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K Funase

Publications and source records attributed to K Funase.

22 records · Page 2Linked to original sources

Classification of GABA receptors in snail neurones.

The present study aimed to elucidate the pharmacological features of GABA receptors on identifiable neurones of Achatina fulica Férussac by testing the effects of GABA analogues, muscimol, (+/-)-baclofen, (-)-beta-hydroxy GABA and those conformationally fixed in either the extended or folded form of carbon chain, such as trans- and cis-isomers of (+/-)-2-(aminomethyl)cyclopropane-1-carboxylic acid [+/-)-cyclo-GABA-extended and (+/-)-cyclo-GABA-folded) and trans-4-amino-crotonic acid (GABA-extended). The giant neurones used were TAN, d-LPeLN, v-VNAN, v-LCDN and RPeNLN. The minimum effective concentrations (MEC) of these compounds to produce hyper- or depolarization of the membrane potentials of the neurones were determined, and the effective potency quotient (EPQ) of each compound vis-à-vis that of GABA was calculated for each neurone. The GABA receptors in these neurones were classified into the muscimol I, muscimol II and baclofen types. The muscimol I (TAN and d-LPeLN) and muscimol II (v-VNAN and v-LCDN) receptors were respectively hyperpolarized and depolarized by GABA and muscimol but were insensitive to (+/-)-baclofen. These muscimol receptors are inferred to accept GABA in an extended form of its carbon chain, since muscimol, conformationally fixed in this form from C-1 to C-4, was quite effective. Muscimol was more potent on the muscimol II receptors (MEC: 3 X 10(-7)-3 X 10(-6) M; EPQ: 30-10) than on the muscimol I type (MEC: 3 X 10(-5)-10(-4) M; EPQ: 1-0.3).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Ionic current of an identifiable giant neurone, d-RPLN, of an African giant snail (Achatina fulica Férussac), measured under voltage clamping--II. Outward currents.

1. The outward currents of d-RPLN (dorsal-right parietal large neurone), one of the largest identifiable neurones of an African giant snail, were studied. 2. At the holding potential (-90 mV) and at the command voltage (Vc20 mV), the current values were 3.05 +/- 0.13 microA (M +/- SE) for the peak (n = 38), and 1.96 +/- 0.10 microA for the plateau (n = 37). 3. The peak time constant (Vc = 0 mV) was 2.05 +/- 0.08 msec. 4. Tetraethylammonium at 50 mM reduced the plateau value up to 50-55% of the normal, but had little effect on the peak. 5. 5-Aminopyridine at 5.0 mM diminished the peak value to about 50-55%, and delayed the peak time. 6. Quinine at 0.25 mM decreased both the peak and the plateau approximately to 55-65% of their controls, but shortened the peak time when Vc was beyond 0 mV, in contrast to the case of 4-AP. 7. The calcium-free state (replaced with cobalt) reduced these currents to about 75% of the normal, and evidently delayed the peak time.

Animals↗

Auditory middle latency responses under different task conditions.

We examined the relationship between the Na and Pa components of human MLRs and the performance of different tasks. We also investigated whether MLRs are reliable indices of activity in the central motor-sensory system. The click stimuli we used consistently evoked the Na and Pa components. At CZ, the Na and Pa components significantly decreased for all tasks other than pegging with right hand while at FZ, these components were significantly decreased for all tasks. The Na and Pa latencies were slightly increased during task performances. These results indicate that the Na and Pa components of human MLRs decreased when various tasks were performed, while subjects were concentrating. A general principle of evoked potentials is that latencies decrease as amplitudes increase in excitation due to neural activation. Thus, it would appear that, under the conditions of this study, the pathways from the reticular formation and the thalamus to the primary auditory cortex were inhibited. Since the thalamus is considered to be the relay region for poly-sensory inputs, it is thought that the attenuation of the MLRs and SEPs occurs at the level of cerebral cortex, including the reticular formation, the thalamus, and the primary auditory cortex. Accordingly, since it is inferred that central factors are responsible for the attenuation of the MLRs, Na and Pa components observed during the performance of tasks carried out in the present experiment, it may be concluded that MLRs are reliable indices of activity in the central-motor system.

Acoustic Stimulation↗

Somatosensory evoked potentials following voluntary movement during upper arm compression.

We examined the modulation of somatosensory evoked potentials (SEPs) during upper arm compression and following voluntary movement during upper arm compression. Most SEPs were significantly decreased, although some SEPs showed a slight, non-significant diminution. SEPs are mediated not only by myelinated fibers but also by mixed nerves and afferents from cutaneous, joints, and deep tissues, these being dependent upon the dorsal column-medical lemniscal system. Therefore, most of the diminution in SEPs found here may have been due to afferent occlusion from muscle, cutaneous, joints, and deep tissues, since normal SEPs are selectively modulated, corresponding to motor or mental tasks, regardless of whether gating is centrifugal or centripetal. In addition, the present experiments showed that all the SEPs at FZ, C3' and CZ were significantly decreased following voluntary movement at a pressure 25%-30% higher than the subject's systolic blood pressure. Comparing SEPs during upper arm compression and those following voluntary movement during upper arm compression at these pressures, we found that the SEPs at C3' were significantly diminished following voluntary movement during upper arm compression, with other SEPs showing slight, non-significant attenuation. In conclusion, it is possible that the diminution in SEPs following voluntary movement could be responsible for sensory inputs, however, when sensory inputs are present, centrifugal modulation would also be responsible for this diminution.

Adult↗