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Biomedical subjects

K Fujimura

Publications and source records attributed to K Fujimura.

At least 55 records · Page 3Linked to original sources

Responses to ramp current stimulation of the neurons in substantia nigra pars compacta in vitro.

The response to ramp current stimulation was studied in the pars compacta neurons in guinea pig substantia nigra slices. Although accommodation was not seen with current duration up to 1000 ms, a threshold peak emerged on the threshold-latency curve at 30-400 ms when the cell was hyperpolarized. The appearance of the peak was closely correlated with an inflection in the potential trajectory before the spike. A voltage-dependent, fast inactivating outward current may underlie these responses. They persisted in Ca2+-free solution, but disappeared when Cd2+ (0.4 mM) or Co2+ (5 mM) ions were applied extracellularly.

Action Potentials

Peptide elongation factor 1 from yeasts: purification and biochemical characterization of peptide elongation factors 1 alpha and 1 beta (gamma) from Saccharomyces carlsbergensis and Schizosaccharomyces pombe.

Cytoplasmic elongation factor 1 alpha (EF-1 alpha) [corrected] was purified to homogeneity in high yield from the two different yeasts Saccharomyces carlsbergensis (S. carls.) and Schizosaccharomyces pombe (S. pombe). The purification was easily achieved by CM-Sephadex column chromatography of the breakthrough fractions from DEAE-Sephadex chromatography of cell-free extracts. The basic proteins have a molecular weight of 47,000 for the S. carls. factor and of 49,000 for the S. pombe factor. While the purified yeast EF-1 alpha s function analogously to other eukaryotic factors and the E. coli EF-Tu in Phe-tRNA binding and polyphenylalanine synthesis, the yeast factor unusually hydrolyzed GTP on yeast ribosomes upon addition of Phe-tRNA in the absence of poly(U) as mRNA. This novelty is probably owing to the yeast ribosomes, which are assumed to lack elongation factor 3-equivalent component(s). Trypsin and chymotrypsin selectively cleaved the two yeast factors to generate resistant fragments with the same molecular weight of 43,000 (by trypsin) and of 44,000 (by chymotrypsin), respectively. Those cleavage sites were characteristically protected by the presence of several ligands bound to EF-1 alpha such as GDP, GTP, and aminoacyl-tRNA. Based on the sequence analysis of the fragments generated by the two proteases, the partial amino acid sequence of the S. carls. EF-1 alpha was deduced to be in accordance with the N-terminal region covering positions (1) to 94 and two Lys residues at the C-terminal end of the predicted total sequence of the Saccharomyces cerevisiae (S. cerev.) factor derived from DNA analysis, except for a few N-terminal residues, confirming the predicted S. cerev. sequence at the protein level. EF-1 beta and EF-1 beta gamma were isolated and highly purified as biologically active entities from the two yeasts. EF-1 beta s from the two yeasts have the same molecular weight of 27,000, whereas component gamma of the S. carls. EF-1 beta gamma showed a higher molecular weight (47,000) than that of the S. pombe factor (40,000). It was also shown that a stoichiometric complex was formed between EF-1 alpha and EF-1 beta gamma from S. pombe. Furthermore, a considerable amount of Phe-tRNA binding activity was distributed in the EF-1H (probably EF-1 alpha beta gamma) fraction from freshly prepared cell-free extracts of yeast.

Amino Acid Sequence

Two types of neurons in the substantia nigra pars compacta studied in a slice preparation.

Two types of neurons were differentiated, on the basis of electrophysiological properties, in the substantia nigra pars compacta of the guinea pig maintained in slices. While the majority of neurons, presumably dopaminergic neurons, produced a broad spike accompanied by a relatively long-lasting after-hyperpolarization, a small number of neurons were characterized by the generation of a depolarizing after-potential (DAP) following a fast spike. The DAP was depressed by a slight depolarizing shift of the resting membrane potential and by the removal of Ca2+ from the bathing medium, which suggested that it was a low-threshold Ca2+-dependent response. Intracellular staining revealed that the neurons producing DAP were smaller than the major neurons.

Action Potentials

[A case of type IIa early gastric cancer complicated with multiple endocrine cell micronests in pernicious anemia].

The patient, a 5-year-old male, was diagnosed as having pernicious anemia at our hospital in 1969. By means of an upper G-I series, he was found to have a gastric protruded lesion on the greater curvature of the upper corpus in 1983. After an endoscopic polypectomy, a type II a early gastric cancer was diagnosed which, histologically, showed a well-differentiated adenocarcinoma and a total gastrectomy was performed. From the histologic findings of the resected stomach, the were multiple endocrine cell micronests, that coincided with the distribution of intestinal metaplasia localized in the fundic gland area.

Adenocarcinoma

Depression of spike adaptation and afterhyperpolarization by 4-aminopyridine in hippocampal neurons.

In guinea pig hippocampal slices, 4-aminopyridine (4-AP) in concentrations of 100-500 microM reduced the adaptation of CA3 pyramidal neurons to depolarizing stimuli, resulting in a prolongation of repetitive firing during injection of long-lasting depolarizing currents. Concurrently, there was a decrease in the 'sag' of potential after spike bursts. Furthermore, 4-AP decreased or abolished the hyperpolarizing potential (the afterhyperpolarization) which normally followed repetitive firing of the neurons. The findings suggest that 4-AP could interfere with the Ca2+-activated K+ current in hippocampal CA3 pyramidal neurons.

4-Aminopyridine

Effects of quinidine and quinine on the excitability of pyramidal neurons in guinea-pig hippocampal slices.

Effects of quinidine (25 microM-1mM) and its stereoisomer, quinine (1-5 mM), on the excitability of CA3 pyramidal neurons were investigated in guinea-pig hippocampal slices using intracellular recording techniques. At concentrations of quinidine higher than 100 microM (and higher than 1 mM for quinine), 1) the resting potential shifted to the depolarizing direction with an increase of the input resistance, 2) the spike duration was prolonged, 3) the spike amplitude was decreased, 4) the late component of the afterhyperpolarization (AHP) (caused by the activity of the Ca2+-mediated K conductance) were suppressed, and 5) finally, neurons became inexcitable. The results indicate that the blocking action of quinidine and quinine is not specific to the Ca2+-mediated K conductance in mammalian hippocampal neurons, and that this conductance is much less sensitive to the drugs in comparison with other preparations.

Animals