Analysis of effective synaptic currents generated by homonymous Ia afferent fibers in motoneurons of the cat
- 1 December 1988
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 60 (6) , 1946-1966
- https://doi.org/10.1152/jn.1988.60.6.1946
Abstract
1. We have developed a technique to measure the total amount of current from a synaptic input system that reaches the soma of a motoneuron under steady-state conditions. We refer to this quantity as the effective synaptic current (IN) because only that fraction of the synaptic current that actually reaches the soma and initial segment of the cell affects its recruitment threshold and firing frequency. 2. The advantage of this technique for analysis of synaptic inputs in comparison to the standard measurements of synaptic potentials is apparent from Ohm's law. Steady-state synaptic potentials recorded at the soma of a cell are the product of IN and input resistance (RN), which is determined by intrinsic cellular properties such as cell size and membrane resistivity. Measuring IN avoids the confounding effect of RN on the amplitudes of synaptic potentials and thus provides a more direct assessment of the magnitude of a synaptic input. 3. Steady-state synaptic inputs were generated in cat medial gastrocnemius (MG) motoneurons by using tendon vibration to activate homonymous Ia afferents. We found that the magnitude of the Ia effective synaptic current (Ia IN) was not the same in all MG cells. Instead, Ia IN covaried with RN (r = 0.64; P less than 0.001), being about twice as large on average in motoneurons with high RN values as in those with low RN values. Ia IN was also correlated with motoneuron rheobase, afterhyperpolarization duration, and axonal conduction velocity. 4. A comparison of transient Ia EPSPs with steady-state Ia EPSPs (Ia EPSPSS) evoked in the same cells suggested that the effective synaptic current that produces the transient Ia EPSP was also greater in motoneurons with high RN values than in those with low RN values. 5. The factors responsible for the Ia IN-RN covariance are uncertain. However, our finding greater values of Ia IN in high RN motoneurons is consistent with other evidence suggesting that Ia boutons on these motoneurons have a higher probability for neurotransmitter release than those on low RN motoneurons (19). 6. The neural mechanisms underlying orderly recruitment are discussed. The effect of the Ia input is to produce an approximately twofold expansion of the differences in motoneuron recruitment thresholds that are generated by intrinsic cellular properties. It is suggested that the higher efficacy of Ia input in low-threshold motoneurons confers particular importance on this input system in the control of vernier movements (7).This publication has 43 references indexed in Scilit:
- Algebraical summation in synaptic activation of motoneurones firing within the ‘primary range’ to injected currentsThe Journal of Physiology, 1966
- Input Resistance, Electrical Excitability, and Size of Ventral Horn Cells in Cat Spinal CordScience, 1966
- Electrical behaviour of the motoneurone membrane during intracellularly applied current steps.The Journal of Physiology, 1965
- FUNCTIONAL SIGNIFICANCE OF CELL SIZE IN SPINAL MOTONEURONSJournal of Neurophysiology, 1965
- EXCITABILITY AND INHIBITIBILITY OF MOTONEURONS OF DIFFERENT SIZESJournal of Neurophysiology, 1965
- MEMBRANE CURRENTS IN SPINAL MOTONEURONS ASSOCIATED WITH THE ACTION POTENTIAL AND SYNAPTIC ACTIVITYJournal of Neurophysiology, 1962
- Excitability following antidromic activation in spinal motoneurones supplying red musclesThe Journal of Physiology, 1959
- The convergence of monosynaptic excitatory afferents on to many different species of alpha motoneuronesThe Journal of Physiology, 1957
- STEPS IN THE PRODUCTION OF MOTONEURON SPIKESThe Journal of general physiology, 1957
- Excitatory synaptic action in motoneuronesThe Journal of Physiology, 1955