Mutations in voltage-gated potassium channel KCNC3 cause degenerative and developmental central nervous system phenotypes
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Dagmar Nolte | Ulrich Müller | S. Pulst | A. Dürr | A. Brice | G. Stevanin | D. Papazian | K. Figueroa | M. Waters | V. Evidente | D. Fee | U. Müller | Alexis Brice | Alexandra Dürr | D. Nolte | A. Mock | Michael F Waters | Natali A Minassian | Giovanni Stevanin | Karla P Figueroa | John P A Bannister | Allan F Mock | Virgilio Gerald H Evidente | Dominic B Fee | Diane M Papazian | Stefan M Pulst | N. Minassian | John P A Bannister
[1] D. Papazian,et al. Subunit Folding and Assembly Steps Are Interspersed during Shaker Potassium Channel Biogenesis* , 1998, The Journal of Biological Chemistry.
[2] M. Lazdunski,et al. Susceptibility of cloned K+ channels to reactive oxygen species. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[3] J. Rae,et al. Kv3.3 potassium channels in lens epithelium and corneal endothelium. , 2000, Experimental eye research.
[4] Roderick MacKinnon,et al. Contribution of the S4 Segment to Gating Charge in the Shaker K+ Channel , 1996, Neuron.
[5] R. W. Turner,et al. Kv3 K+ channels enable burst output in rat cerebellar Purkinje cells , 2004, The European journal of neuroscience.
[6] T. Gómez-Isla,et al. Up‐regulation of the Kv3.4 potassium channel subunit in early stages of Alzheimer's disease , 2004, Journal of neurochemistry.
[7] Stefan H. Heinemann,et al. Regulation of fast inactivation of cloned mammalian IK(A) channels by cysteine oxidation , 1991, Nature.
[8] Francisco Bezanilla,et al. Voltage-Sensing Residues in the S2 and S4 Segments of the Shaker K+ Channel , 1996, Neuron.
[9] P. Pfaffinger,et al. Molecular recognition and assembly sequences involved in the subfamily-specific assembly of voltage-gated K+ channel subunit proteins , 1995, Neuron.
[10] Thomas Knöpfel,et al. Motor Dysfunction and Altered Synaptic Transmission at the Parallel Fiber-Purkinje Cell Synapse in Mice Lacking Potassium Channels Kv3.1 and Kv3.3 , 2003, The Journal of Neuroscience.
[11] N. Heintz,et al. Alcohol Hypersensitivity, Increased Locomotion, and Spontaneous Myoclonus in Mice Lacking the Potassium Channels Kv3.1 and Kv3.3 , 2001, The Journal of Neuroscience.
[12] Richard W. Aldrich,et al. Uncharged S4 Residues and Cooperativity in Voltage-dependent Potassium Channel Activation , 1998, The Journal of general physiology.
[13] M. Hanna,et al. Neurological channelopathies , 2005, Postgraduate Medical Journal.
[14] M. Martina,et al. Properties and Functional Role of Voltage-Dependent Potassium Channels in Dendrites of Rat Cerebellar Purkinje Neurons , 2003, The Journal of Neuroscience.
[15] E. Campbell,et al. Crystal Structure of a Mammalian Voltage-Dependent Shaker Family K+ Channel , 2005, Science.
[16] B. Rudy,et al. Modulation of K+ channels by hydrogen peroxide. , 1992, Biochemical and biophysical research communications.
[17] R. W. Turner,et al. Physiological and morphological development of the rat cerebellar Purkinje cell , 2005, The Journal of physiology.
[18] J. McPherson,et al. Genomic organization, nucleotide sequence, and cellular distribution of a Shaw-related potassium channel gene, Kv3.3, and mapping of Kv3.3 and Kv3.4 to human chromosomes 19 and 1. , 1992, Genomics.
[19] Thorsten Schmidt,et al. Autosomal dominant cerebellar ataxias: clinical features, genetics, and pathogenesis , 2004, The Lancet Neurology.
[20] D. Papazian,et al. Mg2+ Modulates Voltage-Dependent Activation in Ether-à-Go-Go Potassium Channels by Binding between Transmembrane Segments S2 and S3 , 2000, The Journal of general physiology.
[21] Nature Genetics , 1991, Nature.
[22] D. Surmeier,et al. Delayed Rectifier Currents in Rat Globus Pallidus Neurons Are Attributable to Kv2.1 and Kv3.1/3.2 K+ Channels , 1999, The Journal of Neuroscience.
[23] H. Coon,et al. An autosomal dominant ataxia maps to 19q13: Allelic heterogeneity of SCA13 or novel locus? , 2005, Neurology.
[24] N. Heintz,et al. Kv3.3b: a novel Shaw type potassium channel expressed in terminally differentiated cerebellar Purkinje cells and deep cerebellar nuclei , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[25] T. Perney,et al. Allele‐dependent changes of olivocerebellar circuit properties in the absence of the voltage‐gated potassium channels Kv3.1 and Kv3.3 , 2004, The European journal of neuroscience.
[26] O. Rascol,et al. Mapping of spinocerebellar ataxia 13 to chromosome 19q13.3-q13.4 in a family with autosomal dominant cerebellar ataxia and mental retardation. , 2000, American journal of human genetics.
[27] Scott H Chandler,et al. Striatal potassium channel dysfunction in Huntington's disease transgenic mice. , 2005, Journal of neurophysiology.
[28] B. Rudy,et al. Differential expression of Shaw-related K+ channels in the rat central nervous system , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[29] Bernardo Rudy,et al. channels designed for high-frequency repetitive firing , 2001 .
[30] K. Klemic,et al. Role of Transmembrane Segment S5 on Gating of Voltage-dependent K+ Channels , 1997, The Journal of general physiology.
[31] S. Pulst. Genetics of Movement Disorders , 2002 .