Molecular Information of Charybdotoxin Blockade in the Large Conductance Calcium-activated Potassium Channel
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Hong Yi | Su Qiu | Hui Liu | Zhijian Cao | Yingliang Wu | Wenxin Li | Hui Liu | S. Qiu | Yingliang Wu | Hong Yi | Wenxin Li | Zhijian Cao
[1] H. Rochat,et al. Kaliotoxin, a novel peptidyl inhibitor of neuronal BK-type Ca(2+)-activated K+ channels characterized from Androctonus mauretanicus mauretanicus venom. , 1992, The Journal of biological chemistry.
[2] O. Pongs,et al. Toxin-induced conformational changes in a potassium channel revealed by solid-state NMR , 2006, Nature.
[3] L. Kolmakova-Partensky,et al. Intimations of K+ channel structure from a complete functional map of the molecular surface of charybdotoxin. , 1994 .
[4] Huan-Xiang Zhou,et al. Electrostatic recognition and induced fit in the kappa-PVIIA toxin binding to Shaker potassium channel. , 2005, Journal of the American Chemical Society.
[5] Yingliang Wu,et al. Interaction simulation of hERG K+ channel with its specific BeKm-1 peptide: insights into the selectivity of molecular recognition. , 2007, Journal of proteome research.
[6] Z. Weng,et al. ZDOCK: An initial‐stage protein‐docking algorithm , 2003, Proteins.
[7] P. Kollman,et al. How well does a restrained electrostatic potential (RESP) model perform in calculating conformational energies of organic and biological molecules? , 2000 .
[8] K. Giangiacomo,et al. Molecular basis of alpha-KTx specificity. , 2004, Toxicon : official journal of the International Society on Toxinology.
[9] B. Chait,et al. Structural conservation in prokaryotic and eukaryotic potassium channels. , 1998, Science.
[10] Yingliang Wu,et al. Structural Basis for Toxin Resistance of β4-Associated Calcium-activated Potassium (BK) Channels* , 2008, Journal of Biological Chemistry.
[11] Hui Liu,et al. Structural Basis of a Potent Peptide Inhibitor Designed for Kv1.3 Channel, a Therapeutic Target of Autoimmune Disease* , 2008, Journal of Biological Chemistry.
[12] O. McManus,et al. Synthetic charybdotoxin-iberiotoxin chimeric peptides define toxin binding sites on calcium-activated and voltage-dependent potassium channels. , 1993, Biochemistry.
[13] M. Navia,et al. Purification, sequence, and model structure of charybdotoxin, a potent selective inhibitor of calcium-activated potassium channels. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[14] C. Roumestand,et al. Analysis of side-chain organization on a refined model of charybdotoxin: structural and functional implications. , 1992, Biochemistry.
[15] R. MacKinnon,et al. Revealing the architecture of a K+ channel pore through mutant cycles with a peptide inhibitor. , 1995, Science.
[16] Hui Li,et al. Residue Phe266 in S5-S6 loop is not critical for Charybdotoxin binding to Ca2+-activated K+ (mSlo1) channels , 2006, Acta Pharmacologica Sinica.
[17] R. C. Rodríguez de la Vega,et al. Novel interactions between K+ channels and scorpion toxins. , 2003, Trends in pharmacological sciences.
[18] Su Qiu,et al. Molecular basis of inhibitory peptide maurotoxin recognizing Kv1.2 channel explored by ZDOCK and molecular dynamic simulations , 2008, Proteins.
[19] A. Gunasekera,et al. Nuclear magnetic resonance structural studies of a potassium channel-charybdotoxin complex. , 2005, Biochemistry.
[20] M. De Waard,et al. Contribution of the functional dyad of animal toxins acting on voltage‐gated Kv1‐type channels , 2005, Journal of peptide science : an official publication of the European Peptide Society.
[21] Hui Liu,et al. Different residues in channel turret determining the selectivity of ADWX-1 inhibitor peptide between Kv1.1 and Kv1.3 channels. , 2008, Journal of proteome research.
[22] R. C. Rodríguez de la Vega,et al. Current views on scorpion toxins specific for K+-channels. , 2004, Toxicon : official journal of the International Society on Toxinology.
[23] Rama Ranganathan,et al. Spatial Localization of the K+ Channel Selectivity Filter by Mutant Cycle–Based Structure Analysis , 1996, Neuron.
[24] Zhe Lu,et al. Ion conduction pore is conserved among potassium channels , 2001, Nature.
[25] C. Park,et al. Mapping function to structure in a channel-blocking peptide: electrostatic mutants of charybdotoxin. , 1992, Biochemistry.
[26] D. Case,et al. Molecular Dynamics Simulations of Nucleic Acids with a Generalized Born Solvation Model , 2000 .
[27] O. Pongs,et al. Purification, characterization, and synthesis of three novel toxins from the Chinese scorpion Buthus martensi, which act on K+ channels. , 1997, Biochemistry.