A reversible CFTR channel blocker
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CFTR Inhibitor II

Item No. 15772

Technical Information
Formal Name
2-[(3,5-dibromo-2,4-dihydroxyphenyl)methylene]hydrazide N-2-naphthalenyl-glycine
CAS Number
328541-79-3
Synonyms
  • GlyH-101
  • Cystic Fibrosis Transmembrane Conductance Regulator Inhibitor II
Molecular Formula
C19H15Br2N3O3
Formula Weight
Purity
≥95%
Formulation
A crystalline solid
DMF: 30 mg/mlDMF:PBS(pH 7.2)(1:1): 0.5 mg/mlDMSO: 25 mg/ml
λmax
243, 289, 329 nm
SMILES
O=C(N/N=C/C1=C(O)C(Br)=C(O)C(Br)=C1)CNC2=CC3=CC=CC=C3C=C2
InChi Code
InChI=1S/C19H15Br2N3O3/c20-15-8-13(18(26)17(21)19(15)27)9-23-24-16(25)10-22-14-6-5-11-3-1-2-4-12(11)7-14/h1-9,22,26-27H,10H2,(H,24,25)/b23-9+
InChi Key
RMBDLOATEPYBSI-NUGSKGIGSA-N
Shipping & Storage Information
Storage
-20°C
Shipping
Room temperature in continental US; may vary elsewhere
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    Product Description

    The cystic fibrosis (CF) gene encodes a cAMP-regulated chloride channel, the CF transmembrane conductance regulator (CFTR).1 CFTR inhibitor II, also known as GlyH-101, is a glycine hydrazide that selectively and reversibly blocks the CFTR channel (Ki = 4.3 µM).2,3 This compound binds to a site at the external pore of CFTR, occluding the pore and rapidly preventing chloride transport.2,3 Intraluminal CFTR inhibitor II greatly reduces intestinal fluid secretion induced by cholera toxin.3 It is effective in cells in culture and also in nasal and intestinal epithelia in vivo.4,5,6,7

    WARNING This product is not for human or veterinary use.

    References & Product Citations
    Product Description References

    1. Derand, R., Bulteau-Pignoux, L., and Becq, F. The cystic fibrosis mutation G551D alters the non-Michaelis-Menten behavior of the cystic fibrosis transmembrane conductance regulator (CFTR) channel and abolishes the inhibitory genistein binding site. The Journal of Biological Chemisty 277(39), 35999-36004 (2002).

    2. Sonawane, N.D., Hu, J., Muanprasat, C., et alLuminally active, nonabsorbable CFTR inhibitors as potential therapy to reduce intestinal fluid loss in cholera. FASEB J. 20(1), 130-132 (2006).

    3. Muanprasat, C., Sonawane, N.D., Salinas, D., et alDiscovery of glycine hydrazide pore-occluding CFTR inhibitors: Mechanism, structure-activity analysis, and in vivo efficacy. J. Gen. Physiol. 124(2), 125-137 (2004).

    4. MacVinish, L.J., Cope, G., Ropenga, A., et alChloride transporting capability of Calu-3 epithelia following persistent knockdown of the cystic fibrosis transmembrane conductance regulator, CFTR. Br. J. Pharmacol. 150(8), 1055-1065 (2007).

    5. Garnett, J.P., Hickman, E., Tunkamnerdthai, O., et alProtein phosphatase 1 coordinates CFTR-dependent airway epithelial HCO3- secretion by reciprocal regulation of apical and basolateral membrane Cl--HCO3- exchangers. Br. J. Pharmacol. 168(8), 1946-1960 (2013).

    6. Schiffhauer, E.S., Vij, N., Kovbasnjuk, O., et alDual activation of CFTR and CLCN2 by lubiprostone in murine nasal epithelia. Am. J. Physiol. Lung Cell. Mol. Physiol. 304(5), L324-L331 (2013).

    7. Zertal-Zidani, S., Busiah, K., Edelman, A., et alSmall-molecule inhibitors of the cystic fibrosis transmembrane conductance regulator increase pancreatic endocrine cell development in rat and mouse. Diabetologia 56(2), 330-339 (2013).