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T Isa

Publications and source records attributed to T Isa.

At least 19 recordsLinked to original sources

Descending projections of Forel's field H neurones to the brain stem and the upper cervical spinal cord in the cat.

1. Descending projections from Forel's field H (FFH) to the brain stem and upper cervical spinal cord were studied in cats. 2. Following implantation of HRP pellets into the spinal gray matter (C1-C3) or in the ponto-medullary reticular formation, the nucleus reticularis pontis caudalis (NRPC) or in the nucleus reticularis gigantocellularis (NRG), numerous neurones were retrogradely labelled in FFH on the ipsilateral side. In the former cases, the sizes of labelled neurones were medium-large (20-40 microns in diameter) while both small and medium-large neurones were labelled in the latter cases. 3. The lowest levels of spinal projection of single FFH neurones (n = 70) were assessed by antidromic spikes elicited by stimulating electrodes placed in C1, C3 and C7. The majority (59%) projected to C1 (but not to C3), about 27% to C3 (but not to C7), and only 14% to C7. 4. Axonal trajectories of single FFH neurones in C1-C3 segments were investigated by antidromic threshold mapping methods. The stem axons of spinal-projecting FFH neurones descended in the ventral or in the ventrolateral funiculi and the collaterals were projected to neck motor nuclei (lamina IX, Rexed 1954) and laminae V-VIII. The conduction velocities were estimated as 8-37 m/s from the antidromic latencies. 5. Axonal trajectories of 7 FFH neurones were investigated in the ponto-medullary reticular formation. All were antidromically activated from C1. In six neurones, the stem axons were located in the ventral part of the central tegmental tract and collaterals were projected to the NRPC and/or the NRG. Some of them projected to the inferior olive and the nucleus prepositus hypoglossi as well. The stem axon, in the remaining cell, was in the most dorso-medial part of the medial longitudinal fasciculus and collaterals were projected mainly to the dorsal part of the NRPC and the NRG, and also to the medial vestibular nucleus. 6. Anterograde transport of WGA-HRP injected into FFH revealed that in the upper cervical spinal cord, stem axons were found in the ventral funiculus and ventral part of the lateral funiculus. Collateral projections and presumed bouton-like deposits were observed in the laminae VI-IX, especially in their medial part. In the brain stem, dense bundles of the descending fibres were found in the central and the medial tegmental tracts and in the medial longitudinal fasciculus. FFH neurones projected densely to the caudal half of the NRPC and to the rostral half of the NRG.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Mono- and disynaptic pathways from Forel's field H to dorsal neck motoneurones in the cat.

1. We analysed the synaptic actions produced by Forel's field H (FFH) neurones on dorsal neck motoneurones and the pathways mediating the effects. 2. Stimulation of ipsilateral FFH induced negative field potentials of several hundred microvolts with the latency of about 1.1 ms in the medial ponto-medullary reticular formation, being largest in the ventral part of the nucleus reticularis pontis caudalis (NRPC), and in the dorsal part of the nucleus reticularis gigantocellularis (NRG). 3. Stimulation of ipsilateral FFH induced excitatory postsynaptic potentials (EPSPs) in 90% (47/52) and inhibitory postsynaptic potentials (IPSPs) in 19% (10/52) of the reticulospinal neurones (RSNs) in the NRPC and the NRG. Latencies of the EPSPs and IPSPs were 0.7-3.0 ms, the majority of which were in the monosynaptic range. The monosynaptic connexions were confirmed by spike triggered averaging technique both in excitatory (n = 4) and inhibitory (n = 2) pathways. 4. Single stimulation of FFH induced EPSPs at the segmental latencies of 0.3-1.0 ms in neck motoneurones, which were clearly in the monosynaptic range. Repetitive stimulation of FFH produced marked temporal facilitation of EPSPs in neck motoneurones. The facilitated components of the EPSPs had a little longer latencies and their amplitude reached several times as large as that evoked by single stimulation in all the tested motoneurones. These facilitated excitations are assumed to be mediated by RSNs in the NRPC and NRG, since RSNs were mono- and polysynaptically fired by stimulation of FFH and they were previously shown to directly project to neck motoneurones. 5. EPSPs were induced in 91% (82/91) of motoneurones supplying m. biventer cervicis and complexus (BCC; head elevator), 10% (3/29) of motoneurones supplying m. splenius (SPL; lateral head flexor). Likewise, stimulation of FFH produced EMG responses in BCC muscles, while not in SPL muscle. Thus FFH neurones produce excitations preferentially in BCC motoneurones. 6. Systematic tracking in and around FFH revealed that the effective sites for evoking above effects were in FFH and extended caudally along their efferent axonal course. 7. These results suggested that FFH neurones connect with neck motoneurones (chiefly BCC, head elevator) mono-, di- and/or polysynaptically and are mainly concerned with the control of vertical head movements.

Animals

Axonal trajectories of single Forel's field H neurones in the mesencephalon, pons and medulla oblongata in the cat.

We studied axonal trajectories of single Forel's field H (FFH) neurones (n = 19) in the mesencephalon, pons and medulla by systematic antidromic threshold mapping in cats and differentiated them into two major types. Type I neurones were characterized by projections to the oculomotor nucleus (IIIn) and type II neurones by lack of projections to the IIIn. 2. Type I neurones (11/19) were further classified into three subtypes by the lowest level of projections; type Ic (n = 3) which projected to the cervical cord and type Ib (n = 7) which terminated at the ponto-medullary level and type Ia (n = 1) at more rostral level. In the mesencephalon, stem axons passed just lateral to the IIIn and projected collaterals to the IIIn and the ventral part of the periaqueductal gray matter. In the lower brain stem, stem axons of type Ib and Ic neurones passed in the dorsal part of the reticular formation or in the medial longitudinal fasciculus and projected collaterals to the dorsal part of the nucleus reticularis pontis caudalis (NRPC) and the nucleus reticularis gigantocellularis (NRG) and the reticular formation underlying the nucleus prepositus hypoglossi (PH) and the raphe region. Projections to the superior colliculus were observed in two cases. 3. Type II neurones (8/19) were classified into 2 type IIb projecting to the ponto-medullary reticular formation and 6 type IIc projecting to the cervical spinal cord. In the mesencephalon, stem axons passed through a more lateral region than those of type I and projected collaterals to the mesencephalic reticular formation and the red nucleus. In the lower brain stem, the stem axons passed in the ventral part of the reticular formation corresponding to the central tegmental tract and projected collaterals to the ventral part of the NRPC and NRG. Projections to the interstitial nucleus of Cajal, the inferior olive and the reticular formation underlying the PH were also observed. 4. The dorsal and ventral location of, respectively, stem axons of type I and type II neurones in the lower brain stem was confirmed in a larger number of neurones in experiments with restricted mapping. 5. There was not much difference in location of cell bodies of type I (totally n = 50) and type II (n = 46) neurones. The proportion of spinal-projecting neurones were larger in type II (21/46, 46%) than in type I (7/50, 14%) neurones.

Animals

Pyramidal excitation in long propriospinal neurones in the cervical segments of the cat.

1. The effect of stimulating the contralateral pyramid has been investigated with intracellular recording from 128 long propriospinal neurones (long PNs) in the C3-Th1 segments of the cat. Long PNs were identified by the antidromic activation from the Th13 segment. They were located in laminae VII-VIII of Rexed. Single pyramidal stimulation evoked monosynaptic EPSPs in 15/40 of the long PNs in cats with intact pyramid. In 15 other long PNs, a train of three to four pyramidal stimuli evoked EPSPs with latencies indicating a minimal disynaptic linkage. The remaining 25% of the long PNs lacked mono- or disynaptic pyramidal EPSPs. In a few cases longer latency excitation was observed. 2. The location of the intercalated neurones which mediate the disynaptic pyramidal EPSPs was investigated by making four different lesions of the corticofugal fibres: 1) at the border of the C5 and C6 segments, 2) at the border of the C2 and C3 segments, 3) at the caudal part of the pyramid; three mm rostral to the decussation and 4) at the level of the trapezoid body. Stimulation of the corticofugal fibres was made either rostral to lesion 3 (rPyr) in order to activate neurones in a cortico-bulbospinal pathway or caudal to lesion 3 (cPyr) to activate neurones in a corticospinal pathway. In the former case, in one experiment, stimulation was made in the pyramid between lesions 3 and 4 (double pyramidal lesion). In case of cPyr stimulation, lesions 1 and 2 were added sequentially in order to investigate if the corticospinal excitation was mediated via C3-C4 PNs. All lesions were made mechanically, except lesion 2 which in some of the experiments was performed by reversible cooling. 3. Stimulation in the pyramid rostral to lesion 3 and in between lesions 3 and 4 evoked disynaptic EPSPs in the long PNs, which shows that they were mediated via reticulospinal neurones. Stimulation in cPyr after lesion 3 elicited disynaptic EPSPs, which remained after lesion 1 but were abolished after adding lesion 2. It is concluded that the disynaptic cPyr EPSPs were mediated via intercalated neurones in the C3-C4 segments. 4. When the disynaptic cPyr EPSP was conditioned with a single volley in nucleus ruber and/or in tectum, it was markedly facilitated, especially when the conditioned volley was applied simultaneously with the effective cPyr volley. The results show that the intercalated neurones in the C3-C4 segments receive monosynaptic convergence from cortico-, rubro- and tectospinal fibres. Stimulation in the lateral reticular nucleus (LRN) evoked monosynaptic EPSPs.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Effect of naloxone on transmission in excitatory and inhibitory spinal reflex pathways.

The effect of systemic administration of naloxone on transmission in hindlimb reflex pathways was investigated in acute low spinal cats by conditioning monosynaptic reflexes. A marked enhancement of excitatory effects from cutaneous, joint, group II and III muscle afferents was observed in posterior biceps and semitendinosus motoneurones in 4 out of 6 experiments. In contrast, inhibitory synaptic effects in gastrocnemius and soleus motoneurones were not enhanced except weakly in one experiment. The effects of naloxone are different from those observed after spinal cord lesions interrupting axons of a previously described group of upper lumbar propriospinal neurones, which tonically suppress reflex transmission in the acute low spinal state. It is postulated that the suppression exerted by this group of neurones is not dependent on endogenous opioid peptides.

Animals

The effect of a low pyramidal transection following previous transection of the dorsal column in cats.

In order to test the working hypothesis that motor deficits after low pyramidotomy may be due to transection of the cortico-cuneate pathway, a low pyramidotomy was made 2-4 months after a C2 dorsal column (DC) transection and tested on forelimb target-reaching and food-taking. Since food-taking recovered faster than after pyramidotomy alone, it is inferred that the loss of food-taking after pyramidotomy without previous DC transection is due mainly to transection of the cortico-cuneate pathway which controls transmission from forelimb Ia afferents to the motor cortex. The dysmetria and dyscoordination of target-reaching, on the other hand, was similar whether or not the low pyramidotomy was made after a previous C2 DC transection. It is tentatively suggested that dysmetria and dyscoordination of target-reaching after pyramidotomy may be due to transection of the pathway from the motor cortex which controls spinocerebellar transmission by its effect on the lateral reticular nucleus.

Animals

Integration in descending motor pathways controlling the forelimb in the cat. 18. Morphology, axonal projection and termination of collaterals from C3-C4 propriospinal neurones in the segment of origin.

The morphology of single C3-C4 propriospinal neurones (PNs) including the cell body, dendritic tree, axonal trajectory and the pattern of projection and termination of axonal collaterals in the C3-C4 segments was investigated by intra-somatic or intra-axonal injection of horseradish peroxidase. All the C3-C4 PNs could be antidromically activated from the lateral funicle in C6 and the lateral reticular nucleus but not from Th13. Another criterion was that they received monosynaptic excitation from corticospinal fibres in the contralateral pyramid. Twenty-four C3-C4 PNs were successfully stained. They were located in the lateral part of laminae VI-VIII except for two neurones which were located in lamina V and two in lamina IX. Five to eleven dendrites originated from the cell bodies and extended throughout laminae IV-VIII and even into the white matter in the transverse plane and up to 3 mm rostro-caudally. The axonal trajectory from the cell body was usually curved before reaching the lateral funicle. The bifurcation of the stem axon into a descending and an ascending branch was mostly observed in the white matter close to or at the border between the white and grey matter at the level of the cell body. The ascending and descending axonal branches maintained their location in the same part of the lateral funicle. Sixteen out of 24 stem axons gave off collaterals in the grey matter and/or in the white matter. One to five collaterals were given off from the axons in the grey matter.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Projection from excitatory C3-C4 propriospinal neurones to spinocerebellar and spinoreticular neurones in the C6-Th1 segments of the cat.

Extra- and intracellular recording was made from neurones in laminae VII and VIII of the C6-Th1 segments, which were disynaptically excited from the contralateral pyramid, nucleus ruber and monosynaptically from the ipsilateral lateral reticular nucleus. The results suggest collateral excitation from the C3-C4 propriospinal neurones which are excited monosynaptically from the former two inputs and antidromically from the latter nucleus. The cells were antidromically activated from the ipsilateral nucleus fastigus, and from the ipsilateral or contralateral reticular formation. Some of the spinocerebellar and spinoreticular neurones were also antidromatically activated from Th13. It is suggested that spinocerebellar, spinoreticular and bifurcating spinocerebellar and spinoreticular neurones receive collateral input from the same excitatory C3-C4 propriospinal neurones which project to motoneurones and/or Ia inhibitory interneurones.

Anesthesia

Projection from excitatory C3-C4 propriospinal neurones to lamina VII and VIII neurones in the C6-Th1 segments of the cat.

Intracellular recording and injection of horseradish peroxidase (HRP) were made in neurones located medially in lamina VII and in lamina VIII of the forelimb segments (C6-Th1). The cells received disynaptic excitation from the contralateral pyramid after corticospinal transection in C5/C6 and monosynaptic excitation from the ipsilateral lateral reticular nucleus. The pyramidal excitation was facilitated by a conditioning volley evoked from the contralateral nucleus ruber, which suggests convergence of cortico- and rubrospinal fibres on the intercalated neurones. It is proposed that laminae VII and VIII neurones receive a collateral input from the same excitatory C3-C4 propriospinal neurones which project to motoneurones and/or Ia inhibitory interneurones. Reconstruction of HRP-stained lamina VII and VIII neurones revealed ipsi- and contralateral ascending and/or descending axonal projections and termination in laminae VII and VIII in the forelimb segments.

Anesthesia

The effect of low pyramidal lesions on forelimb movements in the cat.

Complete transection of the pyramid just rostral to the crossing gave defects in forelimb target-reaching and food-taking tested with retrieval of food from a cylinder. The most marked symptoms were dysmetria, dyscoordination of movement and almost total loss of the food-taking movement. Gradual recovery occurred, but even after 3-4 months the food-taking movement was deficient. The symptoms were less severe than those previously found after a high pyramidotomy but much more pronounced than those observed after complete transection of the corticospinal tract in the spinal cord. The motor defects after a low pyramidotomy closely resemble those found after a high dorsal column transection. It is tentatively proposed that the motor defects after low pyramidotomy are largely due to transection of corticocuneate fibers which regulate the feedback pathway from forelimb afferents to the motor cortex.

Animals

Excitatory pathways from Forel's field H to head elevator motoneurones in the cat.

Projections of neurones in Forel's field H (FFH) to the upper cervical cord and to the lower brainstem were demonstrated by retrograde labelling of the neurones with horseradish peroxidase (HRP). Systematic threshold mapping for evoking antidromic spikes of FFH neurones revealed that they projected to the neck motor nuclei and to pontomedullary reticular formation (PMRF). Stimulation of FFH evoked large monosynaptic excitatory postsynaptic potentials (EPSPs) in reticulospinal neurones (RSNs) of the PMRF, and mono- and disynaptic EPSPs in the dorsal neck motoneurones. Above EPSPs were evoked from areas confined to FFH, thus indicating that they were elicited by stimulation of FFH neurones. Monosynaptic EPSPs in motoneurones were small but disynaptic EPSPs were markedly facilitated following stimulation with train pulses, becoming several times larger than the monosynaptic EPSPs. Disynaptic EPSPs were supposed to be relayed by RSNs in the PMRF which are known to project to dorsal neck motoneurones. The mono- and disynaptic EPSPs were induced chiefly in motoneurones of the head elevator (m. biventer cervicis and complexus) and rarely of the neck lateral flexor (m. splenius). It was suggested that FFH neurones are involved in the control of vertical head movements.

Action Potentials

Subtypes of neurones in Forel's field H as defined by their axonal projection.

Projection of neurones in Forel's field H (FFH) to the mesencephalon, the lower brainstem, and the upper cervical spinal cord (C1) was investigated by threshold mapping for evoking antidromic spikes from these areas. Projections of all FFH neurones tested were ipsilateral. Two main types (Type I and II) and their subtypes were differentiated from the pattern of the trajectories. Type Ia FFH neurones were found to project primarily to the oculomotor nucleus (IIIn) and the periaqueductal gray (PAG) bud did not descend down to the medulla, while Type Ib neurones projected to IIIn, PAG and the nucleus reticularis gigantocellularis (NRG) and Type Ic projected further down to the C1. Type II neurones were characterized by the absence of collaterals to IIIn. Type IIb projected to the cuneiform, subcuneiform and red nuclei in the mesencephalon and to the NRG, while Type IIc projected further down to the spinal cord. Type IIa neurones which terminated rostral to the NRG were found only rarely. These results suggested that Type Ib and Ic neurones are involved in the control of synergic eye and head movements, while Type IIb, IIc and Ia neurones are specified for the independent control of head and eye movement.

Action Potentials

Effects of lesion of paramedian pontomedullary reticular formation by kainic acid injection on the visually triggered horizontal orienting movements in the cat.

A localized lesion was made in the nucleus reticularis pontis caudalis (NRPC) and the nucleus reticularis gigantocellularis (NRG) by kainic acid injection, and its effects on visually triggered orienting eye and head movements in the horizontal direction were investigated in alert head-free cats. Before the lesion, trained cats could orient the head and eyes to the target presented in the periphery of the visual field, with rapid eye (saccade) and swift head movements. After the unilateral lesion, they were unable to direct the head toward the target on the lesioned side in 64% of the trials tested during 2 weeks after the lesion, while they managed in 36% of the trials, although the movement was reduced both in speed and amplitude. The saccadic eye movement was completely absent through all trials. In contrast, eye and head movements to the intact side were as normal as the control. The present results suggest that the NRPC and NRG play an essential role in relaying a descending command of ipsiversive visually triggered orienting movements of eyes and head in the horizontal direction.

Animals

Reflex responses evoked in the adrenal sympathetic nerve to electrical stimulation of somatic afferent nerves in the rat.

The present study was initiated to determine the role of somatic A (myelinated) and C (unmyelinated) afferent fibers in both responses of increases and decreases in adrenal sympathetic nerve activities during repetitive mechanical pinching and brushing stimulations of the skin in anesthetized rats with central nervous system (CNS) intact. Accordingly, changes in adrenal sympathetic nerve activity resulting from repetitive and single shock electrical stimulation of various spinal afferent nerves, especially the 13th thoracic (Th13) spinal nerve and the sural nerve, were examined in urethane/chloralose-anesthetized rats. Repetitive electrical stimulation of A afferent fibers in Th13 spinal or sural nerve decreased the adrenal nerve activity similarly as brushing stimulation of skin of the lower chest or hindlimb did, while repetitive stimulation of A plus C afferent fibers of those nerves increased the adrenal nerve activity as pinching stimulation of those skins did. Single shock stimulation of spinal afferent nerves evoked various reflex components in the adrenal nerve: an initial depression of spontaneous activity (the early depression); the following reflex discharge due to activation of A afferent fibers (the A-reflex); a subsequent reflex discharge due to activation of C afferent fibers (the C-reflex); and following post-excitatory depressions. These reflexes seem to be mediated mainly via supraspinal pathways since they were abolished by spinal transection at the C1-2 level. Although the supraspinal A- and C-reflexes could be elicited from stimulation of a wide variety of spinal segmental afferent levels, the early depression was more prominent when afferents at spinal segments closer to the level of adrenal nerve outflow were excited. It is suggested that the decreased responses of the adrenal nerve during repetitive electrical stimulation of A afferent nerve fibers are attributable to summation of both the early depression and post-excitatory depression evoked by single shock stimulation, while the increased responses during repetitive stimulation of A plus C afferent fibers are attributable to summation of the C-reflex after single shock stimulation. In spinalized rats, repetitive stimulation of Th13 always increased the adrenal nerve activities regardless of whether A fibers alone or A plus C fibers were stimulated, just as brushing and pinching of the lower chest skin always increased them. The increased responses in spinal animals seem to be related to the fact that single electrical stimuli of Th13 produced A- and C-reflexes of spinal origin without clear depressions.

Adrenal Glands