[Electrical activity of motor neurons of the vascularly perfused spinal cord of kittens]. 1980

N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev

In 5--22-day kittens, using an original method of perfusion of the spinal cord and the hindlimb through arterial vessels, PSPs were intracellularly recorded from lumbar motoneurons of perfused cord during stimulation of dorsal roots, ventral columns or muscle nerves of the hindlimb. All synaptic actions were completely though reversibly abolished in Ca2+-free solution containing 1.5--2.0 mM Mn2+, indicating the chemical mode of transmission in these synapses. The addition of Mn2+ and removal of Ca2+ markedly reduced and eventually abolished the post--spike after--hyperpolarization of motoneurons without alteration of the spike height. In motoneurons the input resistance ranged from 1.3 to 15.1 Mom (5.9 Mon on the average).

UI MeSH Term Description Entries
D008564 Membrane Potentials The voltage differences across a membrane. For cellular membranes they are computed by subtracting the voltage measured outside the membrane from the voltage measured inside the membrane. They result from differences of inside versus outside concentration of potassium, sodium, chloride, and other ions across cells' or ORGANELLES membranes. For excitable cells, the resting membrane potentials range between -30 and -100 millivolts. Physical, chemical, or electrical stimuli can make a membrane potential more negative (hyperpolarization), or less negative (depolarization). Resting Potentials,Transmembrane Potentials,Delta Psi,Resting Membrane Potential,Transmembrane Electrical Potential Difference,Transmembrane Potential Difference,Difference, Transmembrane Potential,Differences, Transmembrane Potential,Membrane Potential,Membrane Potential, Resting,Membrane Potentials, Resting,Potential Difference, Transmembrane,Potential Differences, Transmembrane,Potential, Membrane,Potential, Resting,Potential, Transmembrane,Potentials, Membrane,Potentials, Resting,Potentials, Transmembrane,Resting Membrane Potentials,Resting Potential,Transmembrane Potential,Transmembrane Potential Differences
D009046 Motor Neurons Neurons which activate MUSCLE CELLS. Neurons, Motor,Alpha Motorneurons,Motoneurons,Motor Neurons, Alpha,Neurons, Alpha Motor,Alpha Motor Neuron,Alpha Motor Neurons,Alpha Motorneuron,Motoneuron,Motor Neuron,Motor Neuron, Alpha,Motorneuron, Alpha,Motorneurons, Alpha,Neuron, Alpha Motor,Neuron, Motor
D009435 Synaptic Transmission The communication from a NEURON to a target (neuron, muscle, or secretory cell) across a SYNAPSE. In chemical synaptic transmission, the presynaptic neuron releases a NEUROTRANSMITTER that diffuses across the synaptic cleft and binds to specific synaptic receptors, activating them. The activated receptors modulate specific ion channels and/or second-messenger systems in the postsynaptic cell. In electrical synaptic transmission, electrical signals are communicated as an ionic current flow across ELECTRICAL SYNAPSES. Neural Transmission,Neurotransmission,Transmission, Neural,Transmission, Synaptic
D010477 Perfusion Treatment process involving the injection of fluid into an organ or tissue. Perfusions
D010525 Peripheral Nerves The nerves outside of the brain and spinal cord, including the autonomic, cranial, and spinal nerves. Peripheral nerves contain non-neuronal cells and connective tissue as well as axons. The connective tissue layers include, from the outside to the inside, the epineurium, the perineurium, and the endoneurium. Endoneurium,Epineurium,Perineurium,Endoneuriums,Epineuriums,Nerve, Peripheral,Nerves, Peripheral,Perineuriums,Peripheral Nerve
D002118 Calcium A basic element found in nearly all tissues. It is a member of the alkaline earth family of metals with the atomic symbol Ca, atomic number 20, and atomic weight 40. Calcium is the most abundant mineral in the body and combines with phosphorus to form calcium phosphate in the bones and teeth. It is essential for the normal functioning of nerves and muscles and plays a role in blood coagulation (as factor IV) and in many enzymatic processes. Coagulation Factor IV,Factor IV,Blood Coagulation Factor IV,Calcium-40,Calcium 40,Factor IV, Coagulation
D002415 Cats The domestic cat, Felis catus, of the carnivore family FELIDAE, comprising over 30 different breeds. The domestic cat is descended primarily from the wild cat of Africa and extreme southwestern Asia. Though probably present in towns in Palestine as long ago as 7000 years, actual domestication occurred in Egypt about 4000 years ago. (From Walker's Mammals of the World, 6th ed, p801) Felis catus,Felis domesticus,Domestic Cats,Felis domestica,Felis sylvestris catus,Cat,Cat, Domestic,Cats, Domestic,Domestic Cat
D004558 Electric Stimulation Use of electric potential or currents to elicit biological responses. Stimulation, Electric,Electrical Stimulation,Electric Stimulations,Electrical Stimulations,Stimulation, Electrical,Stimulations, Electric,Stimulations, Electrical
D006614 Hindlimb Either of two extremities of four-footed non-primate land animals. It usually consists of a FEMUR; TIBIA; and FIBULA; tarsals; METATARSALS; and TOES. (From Storer et al., General Zoology, 6th ed, p73) Hindlimbs
D000200 Action Potentials Abrupt changes in the membrane potential that sweep along the CELL MEMBRANE of excitable cells in response to excitation stimuli. Spike Potentials,Nerve Impulses,Action Potential,Impulse, Nerve,Impulses, Nerve,Nerve Impulse,Potential, Action,Potential, Spike,Potentials, Action,Potentials, Spike,Spike Potential

Related Publications

N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
January 1992, Brain research. Brain research reviews,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
June 1999, Neurogastroenterology and motility,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
November 1974, Polski tygodnik lekarski (Warsaw, Poland : 1960),
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
March 1982, Fiziologicheskii zhurnal SSSR imeni I. M. Sechenova,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
September 1978, Biulleten' eksperimental'noi biologii i meditsiny,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
January 2020, Frontiers in neurology,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
January 2001, Peptides,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
June 1999, Neurogastroenterology and motility,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
December 1968, Journal of neurosurgery,
N I Radicheva, and Z A Tamarova, and A I Shapovalov, and B I Shiriaev
October 1962, Biulleten' eksperimental'noi biologii i meditsiny,
Copied contents to your clipboard!