Meuth SG et al. (2006). Membrane resting potential of thalamocortical relay neurons is shaped by the interaction among TASK3 and HCN2 channels. Journal of neurophysiology. 96 [PubMed]

See more from authors: Meuth SG · Kanyshkova T · Meuth P · Landgraf P · Munsch T · Ludwig A · Hofmann F · Pape HC · Budde T

References and models cited by this paper

Berg AP, Talley EM, Manger JP, Bayliss DA. (2004). Motoneurons express heteromeric TWIK-related acid-sensitive K+ (TASK) channels containing TASK-1 (KCNK3) and TASK-3 (KCNK9) subunits. The Journal of neuroscience : the official journal of the Society for Neuroscience. 24 [PubMed]

Budde T, Biella G, Munsch T, Pape HC. (1997). Lack of regulation by intracellular Ca2+ of the hyperpolarization-activated cation current in rat thalamic neurones. The Journal of physiology. 503 ( Pt 1) [PubMed]

Budde T et al. (2005). Impaired regulation of thalamic pacemaker channels through an imbalance of subunit expression in absence epilepsy. The Journal of neuroscience : the official journal of the Society for Neuroscience. 25 [PubMed]

Centonze D et al. (2001). Ionic mechanisms underlying differential vulnerability to ischemia in striatal neurons. Progress in neurobiology. 63 [PubMed]

Chesler M, Kaila K. (1992). Modulation of pH by neuronal activity. Trends in neurosciences. 15 [PubMed]

Craven KB, Zagotta WN. (2006). CNG and HCN channels: two peas, one pod. Annual review of physiology. 68 [PubMed]

Cuevas J, Harper AA, Trequattrini C, Adams DJ. (1997). Passive and active membrane properties of isolated rat intracardiac neurons: regulation by H- and M-currents. Journal of neurophysiology. 78 [PubMed]

Czirják G, Enyedi P. (2002). Formation of functional heterodimers between the TASK-1 and TASK-3 two-pore domain potassium channel subunits. The Journal of biological chemistry. 277 [PubMed]

Day M et al. (2005). Dendritic excitability of mouse frontal cortex pyramidal neurons is shaped by the interaction among HCN, Kir2, and Kleak channels. The Journal of neuroscience : the official journal of the Society for Neuroscience. 25 [PubMed]

Doan TN, Kunze DL. (1999). Contribution of the hyperpolarization-activated current to the resting membrane potential of rat nodose sensory neurons. The Journal of physiology. 514 ( Pt 1) [PubMed]

Duprat F et al. (1997). TASK, a human background K+ channel to sense external pH variations near physiological pH. The EMBO journal. 16 [PubMed]

Erdemli G, Crunelli V. (1998). Response of thalamocortical neurons to hypoxia: a whole-cell patch-clamp study. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Erdemli G, Crunelli V. (2000). Release of monoamines and nitric oxide is involved in the modulation of hyperpolarization-activated inward current during acute thalamic hypoxia. Neuroscience. 96 [PubMed]

Franz O, Liss B, Neu A, Roeper J. (2000). Single-cell mRNA expression of HCN1 correlates with a fast gating phenotype of hyperpolarization-activated cyclic nucleotide-gated ion channels (Ih) in central neurons. The European journal of neuroscience. 12 [PubMed]

Goldstein SA, Bockenhauer D, O'Kelly I, Zilberberg N. (2001). Potassium leak channels and the KCNK family of two-P-domain subunits. Nature reviews. Neuroscience. 2 [PubMed]

Hille B. (2001). Ion channels of excitable membranes (3rd Ed).

Hines ML, Carnevale NT. (2001). NEURON: a tool for neuroscientists. The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry. 7 [PubMed]

Huguenard JR, McCormick DA. (1992). Simulation of the currents involved in rhythmic oscillations in thalamic relay neurons. Journal of neurophysiology. 68 [PubMed]

Jones EG, Hendry SH. (1989). Differential Calcium Binding Protein Immunoreactivity Distinguishes Classes of Relay Neurons in Monkey Thalamic Nuclei. The European journal of neuroscience. 1 [PubMed]

Jones SW. (1989). On the resting potential of isolated frog sympathetic neurons. Neuron. 3 [PubMed]

Kim Y, Bang H, Kim D. (2000). TASK-3, a new member of the tandem pore K(+) channel family. The Journal of biological chemistry. 275 [PubMed]

Lesage F. (2003). Pharmacology of neuronal background potassium channels. Neuropharmacology. 44 [PubMed]

Ludwig A et al. (2003). Absence epilepsy and sinus dysrhythmia in mice lacking the pacemaker channel HCN2. The EMBO journal. 22 [PubMed]

Lupica CR, Bell JA, Hoffman AF, Watson PL. (2001). Contribution of the hyperpolarization-activated current (I(h)) to membrane potential and GABA release in hippocampal interneurons. Journal of neurophysiology. 86 [PubMed]

Maccaferri G, McBain CJ. (1996). The hyperpolarization-activated current (Ih) and its contribution to pacemaker activity in rat CA1 hippocampal stratum oriens-alveus interneurones. The Journal of physiology. 497 ( Pt 1) [PubMed]

Maingret F et al. (2000). TREK-1 is a heat-activated background K(+) channel. The EMBO journal. 19 [PubMed]

Malcolm AT, Kourennyi DE, Barnes S. (2003). Protons and calcium alter gating of the hyperpolarization-activated cation current (I(h)) in rod photoreceptors. Biochimica et biophysica acta. 1609 [PubMed]

McCormick DA. (1992). Neurotransmitter actions in the thalamus and cerebral cortex and their role in neuromodulation of thalamocortical activity. Progress in neurobiology. 39 [PubMed]

McCormick DA, Huguenard JR. (1992). A model of the electrophysiological properties of thalamocortical relay neurons. Journal of neurophysiology. 68 [PubMed]

McCormick DA, Pape HC. (1990). Properties of a hyperpolarization-activated cation current and its role in rhythmic oscillation in thalamic relay neurones. The Journal of physiology. 431 [PubMed]

Meuth P et al. (2005). Get the rhythm: modeling neuronal activity. Journal of undergraduate neuroscience education : JUNE : a publication of FUN, Faculty for Undergraduate Neuroscience. 4 [PubMed]

Meuth SG et al. (2006). The contribution of TWIK-related acid-sensitive K+-containing channels to the function of dorsal lateral geniculate thalamocortical relay neurons. Molecular pharmacology. 69 [PubMed]

Meuth SG et al. (2003). Contribution of TWIK-related acid-sensitive K+ channel 1 (TASK1) and TASK3 channels to the control of activity modes in thalamocortical neurons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 23 [PubMed]

Meuth SG, Kanyshkova T, Landgraf P, Pape HC, Budde T. (2005). Influence of Ca2+-binding proteins and the cytoskeleton on Ca2+-dependent inactivation of high-voltage activated Ca2+ currents in thalamocortical relay neurons. Pflugers Archiv : European journal of physiology. 450 [PubMed]

Meyer TM, Munsch T, Pape HC. (2000). Activity-related changes in intracellular pH in rat thalamic relay neurons. Neuroreport. 11 [PubMed]

Millar JA et al. (2000). A functional role for the two-pore domain potassium channel TASK-1 in cerebellar granule neurons. Proceedings of the National Academy of Sciences of the United States of America. 97 [PubMed]

Monteggia LM, Eisch AJ, Tang MD, Kaczmarek LK, Nestler EJ. (2000). Cloning and localization of the hyperpolarization-activated cyclic nucleotide-gated channel family in rat brain. Brain research. Molecular brain research. 81 [PubMed]

Munsch T, Pape HC. (1999). Modulation of the hyperpolarization-activated cation current of rat thalamic relay neurones by intracellular pH. The Journal of physiology. 519 Pt 2 [PubMed]

Musset B et al. (2006). Effects of divalent cations and spermine on the K+ channel TASK-3 and on the outward current in thalamic neurons. The Journal of physiology. 572 [PubMed]

Pape HC. (1996). Queer current and pacemaker: the hyperpolarization-activated cation current in neurons. Annual review of physiology. 58 [PubMed]

Pape HC, Budde T, Mager R, Kisvárday ZF. (1994). Prevention of Ca(2+)-mediated action potentials in GABAergic local circuit neurones of rat thalamus by a transient K+ current. The Journal of physiology. 478 Pt 3 [PubMed]

Patel AJ, Lazdunski M. (2004). The 2P-domain K+ channels: role in apoptosis and tumorigenesis. Pflugers Archiv : European journal of physiology. 448 [PubMed]

Pena F, Amuzescu B, Neaga E, Flonta ML. (2006). Thermodynamic properties of hyperpolarization-activated current (Ih) in a subgroup of primary sensory neurons. Experimental brain research. 173 [PubMed]

Porcello DM, Smith SD, Huguenard JR. (2003). Actions of U-92032, a T-type Ca2+ channel antagonist, support a functional linkage between I(T) and slow intrathalamic rhythms. Journal of neurophysiology. 89 [PubMed]

Rajan S et al. (2000). TASK-3, a novel tandem pore domain acid-sensitive K+ channel. An extracellular histiding as pH sensor. The Journal of biological chemistry. 275 [PubMed]

Ransom BR, Kaila K. (1998). pH and Brain Function.

Sieg F et al. (1998). Postnatal expression pattern of calcium-binding proteins in organotypic thalamic cultures and in the dorsal thalamus in vivo. Brain research. Developmental brain research. 110 [PubMed]

Siemkowicz E, Hansen AJ. (1981). Brain extracellular ion composition and EEG activity following 10 minutes ischemia in normo- and hyperglycemic rats. Stroke. 12 [PubMed]

Simon RP, Benowitz N, Hedlund R, Copeland J. (1985). Influence of the blood-brain pH gradient on brain phenobarbital uptake during status epilepticus. The Journal of pharmacology and experimental therapeutics. 234 [PubMed]

Sirois JE, Lynch C, Bayliss DA. (2002). Convergent and reciprocal modulation of a leak K+ current and I(h) by an inhalational anaesthetic and neurotransmitters in rat brainstem motoneurones. The Journal of physiology. 541 [PubMed]

Steinke W et al. (1992). Thalamic stroke. Presentation and prognosis of infarcts and hemorrhages. Archives of neurology. 49 [PubMed]

Steriade M, Jones EG, McCormick DA. (1997). Thalamus.

Stevens DR et al. (2001). Hyperpolarization-activated channels HCN1 and HCN4 mediate responses to sour stimuli. Nature. 413 [PubMed]

Szelies B et al. (1991). Widespread functional effects of discrete thalamic infarction. Archives of neurology. 48 [PubMed]

Talley EM, Solorzano G, Lei Q, Kim D, Bayliss DA. (2001). Cns distribution of members of the two-pore-domain (KCNK) potassium channel family. The Journal of neuroscience : the official journal of the Society for Neuroscience. 21 [PubMed]

Tong CK, Chesler M. (1999). Activity-evoked extracellular pH shifts in slices of rat dorsal lateral geniculate nucleus. Brain research. 815 [PubMed]

Watkins CS, Mathie A. (1996). A non-inactivating K+ current sensitive to muscarinic receptor activation in rat cultured cerebellar granule neurons. The Journal of physiology. 491 ( Pt 2) [PubMed]

Williams SR, Turner JP, Hughes SW, Crunelli V. (1997). On the nature of anomalous rectification in thalamocortical neurones of the cat ventrobasal thalamus in vitro. The Journal of physiology. 505 ( Pt 3) [PubMed]

Zhan XJ, Cox CL, Rinzel J, Sherman SM. (1999). Current clamp and modeling studies of low-threshold calcium spikes in cells of the cat's lateral geniculate nucleus. Journal of neurophysiology. 81 [PubMed]

Zong X, Stieber J, Ludwig A, Hofmann F, Biel M. (2001). A single histidine residue determines the pH sensitivity of the pacemaker channel HCN2. The Journal of biological chemistry. 276 [PubMed]

References and models that cite this paper

Broicher T et al. (2007). Specific expression of low-voltage-activated calcium channel isoforms and splice variants in thalamic local circuit interneurons. Molecular and cellular neurosciences. 36 [PubMed]

Broicher T, Kanyshkova T, Meuth P, Pape HC, Budde T. (2008). Correlation of T-channel coding gene expression, IT, and the low threshold Ca2+ spike in the thalamus of a rat model of absence epilepsy. Molecular and cellular neurosciences. 39 [PubMed]

Broicher T et al. (2007). T-current related effects of antiepileptic drugs and a Ca2+ channel antagonist on thalamic relay and local circuit interneurons in a rat model of absence epilepsy. Neuropharmacology. 53 [PubMed]

Budde T et al. (2008). Reciprocal modulation of I (h) and I (TASK) in thalamocortical relay neurons by halothane. Pflugers Archiv : European journal of physiology. 456 [PubMed]

Meuth SG et al. (2008). TWIK-related acid-sensitive K+ channel 1 (TASK1) and TASK3 critically influence T lymphocyte effector functions. The Journal of biological chemistry. 283 [PubMed]

This website requires cookies and limited processing of your personal data in order to function. By continuing to browse or otherwise use this site, you are agreeing to this use. See our Privacy policy and how to cite and terms of use.