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Kunihiro Musashi

Publications and source records attributed to Kunihiro Musashi.

4 recordsLinked to original sources

Polypoidal choroidal vasculopathy with choroidal vascular hyperpermeability.

PURPOSE: To describe the incidence and clinical characteristics of polypoidal choroidal vasculopathy (PCV) associated with choroidal vascular hyperpermeability. DESIGN: Retrospective observational case series. METHODS: We reviewed the medical records of 122 consecutive eyes with PCV and 106 consecutive eyes with exudative age-related macular degeneration (AMD). Fluorescein angiography and indocyanine green (ICG) angiography were performed using a confocal scanning laser system. In the midphase of ICG angiography, we evaluated choroidal vascular hyperpermeability, which is recognized as one of the characteristic findings in central serous chorioretinopathy (CSC). Choroidal vascular hyperpermeability appeared as multifocal patchy areas of hyperfluorescence with blurred margins within the choroid that increased in intensity with time after injection of the dye. RESULTS: Of 122 eyes with PCV, 12 (9.8%) eyes of 10 patients exhibited multifocal choroidal hyperfluorescence in the midphase of ICG angiography, whereas two (1.9%) of 106 eyes with exudative AMD showed a similar appearance (P = .013). Of the 12 eyes in 10 patients with PCV that demonstrated multifocal choroidal hyperfluorescence, we also noted that the early phase of ICG angiography showed choroidal filling delay in seven eyes (58%) and venous dilation in 12 eyes (100%). Four of these 12 eyes (33%) had a medical history of CSC, and nine (90%) of the 10 patients revealed multifocal choroidal hyperfluorescence bilaterally. CONCLUSIONS: Multifocal choroidal hyperfluorescence seen by ICG angiography occurs more frequently in eyes with PCV than in those with AMD. Choroidal vascular hyperpermeability, reportedly a characteristic finding in CSC, might be one of the risk factors of PCV.

Aged↗

Intravitreal injection of corticosteroid attenuates leukostasis and vascular leakage in experimental diabetic retina.

PURPOSE: Recently, intravitreal injection of corticosteroids has been in wide use as a treatment for diabetic macular edema, and the outcomes have been favorable. However, the exact mechanism remains unclear. The hypothesis for the current study was that intravitreal corticosteroids may improve diabetic retinal edema by amelioration of blood-retinal barrier (BRB) breakdown, by inhibiting leukocyte stasis (leukostasis). METHODS: Diabetes was induced in 6-week-old male Long-Evans rats by intraperitoneal injection of streptozotocin (75 mg/kg). Three weeks after induction of diabetes, intravitreal injection of dexamethasone (40 microg/10 microL) was performed. At 2 days after intravitreal injection, accumulated leukocytes were counted in vivo by acridine orange leukocyte fluorography, and BRB breakdown was evaluated by measurement of retinal vascular permeability. The mRNA expression and protein levels of intercellular adhesion molecule (ICAM)-1 in the retina were also studied. RESULTS: The number of leukocytes accumulated in the retina, once increased in the diabetic group, was decreased by 31.6% (P = 0.0001) after dexamethasone injection. The level of BRB breakdown, also elevated in the diabetic group, was suppressed by 61.1% (P = 0.0046) after dexamethasone injection. The level of ICAM-1 mRNA expression and its protein, upregulated in the diabetic group, were downregulated by dexamethasone treatment by 70.0% (P < 0.0001) and 56.4% (P = 0.0003). CONCLUSIONS: Intravitreal injection of corticosteroids improves diabetic retinal edema through inhibiting leukocyte recruitment in the diabetic retina.

Acridine Orange↗

Thrombin inhibitor reduces leukocyte-endothelial cell interactions and vascular leakage after scatter laser photocoagulation.

PURPOSE: Macular edema is one of the most serious adverse effects after retinal scatter laser photocoagulation. It has been suggested that the inflammatory reaction after photocoagulation may be involved in the pathogenesis of macular edema. This study was designed to evaluate quantitatively the inhibitory effects of argatroban, a direct thrombin inhibitor, on leukocyte-endothelial cell interactions and vascular permeability after scatter laser photocoagulation. METHODS: Argon laser photocoagulation was performed in one half of the retina in pigmented male rats (n = 114). Argatroban was administered just before scatter laser photocoagulation. In the other half of the retina, AO leukocyte fluorography was used to evaluate in vivo leukocyte rolling along the retinal vein and accumulation in the retinal capillary bed. The expressions of P-selectin and intercellular adhesion molecule (ICAM)-1 were evaluated by reverse transcription-polymerase chain reaction. Retinal vessel permeability was quantified by using fluorescein isothiocyanate (FITC)-conjugated dextran. RESULTS: Scatter laser photocoagulation caused significant inflammatory leukocyte-endothelial cell interactions in the nonphotocoagulated half of the retina. Treatment with argatroban suppressed leukocyte-endothelial cell interactions. The maximum number of rolling and accumulating leukocytes was reduced by 46.6% (P < 0.01) and 51.4% (P < 0.01), respectively. The expression of P-selectin and ICAM-1 mRNA was suppressed significantly in the argatroban-treated retinas (P < 0.05). Retinal vascular permeability was also suppressed significantly (P < 0.05). CONCLUSIONS: Argatroban suppressed leukocyte-endothelial cell interactions and blood-retinal barrier breakdown after scatter laser photocoagulation, suggesting that argatroban prevents postlaser macular edema.

Animals↗

In vivo three-dimensional evaluation of leukocyte behavior in retinal microcirculation of mice.

PURPOSE: To evaluate new physiologic and three-dimensional methods for monitoring leukocyte behavior in mouse retina. METHODS: Endotoxin-induced uveitis (EIU) was produced in mice by footpad injection of lipopolysaccharide (LPS). Leukocytes were labeled with acridine orange (AO). Leukocyte rolling in the retinal microcirculation was evaluated in vivo with AO digital fluorography. The number of migrated leukocytes was counted in flatmounted retina. The behavior of leukocyte migration was observed three-dimensionally at the time of peak migration. After leukocytes were labeled with AO, the mice were perfused with rhodamine-labeled concanavalin A lectin to stain the vascular endothelium. Leukocyte migration into the retina was then monitored three-dimensionally with confocal microscopy, and the velocity of the migration was measured. RESULTS: Both leukocyte rolling and migration peaked at 48 hours after LPS injection. Leukocytes were seen to extravasate from the deeper capillary layers and to migrate toward the outer layer of the retina. The traveling velocity of extravasated leukocytes in retinal tissue was 2.0 +/- 0.1 microm/h. CONCLUSIONS: New methods have been demonstrated for the three-dimensional and quantitative evaluation of leukocyte behavior in mouse retina.

Acridine Orange↗