Membrane Transporters-Ion Channels

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  1. P-gp Inhibitor

    P-gp Inhibitor 13 specifically targets P-glycoprotein (P-gp), functioning as an inhibitor to reverse P-glycoprotein-mediated drug resistance. This compound has demonstrated effectiveness in overcoming paclitaxel resistance in A2780/T cells, making it a valuable tool in cancer research. Its applications extend to the study of advanced acute myeloid leukemia, providing insights into therapeutic strategies for overcoming resistance in this malignancy.
  2. P-gp Inhibitor

    P-gp inhibitor 14 is a potent inhibitor of P-glycoprotein (P-gp), effectively reversing P-gp-mediated multidrug resistance with an EC50 value of 48.74 nM. This compound demonstrates a weak inhibitory effect on CYP3A4 activity, making it a useful agent for enhancing the efficacy of chemotherapeutics in resistant cancer cells. Its primary applications include studies on drug transport mechanisms and overcoming resistance in multidrug-resistant tumors.
  3. P-gp Inhibitor

    Clausarin is a selective P-glycoprotein (P-gp) inhibitor that effectively obstructs the P-gp-mediated efflux of chemotherapeutic agents. It demonstrates significant inhibition of daunorubicin efflux in K562/R7 human leukemia cells that overexpress P-gp, with Cyclosporin A serving as a positive control. Isolated from the roots of Citrus sinensis (sweet orange), Clausarin is a valuable reagent for research focused on overcoming multidrug resistance (MDR) in cancer therapies.
  4. Calcium Channel Inhibitor

    McN5691 is a voltage-sensitive calcium channel inhibitor that selectively blocks calcium influx through L-type calcium channels. This action leads to reduced calcium-dependent cellular events, making it a valuable tool for investigating calcium signaling pathways. McN5691 is particularly useful in research focused on cardiovascular physiology and the modulation of muscle contraction mechanisms.
  5. Calmodulin inhibitor

    Kobusin is a bisepoxylignan that functions as a calmodulin inhibitor. It is known to activate cystic fibrosis transmembrane conductance regulator (CFTR) and calcium-activated chloride channels (CaCC) while inhibiting the ANO1/ CaCC channel. This compound is valuable for research applications aimed at understanding calcium signaling and chloride transport mechanisms in various biological systems.
  6. CAL/CFTR Inhibitor

    PGD97 is a selective cyclic peptide inhibitor that targets the CAL/CFTR interactions, exhibiting a KD value of 6 nM for its desulfide cyclized form at the CAL PDZ domain. Demonstrating a selectivity of ≥ 130-fold compared to NHERF1/2 PDZ domains, PGD97 effectively stabilizes F508del-CFTR at the cell membrane, enhancing CFTR function essential for maintaining fluid homeostasis in the lung. This compound is valuable for research applications focused on cystic fibrosis.
  7. Chloride Channel Inhibitor

    R(+)-Methylindazone is a potent inhibitor of epithelial chloride channels. This compound effectively disrupts the interaction between Nef and the single-domain antibody Nef-sdAb19, demonstrating its ability to influence chloride channel activity. R(+)-Methylindazone is valuable for research exploring chloride channel regulation and the role of Nef in various biological processes.
  8. Chloride Channel Inhibitor

    Ani9 is a selective inhibitor of the ANO1 chloride channel, exhibiting an IC50 of 77 nM. This compound effectively modulates smooth muscle contractions in murine models, making it a valuable tool for research on pathophysiological conditions such as tumors. Its inhibitory effects on chloride channels propose potential applications in studies targeting gastrointestinal disorders and related diseases.
  9. ANO1 Inhibitor

    DFBTA is a potent inhibitor of ANO1 (anoctamin-1), a calcium-activated chloride channel, with an IC50 of 24 nM. This compound exhibits analgesic properties and demonstrates efficacy in models of inflammatory pain. It is a valuable reagent for research in pain pathways and the pharmacological modulation of ion channels.
  10. ClC-1 Inhibitor

    NMD670 is an orally active inhibitor of the skeletal muscle chloride channel ClC-1, exhibiting an EC50 of 1.6 μM. This compound enhances neuromuscular transmission and contributes to improvements in muscle contraction and strength. NMD670 is valuable for research applications focused on muscle weakness and fatigue.
  11. Chloride Channel Inhibitor

    MONNA is a potent inhibitor of the transmembrane protein 16A (TMEM16A, Anoctamin-1) with an IC50 of 80 nM. It effectively induces vasorelaxation in rodent resistance arteries, demonstrating its ability to modulate vascular tone regardless of chloride ion presence. This compound is valuable for research focused on chloride channel functions and their roles in cardiovascular physiology.
  12. ANO1 Inhibitor

    ANO1-IN-4 is a reversible inhibitor of the calcium-activated chloride channel transmembrane protein 16A (TMEM16A, also known as ANO1), exhibiting an IC50 of 0.030 µM. This compound demonstrates favorable metabolic stability in rat liver microsomes, making it suitable for in vivo applications. ANO1-IN-4 effectively inhibits spontaneous contractions in mouse isolated ileum, indicating its potential for studies related to gastrointestinal motility and related disorders.
  13. TMEM16A Inhibitor

    T16A(inh)-C01 is a potent inhibitor of the TMEM16A (ANO1) chloride channel. It effectively blocks chloride ion transport mediated by ANO1 with an IC50 of 8.4 μM, while maintaining normal calcium signaling pathways. This compound is valuable for studying the physiological roles of TMEM16A in various cellular processes and examining its potential relevance in disease models.
  14. ClC-ec1 Inhibitor

    OADS is a selective inhibitor of the chloride channel antiporter ClC-ec1, exhibiting an IC50 value of 29 μM. This compound specifically interferes with the ClC-ec1 antiporter pathway, while showing no inhibitory effects on the ClC-1 channel. OADS is utilized in research related to osteoporosis, as well as various neurodegenerative and cardiovascular diseases, facilitating the study of these critical health conditions.
  15. Chloride Channel Inhibitor

    NS3736 is an orally bioavailable inhibitor of chloride channels, specifically targeting the CIC-7 channel in osteocytes. This compound effectively blocks osteoclast acidification and resorption in vitro, exhibiting an IC50 of 30 μM. In preclinical studies using a rat model of ovariectomy-induced osteoporosis, NS3736 has demonstrated the ability to enhance bone strength and increase bone density, making it a valuable tool for researching osteoporosis.
  16. GABAA Receptor Chloride channel Inhibitor

    Leptophos oxon is a potent GABAA receptor chloride channel inhibitor, exhibiting an IC50 value of 89.6 μM. This compound effectively inhibits GABA-induced chloride influx through binding to the TBPS sites associated with GABAA receptors, as well as inhibiting TBPS binding to voltage-dependent chloride channels. Leptophos oxon is primarily utilized in studies related to neurological diseases and functions as an insecticide, making it relevant for research in both neurobiology and pest management.
  17. Chloride Channel Inhibitor

    NS5818 is a potent chloride channel inhibitor that effectively disrupts acidification and bone resorption processes. Its mechanism of action makes it a valuable tool for studying osteoporosis and associated bone metabolic disorders. Researchers can utilize NS5818 to gain insights into chloride channel functions and their implications in bone health.
  18. Chloride Channel Inhibitor

    Alilusem potassium is a selective chloride channel inhibitor known for its diuretic properties. Studies have demonstrated its effectiveness in reducing free water clearance while enhancing sodium and chloride excretion in urine during water diuresis in anesthetized canine models. Additionally, Alilusem potassium, when administered with Furosemide or Hydrochlorothiazide, further diminished free water clearance. This compound has also been shown to inhibit lumen-positive transepithelial voltage and chloride flux across isolated rabbit cortical thick ascending limbs of Henle, making it a valuable tool for research in renal physiology and electrolyte transport mechanisms.
  19. EAAT Inhibitor

    DL-TBOA is a potent non-transportable inhibitor of excitatory amino acid transporters (EAATs), specifically targeting EAAT1, EAAT2, and EAAT3 with IC50 values of 70 μM, 6 μM, and 6 μM, respectively. This compound effectively inhibits the uptake of [14C]glutamate in COS-1 cells expressing human EAAT1 and EAAT2, demonstrating Ki values of 42 μM and 5.7 μM, respectively. Additionally, DL-TBOA competitively blocks EAAT4 and EAAT5 with Ki values of 4.4 μM and 3.2 μM, respectively. This reagent is valuable for studying excitatory neurotransmission and related pathologies in research applications.
  20. Human EAAT2 Inhibitor

    WAY-213613 hydrochloride is a potent and selective inhibitor of the human excitatory amino acid transporter 2 (EAAT2). With an IC50 value of 85 nM, it effectively modulates glutamate transport, making it a valuable tool for investigating glutamatergic signaling in the central nervous system. This compound is suitable for research applications exploring neurobiology and potential therapeutic interventions related to neurodegenerative diseases.
  21. EAAT1 Inhibitor

    UCPH-102 is a highly selective inhibitor of the excitatory amino acid transporter 1 (EAAT1), exhibiting an IC50 value of 0.43 µM. This compound demonstrates significant anti-proliferative effects on T-cell acute lymphoblastic leukemia (T-ALL) cells. Furthermore, UCPH-102's favorable blood-brain barrier permeability makes it a valuable tool for research in neurodegenerative diseases such as amyotrophic lateral sclerosis and Alzheimer’s disease, as well as conditions related to chronic pain and obsessive-compulsive disorder.
  22. EAAT Inhibitor

    L-threo-3-Hydroxyaspartic acid functions as a selective inhibitor of excitatory amino acid transporters (EAATs), exhibiting inhibitory constants (Kis) of 11, 19, and 14 μM for EAAT1, EAAT2, and EAAT3, respectively, in HEK293 cell lines. This compound plays a crucial role in the study of neurotransmitter regulation and excitotoxicity, making it valuable for research related to neurological disorders and synaptic transmission. Its ability to modulate glutamate signaling contributes to understanding potential therapeutic pathways for conditions such as epilepsy and neurodegenerative diseases.
  23. EAAT3 Inhibitor

    SLC1A1/EAAT3-IN-1 is a selective inhibitor of the excitatory amino acid transporter 3 (EAAT3), exhibiting an IC50 of 7.2 μM for human EAAT3 while showing significantly reduced inhibition of EAAT1, 2, and 4 (IC50: ~250 μM). This compound is primarily utilized in research related to psychiatric disorders, including obsessive-compulsive disorder and schizophrenia, and can aid in the investigation of neurotransmitter dynamics and therapeutic strategies targeting EAAT3.
  24. EAAT Inhibitor

    DL-TBOA ammonium is a selective inhibitor of excitatory amino acid transporters (EAATs), demonstrating IC50 values of 70 μM, 6 μM, and 6 μM for EAAT1, EAAT2, and EAAT3, respectively. This compound effectively inhibits the uptake of [14C]glutamate in COS-1 cells expressing human EAAT1 and EAAT2, with Ki values of 42 μM and 5.7 μM. Additionally, DL-TBOA ammonium competitively inhibits EAAT4 and EAAT5, featuring Ki values of 4.4 μM and 3.2 μM, respectively. Its distinct mechanism renders it a valuable tool for studies on excitatory neurotransmission and the role of glutamate transporters in neurological research.
  25. EAAT2/4 Inhibitor

    (±)-threo-3-Methylglutamic acid is a potent inhibitor of excitatory amino acid transporters EAAT2 and EAAT4. It functions as an ionotropic glutamate receptor agonist and is effective in inhibiting glutamate uptake in rod outer segments. This compound is valuable for research applications focusing on glutamatergic signaling and transport mechanisms in the nervous system.
  26. GABA Uptake Inhibitor

    Nipecotic acid is a potent inhibitor of GABA uptake in neurons and glial cells, significantly impacting GABAergic neurotransmission. This compound has also been shown to directly activate GABAA-like chloride channels, with an effective concentration (EC50) of approximately 300 μM. Its biological activity makes nipecotic acid valuable for research applications focused on GABAergic signaling and associated neurological processes.
  27. BCRP Inhibitor

    5,7-Dimethoxyflavone is a potent inhibitor of the Breast Cancer Resistance Protein (BCRP). It exhibits significant biological activities, including anti-obesity, anti-inflammatory, and antineoplastic effects. Additionally, this compound has been shown to inhibit cytochrome P450 (CYP) 3A enzymes, making it valuable for research applications focused on drug resistance and metabolic pathways in cancer therapy.
  28. Sodium Channel Inhibitor

    (-)-Sparteine sulfate pentahydrate is a sodium channel inhibitor that acts as a class 1a antiarrhythmic agent. It has demonstrated notable biological activity in modulating cardiac excitability and can be utilized in research focusing on arrhythmias and pharmacological studies related to ion channel function. This reagent is suitable for investigating the effects of sodium channel blockade in various biological models.
  29. Nav1.7 Inhibitor

    Nav1.7-IN-6 is a selective inhibitor targeting the voltage-gated sodium channel Nav1.7, which is important in pain signaling pathways. This compound demonstrates significant biological activity in modulating neuronal excitability, making it a valuable tool for research on pain mechanisms and potential therapeutic interventions in pain disorders. Its specificity for Nav1.7 enhances its utility in elucidating the role of this channel in nociception and related studies.
  30. Sodium Channel Inhibitor

    B-GYKI-38233 hydrochloride is a sodium channel inhibitor that exhibits potent antiarrhythmic properties. This compound is utilized in research focused on the modulation of sodium channels, which play a critical role in cardiac excitability and conductivity. Its mechanism of action makes it a valuable tool for the investigation of arrhythmias and related cardiovascular disorders.
  31. Nav1.8 channel Inhibitor

    Nav1.8-IN-10 is a selective inhibitor of the Nav1.8 ion channel. At a concentration of 4 nM, it achieves an impressive blocking rate of 79.4%, demonstrating its potency. This compound is primarily utilized in the research of pain disorders, facilitating investigations into the modulation of pain pathways and potential therapeutic interventions.
  32. Nav1.8 Inhibitor

    Nav1.8-IN-5 is a selective inhibitor of the voltage-gated sodium channel Nav1.8. It demonstrates potent biological activity against Nav1.8-mediated pain and pain-related disorders, making it a valuable tool for research in these areas. Additionally, Nav1.8-IN-5 can facilitate studies related to cardiovascular diseases, including conditions such as atrial fibrillation, by modulating sodium channel activity.
  33. Sodium Channel Inhibitor

    R 59494 is a sodium channel inhibitor that effectively blocks Na+ and Ca2+ uptake triggered by veratridine exposure. This compound exhibits significant anti-ischemic properties, making it valuable for research in cardiovascular and neuroprotective studies. Its ability to modulate ion channel activity positions R 59494 as a useful tool for investigating the mechanisms of ischemia-related cellular damage.
  34. NaV1.8 Channel Inhibitor

    Analgesic agent-2 is a selective NaV1.8 channel inhibitor, exhibiting a reported IC50 of 50.18 nM in HEK293 cells expressing the human NaV1.8 channel. It demonstrates significant analgesic activity, making it a valuable tool for pain research. This compound is ideal for studies investigating the role of NaV1.8 in nociception and the development of novel analgesic therapies.
  35. Nav1.8 Inhibitor

    Nav1.8-IN-15 is a potent inhibitor of the voltage-gated sodium channel Nav1.8. It demonstrates significant analgesic effects and is relevant for research exploring pathways involved in chronic pain management. This compound can facilitate the study of Nav1.8's role in pain signaling and aid in the development of novel therapeutic strategies for pain relief.
  36. NaV1.7 Inhibitor

    Sodium Channel-IN-7 is a selective inhibitor of the NaV1.7 voltage-gated sodium channel. It interacts with the voltage-sensor domain 4 (VSD4) binding pocket of NaV1.7, demonstrating limited interaction with residue Try1537. This compound is primarily utilized in research focused on pain mechanisms and pain-related disorders.
  37. Sodium Channel Inhibitor

    Cofirasersen is a sodium channel inhibitor that targets the epithelial sodium channel (ENaC). It is specifically developed to downregulate ENaC expression in the lungs, where hyperactivity of ENaC is implicated in cystic fibrosis, a disorder linked to mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene. This compound has potential applications in research related to cystic fibrosis and the modulation of sodium transport in pulmonary tissues.
  38. NaV1.7 Inhibitor

    PF-06456384 is a potent and selective inhibitor of NaV1.7, exhibiting an IC50 of 0.01 nM. This compound is primarily utilized in research involving pain mechanisms, particularly in formalin pain model studies, to elucidate the role of NaV1.7 in nociceptive signaling. Its high selectivity makes it an important reagent for exploring therapeutic strategies targeting chronic pain conditions.
  39. Sodium Channel Inhibitor

    Nav1.8-IN-1 is a selective inhibitor of the Na(v)1.8 sodium channel, demonstrating significant potency in blocking its activity. This compound is particularly relevant for research focused on inflammatory and neuropathic pain pathways, providing valuable insights into pain mechanisms and potential therapeutic strategies. Its ability to modulate sodium channel function makes it a promising tool for understanding pain-related conditions.
  40. NaV1.7 Inhibitor

    DS43260857 is a selective inhibitor of the sodium channel NaV1.7, exerting strong inhibitory effects on both human and mouse variants of the channel. It demonstrates IC50 values of 6.6 μM for hNaV1.1, 14 μM for hNaV1.5, 0.015 μM for hNaV1.7, and 0.061 μM for mNaV1.7. This compound is useful for investigating pain pathways and assessing the role of NaV1.7 in nociception-related research.
  41. Nav1.7 Inhibitor

    PF 05089771 tosylate is a selective Nav1.7 inhibitor, known for its potent biological activity with IC50 values of 11 nM for human Nav1.7 and varying efficacy across other species. This arylsulfonamide compound is orally active, making it a valuable tool for investigating pain and diabetic neuropathy mechanisms in preclinical research. Its specificity for Nav1.7 highlights its potential application in developing novel analgesic therapies.
  42. Nav1.8 Inhibitor

    Nav1.8-IN-18 is a selective inhibitor of the voltage-gated sodium channel Nav1.8. It exhibits significant activity in modulating neuronal excitability, making it a valuable tool for investigating pain pathways and sensory neuron function. This compound is suited for research applications focused on chronic pain models and neuropathic conditions.
  43. Sodium Channel Inhibitor

    P552-02 mesylate is a sodium channel inhibitor that demonstrates significant potential for the treatment of cystic fibrosis. Its primary mechanism involves enhancing mucociliary clearance in the lungs, contributing to improved respiratory function. Additionally, P552-02 mesylate minimizes the risk of hyperkalaemia, making it a valuable compound for researchers studying respiratory diseases and therapeutic interventions.
  44. Nav1.7 Inhibitor

    QLS-81 is a selective inhibitor of the Nav1.7 ion channel, demonstrating an inhibition constant (IC50) of 1.5 μM. This compound exhibits potent analgesic properties, effectively alleviating both neuropathic and inflammatory pain. By targeting the inactivated state of Nav1.7 channels, QLS-81 mediates frequency-dependent inhibition, making it a valuable tool for research focused on chronic pain mechanisms and potential therapeutic interventions.
  45. Sodium Channel Inhibitor

    Nav1.8-IN-20 is a potent inhibitor of the voltage-gated sodium channel Nav1.8, demonstrating an IC50 value of 14 nM. By blocking the generation and conduction of action potentials in peripheral nociceptive neurons, it exerts significant analgesic effects. This compound is valuable for research into various pain models, including acute pain, chronic pain, inflammatory pain, and neuropathic pain.
  46. Nav1.8 channel Inhibitor

    Nav1.8-IN-11 is a potent inhibitor of the Nav1.8 sodium channel, exhibiting an IC50 value of 0.1 nM. This compound is valuable for investigating pain disorders, as it modulates neuronal excitability and may provide insight into the underlying mechanisms of pain signaling and management. Research applications include exploring therapeutic strategies for chronic pain conditions.
  47. Sodium Channel Inhibitor

    L589420-0-2 is a sodium channel inhibitor that modulates intracellular sodium ion concentrations, ultimately influencing the electrophysiological properties of cells. This compound demonstrates specific inhibitory activity in human erythrocytes and can be instrumental in studies related to cardiovascular disease. Its ability to affect sodium ion dynamics makes it a valuable tool for research in cellular biology and pharmacology.
  48. Nav1.8 Inhibitor

    Nav1.8-IN-13 is a selective inhibitor of the voltage-gated sodium channel Nav1.8, with a reported pIC50 of 7.9. This compound is utilized in research to investigate the role of Nav1.8 in pain signaling pathways and neuronal excitability. Its inhibitory properties make it a valuable tool for studying potential therapeutic approaches for pain management and related neurological disorders.
  49. Nav1.8 channel Inhibitor

    Nav1.8-IN-12 is a selective inhibitor of the Nav1.8 sodium channel, known to play a crucial role in transmitting pain signals. This compound is valuable for investigating various pain-related diseases and disorders, facilitating the development of therapeutic strategies targeting neuropathic pain and inflammatory conditions.
  50. Sodium Channel Inhibitor

    Oe-9000 is a sodium channel inhibitor that demonstrates local anesthetic activity by effectively blocking voltage-gated Na+ currents in neurons. It targets both TTX-sensitive and TTX-resistant currents, showing enhanced performance compared to other local anesthetics. This compound is valuable for research applications in pain management and neuropharmacology.

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