93 Results for "

conduction

" in MedChemExpress (MCE) Product Catalog:
Products (93)

93 Results for "conduction" in MCE Product Catalog:

Cat. No.: HY-148605
CAS No.: 119610-26-3
Aloracetam is a γ-aminobutyric acid cyclic derivative that can pass through the blood-brain barrier and has a significant enhancing cognitive function effect. Aloracetam improves the blood perfusion of brain tissue, increases the synthesis of proteins, ATP and acetylcholine in the brain, enhances the excitatory conduction effect of cholinergic nerves, and reduces the damage to brain tissue caused by cerebral vascular diseases. Aloracetam also has certain anti-epileptic, anti-inflammatory, analgesic and anti-depressant effects .
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Cat. No.: HY-180334
CAS No.: 120004-07-1
Target:  

Calcium Channel

Research Areas:  

Cardiovascular Disease

S-312 is a calcium antagonist with a bicyclic dihydrothienopyridine structure. S-312 can relax the helical strips of various isolated rabbit arteries procontracted with high potassium depolarizaiton. S-312 competitively imhibits calcium-induced contractions in depolarized basilar and femoral arteries. S-312 increases AV nodal conduction time in Langenedorff-perfused isolated rabbit hearts. S-312 exhibits vasculoselectivity, particularly for cerebral vessel .
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Cat. No.: HY-184190
ERG-IN-7 is a Nav1.5, Cav1.2 and Kv11.1 inhibitor with IC50 values of 10.34 μM, 21.01 μM, and 16.385 μM for human Nav1.5, Cav1.2, and Kv11.1, respectively. ERG-IN-7 prolongs action potentials, reduces conduction velocity, and restores cardiac function. ERG-IN-7 can be used for the research of ventricular arrhythmia .
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Cat. No.: HY-B1440A
CAS No.: 855701-63-2
Ethaverine hydrobromide is a Papaverine derivative and vasodilator. Ethaverine hydrobromide inhibits Phosphodiesterase, Tyrosine hydroxylase, and MAO-B. Ethaverine hydrobromide blocks L-type Ca 2+ channels, reduces intracellular Ca 2+ levels, inhibits platelet adhesion and aggregation, regulates cardiac conduction and heart rate, and increases peripheral and cerebral blood flow. Ethaverine hydrobromide alters cochlear microcirculation, intracochlear Po2, CM potential, and EP in guinea pigs, and induces transient hypotension. Ethaverine hydrobromide is used in the research of peripheral vascular diseases .
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Cat. No.: HY-129680
CAS No.: 90-54-0
Target:  

Adrenergic Receptor

Research Areas:  

Cardiovascular Disease

Etafenone is an antiarrhythmic agent and vasodilator. Etafenone exerts β-adrenergic agonistic effects. Etafenone inhibits the automaticity of sinoatrial nodes, atrioventricular junctions and Purkinje fibers, prolongs action potential duration and refractory period, slows the rising rate of action potentials, and prolongs conduction time. Etafenone enhances collateral circulation after coronary occlusion and suppresses ventricular premature beats. Etafenone delays ischemic myocardial energy imbalance, improves the recovery of high-energy phosphates after ischemia, and reduces myocardial oxygen consumption. Etafenone can be used in research related to ischemic heart disease, arrhythmia and angina pectoris .
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Cat. No.: HY-165518
CAS No.: 128851-55-8
M 16287 is an orally active aldose reductase inhibitor, with an IC50 of 0.08 μM in rats and 0.25 μM in cattle. M 16287 improves lens fiber swelling and vacuolization, prevents galactitol accumulation, delays inositol depletion, inhibits glutathione reduction, restores the NADPH/NADP + ratio to normal, and normalizes lens Na + content and Na +/K + ratio. M 16287 prevents galactose-induced cataract formation in rats. M 16287 improves motor nerve conduction velocity in diabetic rats, partially alleviates histopathological changes in the sciatic nerve, and inhibits sorbitol accumulation. M 16287 can be used in studies related to cataracts and diabetic neuropathy .
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Cat. No.: HY-A0236AR
CAS No.: 33237-74-0
Aprindine hydrochloride (Standard) is the analytical reference standard of Aprindine hydrochloride (HY-A0236A). This product is used for research and analytical applications. Aprindine hydrochloride is an Ib-class anti-arrhythmic agent. Aprindine hydrochloride mainly exerts its effect by blocking sodium channels (INa), thereby reducing the excitability and conduction velocity of cardiac muscle cells. Aprindine hydrochloride significantly inhibits delayed potassium currents, which helps to prolong the atrial effective refractory period (AERP) and inhibit the occurrence of atrial fibrillation. Aprindine hydrochloride can also regulate intracellular calcium ion concentration by inhibiting Na +/Ca 2+ exchange current (INCX), thereby further stabilizing cardiac electrical activity. Aprindine hydrochloride can be used for the study of atrial fibrillation (AF) and ventricular arrhythmias.
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Cat. No.: HY-184377
CAS No.: 166181-63-1
Synonyms: IQB-9302
Target:  

Potassium Channel

Research Areas:  

Others

Ipravacaine (IQB-9302) is a long-acting amide-based local anesthetic. Ipravacaine blocks open-state hKv1.5, with stereoselective, time-dependent and voltage-dependent inhibitory effects, and exerts stronger activity on the R (+) enantiomer. Ipravacaine blocks Kv2.1, Kv4.3 and HERG potassium channels. Ipravacaine induces negative chronotropic effects, increases mean arterial pressure, and exhibits vasodilatory effects at high concentrations .
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Cat. No.: HY-133240
CAS No.: 1109241-72-6
trans-AzoTAB is a photoresponsive potassium/sodium/calcium channel modulator and DNA-binding agent. trans-AzoTAB undergoes trans-cis isomerization driven by light, with variable polarity and DNA affinity. trans-AzoTAB also enhances voltage-gated potassium currents and inhibits sodium and calcium currents in cardiomyocytes, thereby reducing spontaneous electrical activity and excitation conduction velocity. In addition, trans-AzoTAB induces compaction and frozen conformation of λ-phage DNA, and non-sequence-dependently inhibits transcription and translation processes in the dark; its activity can be reversed and restored by visible light after activation with ultraviolet irradiation. trans-AzoTAB can serve as a probe for two-photon optical regulation of myocardial excitability, and is used to construct photoresponsive interfacial polymer structures .
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Cat. No.: HY-175991S
Synonyms: Sodium stearyl sulfate sulfate-d37
Sodium octadecyl sulfate-d37 (Sodium stearyl sulfate-d37) is the deuterium labeled Sodium octadecyl sulfate (HY-W276164). Sodium octadecyl sulfate (Sodium stearyl sulfate) is a long-chain alkyl sodium sulfate that functions as an emulsifier, crosslinking agent, and regulator. Sodium octadecyl sulfate has high safety, with a LD50 greater than 3.00 Gm./Kg for both intraperitoneal injection in mice and oral administration in rats. Sodium octadecyl sulfate enhances continuous contraction of the gastrocnemius muscle in frogs and boosts intestinal smooth muscle activity in albino rats. However, Sodium octadecyl sulfate exerts no significant effect on isolated tortoise myocardium and does not alter the conduction function of frog sciatic nerves. Sodium octadecyl sulfate can also be used to coat the surface of starch aggregates, promote crosslinking and increase aggregate size through hydrophobic and electrostatic interactions, and further form a coexistent B-V type crystalline structure with acid-hydrolyzed gelatinized starch, thereby effectively modifying the structure and surface properties of high-starch systems .
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Cat. No.: HY-L166
1,751 compounds

Ion channel is a membrane-binding enzyme whose catalytic site is an ion conduction pore, which is opened and closed in response to specific environmental stimuli (voltage, ligand concentration, membrane tension, temperature, etc.). Ion channel provide pores for the passive diffusion of ions on the biofilm. Due to their high selectivity for ion, ion channel are generally classified as sodium (Na+ ), potassium (K+ ), calcium (Ca2+ ), chloride (Cl- ), and non-specific cation channel. Ion channel is an important contributor to cell signal transduction and homeostasis. In addition to electrical signal transduction, ion channel also have many functions: regulating vascular smooth muscle contraction, maintaining normal cell volume, regulating glandular secretion, protein kinase activation, etc. Therefore, dysfunction of ion channel can lead to many diseases, and its mechanism research is particularly important.

MCE designs a unique collection of 1,751 small molecules related to ion channel, mainly targeting Na+ channel, K+ channel, Ca2+ channel, GABA receptor, iGluR, etc. It is an essential tool for research of cardiovascular diseases, Nervous system diseases and other diseases.

Cat. No.: HY-W585442
CAS No.: 105528-25-4
5,9,14,18,23,27,32,36-Octabutoxy-2,3-naphthalocyanine is a photosensitive material with excellent light absorption and electron conduction activity. 5,9,14,18,23,27,32,36-Octabutoxy-2,3-naphthalocyanine is widely used in optoelectronic devices and is considered to be an effective photocatalyst. 5,9,14,18,23,27,32,36-Octabutoxy-2,3-naphthalocyanine can be used to improve the performance of solar cells and increase the photoelectric conversion efficiency. 5,9,14,18,23,27,32,36-Octabutoxy-2,3-naphthalocyanine also has potential anti-tumor activity and can inhibit the proliferation of certain cancer cells. 5,9,14,18,23,27,32,36-Octabutoxy-2,3-naphthalocyanine exhibits excellent fluorescence properties in medical imaging, which helps to improve the clarity and accuracy of imaging. 5,9,14,18,23,27,32,36-Octabutoxy-2,3-naphthalocyanine is studied as a component of a novel compound delivery system to improve the targeting and release effect of the compound.
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Cat. No.: HY-L923
9000 compounds

Ion channels are key proteins on the cell membrane that regulate the flow of ions across membranes. They participate in nearly all physiological processes, including nerve conduction, muscle contraction, heart rhythm, and pain perception. Abnormalities in their function can lead to various serious diseases such as arrhythmia, epilepsy, hypertension, neuropathic pain, and cancer. Therefore, ion channels are highly valuable drug targets—over 15% of approved drugs target ion channels currently, demonstrating their irreplaceable therapeutic value in cardiovascular, neurological, and analgesic fields.

MCE has collected a library of over 5,000 reported ion channel-related bioactive compounds targeting major sites such as Na+ channels, K+ channels, Ca2+ channels, GABA receptors, iGluRs, and others. Using AI models, these compounds are characterized through both 2D representations (molecular fingerprints, pharmacophores) and 3D representations (3D conformation) to screen for a collection of lead-like compounds highly similar to known active molecules. Additionally, an hERG channel prediction algorithm integrating XGB and ISE mapping strategy is employed to assess and exclude potential cardiotoxicity in the library.. This step significantly reduces safety risks in subsequent screenings, particularly for ion channel drug development related to cardiovascular systems (e.g., Nav1.5, Cav1.2), effectively minimizing failures due to hERG inhibition and serving as a valuable tool for ion channel drug screening.