Physiological properties of the newly formed cortico-rubral synapses of red nucleus neurons due to collateral sprouting.
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Biomedical subjects
Publications and source records attributed to F Murakami.
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Membrane electrical constants have been studied in neurons of the red nucleus (RN) of the cat which were identified antidromically from the spinal cord. For each cell, the input resistance was determined from the membrane potential changes to current steps and was found to be 2.5+/-0.9 Momega in twenty five RN cells studied. In addition, linear summation of the membrane responses induced by two current pulses was demonstrated. 2. From the membrane voltage transients to current steps, the first membrane time constant, tau0, and second time constant, tau1, were determined as 5.6+/-1.0 msec and 0.6+/-0.2 msec, respectively. The ratio of the amplitudes of two exponential functions, E1/E0, was 0.18+/-0.05. A linear relation was found between the ratio of these amplitudes of exponential functions and that of the two time constants. 3. The cable parameter (electrotonic length, L) of the combined soma and dendrites of the RN neutrons was estimated as 1.1 from membrane transient data using the relation developed by Rall (1969). 4. By using this parameter, an attempt was made to estimate the location of the two excitatory inputs on the soma-dendritic membrane of RN cells.
The operative technique of free groin flap transfer is described and some typical results presented. The overall complete success rate in 47 cases was 80 per cent, but complete necrosis only occurred in II per cent of the transferred flaps.
Intracellular recording was made from cat's red nucleus after chronic lesion of the nucleus interpositus (IP) of the cerebellum and the properties of the corticorubral EPSPs were examined. 2. It was found that the time to peak of the corticorubral ESPSs induced from cerebral peduncle (CP EPSP) of chronic cats was much faster than that of normal cats. There was no simple decay following the rapid rise and early summit; instead there was another peak as if the slow normal CP EPSPs were superimposed on the fast ones. 3. By stimulating two loci, sensorimotor cortex and the cerebral peduncle, the conduction velocities of the fibers responsible for the newly appeared fast-rising component of the corticorubral EPSPs were measured. They were almost the same as those of normal corticorubral EPSPs.
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