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Biomedical subjects

K Kogure

Publications and source records attributed to K Kogure.

At least 163 records · Page 9Linked to original sources

Sequential alterations of [3H]rolipram and [3H]cyclic adenosine monophosphate binding in the gerbil brain following transient cerebral ischemia.

We examined the sequential alterations in the binding of selective cyclic adenosine monophosphate (cAMP)-phosphodiesterase (PDE) and cAMP-dependent protein kinase (cAMP-DPK) in the gerbil brain following transient cerebral ischemia using in vitro quantitative autoradiography. [3H]Rolipram, a cAMP-PDE inhibitor, and [3H]cAMP were used to label cAMP-PDE and cAMP-DPK, respectively. Gerbils were subjected to 2-min or 6-min ischemia. Two-minute ischemia, which caused no morphological neuronal damage, produced no significant changes in either [3H]rolipram or [3H]cAMP binding throughout the recirculation period. The reduction of [3H]rolipram binding in the CA1 subfield of the hippocampus began 6 h after 6-min ischemia. Seventy percent of [3H]rolipram binding was preserved at 4 days, at which time almost all CA1 pyramidal cells had been destroyed. On the other hand, the reduction of [3H]cAMP-binding sites in the CA1 subfield began 1 day after 6-min ischemia. At 4 days, 47% of [3H]cAMP-binding sites in the CA1 subfield were preserved. Furthermore, we observed a transient reduction of [3H]cAMP binding in the dentate gyrus, which is resistant to ischemia, at 1 day and 4 days. These results indicate that marked alterations of cAMP-PDE and cAMP-DPK precede neuronal death in the hippocampal CA1 subfield, and the dentate gyrus also showed a transient alteration of cAMP-DPK.

3',5'-Cyclic-AMP Phosphodiesterases↗

Temporal profile of the induction of heat shock protein 70 and heat shock cognate protein 70 mRNAs after transient ischemia in gerbil brain.

Distributions of heat shock protein (HSP) 70 and heat shock cognate protein (HSC) 70 mRNAs after 2, 5 and 15 min of transient global ischemia in gerbil forebrain were investigated by in situ hybridization using cloned cDNA probes selective for each mRNA species. Morphological studies were also performed at the dorsal hippocampal level of coronal sections from the identical brains until 7 days after the reperfusion. Following 2 min of ischemia, HSP70 and HSC70 mRNAs were induced together in hippocampal dentate granule cells at 1 and 3 h of the reperfusion. No histological change was observed in brain cells. Following 5 min of ischemia, HSP70 and HSC70 mRNAs were induced in all hippocampal cells. The induction of HSP70 mRNA in hippocampal CA1 cells sustained until 2 days, while that of HSC70 mRNA declined gradually. Only CA1 cells were lost at 7 days of the reperfusion. Following 15 min of ischemia, the mRNAs were induced in more extensive brain regions including neocortex and thalamic nuclei. In hippocampal CA1 cells, inductions of HSP70 and HSC70 mRNAs diminished by 2 days corresponding with the neuronal damage. HSC70 mRNA induction was not so much as HSP70 mRNA induction especially in hippocampal CA1 and thalamic cells. Our results showed that HSP70 and HSC70 mRNAs were generally induced together after transient ischemia, but that the inductions were spatially and chronologically different after different periods of ischemia. The dissociation of the induction was also found in cells severely injured after 5 and 15 min of ischemia.

Animals↗

Dissociation of HSP70 and HSC70 heat shock mRNA inductions as an early biochemical marker of ischemic neuronal death.

A significant dissociation of HSP70 and HSC70 heat shock mRNAs after a 10-min transient forebrain ischemia in gerbil was found only in the hippocampal CA1 neurons which eventually die after the initial ischemic insult, while other hippocampal neurons such as the dentate granule and the CA3 cells which survive ischemia expressed both mRNAs cooperatively. The dissociation was observed as early as after 8 h of reperfusion, a period far shorter than 3-4 days, when the cell death becomes pathologically evident. Thus, the dissociation may serve as a set of early biochemical markers for ischemic neuronal cell death.

Animals↗

Limited but evident protective effects of MK-801 and pentobarbital on neuronal damage following forebrain ischemia in the gerbil under normothermic conditions.

The purpose of this study was to examine the protective effects of an N-methyl-D-aspartate receptor antagonist, MK-801, and pentobarbital against neuronal damage in a global ischemia model under controlled body temperature. Gerbils were subjected to 3 and 5 min of bilateral common carotid artery occlusion. MK-801 (1 and 5 mg/kg, i.p.), administered 30 min before ischemia, significantly attenuated the degeneration of hippocampal CA1 pyramidal cells after 3 min of ischemia in a dose dependent manner, but had no such effects after 5 min of ischemia. Pentobarbital (40 mg/kg, i.p.) also protected against CA1 damage after 3 min of ischemia but not after 5 min of ischemia. Thus, we confirmed the protective effects of these agents under normothermic conditions, although these effects were limited to shorter periods of ischemia.

Adenosine Triphosphate↗

Long-term observations in gerbil brain following transient cerebral ischemia: autoradiographic and histological study.

We investigated the long-term changes that occur in the gerbil brain following transient cerebral ischemia using histology and receptor autoradiography. Transient ischemia was induced for 3 and 10 min, and animals were allowed to survive for 8 months. A histological study showed that 3-min ischemia caused neuronal damage and mild atrophy only in the hippocampal CA1 sector, and that 10-min ischemia produced severe neuronal damage and marked shrinkage in the hippocampal CA1 and CA3 sectors. Furthermore, severe neuronal damage was seen in the striatum after 10-min ischemia. Autoradiography study revealed that 3-min ischemia caused a significant reduction in [3H] naloxone binding in the frontal cortex, striatum, dentate gyrus, and thalamus, whereas [3H]SCH 23390 and [3H] forskolin binding was not significantly altered in all regions. In contrast, 10-min ischemia produced marked alteration in these binding sites in the striatum, hippocampus, thalamus, and substantia nigra. The alteration was especially notable in the hippocampal region and substantia nigra. These results indicate that hippocampal damage after transient ischemia, compared with that in other regions, is not static, but particularly progressive. Furthermore, they demonstrate a reduction in adenylate cyclase system in the striatum and substantia nigra after transient ischemia. Moreover, our results suggest that long-term survival after ischemia may induce synaptic modification of neurotransmitter and adenylate cyclase system in the hippocampus.

Animals↗

Alteration of protein kinase C activity in the postischemic rat brain areas using in vitro [3H]phorbol 12,13-dibutyrate autoradiography.

Chronological changes of protein kinase C (PKC) activity were measured using in vitro [3H]phorbol 12,13-dibutyrate (PDBu) autoradiography to investigate the postischemic alteration of this second messenger system in the rat brain. Transient ischemia was induced by the occlusion of the middle cerebral artery (MCA) for 90 min and such occlusion followed by various recirculation periods of up to 4 weeks. After 90 min of ischemia followed by 3 hours of recirculation, [3H]PDBu binding sites were found to be significantly decreased in the cerebral cortex and lateral segment of the caudate putamen, both supplied by the occluded MCA; thereafter, the binding sites decreased progressively in those ischemic foci. On the contrary, there was no alteration on day 1, but 3 days after ischemic insult, a significant decrease of [3H]PDBu binding sites was first detected in the ipsilateral thalamus and the substantia nigra, which both areas had not been directly affected by the original ischemic insult. This postischemic delayed phenomenon observed in the thalamus and the substantia nigra developed concurrently with 45Ca accumulation, which was detected there in our previous study. These results suggest that alteration of second messenger (PKC) pathways may be involved not only in the ischemic foci, but also in neuronal degeneration of the exo-focal remote areas in relation to the disruption of intracellular calcium homeostasis which plays a key role in the pathogenesis of postischemic neuronal damage and that marked alteration of intracellular signal transduction may precede the neuronal damage in the exo-focal postischemic brain areas.

Animals↗

Changes of [3H]cyclic adenosine monophosphate binding in the gerbil brain following transient cerebral ischemia: an autoradiographic study and investigation of the effects of vinconate and pentobarbital.

We studied the alterations in binding of cyclic AMP as an indicator of particulate cyclic AMP-dependent protein kinase binding activity following transient cerebral ischemia in Mongolian gerbils and examined the effects of vinconate and pentobarbital against alterations in the binding. Animals were allowed to survive for 5 h and 7 days after 10 min of cerebral ischemia induced by bilateral occlusion of common carotid arteries. [3H]Cyclic AMP binding was significantly reduced in the hippocampus 5 h after ischemia, whereas the striatum showed no significant change in the binding. Seven days after ischemia, a severe reduction of [3H]cyclic AMP binding was noted in the dorsolateral striatum, hippocampal CA1 and CA3 sectors, and dentate gyrus. Intraperitoneal administration of vinconate (100 or 300 mg/kg) showed a significant elevation of [3H]cyclic AMP binding in the striatum, stratum pyramidale of hippocampal CA1 and CA3 sectors, and dentate gyrus 5 h after ischemia. By contrast, the intraperitoneal administration of pentobarbital (40 mg/kg) showed no significant alteration of [3H]cyclic AMP binding in most of these regions. However, vinconate and pentobarbital prevented a significant reduction of [3H]cyclic AMP binding in the dorsolateral striatum and stratum pyramidale of hippocampal CA3 sector 7 days after ischemia, although both drugs failed to prevent damage to the hippocampal CA1 sector. These results suggest that alteration in cyclic AMP binding may not be a major factor in causing ischemic neuronal damage.

Animals↗

6-[18F]fluorodopa metabolism in patients with hemiparkinsonism studied by positron emission tomography.

A group of 10 healthy control subjects and 10 patients with hemiparkinsonism (HD) were studied by positron emission tomography (PET) using 6-[18F]fluorodopa (FDOPA). FDOPA metabolism in the caudate nucleus and the putamen was separately estimated by measuring target-to-background ratios (TBRs) using composite images added between 30 and 60 min after FDOPA injection and by TBR-versus-time slopes during PET study. TBRs in the caudate nucleus and the putamen were 1.81 +/- 0.23 (mean +/- SD) and 1.92 +/- 0.28 in the 10 controls, respectively. In HD patients, on the dominantly affected hemisphere related to main clinical symptoms, TBRs were significantly decreased in the caudate nucleus (P < 0.01) and the putamen (P < 0.05) compared with those in the corresponding areas on the contralateral hemisphere, though those TBRs on both hemispheres were significantly decreased compared with the TBRs of normal subjects (P < 0.01). TBRs and TBR slopes in both the caudate nucleus and the putamen were correlated with disease severity according to Hoehn and Yahr. On the dominantly affected hemisphere, TBR and TBR slopes in the putamen were well correlated with individual clinical measures for bradykinesia and rigidity, and those in the caudate nucleus were also correlated with the severity of tremor. Our data suggest that in HD patients, PET study using FDOPA may provide unique and efficient information on the dysfunction of the dominantly affected caudate nucleus and the putamen which are correlated with diseased severity and individual clinical symptoms.

Adult↗

Protective effect of bifemelane hydrochloride on ischemic hippocampal CA1 neuronal damage in the gerbil: relation to induction of HSP70.

A protective effect of bifemelane hydrochloride (BF) on hippocampal CA1 neuronal death in gerbils was investigated following transient forebrain ischemia in relation to the induction of 70-kd heat shock protein (HSP70) and its mRNA. Histological examination showed that the neuronal density of the hippocampal CA1 sector treated with 10 and 30 mg/kg of BF (i.p.) was higher than that of the vehicle (p < 0.05 and p < 0.01, respectively) at 7 days after ischemia. Immunohistochemistry against HSP70 protein and in situ hybridization for the mRNA revealed that the inductions of immunoreactive HSP70 and the mRNA were remarkably reduced and limited in the brain hippocampi treated with BF (30 mg/kg) as compared with vehicle-treated animals. These data indicate that BF possesses a protective effect against ischemic injury to the vulnerable CA1 neurons. The possible mechanisms of the protection are discussed.

Animals↗

Postischemic changes in the binding of excitatory and inhibitory neurotransmitters in the gerbil brain.

We performed receptor autoradiography to determine sequential changes in the binding of N-methyl-D-aspartate (NMDA) and gamma-aminobutyric acidA (GABAA) 1 h to 1 month after 10 min of transient cerebral ischemia in the gerbil. [3H]MK-801 and [3H]muscimol were used to label NMDA and GABAA receptors, respectively. [3H]MK-801 binding showed no significant changes in the striatum and hippocampus at an early stage (1-24 h) after ischemia. Thereafter, [3H]MK-801 binding exhibited a significant reduction in the dorsolateral striatum, most of hippocampal CA1 sector and dentate gyrus 48 h or 7 days of recirculation. However, [3H]MK-801 binding progressively depressed in the hippocampal CA1 sector 1 month after ischemia, whereas other regions showed no significant alteration in the binding. By contrast, [3H]muscimol binding was unchanged in all brain areas throughout the recirculation period. A histological study also demonstrated that transient ischemia caused severe neuronal damage in the striatum and hippocampus. These results demonstrate that NMDA and GABAA receptors are relatively resistant to severe degenerative processes. Furthermore, our finding suggests that transient ischemia may induce long-term changes in the properties of survival neurons or interneurons especially in the hippocampal CA1 sector.

Animals↗

Effect of vinconate against regional age-related changes in the gerbil brain.

We investigated age-related changes in the binding sites of muscarinic acetylcholine, forskolin, adenosine 3',5'-cyclic monophosphate (cAMP), and of a voltage-dependent L-type calcium channel blocker in the gerbil brain using receptor autoradiography. [3H]Quinuclidinyl benzilate (QNB), [3H]forskolin, [3H]cAMP, and [3H]PN200-110 were used to label muscarinic receptors, adenylate cyclase, cAMP-dependent protein kinase, and L-type calcium channels, respectively. In middle-aged animals (16-month-old gerbils), [3H]QNB, [3H]PN200-110, [3H]forskolin, and [3H]cAMP binding sites were elevated in the hippocampal region compared with that of young gerbils (4 weeks old). Further, a significant elevation in [3H]forskolin binding was seen in the nucleus accumbens. In contrast, [3H]QNB, [3H]PN200-110, and [3H]forskolin binding sites were reduced in the cerebellum, neocortex and thalamus, and hypothalamus in middle-aged animals, respectively. [3H]cAMP binding was not altered in other regions except for an elevation in the hippocampus. Thus, the age-related alterations in receptor binding may proceed by different mechanisms in various brain regions. Chronic vinconate treatment partly modulated the age-related alterations in [3H]QNB, [3H]forskolin, and [3H]cAMP binding in the hippocampus, but not that of [3H]PN200-110. Vinconate also regulated the age-related changes in [3H]forskolin binding in the nucleus accumbens. These results indicate that the age-related alterations in the binding sites of muscarinic acetylcholine, forskolin, cAMP, and L-type calcium channel blocker occur in particular in the hippocampus. Further, they suggest that a novel vinca alkaloid derivative, vinconate, can partly modulate age-related changes in these binding sites.

Acetylcholine↗

Detection of tumor necrosis factor-alpha-positive cells in cerebrospinal fluid of patients with HTLV-I-associated myelopathy.

Tumor necrosis factor (TNF)-alpha-positive cells constituted 1.6-18% and 8.2-23.5% of the total number of cerebrospinal fluid cells from six of 12 patients with HTLV-I-associated myelopathy and in all samples obtained from inflammatory cases, respectively. However, in non-inflammatory cases no TNF-alpha-positive cells were detected. These results suggest that some of the infiltrating CSF cells produce TNF-alpha, which plays a role in host immune defenses against causative agents including HTLV-I and in lesion formation within the central nervous system in inflammatory diseases.

Adult↗

Time-dependent expression of Na and Ca channels in PC12 cells by nerve growth factor and cAMP.

Changes in voltage-dependent Na+ (INa) and Ca2+ currents (ICa) were investigated in PC12 cells cultured without or with either nerve growth factor (NGF) or 8-Br-cAMP for 10 days. Current recordings were made in the whole-cell mode by using the conventional patch-clamp technique under voltage-clamp conditions. Membrane capacitance, an indicator of the total cell surface area, was increased 3- and 1.5-fold by 10-day treatment with NGF and 8-Br-cAMP, respectively. At the same time, NGF increased the current density of both INa and ICa approximately 25 and 2.5 times greater than in their respective controls. 8-Br-cAMP also increased both current densities; the effect on the INa was one-third less than that of NGF, while the effect on the ICa was similar to that of NGF. It was concluded that NGF has strong and moderate effects, respectively, on the expression of voltage-dependent Na+ and Ca2+ channels. 8-Br-cAMP mimicked the effect of NGF especially in Ca2+ channel expression.

8-Bromo Cyclic Adenosine Monophosphate↗

Disturbance of a mitochondrial DNA expression in gerbil hippocampus after transient forebrain ischemia.

Hippocampal CA1 neurons are the most vulnerable to transient cerebral ischemia. However, the mechanism has not been fully understood. The level of mRNA for cytochrome c oxidase subunit I (COX-I), which is encoded by mitochondrial DNA (mtDNA), progressively decreased in the hippocampal CA1 neurons of gerbils from 1 to 3 h of the reperfusion after 3.5 min of transient forebrain ischemia, and completely disappeared at 7 days. The activity of cytochrome c oxidase (COX) protein also showed the early decrease in the CA1 cells, and was followed by the reduction of the level of COX-I DNA after 2 days. However, the activity of succinic dehydrogenase (SDH), a mitochondrial enzyme that is encoded by nuclear DNA, maintained normal activity until 1 day in the CA1 cells, and significantly decreased at 7 days. These results suggest that disturbance of mitochondrial DNA expression occurred in the CA1 neurons at the early stage of reperfusion, and was aggravated in the course of time. The disturbance could cause progressive failure of energy production of the cells that eventually results in the neuronal cell death.

Animals↗

Naloxone receptor binding in gerbil striatum and hippocampus following transient cerebral ischemia.

Receptor autoradiographic and histological techniques were used to investigate sequential alteration of naloxone receptors in the gerbil brain 1 h-7 days after transient cerebral ischemia. Transient ischemia was induced for 10 min. [3H]Naloxone binding showed a transient elevation in the striatum 1 h after ischemia, whereas the hippocampus revealed no significant alteration in the binding. Thereafter, no conspicuous alteration in [3H]naloxone binding was seen in the striatum and hippocampus up to 24 h after ischemia. However, a significant elevation in [3H]naloxone binding was found in the hippocampal region 48 h after ischemia. In contrast, the striatum showed no significant alteration in [3H]naloxone binding. Seven days after ischemia, a severe reduction in [3H]naloxone binding was seen not only in the dorsolateral striatum and hippocampal CA3 pyramidal cell layer, where irreversible neuronal damage was found, but also in the histopathological intact dentate gyrus. However, the hippocampal CA1 sector which was most vulnerable to ischemia, revealed no conspicuous alteration in [3H]naloxone binding. These results demonstrate that alteration of naloxone receptors precedes ischemic neuronal damage to the striatum and hippocampus. They also suggest that the damage between striatum and hippocampus may be produced with different processes.

Animals↗

Selective changes of neurotransmitter receptors in middle-aged gerbil brain.

Age-related alterations in major neurotransmitter receptors and voltage dependent calcium channels were analyzed by receptor autoradiography in the gerbil brain. [3H]Quinuclidinyl benzilate (QNB), [3H]cyclohexyladenosine (CHA), [3H]muscimol, [3H]MK-801, [3H]SCH 23390, [3H]naloxone, and [3H]PN200-110 were used to label muscarinic acetylcholine receptors, adenosine A1 receptors, gamma-aminobutyric acidA (GABAA) receptors, N-methyl-D-aspartate (NMDA) receptors, dopamine D1 receptors, opioid receptors, and voltage dependent calcium channels, respectively. In middle-aged gerbils (16 months old), the hippocampus exhibited a significant elevation in [3H]QNB, [3H]MK-801, [3H]SCH 23390, [3H]naloxone, and [3H]PN200-110 binding, whereas [3H]CHA and [3H]muscimol binding showed a significant reduction in this area, compared with that of young animals (1 month). On the other hand, the cerebellum showed a significant alteration in [3H]QNB, [3H]CHA, and [3H]naloxone binding and the striatum also exhibited a significant alteration in [3H]SCH 23390 and [3H]CHA binding in middle-aged gerbils. The neocortex showed a significant elevation only in [3H]CHA binding in middle-aged animals. The nucleus accumbens and thalamus also showed a significant alteration only in [3H]muscimol binding. However, the hypothalamus and substantia nigra exhibited no significant alteration in these bindings in middle-aged gerbils. These results demonstrate the age-related alterations of various neurotransmitter receptors and voltage dependent calcium channels in most brain regions. Furthermore, they suggest that the hippocampus is most susceptible to aging processes and is altered at an early stage of senescence.

Adenosine↗