Feather Degradation Potential of Stenotrophomonas Maltophilia KB13 and Feather Protein Hydrolysate (FPH) Mediated Reduction of Hexavalent ChromiumBhange, KhushbooSpringer-Verlag2016DOI 10.1007/s13205-016-0370-5
The Amiodarone Derivative KB130015 Activates hERG1 Potassium Channels via a Novel MechanismGuido GessnerElsevier Science2010DOI 10.1016/j.ejphar.2010.01.010
KB130015, A New Amiodarone Derivative with Multiple Effects on Cardiac Ion ChannelsKanigula MubagwaCardiovascular Drug Reviews2003DOI 10.1111/j.1527-3466.2003.tb00117.x
Inhibition des muskarinergen Kaliumionenstroms durch das neue Klasse-III-Antiarrhythmikum KB130015 im Vergleich zu IbutilideRolf BorchardSpringer2005DOI 10.1007/s00063-005-1096-z
Action Potential Changes Associated with a Slowed Inactivation of Cardiac Voltage-gated Sodium Channels by KB130015R MacianskieneNature Publishing Group2003DOI 10.1038/sj.bjp.0705379
Synthesis and Preliminary Characterization of a Novel Antiarrhythmic Compound (KB130015) with an Improved Toxicity Profile Compared with AmiodaroneCarlsson, BoAmerican Chemical Society2002DOI 10.1021/jm001126+
The Amiodarone Derivative KB130015 [2-Methyl-3-(3,5-diiodo-4-carboxymethoxybenzyl)benzofuran] Induces an Na+-Dependent Increase of [Ca2+] in Ventricular MyocytesV. BitoAmerican Society for Pharmacology and Experimental Therapeutics2005DOI 10.1124/jpet.105.092221
Slowing of the Inactivation of Cardiac Voltage-Dependent Sodium Channels by the Amiodarone Derivative 2-Methyl-3-(3,5-diiodo-4-carboxymethoxybenzyl)benzofuran (KB130015)R. MacianskieneAmerican Society for Pharmacology and Experimental Therapeutics2003DOI 10.1124/jpet.102.042218
Inhibition of G Protein-Coupled and ATP-Sensitive Potassium Currents by 2-Methyl-3-(3,5-diiodo-4-carboxymethoxybenzyl)benzofuran (KB130015), an Amiodarone DerivativeB. BrandtsAmerican Society for Pharmacology and Experimental Therapeutics2003DOI 10.1124/jpet.103.057646
The Amiodarone Derivative 2-methyl-3-(3,5-diiodo-4-carboxymethoxybenzyl)benzofuran (KB130015) Opens Large-conductance Ca2+-activated K+ Channels and Relaxes Vascular Smooth MuscleGuido GessnerElsevier Science2007DOI 10.1016/j.ejphar.2006.10.053