Date published: 2026-5-3

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Calcium Channel Protein Inhibitors

Santa Cruz Biotechnology now offers a broad range of Calcium Channel Protein Inhibitors for use in various applications. Calcium channel protein inhibitors are vital tools in scientific research, particularly for studies focused on the regulation of calcium ion flux across cellular membranes. Calcium channels play a crucial role in numerous physiological processes, including muscle contraction, neurotransmitter release, and gene expression. By selectively inhibiting these channels, researchers can investigate the specific contributions of different calcium channel subtypes to cellular function. These inhibitors are widely used in electrophysiology studies to analyze the biophysical properties of calcium channels, as well as in cell biology to explore the downstream effects of altered calcium signaling. In addition, calcium channel protein inhibitors are employed in research that aims to dissect the molecular mechanisms underlying calcium-dependent processes, such as signal transduction pathways and intracellular communication. The ability to modulate calcium influx with high precision makes these inhibitors indispensable in experiments designed to understand how cells regulate calcium homeostasis and respond to various stimuli. Moreover, calcium channel protein inhibitors are used in high-throughput screening assays to identify novel modulators of calcium signaling, contributing to the broader understanding of calcium's role in cellular physiology. By providing researchers with the means to specifically target calcium channels, these inhibitors enable detailed exploration of the complex dynamics of calcium in cellular processes, offering insights that are essential for advancing the field of cellular and molecular biology. View detailed information on our available Calcium Channel Protein Inhibitors by clicking on the product name.

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Items 11 to 20 of 87 total

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Thioridazine Hydrochloride

130-61-0sc-201149A
sc-201149
sc-201149B
sc-201149C
sc-201149D
5 mg
1 g
5 g
25 g
100 g
$20.00
$49.00
$104.00
$416.00
$1248.00
(1)

Thioridazine Hydrochloride exhibits a unique interaction with calcium channel proteins, primarily through its ability to stabilize specific conformations of the channel. This stabilization affects the channel's permeability to calcium ions, leading to altered ion flow and cellular excitability. The compound's distinct hydrophobic regions facilitate binding to lipid membranes, influencing membrane potential and signaling pathways. Its kinetic profile suggests a nuanced modulation of calcium-dependent processes, impacting cellular function.

Verapamil hydrochloride

152-11-4sc-3590
sc-3590A
sc-3590B
100 mg
1 g
5 g
$51.00
$77.00
$153.00
22
(1)

Verapamil hydrochloride interacts with calcium channel proteins by selectively inhibiting their activity, which alters the dynamics of calcium ion influx. This compound exhibits a unique affinity for specific channel subtypes, influencing their gating mechanisms and ion selectivity. Its structural characteristics allow for effective binding to the channel's pore region, modulating the kinetics of calcium transport. This modulation can lead to significant changes in cellular calcium homeostasis and signaling cascades.

Amiloride • HCl

2016-88-8sc-3578
sc-3578A
25 mg
100 mg
$22.00
$57.00
6
(2)

Amiloride hydrochloride functions as a potent inhibitor of sodium channels, exhibiting a unique interaction with calcium channel proteins. Its molecular structure allows for specific binding to the channel's regulatory sites, influencing ion permeability and gating behavior. This compound alters the kinetics of ion flow, impacting cellular excitability and signaling pathways. The distinct binding affinity of Amiloride hydrochloride contributes to its role in modulating ion transport dynamics within cellular membranes.

Amlodipine

88150-42-9sc-200195
sc-200195A
100 mg
1 g
$74.00
$166.00
2
(1)

Amlodipine acts as a selective antagonist of calcium channels, characterized by its ability to stabilize the inactive state of these proteins. Its unique molecular conformation facilitates specific interactions with the channel's binding sites, effectively reducing calcium influx. This modulation alters the kinetics of calcium ion flow, influencing various cellular processes. Amlodipine's distinct properties enhance its role in regulating vascular smooth muscle contraction and cellular signaling pathways.

Fluspirilene

1841-19-6sc-252832
sc-252832A
10 mg
50 mg
$159.00
$594.00
(1)

Fluspirilene functions as a calcium channel modulator, exhibiting a unique affinity for specific subtypes of calcium channels. Its molecular structure allows for selective binding, which alters the conformational dynamics of the channel proteins. This interaction leads to a distinct modulation of calcium ion permeability, influencing the rate of ion flow and subsequent cellular excitability. The compound's kinetic profile reveals a nuanced impact on calcium signaling pathways, contributing to its regulatory effects on cellular functions.

Nifedipine

21829-25-4sc-3589
sc-3589A
1 g
5 g
$59.00
$173.00
15
(1)

Nifedipine acts as a selective antagonist of voltage-gated calcium channels, characterized by its ability to stabilize the inactive state of these proteins. This stabilization disrupts the normal calcium influx, leading to altered intracellular calcium concentrations. The compound's unique lipophilic nature enhances its membrane permeability, facilitating rapid distribution within cellular environments. Its interaction kinetics reveal a fast onset of action, significantly influencing calcium-dependent processes in various cellular contexts.

Tyrphostin 9

10537-47-0sc-200568
sc-200568A
50 mg
250 mg
$108.00
$469.00
5
(1)

Tyrphostin 9 functions as a potent modulator of calcium channel proteins, exhibiting a unique ability to interfere with calcium ion transport across cellular membranes. Its structural features allow for specific binding interactions that alter channel conformation, effectively reducing calcium permeability. This compound demonstrates distinct reaction kinetics, with a notable impact on calcium signaling pathways, influencing cellular excitability and various downstream effects. Its hydrophobic characteristics enhance its affinity for lipid bilayers, promoting effective cellular uptake.

Bepridil hydrochloride

74764-40-2sc-202974
sc-202974A
10 mg
25 mg
$52.00
$104.00
2
(1)

Bepridil hydrochloride acts as a selective modulator of calcium channel proteins, characterized by its ability to stabilize channel states and influence ion flow. Its unique molecular structure facilitates specific interactions with channel subunits, leading to altered gating mechanisms. This compound exhibits distinct kinetic profiles, impacting calcium influx dynamics and cellular homeostasis. Additionally, its lipophilic nature enhances membrane interaction, promoting effective localization within cellular environments.

Dronedarone HCl

141625-93-6sc-362060
10 mg
$190.00
(0)

Dronedarone HCl functions as a modulator of calcium channel proteins, exhibiting a unique affinity for specific channel conformations. Its molecular architecture allows for targeted interactions with channel domains, influencing ion permeability and gating kinetics. The compound's distinct electrostatic properties facilitate nuanced modulation of calcium signaling pathways, while its hydrophobic characteristics promote integration into lipid bilayers, affecting channel accessibility and function within cellular membranes.

Dantrolene sodium salt

14663-23-1sc-202124
100 mg
$74.00
9
(1)

Dantrolene sodium salt acts as a calcium channel protein antagonist, selectively disrupting calcium ion release from the sarcoplasmic reticulum. Its unique structure enables it to bind to ryanodine receptors, altering their conformation and reducing calcium influx. This interaction leads to a decrease in intracellular calcium levels, impacting muscle contraction dynamics. The compound's solubility in aqueous environments enhances its distribution, influencing its interaction with cellular membranes and signaling pathways.