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O A Karamian

Publications and source records attributed to O A Karamian.

At least 19 recordsLinked to original sources

Comparative study of spinal motoneuron axon collaterals.

Numerous spinal motoneurons in mammals possess recurrent axon collaterals included in a feedback loop for controlling motoneuron activity. For nonmammalian vertebrates, the data concerning the existence of collaterals and their intraspinal branching are fragmentary and contradictory. We focused on axonal branching of motoneurons in lampreys, frogs, turtles and young rats, using light microscopic analysis of HRP- or neurobiotin-labeled motoneurons. In lampreys, only a restricted portion of spinal motoneurons, related to the dorsal fins, showed recurrent collaterals. In frogs, a great complexity and high total length of collateral branches as well as a great number of axon swellings were found. In turtles, axon collateralization of spinal motoneurons was much more restricted, and present in particular in lumbar motoneurons innervating proximal hindlimb muscles. Young rat spinal motoneurons have rather abundant recurrent axon collaterals. It is likely that the presence of axon collaterals from spinal motoneurons is related to the level of complexity of locomotion.

Animals↗

[Modulation of miniature inhibitory potentials in motoneurons of the turtle spinal cord by group II metabotropic glutamate receptors].

The role of group II metabotropic glutamate receptors (mGluRs) in modulation of inhibitory synaptic activity was studied by intracellular recording of motoneuron miniature inhibitory spontaneous postsynaptic potentials (mIPSPs) in isolated lumbar segments of the turtle spinal cord in the medium containing TTX, CNQX, AP-5. The ratio of mIPSPs with fast and slow kinetics (83% vs 17%) is in accordance with the ratio shown for glycine- and GABA-mediated IPSP or IPSCs (Jones et al., 1988; Gao et al., 2001). In the majority of investigated motoneurons, the selective group II mGluRs antagonist EGLU (100-250 microM) increased the frequency of mIPSPs by 106.6 +/- 74.4% (n = 9) without affecting average amplitude, suggesting a presynaptic site of mGluRs action providing for the transmitter release reduction. The analysis of EGLU action on mIPSPs with different time courses (selection by half-width) showed that the frequency of inhancement of miniature inhibitory activity is caused by predominantly short-duration mIPSPs (ba 84.0 +/- 18.2%; n = 9), which are probably glycineergic. However, EGLU did not influence the mIPSPs frequency under condition of GABA-receptor blockade by bicuculline (20 microM). This fact suggest that group II mGluRs could modulate glycinergic transmission to the turtle spinal motoneurons on the necessary condition that GABergic system is active.

Animals↗

[Recurrent axon collaterals of lumbar motor neurons in turtles].

A combined morphophysiological study was made of connections between motoneurons on the superfused isolated lumbar spinal cord of Testudo horsfieldi. Postsynaptic potentials of motoneurons, followed by antidromic stimulations of ventral root filaments (VR-PSPs), were recorded intracellularly. Depolarizing VP-PSPs had short latencies (1.0-1.5 mc) and amplitudes in the range of 0.3-3.0 mV. At the constant stimulus intensity, the fluctuations of amplitudes were recorded. In some motoneurons, hyperpolarizing VP-PSRs with the latencies 2.5-3.0 mc were observed. A possible structural basis of VR-PSPs was studied by the horseradish peroxidase (HRP) method. After HRP application on thin ventral root filaments the retrograde staining of motoneurons revealed recurrent axon collaterals of labeled motoneurons. Three-dimensional computer reconstructions showed one to three collaterals given off by motoneuron axons. There were up to 19 points of branching in a single collateral. In some cases the full length of collateral trees reached 4.0 mm. The collateral branches had up to 72 "en passant" and terminal axon swellings. The swellings (presumed contacting boutons) were distributed in the ventral and intermedial gray matter and in the ventromedial while matter and revealed on motoneurons and inerneurons. These data suggest the participation of the motor axon collaterals in the motoneuron--motoneuron communication in the turtle spinal cord whereas only dendro-dendritic contacts had been discussed earlier.

Animals↗

Comparison of the topology and growth rules of motoneuronal dendrites.

The complexity, shape, and branching modes of the dendrites of spinal motoneurons were compared in cat, rat, and frog using topological analysis and growth models. The complexity of motoneuronal dendrites, measured as the mean number of terminal segments, varied significantly among samples and was related to contractile properties of innervated motor units. Despite this variation, all mature motoneurons having a mean number of terminal segments per dendrite greater than ten (up to 24.3) exhibited a narrow range of values of coefficients describing the symmetry of tree shapes (0.42-0.47). This implies low variability in the topological shape of motoneuronal dendrites of different animals. This similarity of tree shapes proved to be a result of the similarity of growth rules. The growth of the dendrites could be described to a first approximation by a two-parameter (Q and S) model called the QS model and by a multitype Markovian model. The estimation of parameters of the QS model, in which parameter Q is related to the probability of branching of intermediate segments, revealed that Q was equal or close to 0, implying that branching of dendrites is restricted to terminal segments. The estimates of the parameter S, which describes whether the probability of branching increases (S < 0) or decreases (S > 0) exponentially with segment order, were positive. This was in agreement with the results of estimation of probabilities of branching provided by the Markovian model, which showed that the branching probabilities decreased with segment order in an exponential manner in most of the neurons studied. The QS and Markovian models involve different assumptions about the sequence and timing of branching events, and selection of the best model can provide insight into details of dendritic outgrowth. Extensive simulation of tree outgrowth using a Markovian model revealed significant differences between stimulated trees and real dendrites, particularly with regard to variability of the number of terminals and to symmetry. In contrast, the QS model provided a good fit to the mean values and standard deviations of basic topological parameters. This model is adequate to describe the shape of mature motoneuronal dendrites. It implies that dendritic branches have many opportunities to bifurcate during the whole time of development and that bifurcating potency of a branch is a function of the number and position of other branches of that dendrite. Combined with analysis of metrical properties such as lengths of segments, the QS model can assist in a quantitative analysis of development and plasticity.

Animals↗

Sensorimotor connections in the lumbar spinal cord of the young rat: a morphological study.

A morphological investigation of sensorimotor connections was performed on the isolated lumbar spinal cord of 8-15-day-old rats using horseradish peroxidase labelling techniques. Horseradish peroxidase was applied to the filaments of dorsal and ventral roots and injected intracellularly into motoneurons. The labelled afferent fibres and their contacts on motoneurons were examined under a light microscope. Numerous afferent collaterals entered the lateral motor nuclei. In the medial motor nuclei a few afferent collaterals were found. Some fibres were visible passing through the ventral commissure. The number of boutons per afferent collateral in the motor nuclei was 40-60. A single terminal branch contained one to five boutons (average 1.5). Predominating axodendritic and apparent axosomatic contacts were found between afferent fibres and motoneurons belonging to the lateral motor nuclei. The contacting boutons were both terminaux and en passant. As a rule, the sensorimotor connection involved dorsally and rostrocaudally directed dendrites of the first to sixth orders.

Animals↗

Relation between structural and release parameters at the young rat sensorimotor connection.

The present work was carried out on isolated spinal cords of young rats. The aim of this study was the combined morphological and electrophysiological investigation of sensorimotor connections labelled with horseradish peroxidase and the evaluation of the relationship between their structural and functional properties. Sensorimotor contacts were widely distributed along the postsynaptic cell: from the soma and juxtasomatic dendrites to distal dendrites. The number of contacting boutons in the connection of a single afferent fibre and an individual motoneuron was about 10. The amplitude fluctuation patterns of the unitary and the minimal excitatory postsynaptic potentials of the motoneurons fitted with predictions based on a binomial model. A close correspondence was found between the estimated number of binomial release sites, n, and the number of contacting boutons. The calculated size of the quantal potential was about 100 microV. The difference in the organization of sensorimotor connections of the young rat and the frog is discussed.

Afferent Pathways↗

[Morphologic and quantum characteristics of sensomotor neuron synapses in isolated rat spinal cord].

The structural-functional relationships of sensorimotor connections were studied in isolated lumbar cord segments of 7-14 day-old rats. Individual motoneurons were found to have synaptic contacts only with a single collateral of the afferent fibre. The number of contacting boutons gained 10. The n parameter of the binomial model was established to reflect the number of contacts at the sensorimotor connection. The analysis of sensorimotor EPSPs by convolution with two binomial distributions has shown that sites of the transmitter release were different in their probability (efficiency) of response to nerve impulse.

Animals↗

[Morphological bases of motor neuron interaction in the isolated spinal cord of rat pups studied with horseradish peroxidase].

The structure of connections of the lumbar motoneurons was investigated in the isolated spinal cord of young rats by the HRP methods. HRP was applied to the ventral roots and injected intracellularly into the motoneurons. The light microscopic study has shown that dendrodendritic, dendrosomatic and somatosomatic contacts between motoneurons might be established. Recurrent collaterals of motor axons were revealed. They were found to form contacts on the motoneuron dendrites and perikarya. The course and terminal arborizations of the ventral root afferent fibre were also described. The obtained morphological data related to electrophysiological analysis of motoneuronal postsynaptic potentials evoked by ventral root stimulation are discussed.

Animals↗

[Mechanisms of motor neuron interaction in the isolated spinal cord of rat pups].

Interactions between lumbar motoneurons were studied by intracellular recording of responses to stimulation of ventral roots and intracellular HRP injection in isolated spinal cord preparations of immature (9-14 days old) rats. Ventral root-evoked electrotonic potentials in individual motoneurons were due to interconnections with few other motoneurons and could not elicit spike potentials. Direct chemical excitatory interactions of motoneurons were also found which may occur via axon collaterals. Differences between individual motoneurons in the mode of responses to ventral root stimulation, probably, depend on their functional specialization.

Action Potentials↗

[Synaptic interactions of individual motor neurons of the spinal cord of the carp].

The interaction between motoneurons was studied in the isolated spinal cord of the fish (Cyprinus carpio) by the recording of elementary EPSPs evoked in a motoneuron by intracellular stimulation of adjacent motoneuron. These EPSPs are mediated mainly by electrical transmission as evidenced by their short or negligible latencies, stable amplitudes and bidirectional transmission between motoneurons. In some cells double-component elementary EPSPs were revealed which indicate dual (electro-chemical) mode of transmission between some motoneurons.

Animals↗

[Excitatory postsynaptic potentials in motor neurons of rats upon stimulation of individual reticulospinal neurons].

Unit reticulo-motoneuronal EPSPs evoked by extra -- or intracellular stimulation of reticulo-spinal neurons were recorded intracellularly from rat lumbar motoneurons. Reticular neurons with fast conducting axons revealed higher probability of direct effect on motoneurons. Terminals of single reticular neurons to different motoneurons were shown to be widely distributed. Analysis of the time course of average unit EPSPs suggests proximal to soma location of some reticulo-motoneuronal synapses. Amplitude-frequency histograms of the unit EPSPs could be fitted in most cases by Poisson's or binominal distribution, suggesting the quantal nature of transmitter release.

Animals↗

[Monsynaptic influences from the reticular formation and muscle afferents following axotomy of motor neurons in rats].

Lumbar motoneurons were studied by means of intracellular recording in intact rats and after section of the appropriate ventral roots. In normal motoneurons monosynaptic EPSPs evoked by stimulation of the reticular formation and Ia group muscle afferents showed no difference in amplitude (3.92 +/- 0.17 mV and 3.86 +/- 0.19 mV), but revealed statistically significant difference in time-to-peak (0.71 +/- 0.05 msec and 0.83 +/- 0.06 msec). The membrane potential, the duration and the amplitude of the actionpotentials, and the generation of antidromic actionpotentials showed no difference between normal and axotomized motoneurons. The partial responses were not recorded in axotomized motoneurons. Monosynaptic reticulo-spinal and Ia EPSPs of axotomized motoneurons exhibited longer time-to-peak than those in normal motoneurons. Besides, Ia EPSPs were significantly reduced in amplitude. The changes of monosynaptic reticulo-spinal and Ia EPSPs cannot be explained exclusively by the alterations of the synapses located on the soma and proximal dendrites.

Animals↗