Click here to close Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly. We suggest using a current version of Chrome, FireFox, or Safari.

Summary Anatomy Item Literature (3729) Expression Attributions Wiki
XB-ANAT-99

Papers associated with cardiovascular system (and kcna2)

Limit to papers also referencing gene:
Show all cardiovascular system papers
???pagination.result.count???

???pagination.result.page??? 1

Sort Newest To Oldest Sort Oldest To Newest

Domain-domain interactions determine the gating, permeation, pharmacology, and subunit modulation of the IKs ion channel., Zaydman MA., Elife. March 12, 2014; 3 e03606.                        


Hydrophobic interactions between the voltage sensor and pore mediate inactivation in Kv11.1 channels., Perry MD., J Gen Physiol. September 1, 2013; 142 (3): 275-88.                    


Molecular coupling in the human ether-a-go-go-related gene-1 (hERG1) K+ channel inactivation pathway., Ferrer T., J Biol Chem. November 11, 2011; 286 (45): 39091-9.


Overlapping binding sites of structurally different antiarrhythmics flecainide and propafenone in the subunit interface of potassium channel Kv2.1., Madeja M., J Biol Chem. October 29, 2010; 285 (44): 33898-905.


Disruption of the IS6-AID linker affects voltage-gated calcium channel inactivation and facilitation., Findeisen F., J Gen Physiol. March 1, 2009; 133 (3): 327-43.              


KCNQ1 and KCNE1 in the IKs channel complex make state-dependent contacts in their extracellular domains., Xu X., J Gen Physiol. June 1, 2008; 131 (6): 589-603.                    


Mg2+ enhances voltage sensor/gate coupling in BK channels., Horrigan FT., J Gen Physiol. January 1, 2008; 131 (1): 13-32.                


KCNE1 and KCNE3 stabilize and/or slow voltage sensing S4 segment of KCNQ1 channel., Nakajo K., J Gen Physiol. September 1, 2007; 130 (3): 269-81.            


The role of S4 charges in voltage-dependent and voltage-independent KCNQ1 potassium channel complexes., Panaghie G., J Gen Physiol. February 1, 2007; 129 (2): 121-33.                      


Analysis of voltage-gated potassium channel beta1 subunits in the porcine neonatal ductus arteriosus., Hayama E., Pediatr Res. February 1, 2006; 59 (2): 167-74.


Synthesis and characterization of Pi4, a scorpion toxin from Pandinus imperator that acts on K+ channels., M'Barek S., Eur J Biochem. September 1, 2003; 270 (17): 3583-92.


Inhibition of the K+ channel kv1.4 by acidosis: protonation of an extracellular histidine slows the recovery from N-type inactivation., Claydon TW., J Physiol. July 15, 2000; 526 Pt 2 253-64.


Regulation of Shaker-type potassium channels by hypoxia. Oxygen-sensitive K+ channels in PC12 cells., Conforti L., Adv Exp Med Biol. January 1, 2000; 475 265-74.


Differential sensitivity of voltage-gated potassium channels Kv1.5 and Kv1.2 to acidic pH and molecular identification of pH sensor., Steidl JV., Mol Pharmacol. May 1, 1999; 55 (5): 812-20.


Susceptibility of cloned K+ channels to reactive oxygen species., Duprat F., Proc Natl Acad Sci U S A. December 5, 1995; 92 (25): 11796-800.


Cloning and expression of a Kv1.2 class delayed rectifier K+ channel from canine colonic smooth muscle., Hart PJ., Proc Natl Acad Sci U S A. October 15, 1993; 90 (20): 9659-63.


Heteromultimeric assembly of human potassium channels. Molecular basis of a transient outward current?, Po S., Circ Res. June 1, 1993; 72 (6): 1326-36.

???pagination.result.page??? 1