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Biomedical subjects

F Shima

Publications and source records attributed to F Shima.

14 recordsLinked to original sources

[MR imaging of stereotactic thalamotomy using radiofrequency methods].

Sixty-eight stereotactic radiofrequency (rf) thalamic lesions in 57 patients with movement disorders were evaluated by magnetic resonance (MR) imaging. Postoperative periods ranged from 5 days to 4 years and 9 months. All 68 rf lesions were clearly detected on T2-weighted images (T2WI). Changes in signal intensity on T2WI were classified into five patterns, as follows: Pattern I: lesions with three concentric zones consisting of an inner hypointense, middle hyperintense and outer hypointense zone (31 lesions); Pattern II: lesions consisting of an inner hypointense and outer hyperintense zone (4 lesions); Pattern III: lesions consisting of an inner hyperintense and outer hypointense zone (27 lesion); Pattern IV: lesions of a hyperintense area alone (2 lesions); Pattern V: lesions of a hypointense area alone (4 lesions). The outer hypointense rim in Patterns I and III is thought to represent hemosiderin deposition. The abnormal signal intensity on T2WI caused by rf ranged from 2 to 12 mm in diameter, and lesions in the late phase were smaller than lesions in the early phase.

Adolescent

Increased striatal 18F-dopa uptake and normal glucose metabolism in idiopathic dystonia syndrome.

Striatal 18F-Dopa uptake and glucose metabolism were studied by positron emission tomography with 6-L-[18F]fluorodopa and [18F]fluorodeoxyglucose, respectively, in 8 patients with idiopathic dystonia. Patients with abnormal findings on the brain CT and MRI were excluded from this study. The clinical diagnosis consisted of torsion dystonia in 3 patients, focal dystonia limited in the arm in 3 and cervical dystonia (spasmodic torticollis) in 2. The 18F-Dopa uptake, corrected by nonspecific retention in the cerebellum, at 120 min post-administration was evaluated, and increased 18F-Dopa uptake in the putamen and in the caudate head was observed in the patients with idiopathic dystonia compared to the normal controls. The striatal glucose metabolism in the patients with idiopathic dystonia showed no difference with the normal controls. These findings suggest that pathogenetic mechanism of idiopathic dystonia involves increased presynaptic activity of the dopaminergic system in the striatum.

Adult

Striatal dysfunction in Rolling mouse Nagoya: an electrophysiological study.

To elucidate the neuronal mechanism of the motor disturbances of the Rolling mouse Nagoya (rolling, genotype rol/rol), an experimental neurologic mutant mouse, we studied the physiological characteristics of neurons of the globus pallidus (GP) in rolling, comparing them with those of the behaviorally normal heterozygotes (+/rol) and normal controls (+/+). Forty-nine units in rolling, 41 in heterozygotes and 48 in controls were recorded under urethane anesthesia. The group mean of the interspike interval (ISI) of the spontaneous unit discharges was significantly shorter in rolling (42.2 +/- 2.6 msec, mean +/- SEM) than that of controls and of heterozygotes (55.4 +/- 2.4 msec, P < 0.001 and 50.4 +/- 2.6 msec, P < 0.05, respectively), indicating a significantly higher rate of spontaneous unit activity in the GP of rolling. In the controls and heterozygotes, about 60% of the GP neurons responded to striatal (ST) electrical stimulation with a predominantly inhibitory response, whereas a significantly smaller number of the GP neurons (22%, P < 0.001) exhibited inhibitory responses in rolling. The positive field potentials recorded in the GP evoked by ST stimulation were significantly smaller in amplitude in rolling (1.04 +/- 0.10 mV, mean +/- SEM) than that of the controls and heterozygotes (1.78 +/- 0.15 mV, P < 0.001 and 1.97 +/- 0.17 mV, P < 0.001, respectively). These results are in agreement with our previously reported findings of increased glucose metabolism and reduced concentration of GABA in the GP and substantia nigra pars reticula (SNr) in rolling.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Ipsilateral pallidal control on the sternocleidomastoid muscle in cats: relationship to the side of thalamotomy for torticollis.

To elucidate the role of the basal ganglia on neck movement control and thus clarify the side of targets for stereotactic surgery of spasmodic torticollis, effects of electrical stimulation to the globus pallidus-entopeduncular nucleus complex (GP-EP) upon the activities of the sternocleidomastoid (SCM) muscle motoneurons were studied in cats. Repetitive stimulation of the ipsilateral GP-EP increased discharge rate in the majority of the SCM motoneurons, whereas contralateral GP-EP stimulation caused a decrease in discharge rate. These effects were gradually enhanced in the course of repetitive stimulation and lasted even after its cessation. Bilateral ablation of the motor and premotor cortices did not influence the effects of GP-EP stimulation. Latency studies suggested that the pallidal control of the SCM motoneuron is mediated by polysynaptic pathways on both sides; however, these same studies produced evidence of an ipsilateral oligosynaptic connection, as well. Repetitive antidromic stimulation of the accessory nerve caused a gradual increase in discharge rate of the SCM motoneurons, similar to the augmentation induced by ipsilateral GP-EP stimulation. Features of the responses indicate that the pallidal control on the neck muscles involves reverberating circuits in the brain stem and spinal cord. These experimental findings suggest that stereotactic thalamotomy of the ventrolateral nucleus for spasmodic torticollis should be performed on the side ipsilateral to the contracting SCM muscle.

Accessory Nerve

Localization of stereotactic targets by microrecordings of thalamic somatosensory evoked potentials.

To improve the localization of stereotactic targets, somatosensory evoked potentials (SEPs) were recorded from the thalamus and subthalamic area using a specially designed semimicroelectrode in 61 patients and a conventional "macroelectrode" in 17 patients. By means of the semimicroelectrode, median nerve stimulation evoked two distinct SEPs, consisting of a diphasic wave with a huge positivity restricted to the nucleus ventrocaudalis (Vc) and a triphasic wave of lower amplitude with a major negativity in the ventral part of the nucleus ventrointermedius (Vim) and nucleus ventrooralis posterior (Vop) as well as the subthalamic lemniscal pathway. The Vim-Vc junction could thus be clearly delineated by an abrupt transition of SEPs from one type to the other with a precision of 1 mm. The parvicellular part of the Vc (Vcpc), situated in its basal region, was distinguishable from the Vc proper by a significant reduction of the positivity elicited by stimulation of the median nerve and by a rapid growth of a diphasic SEPs to stimulation of the posterior tibial nerve. In the other thalamic nuclei, stimulation of the median nerve elicited triphasic SEPs of a very small amplitude, suggesting a volume conduction current from the lemniscal pathway. With the macroelectrode, the positivity in the Vc was sensitive to electrode manipulation and the thalamic nuclei could not be distinctly outlined. SEP monitoring using the semimicroelectrode significantly improved the precision of target localization, which allowed minimizing of the volume of the therapeutic lesion without losing surgical effectiveness, while avoiding complications associated with increased penetration of the coagulating electrode. It is suggested that recording serial thalamic SEPs with the semimicroelectrode is a practical method to refine stereotactic targets in the thalamus.

Adult

Clinical studies of the movement-related cortical potential (MP) and the relationship between the dentatorubrothalamic pathway and readiness potential (RP).

In order to investigate the influence of basal ganglia and cerebellar involvement on the preparatory state of the cerebral cortex for voluntary movement, the cortical potential preceding finger movement was studied in 20 patients with Parkinson's disease and 20 patients with cerebellar ataxia. Readiness potential (RP) was abnormal in 90% of the Parkinson group and in 55% of the cerebellar ataxia group. The most frequent abnormality was a depressed amplitude and earlier onset of RP in both groups. The most remarkable finding in the present study was the complete absence of RP with dyssynergia cerebellaris myoclonica (presumed Ramsay Hunt syndrome) whereas normal RP was obtained with cerebellar cortical degeneration. In addition, RP was absent or severely depressed in patients with a unilateral vascular lesion of the midbrain (Benedikt's syndrome) and in patients with Parkinson's disease who underwent unilateral intermedioventral (Vim) thalamotomy. These facts suggest a possible important role of the dentatorubrothalamic or dentatothalamic pathway in the physiogenesis of RP.

Adolescent

Origin of scalp far-field N18 of SSEPs in response to median nerve stimulation.

To identify the origin of scalp-recorded far-field negativity of short-latency somatosensory evoked potentials to median nerve stimulation (designated N18), direct records were made from the thalamus and ventricular system during 4 stereotaxic and 3 posterior fossa operations. In the thalamus a negative potential with almost the same latency as the scalp N18 was restricted to the Vim nucleus, but there was a large positive potential in the VC nucleus and medial lemniscus. Vim negativity increased in amplitude when high frequency stimulation was given to the median nerve, indicative of a facilitation effect. In contrast, the amplitude of scalp N18 decreased at high frequency stimulus. Direct recordings made through the medulla oblongata to the mid-brain showed a negative potential with gradually increasing latency. Above the upper pons, there was stationary negativity with no latency shift. The similarity between this negative potential and N18 is shown by their having the same latency and same response to the amplitude reduction and latency prolongation produced by high frequency stimulus. Our data suggest that scalp N18 comes from brain-stem activity between the upper pons and the mid-brain rather than from the thalamus.

Adult

Direct recording of somatosensory evoked potentials in the vicinity of the dorsal column nuclei in man: their generator mechanisms and contribution to the scalp far-field potentials.

Somatosensory evoked potentials (SEPs) in the vicinity of the dorsal column nuclei in response to electrical stimulation of the median nerve (MN) and posterior tibial nerve (PTN) were studied by analyzing the wave forms, topographical distribution, effects of higher rates of stimulation and correlation with components of the scalp-recorded SEPs. Recordings were done on 4 patients with spasmodic torticollis during neurosurgical operations for microvascular decompression of the eleventh nerve. The dorsal column SEPs to MN stimulation (MN-SEPs) were characterized by a major negative wave (N1; 13 msec in mean latency), preceded by a small positivity (P1) and followed by a large positive wave (P2). Similar wave forms (P1'-N1'-P2') were obtained with stimulation of PTN (PTN-SEPs), with a mean latency of N1' being 28 msec. Maximal potentials of MN-SEPs and PTN-SEPs were located in the vicinity of the ipsilateral cuneate and gracile nuclei, respectively, at a level slightly caudal to the nuclei. The latencies of P1 and N1 increased progressively at more rostral cervical cord segments and medulla, but that of P2 did not. A higher rate of stimulation (16 Hz) caused no effects on P1 and N1, while it markedly attenuated the P2 component. These findings suggest that P1 and N1 of MN-SEPs, as well as P1' and N1' of PTN-SEPs, are generated by the dorsal column fibers, and P2 and P2' are possibly of postsynaptic origin in the respective dorsal column nuclei.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult