sodium-calcium-potassium exchangers (NCKXs) are crucial membrane transport proteins that help maintain cellular ion homeostasis by facilitating the exchange of intracellular calcium ions for extracellular sodium and potassium ions. This process is vital for regulating intracellular calcium levels, which are important for numerous cellular functions, including muscle contraction, neurotransmitter release, and signal transduction. NCKX Inhibitors are valuable tools in scientific research, enabling the study of how these exchangers influence cellular processes and contribute to the overall function of excitable cells such as neurons and cardiac muscle cells. By inhibiting NCKX activity, researchers can explore the role of these exchangers in modulating intracellular calcium concentrations, which is essential for understanding their impact on cellular signaling and electrical activity. These inhibitors are widely used in research focused on neurophysiology, cardiology, and cellular biology, where abnormal NCKX function can lead to dysregulated calcium signaling and is implicated in conditions such as cardiac arrhythmias, neurodegenerative diseases, and other calcium-related disorders. Additionally, NCKX Inhibitors are instrumental in the development of new therapeutic strategies aimed at modulating calcium dynamics within cells. The availability of these inhibitors has significantly advanced our understanding of ion exchange mechanisms and their broader implications in cellular physiology. View detailed information on our available NCKX Inhibitors by clicking on the product name.
Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

KB-R7943 MESYLATE

182004-65-5sc-202681
10 mg
$160.00
4
(1)

KB-R7943 MESYLATE functions as a selective inhibitor of Na+/Ca2+ exchangers (NCX), exhibiting unique binding interactions that modulate ion transport dynamics. Its structure allows for specific conformational changes in the NCX protein, influencing calcium homeostasis. The compound's kinetic profile reveals a rapid onset of action, with distinct effects on cellular signaling pathways. Additionally, its solubility properties enhance its interaction with membrane proteins, impacting cellular calcium flux.