Biomedical subjects
Satoshi Fujikawa
Publications and source records attributed to Satoshi Fujikawa.
Antiagalactosyl IgG antibodies in juvenile idiopathic arthritis, juvenile onset Sjögren's syndrome, and healthy children.
OBJECTIVE: To determine the normal range of antiagalactosyl IgG antibodies in healthy children, and to investigate the utility of determination of antiagalactosyl IgG antibodies in patients with juvenile idiopathic arthritis (JIA) and juvenile onset Sjögren's syndrome (SS). METHODS: Serum concentrations of antiagalactosyl IgG antibodies were measured in 225 healthy children, 68 patients with JIA (systemic arthritis in 21, polyarthritis in 29, oligoarthritis in 18), and 15 patients with juvenile onset SS, using a lectin-enzyme immunoassay employing prepared human agalactosyl IgG as antigen. A comparison was made between the prevalence and utility of antiagalactosyl IgG antibodies in patients and those of conventional rheumatoid factors (RF) determined by laser nephelometry. RESULTS: The average serum concentration of antiagalactosyl IgG antibodies for healthy controls was 2.41 +/- 0.93 arbitrary units (AU)/ml, and the cutoff value of the normal range was set at 4.3 AU/ml (mean + 2 SD). As a result, antiagalactosyl IgG antibodies were positive in 25 (37%) of 68 patients with JIA, and 14 (93%) of 15 patients with juvenile onset SS, in whom values were much higher than the frequencies of RF positivity. The serum concentrations of antiagalactosyl IgG antibodies in patients were closely correlated with those of RF. Thirteen patients with JIA and 6 patients with juvenile onset SS were positive for antiagalactosyl IgG antibodies despite being negative for RF. With regard to prognosis during followup periods of at least 5 years, JIA patients positive for antiagalactosyl IgG antibodies, even if negative for RF, were resistant to treatment. However, positivity for antiagalactosyl IgG antibodies had no relation to joint destruction. CONCLUSION: Our data suggest that antiagalactosyl IgG antibodies, compared with RF, show higher sensitivity to detect immunological disorders in JIA and juvenile onset SS.
Sendai virus vector-mediated gene transfer of glial cell line-derived neurotrophic factor prevents delayed neuronal death after transient global ischemia in gerbils.
We have developed a cytoplasmic replicating virus vector of Sendai virus (SeV) that infects and replicates in most mammalian cells, including neurons, and directs high-level gene expression. To investigate the protective effect of SeV vector-mediated gene transfer of glial cell line-derived neurotrophic factor (GDNF) on the delayed neuronal death caused by transient global ischemia in gerbils, SeV vectors carrying either GDNF (SeV/GDNF) or enhanced green fluorescent protein gene (SeV/GFP) were stereotaxically microinjected into the lateral ventricle. Four days after injection, occlusion of the bilateral common carotid arteries for 5 min produced transient global forebrain ischemia. Treatment with SeV/GDNF significantly decreased the delayed neuronal death of the hippocampal CA1 pyramidal neurons observed 6 days after the operation. TUNEL staining demonstrated that SeV/GDNF treatment markedly reduced the number of apoptotic cells in the hippocampal CA1 neurons, indicating that SeV/GDNF treatment prevented apoptosis. Furthermore, delayed neuronal death on the contralateral side of the hippocampal CA1 was also prevented to a similar extent as that on the ipsilateral side. These results suggest that SeV/GDNF prevents the delayed neuronal death induced by ischemia and is potentially useful for gene therapy for stroke.
Hyperzincemia with systemic inflammation: a heritable disorder of calprotectin metabolism with rheumatic manifestations?
A boy had infantile-onset systemic inflammation, growth failure, hepatosplenomegaly, anemia, leukocytopenia, progressive muscular dystrophy, and hypercalprotectinemia, resulting in marked hyperzincemia. His mother had a history of chronic arthritis since childhood and also showed hypercalprotectinemia/hyperzincemia. We postulate an inherent defect in calprotectin metabolism.