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Yasuto Itoyama

Publications and source records attributed to Yasuto Itoyama.

At least 19 recordsLinked to original sources

Cell cycle protein expression in proliferating microglia and astrocytes following transient global cerebral ischemia in the rat.

Cerebral ischemia induces microglial and astroglial activation, which may play a crucial role in the development of ischemic neuronal damage. In this study, we examined the role of cell cycle proteins in glial proliferation in the hippocampus following 10min of global cerebral ischemia in the rat. Proliferating cells were identified with immunostaining for proliferating cell nuclear antigen (PCNA), and glial cells were visualized with immunostaining for microglial response factor-1 (microglia/macrophages) and glial fibrillary acidic protein (astrocytes). Expression of cyclin D1 and cyclin-dependent kinase-4 was also examined with double label immunohistochemistry. Proliferating cells in the CA1 region after ischemia consisted of microglia and much fewer astrocytes. Microglial activation and proliferation (7.6-fold increase in number after 7 days) were preceded by an increase in PCNA-positive microglia; 83% of microglia were PCNA-positive after 2 days. Astrocytes increased by 1.8-fold after 7 days, and only 6% of astrocytes became PCNA-positive by day 7. Cyclin D1 and cyclin-dependent kinase-4 immunoreactivity appeared in these glial cells in parallel with the expression of PCNA. The findings suggest that the accumulation of brain macrophages elicited by transient cerebral ischemia is caused predominantly by activation and proliferation of resident microglia through the upregulation of cell cycle proteins.

Analysis of Variance↗

Complementarity-determining region 3 spectratyping analysis of the TCR repertoire in multiple sclerosis.

Multiple sclerosis (MS) is considered to be an autoimmune disease mediated by T cells reactive with Ags in the CNS. Therefore, it has been postulated that neuroantigen-reactive T cells bearing particular types of TCRs are expanded clonally during the course of the disease. However, there is a controversy with regard to the TCR usage by T cells associated with the development of MS. By the use of complementarity-determining region 3 spectratyping analysis that is shown to be a useful tool for identification of pathogenic TCR in autoimmune disease models, we tried to demonstrate that spectratype was T cells bearing particular types of TCR are activated in MS patients. Consequently, it was found that Vbeta5.2 were often oligoclonally expanded in peripheral blood of MS patients, but not of healthy subjects. Sequence analysis of the complementarity-determining region 3 region of spectratype-derived TCR clones revealed that the predominant TCR clone was different from patient to patient, but that similar results were obtained in a patient examined at different time points. More importantly, examination of cerebrospinal fluid T cells and longitudinal studies of PBLs from selected patients revealed that Vbeta5.2 expansion was detectable in the majority of patients examined. These findings suggest that Vbeta5.2 spectratype expansion is associated with the development of MS and that TCR-based immunotherapy can be applicable to MS patients if the TCR activation pattern of each patient is determined at different stages of the disease.

Adolescent↗

Protection of dopaminergic neurons with a novel astrocyte modulating agent (R)-(-)-2-propyloctanoic acid (ONO-2506) in an MPTP-mouse model of Parkinson's disease.

We examined the neuroprotective effects of a novel astrocyte-modulating agent, (R)-(-)-2-propyloctanoic acid (ONO-2506), in a mouse model of Parkinson's disease. Male C57BL/6 mice received four intraperitoneal injections of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) (10 mg/kg) at 1-h intervals. Dopamine content in the striatum, measured with HPLC 3 days after MPTP injection, was reduced to 23% of control. But this dopamine depletion was dose-dependently prevented by repeated treatments with ONO-2506 (3, 10 and 30 mg/kg, i.p.) administered 1, 6, 24 and 48 h after MPTP injection (51% of control in 30 mg/kg group, p<0.01). ONO-2506 treatment (30 mg/kg) started after 6 h, followed by treatments at 24 and 48 h, also prevented the reduction of dopamine content (42% of control vs. 11% of control in the saline-treated group, p<0.01). We also performed immunohistochemistry for tyrosine hydroxylase (TH) and glial fibrillary acidic protein (GFAP). The MPTP injection resulted in a loss of TH-positive dopaminergic neurons (42% of control, p<0.01) in the substantia nigra after 7 days, but ONO-2506 treatment prevented this neuronal loss (70% of control, p<0.01). The MPTP injection led to reactive astrocytosis in the striatum after 7 days, but ONO-2506 induced earlier, moderate astrocytic activation after 3-7 days. These findings show that ONO-2506 protects dopaminergic neurons against MPTP neurotoxicity probably through facilitating astrocytic support for neuronal recovery from injury. Pharmacological modulation of astrocytes may offer a novel therapeutic strategy for Parkinson's disease.

3,4-Dihydroxyphenylacetic Acid↗

Mutant SOD1 linked to familial amyotrophic lateral sclerosis, but not wild-type SOD1, induces ER stress in COS7 cells and transgenic mice.

Mutations in a Cu, Zn-superoxide dismutase (SOD1) cause motor neuron death in human familial amyotrophic lateral sclerosis (FALS) and its mouse model, suggesting that mutant SOD1 has a toxic effect on motor neurons. However, the question of how the toxic function is gained has not been answered. Here, we report that the mutant SOD1s linked to FALS, but not wild-type SOD1, aggregated in association with the endoplasmic reticulum (ER) and induced ER stress in the cDNA-transfected COS7 cells. These cells showed an aberrant intracellular localization of mitochondria and microtubules, which might lead to a functional disturbance of the cells. Motor neurons of the spinal cord in transgenic mice with a FALS-linked mutant SOD1 also showed a marked increase of GRP78/BiP, an ER-resident chaperone, just before the onset of motor symptoms. These data suggest that ER stress is involved in the pathogenesis of FALS with an SOD1 mutation.

Animals↗

Intradermal doxorubicin reduces ganglionic reactivation of latent herpes simplex virus in mice after pretreatment with hypertonic saline.

Recurrent lesions from herpes simplex virus (HSV) occur after reactivation of latent HSV in neurons of sensory ganglion, axonal transport of reactivated virus, and HSV replication on the skin. A potential treatment strategy is to inject epithelial sites of frequent recurrences with anti-viral or cytotoxic agents that are taken up by nerve terminals and transported by axoplasmic flow to latently infected ganglionic neurons. Doxorubicin is transported by nerves and destroys the corresponding nerve cell bodies, but earlier attempts in HSV animal models required intraneural injection to eliminate HSV infection and this treatment destroyed the nerve and large portions of the ganglion. The present study used intradermal doxorubicin in latently infected mice that had been inoculated with HSV by the lip route and passively immunized at the time of inoculation. As found previously, doxorubicin injection in the lip 2 or more months after HSV inoculation did not eliminate HSV latency as evaluated by recovery of virus from trigeminal ganglionic explants. However, when hypertonic saline was injected in the same site 24 hr prior to doxorubicin, there was a 55% reduction of positive ganglionic explant cultures. Edema from the hypertonic saline may increase access of doxorubicin to nerve terminals. This technique with hypertonic saline, which has also been used to enhance virulence of HSV skin innoculation, may have general application of increasing axoplasmic transport of drugs or biologicals. Skin toxicity may preclude doxorubicin use for HSV recurrences in patients; however, the results of this study support the concept of anti-HSV treatment via retrograde axoplasmic transport.

Administration, Cutaneous↗

Survival and death-promoting events after transient spinal cord ischemia in rabbits: induction of Akt and caspase3 in motor neurons.

OBJECTIVE: The mechanism of spinal cord injury has been thought to be related to the vulnerability of spinal motor neuron cells to ischemia. However, the mechanisms of such vulnerability are not fully understood. We previously reported that spinal motor neurons might be lost as a result of programmed cell death and investigated a possible mechanism of neuronal death by means of immunohistochemical analysis for CPP32 (caspase3) and serine-threonine kinase (Akt). METHODS: We used a rabbit spinal cord ischemia model with use of a balloon catheter. The spinal cord was removed at 8 hours or 1, 2, or 7 days after 15 minutes of transient ischemia, and histologic changes were studied with hematoxylin and eosin staining. Western blot analysis for Akt and caspase3, temporal profiles of Akt and caspase3 immunoreactivity, and double-label fluorescence immunocytochemical studies were performed. RESULTS: The majority of motor neurons were preserved until 2 days but were selectively lost at 7 days of reperfusion. Western blot analysis revealed no immunoreactivity for Akt and caspase3 in the sham-operated spinal cords. However, such immunoreactivity became apparent at 8 hours after transient ischemia, decreased at 1 day, and returned to the baseline level at 2 days. A double-label fluorescence immunocytochemical study revealed that both Akt and caspase3 were positive at 8 hours of reperfusion in the same motor neurons, which eventually die. CONCLUSION: These results suggests that transient spinal cord ischemia activates both cell death and survival pathways after ischemia. The activation of Akt protein at the early stage of reperfusion might be one of the factors responsible for the delay in neuronal death after spinal cord ischemia.

Animals↗

Oxidative damage and reduction of redox factor-1 expression after transient spinal cord ischemia in rabbits.

OBJECTIVE: The mechanism of spinal cord injury has been thought to be related to the vulnerability of spinal motor neuron cells against ischemia. However, the mechanisms of such vulnerability are not fully understood. We previously reported that spinal motor neurons may be lost by programmed cell death and thus now investigate a possible mechanism of neuronal death with immunohistochemical analysis for 8-hydroxy-2'-deoxyguanosine (8-OHdG) and redox factor-1 (Ref-1). METHODS: We used a rabbit spinal cord ischemia model with a balloon catheter. The spinal cord was removed at 8 hours, 1, 2, or 7 days after 15 minutes of transient ischemia, and histologic changes were studied with hematoxylin-eosin staining. Western blot analysis for Ref-1, temporal profiles of 8-OHdG and Ref-1 immunoreactivity, and double-label fluorescence immunocytochemical studies were performed. RESULTS: Most motor neurons were preserved until 2 days but were selectively lost at 7 days of reperfusion. Western blot analysis of a sample from sham control spinal cord showed a characteristic 37-kDa band that was reduced after ischemia. Immunohistochemistry showed the nuclear expression of Ref-1 in motor neurons of control spinal cords, and immunoreactivity was decreased 1 day after ischemia. On the other hand, no nuclear expression was seen of 8-OHdG in motor neurons of control spinal cords, and immunoreactivity was increased 1 day after ischemia. Double-label fluorescence immunocytochemical study revealed that both 8-OHdG and Ref-1 were positive at 8 hours of reperfusion in the same motor neurons, which eventually die. CONCLUSION: These results suggest that Ref-1 decreased in motor neurons after transient spinal cord ischemia and that this reduction preceded oxidative DNA damage. The reduction of Ref-1 protein at the moderately late stage of reperfusion may be one of the factors responsible for the delay in neuronal death after spinal cord ischemia.

8-Hydroxy-2'-Deoxyguanosine↗

Effects of 10-T static magnetic field on human peripheral blood immune cells.

The exposure of peripheral blood mononuclear cells (PBMCs) was performed in a 10-T static magnetic field. Without lymphocyte stimulation, there were no significant differences in the viability of the exposed and unexposed CD4(+) T cells, CD8(+) T cells, B cells, and natural killer (NK) cells. The expression of Th1 type chemokine receptor, CXCR3, and Th2 type receptor, CCR3, was unaltered after magnetic-field exposure. No differences were observed in the naive T cells and memory T-cell subclasses in either CD4(+) or CD8(+) T cells. In contrast to the unstimulated condition, the magnetic-field exposure reduced the viability of phytohemagglutinin (PHA)-activated T cells in both the CD4(+) and CD8(+) subclasses. In particular, the number of PHA-treated naive CD8(+) T cells (CD45RA(+)CD4(-)CD8(+)) was markedly decreased after the magnetic-field exposure, while PHA-treated memory CD8(+) cells (CD45RA(-)CD4(-)CD8(+)) were resistant to the exposure. The number of PHA-treated naive CD4(+) T cells (CD45RA(+)CD4(+)CD8(-)) and memory cells (CD45RA(-)CD4(+)CD8(-)) was markedly decreased to a similar degree. Thus the susceptibility of lymphocytes to the magnetic-field exposure differed among activated T-cell subtypes. The magnetic-field exposure significantly increased the death of PHA-stimulated lymphocytes by apoptosis. These results suggest that a strong static magnetic field has acute effects on immune cells during cell division, while the field exposure has a minimal effect on immune cells in a nondividing phase.

Adult↗

[A case of hypokalemic periodic paralysis: utility of exercise test for the assessment of therapeutic efficacy].

We report a 14-year-old male with hypokalemic periodic paralysis. He noticed periodic paralysis at the age of 11. Any complication did not accompany the symptom. At the age of 12, hypokalemia was found during an episode of paralysis, and he was diagnosed as hypokalemic periodic paralysis. The frequency of paralytic attack increased around April 2000. Although long-acting oral potassium (32 mEq/day) was administered, it did not give favorable effect. Therapeutic spironolactone trial also failed. After the reconfirmation of the diagnosis of periodic paralysis by an exercise test, oral acetazolamide (750 mg/day) was started. In subsequent exercise test, the increment of the CMAP amplitude of abductor digiti minimi during exercise became smaller and the decrement of CMAP amplitude after exercise disappeared thereafter, which was assumed to be related with clinical improvement. The noninvasive exercise test is useful not only to diagnose periodic paralysis but also to evaluate therapeutic efficacy.

Acetazolamide↗

[MR spectroscopy findings of a case of intravascular malignant lymphoma: usefulness for differential diagnosis].

We report a 49-year-old previously healthy woman with acute onset of decrease in attention, dysarthria and ataxia, accompanied by drowsiness. On admission, there were cloudness of consciousness, hallucination and left hemiparesis. Cerebrospinal fluid study revealed a cell count of 1/mm3, and the cytology was class I with a slight increase in protein. MRI of the brain performed on admission showed multiple gadolinium-enhanced lesions with a T2 weighted high intensity area in the cerebral white matter. At first the patient was diagnosed as acute disseminated encephalomyelitis (ADEM), and treated with methylprednisolon pulse therapy. Soon after, she showed transient clinical improvement, but her condition soon worsened. MR spectroscopy revealed elevated choline peak, decreased NAA peak and lactate peak, which indicated a neoplastic lesion. The brain biopsy disclosed diffuse intravascular lymphoma (IVL). MRS was useful in the differential diagnosis of IVL from ADEM.

Brain↗

Expression of OX40 in muscles of polymyositis and granulomatous myopathy.

OX40 is selectively expressed on activated autoreactive memory T cells and these OX40+ lymphocytes may play a crucial role in autoimmune diseases. To determine whether OX40+ lymphocytes are involved in the pathomechanism of human inflammatory muscle diseases, we immunohistochemically examined the distribution of OX40+ cells in muscles from patients with polymyositis and granulomatous myopathy, and compared with that of cells bearing other activation markers, such as IL-2 receptor (IL-2R) and HLA-DR. In polymyositis, OX40+ mononuclear cells were found predominantly in the perivascular sites and to a lesser degree in the endomysium. Scanty IL-2R+ mononuclear cells were located only in the endomysium and HLA-DR was expressed on half of the mononuclear cells distributed diffusely in the perivascular sites and in the endomysium. Mononuclear cell infiltration in the perivascular sites was greater in the muscles in which OX40+ cells were present in the perivascular sites than in those without OX40+ cells in the perivascular sites (p<0.05). In granulomatous myopathy, OX40+ cells were detected in the centers of the granulomas. In contrast, IL-2R+ cells were present at the periphery of the granulomas and HLA-DR was detected on mononuclear cells throughout the granulomas. OX40+ mononuclear cells with specific distributions in muscles may be involved in the pathomechanism of polymyositis and granulomatous myopathy, and can be a candidate molecule of selective immunotherapy in these diseases.

Adult↗

Impaired chemosensitivity to hypoxia is a marker of multiple system atrophy.

Sudden death is common in patients with multiple system atrophy (MSA). In its early stages, the cerebellar presentation MSA-C can be indistinguishable from idiopathic late-onset cerebellar ataxia. We studied the hypoxic ventilatory response in MSA-C and idiopathic late-onset cerebellar ataxia patients. Six patients with idiopathic late-onset cerebellar ataxia that later evolved to MSA had impaired hypoxic ventilatory response when minimal autonomic failure was still present, whereas for patients with unimpaired hypoxic ventilatory response their diagnosis remained idiopathic late-onset cerebellar ataxia. The demonstration of impaired hypoxic ventilatory response appears to be a good marker enabling earlier diagnosis of MSA in patients presenting with idiopathic late-onset cerebellar ataxia.

Aged↗

Systemic increase of oxidative nucleic acid damage in Parkinson's disease and multiple system atrophy.

8-hydroxy-2'-deoxyguanosine (8-OHdG) or 8-hydroxyguanosine (8-OHG), a product of oxidized DNA or RNA, is a good marker of oxidative cellular damage. In this study, we measured the 8-OHdG/8-OHG levels in the serum and cerebrospinal fluid (CSF) of patients with Parkinson's disease (PD) and multiple system atrophy (MSA). Compared to age-matched controls, the mean levels of serum 8-OHdG/8-OHG were significantly higher in PD (P < 0.0001). Although no gender differences were observed in the controls, the mean values of serum 8-OHdG/8-OHG were significantly higher in female PD cases (P < 0.005) than in male patients. 8-OHdG/8-OHG levels in CSF were also increased significantly in patients with PD and MSA, however, their relative values were generally much lower than those in the serum. Together with previous studies showing increased peripheral 8-OHdG levels in Alzheimer's disease and amyotrophic lateral sclerosis, the data presented here suggest that systemic DNA/RNA oxidation is commonly observed in neurodegenerative diseases. Our results also imply that female patients with PD show higher levels of oxidative stress, which may explain the faster progression of this disease in females.

8-Hydroxy-2'-Deoxyguanosine↗

Pure optic-spinal form of multiple sclerosis in Japan.

We evaluated the clinical and laboratory features of the optic-spinal form of multiple sclerosis (OSMS) with no brain lesions on repeated MRI--termed pure OSMS. By reviewing the medical records of 118 Japanese clinically definite multiple sclerosis patients seen between 1988-1999, we found 10 patients (8.5%), nine of whom were women, with only relapsing optic neuritis (ON) and myelitis (MY) clinically and consistently normal brain MRI during follow-ups of >or=5 years. Three patients suffered severe ON and MY, but the other seven had mild disease (six were graded 1 in the Disability Status Scale). Despite frequent relapses, mild pure OSMS was characterized by younger onset and mild spinal symptoms as in 'benign' classical multiple sclerosis (CMS). MRI often revealed multiple cervico-thoracic cord lesions of variable lengths. Oligoclonal IgG bands (OB) were negative in all cases. HLA-DPB1*0501, whose association with OSMS has been reported, was positive only in six patients (including three patients with severe pure OSMS). Four patients with DRB1*1501-DQB1*0602, to which CMS is closely linked, had mild disease. Though pure OSMS was heterogeneous with regard to clinical severity and human leukocyte antigen (HLA) class II alleles, this form of multiple sclerosis was characterized by a definite female preponderance and negative OB that distinguished it from CMS.

Adult↗

Silent cerebral microbleeds on T2*-weighted MRI: correlation with stroke subtype, stroke recurrence, and leukoaraiosis.

BACKGROUND AND PURPOSE: Gradient-echo T2*-weighted MRI is uniquely sensitive to detect silent, old hemosiderin deposits, but the clinical significance of such "microbleeds" remains to be determined. Therefore, we investigated the incidence and the number of microbleeds among different stroke subtypes and the correlation with stroke recurrence and the severity of leukoaraiosis. METHODS: This study consisted of 213 patients (73.5+/-9.1 years old, 104 men and 109 women), who were classified according to stroke subtypes into atherothrombotic infarction (24 patients), cardioembolic infarction (23 patients), lacunar infarction (66 patients), intracerebral hemorrhage (35 patients), and control (65 patients) groups. Gradient-echo T2*-weighted MRI was performed with a 1.5 T system, and asymptomatic microbleeds were located and counted. RESULTS: The incidence and the number of microbleeds were significantly greater in patients with intracerebral hemorrhage (71.4% and 9.1+/-13.8, respectively) and lacunar infarction (62.1% and 7.4+/-16.1) compared with patients with cardioembolic infarction (30.4% and 2.5+/-5.6), atherothrombotic infarction (20.8% and 0.63+/-1.53), and controls (7.7% and 0.09+/-0.34). There was a correlation between the number of microbleeds and the severity of periventricular hyperintensity (r=0.626, P<0.0001). There was also a correlation between the number of microbleeds and the number of intracerebral hemorrhages (r=0.689, P<0.0001) or lacunar infarctions (r=0.514, P<0.0001). The locations of microbleeds were subcortical white matter (31.8%), thalamus (24.8%), basal ganglia (19.8%), brain stem (12.0%), and cerebellum (11.7%). CONCLUSIONS: The findings suggest that microbleeds on T2*-weighted MRI are an indicator of advanced small artery disease of the brain with an increased risk for bleeding. This result should be taken into consideration when treating patients with stroke, and further studies are required.

Aged↗