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Hydrophobic alkyl chains substituted to the 8-position of cyclic nucleotides enhance activation of CNG and HCN channels by an intricate enthalpy - entropy compensation. , Otte M, Schweinitz A, Bonus M, Enke U, Schumann C, Gohlke H, Benndorf K., Sci Rep. October 8, 2018; 8 (1): 14960.
Deciphering the function of the CNGB1b subunit in olfactory CNG channels. , Nache V, Wongsamitkul N, Kusch J, Zimmer T, Schwede F, Benndorf K., Sci Rep. July 11, 2016; 6 29378.
Ligand-binding domain subregions contributing to bimodal agonism in cyclic nucleotide-gated channels. , Wong WF, Chan KS, Michaleski MS, Haesler A, Young EC., J Gen Physiol. June 1, 2011; 137 (6): 591-603.
Transfer of ion binding site from ether-a- go-go to Shaker: Mg2+ binds to resting state to modulate channel opening. , Lin MC, Abramson J, Papazian DM., J Gen Physiol. May 1, 2010; 135 (5): 415-31.
Activation of olfactory-type cyclic nucleotide-gated channels is highly cooperative. , Nache V, Schulz E, Zimmer T, Kusch J, Biskup C, Koopmann R, Hagen V, Benndorf K., J Physiol. November 15, 2005; 569 (Pt 1): 91-102.
A conserved tripeptide in CNG and HCN channels regulates ligand gating by controlling C-terminal oligomerization. , Zhou L, Olivier NB, Yao H, Young EC, Siegelbaum SA., Neuron. December 2, 2004; 44 (5): 823-34.
Salt bridges and gating in the COOH-terminal region of HCN2 and CNGA1 channels. , Craven KB, Zagotta WN., J Gen Physiol. December 1, 2004; 124 (6): 663-77.
Stoichiometry and assembly of olfactory cyclic nucleotide-gated channels. , Zheng J, Zagotta WN., Neuron. May 13, 2004; 42 (3): 411-21.
Distinct structural determinants of efficacy and sensitivity in the ligand-binding domain of cyclic nucleotide-gated channels. , Young EC, Krougliak N., J Biol Chem. January 30, 2004; 279 (5): 3553-62.
Efficient coupling of ligand binding to channel opening by the binding domain of a modulatory (beta) subunit of the olfactory cyclic nucleotide-gated channel. , Young EC, Sciubba DM, Siegelbaum SA., J Gen Physiol. November 1, 2001; 118 (5): 523-46.