Voltage-gated and Ca2+-activated conductances mediating and controlling graded electrical activity in crayfish muscle (original) (raw)

Fast BK-type channel mediates the Ca(2+)-activated K(+) current in crayfish muscle

Alfonso Araque

Journal of neurophysiology, 1999

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Calcium-activated potassium conductance in presynaptic terminals at the crayfish neuromuscular junction

George Bittner

The Journal of General Physiology

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Fast gating kinetics of the slow Ca2+ current in cut skeletal muscle fibres of the frog

D. Feldmeyer

The Journal of physiology, 1990

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Postsynaptic currents in different types of frog muscle fibre

L. Magazanik

Pfl�gers Archiv European Journal of Physiology, 1982

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Presynaptic calcium currents at voltage-clamped excitor and inhibitor nerve terminals of crayfish

George Bittner

The Journal of physiology, 1996

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Inward calcium current in twitch muscle fibres of the frog [proceedings]

jorge sanchez

The Journal of physiology, 1976

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Presynaptic facilitation at the crayfish neuromuscular junction. Role of calcium-activated potassium conductance

George Bittner

The Journal of General Physiology

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Crayfish stretch receptor: an investigation with voltage-clamp and ion-sensitive electrodes

B. Rydqvist

The Journal of Physiology, 1978

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Modulation of calcium current gating in frog skeletal muscle by conditioning depolarization

D. Feldmeyer

The Journal of physiology, 1992

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Comparison of regulated passive membrane conductance in action potential-firing fast- and slow-twitch muscle

Thomas Pedersen

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P-type Ca2+ current in crayfish peptidergic neurones

Jesús García-Colunga

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Depolarization-contraction coupling in short frog muscle fibers. A voltage clamp study

Carlo Caputo

The Journal of General Physiology, 1984

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Sodium and potassium currents of larval zebrafish muscle fibres

Declan Ali

Journal of Experimental Biology, 2004

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Ionic currents in identified swimmeret motor neurones of the crayfish Pacifastacus leniusculus

Abdesslam Chrachri

Journal of Experimental Biology, 1995

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Sodium-dependent depolarizing potentials in veratrinized crayfish muscle fibres

Piotr Łaszczyca

Neuroscience Letters, 1988

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Cd2+ regulation of the hyperpolarization-activated current IAB in crayfish muscle

Alfonso Araque

The Journal of General Physiology, 1995

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Ca-dependent slow action potentials in human skeletal muscle

Alberto Dubrovsky

Journal of Cellular Physiology, 1988

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A damped oscillation in the intramembranous charge movement and calcium release flux of frog skeletal muscle fibers

Eduardo Kojima

Journal of General Physiology, 1994

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Low Calcium Treatment Provokes Persistent Spiking in Tonic Crayfish Muscle

Piotr Łaszczyca

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Voltage and Ca2+ Activation of Single Large-Conductance Ca2+-activated K+ Channels Described by a Two-Tiered Allosteric Gating Mechanism

K. L Magleby

The Journal of General Physiology, 2000

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Sustained GABA-induced regulation of the L -type Ca 2+ conductance in crustacean muscle fibers

Alfonso Araque

Pfl�gers Archiv European Journal of Physiology, 1997

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Membrane potential, contractile activation and relaxation rates in voltage clamped short muscle fibres of the frog

Pura Bolaños

The Journal of Physiology, 1979

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The delayed rectifier potassium conductance in the sarcolemma and the transverse tubular system membranes of mammalian skeletal muscle fibers

Julio L. Vergara

The Journal of General Physiology, 2012

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Normal conduction of surface action potentials in detubulated amphibian skeletal muscle fibres

Jeremy N Skepper

The Journal of Physiology, 2001

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Stretch‐activated single ion channel currents in tissue‐cultured embryonic chick skeletal muscle

Falguni Guharay

The Journal of Physiology, 1984

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Motor Neurones of the Crayfish Walking System Possess Tea+-Revealed Regenerative Electrical Properties

Alfonso Araque

The Journal of Experimental Biology, 1994

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Calcium channel inactivation in frog (Rana pipiens and Rana moctezuma) skeletal muscle fibres

Leonardo NICOLA SIRI

The Journal of Physiology, 1984

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Slow inward calcium currents have no obvious role in muscle excitation-contraction coupling

Hugo González

1982

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Non-Ca2+-conducting Ca2+ channels in fish skeletal muscle excitation-contraction coupling

M. Grabner

Proceedings of the National Academy of Sciences, 2010

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Kinetic properties of calcium channels of twitch muscle fibres of the frog

jorge sanchez

The Journal of physiology, 1983

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Activation of L-type calcium channel in twitch skeletal muscle fibres of the frog

Fabio Francini

The Journal of physiology, 1996

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Motor neurones of the crayfish walking system posses TEA+-revealed regenerative electrical properties

Alfonso Araque

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Fast voltage gating of Ca2+release in frog skeletal muscle revealed by supercharging pulses

Julio Vergara

The Journal of Physiology, 1998

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Voltage sensor of excitation-contraction coupling in skeletal muscle

giovanni pizarro

Physiological reviews, 1991

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Electrogenic Pump and a Ca2+ -Dependent K+ Conductance Contribute to a Posttetanic Hyperpolarization in Lamprey Sensory Neurons

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