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T Juji

Publications and source records attributed to T Juji.

At least 127 records · Page 7Linked to original sources

Bradykinin generation in RC-MAP during storage at 4 degrees C and leukocyte removal filtration.

We investigated contact system activation in red cell concentrate in mannitol-adenine-phosphate (MAP) solution (RC-MAP) during storage and leukocyte removal filtration. The contact system activation was assessed in terms of bradykinin (BK) generation. The BK level in the RC-MAP transiently but significantly (p < 0.05) increased at 7 to 14 days of storage. Moreover, the BK level in 21-day-stored RC-MAP was approximately 10 times higher than that in other blood components. The BK level in mannitol-containing MAP solutions, but not that in mannitol-free MAP solution, saline or whole blood, increased during storage. The plasma angiotensin-converting enzyme (ACE) activity decreased significantly only in mannitol-containing MAP solutions. These findings suggest that mannitol plays an essential role in the increase in BK level in RC-MAP. Furthermore, the BK level in RC-MAP increased 10 minutes after the start of filtration through a negatively charged filter, either a BPF-4 or an RN-40, and reached a maximum of 6,000 pg/ml. Hypotensive reactions are rare in RC-MAP transfusion in comparison to their incidence in platelet concentrate (PC) transfusion in spite of the higher BK level in RC-MAP than in PC. Therefore, BK generation in various blood components is not likely to be the main cause of hypotensive reactions. However, the level of BK in RC-MAP is sufficiently high to cause site pain. Further investigation on the clinical significance of a high BK level in blood components is necessary.

Adenine↗

Characterization of T-cell clones derived from peripheral blood lymphocytes of a patient with transfusion-associated graft-versus-host disease: Fas-mediated killing by CD4+ and CD8+ cytotoxic T-cell clones and tumor necrosis factor beta production by CD4+ T-cell clones.

Transfusion-associated graft-versus-host disease (TA-GVHD) is one of the most serious adverse effects of blood transfusion. It is generally thought to be caused by the infused lymphocytes. Donor-derived cytotoxic T lymphocytes (CTLs) directed against the recipient's HLAs, which have escaped the recipient's immune system and are proliferating, are considered to attack recipient organs and tissues. Despite the seriousness of the disease, the precise mechanism of its development remains unclear and no definitive treatment has been developed. With the aim of developing an effective treatment, we established and characterized T-cell clones from peripheral blood lymphocytes (PBLs) of a TA-GVHD patient. Three types of clones were established. Type I clones were CD8+ and specifically lyse cells that express HLA B52. Type II clones were CD4+, specifically lysed cells that express HLA DR15, and proliferated in response to stimulation with cells that express DR15. Type III clones were also CD4+, showed no cytotoxic activity toward any HLA-expressing cells, and proliferated in response to stimulation with cells that express DR15. Furthermore, we found that the Fas/Fas-ligand (Fas-L) system is involved in the cytotoxicity of the type I and II clones and that the type III clones produce and secrete a large amount of tumor necrosis factor beta (TNFbeta) after antigen stimulation. Based on our results, these three types of clones can be classified into two categories: those that have the ability to induce GVHD directly by cytolysis and that show no cytotoxic activity and those that have the ability to cause GVHD indirectly through secretion of cytotoxic lymphokines.

Aged↗

Large-scale comparative mapping of the MHC class I region of predominant haplotypes in Japanese.

In order to further our understanding of major histocompatibility complex (MHC) class I gene organization, we began a comparative analysis of the large scale organization of the class I region in diverse haplotypes. For these studies, the MHC in healthy Japanese donors who have the predominant MHC haplotypes and/or HLA-A or -B alleles was examined by pulsed field gel electrophoresis and Southern analysis using probes spanning the class I region. Hybridization with probes from the HLA-A to HLA-G region revealed that individuals expressing HLA-A30, -A31, or -A33 have an approximately 70 kilobase (kb) insertion near the HLA-A gene as compared with haplotypes containing the HLA-A11 or -A26 allele. Conversely, HLA-A24-containing haplotypes appear to have an approximately 50 kb deletion from the same region. Further, it appears that chromosomes carrying closely related alleles are similar to each other in this region, consistent with their presumed evolutionary relationship. While little is known about the gene content between the HLA-A and HLA-G region, it will be interesting to examine the prospect that functional genes do in fact reside within the inserted or deleted portions, thereby raising the possibility that distinct functional differences are conferred by different haplotypes. Overall, the results reported here should contribute to furthering our understanding of the association between diseases and HLA as well as provide new insights into the evolution of the MHC.

Alleles↗

Sequence-based association analysis of HLA class I and II alleles in Japanese supports conservation of common haplotypes.

Alleles of HLA-A, B, C, DRB1, DQB1, and DPB1 loci were fully determined in 117 healthy Japanese. A*2402, A*3303, A*1101, A*0201, B*4403, B*5201, Cw*0102, Cw*1403, Cw*0304, Cw*0702, Cw*0801, and Cw*1202 showed frequencies of over 10%. Multi-locus haplotype frequencies were estimated by the maximum likelihood method. Strength of association between C and B loci was comparable with that between DRB1 and DQB1 loci. Alleles unidentified by a serological method and having very similar nucleotide sequences (A2: A*0201, A*0206, A*0207, B61: B*4002, B*4006) were carried by different haplotypes. Several frequent five-locus haplotypes were identified including A*3303-Cw*1403-B*4403-DRB1(*)1302-DQB1(*)0604, and A*2402-Cw*1202-B*5201-DRB1(*)1502-DQB1(*)0601. These sequence-based haplotypes corresponded to serology-based common haplotypes which have already been described in Japanese. These findings indicate that common HLA haplotypes consist of particular sets of HLA alleles and that these haplotypes have been conserved through recent human evolution.

Alleles↗

Proliferative effect of postapheresis platelet donor plasma on a megakaryoblastic leukemia cell line.

Platelet donors sometimes show an increased platelet count following apheresis. We analyzed the effect of plasma obtained from such donors, along with thrombopoietin (Tpo), for growth and differentiation-inducing activity on a megakaryoblastic leukemia cell line, Meg-J. Colony formation was stimulated by donor plasma for Meg-J cells in a dose-dependent manner, and the time course of the sampling peaked 1 day after apheresis. Neither the donor plasma nor Tpo induced morphological differentiation. Donor plasma from any sampling time decreased CD41 and CD42b expression by more than 10%, and more than a 10% decrease of CD41 was induced by Tpo. The measurement of plasma Tpo showed no statistically significant increase after platelet donation. Our data suggest that, following apheresis, donor plasma contains factor(s) that: (a) stimulate growth rather than induce differentiation of a megakaryoblastic cell line; (b) are present in increased levels after apheresis; and (c) are different from Tpo.

Blood Donors↗

Detection and quantitation of HBV DNA by semi-nested PCR in donated blood: comparison with HBV serological markers.

To detect and quantitate hepatitis B virus (HBV) DNA, semi-nested polymerase chain reaction (PCR) method was designed for amplifying the HBV core region DNA. Cloned HBV core region DNA was used as a quantitation control, and upon electrophoresis of the semi-nested PCR product, one, two, or three bands of amplified DNA were observed using a small (< 50 mol), moderate (around 200 mol), or large (> or = 1250 mol) quantity of the template DNA, respectively. Using this semi-nested PCR method, HBV DNA was quantitated in donated blood and tested for HBV serological markers. Most of the HBV surface antigen (HBsAg) high titer samples showed three bands on the electrophoresis, indicating a high level of HBV DNA, while most of the HBsAg low titer samples showed one band, indicating a low level of HBV DNA. HBV DNA was detected in 7 out of 36 HBsAg-undetectable and anti-HBc-positive samples (19.4%) but all 7 showed one band, indicating a low level of HBV DNA. In almost all of the HBV e antigen-positive samples the HBsAg titer was high, and three bands were observed indicating a high level of HBV DNA.

Blood Donors↗

Japanese population does not manifest significant association between low NK activity and HLA-B(C) locus homozygosity.

It was reported previously that natural killer (NK) activity is controlled by the HLA-B(C) region and that individuals homozygous for HLA-B(C) or homozygous for the NKB complementation groups, which are mapped to the HLA-B(C) region, have fewer circulating NK cells and lower NK activity than do individuals heterozygous for these alleles. Those studies had used subjects in the United States. In the present study, we investigated the NK activity, NK subpopulation, and HLA types of 65 healthy Japanese individuals in Japan, most of whom have a quite different HLA-B(C) type than did subjects in the earlier study. Among 13 individuals having low NK activity, only two were HLA-B(C) homozygous and the rest were heterozygous. No obvious relation between low NK activity and specific HLA-B(C) allele was found. Seven of the nine HLA-B(C) homozygotes had medium or high NK activity. No significant differences were detected in either the NK activity or in the NK subset frequencies (circulating NK cell number) between HLA-B(C) homozygous and heterozygous individuals. These results indicate that HLA-B(C) homozygosity does not always induce low NK activity and that other factors also may influence NK activities.

Adult↗

A new high-molecular-weight glycophorin C variant with a duplication of exon 2 in the glycophorin C gene.

Glycophorin C (GPC) and glycophorin D (GPD) are closely related sialoglycoproteins in the human red blood cell (RBC) membrane. Both are thought to be encoded by the GPC gene (GYPC). We report here the new GPC variant, MAT, with a high-molecular-weight form of GPC and GPD. The murine monoclonal antibody to GPC (CBC-96), which had specificity for the N-terminal region of GPC, gave a stronger reactivity with the MAT RBCs than did normal RBCs in direct agglutination tests. Immunoblotting of the MAT RBC membranes with anti-GPC antibodies showed the apparent molecular weight of GPC.MAT and GPD.MAT was 5000 greater than that of their normal counterparts. cDNA was synthesized from total RNA obtained from three unrelated, heterozygous MAT blood donors and analysed by the polymerase chain reaction with primers that spanned sequences encoded by GYPC. Two fragments were generated: one was 510 bp, the other was 453 bp and corresponded to the normal GPC. Sequencing of the mutant 510-bp fragment showed an insert of 57 nucleotides that corresponds to the entire sequence of exon 2 in GYPC. These results show that MAT is the result of a duplication of exon 2 in GYPC, which probably encodes the two high-molecular weight forms GPC.MAT and GPD.MAT. The MAT mutation is found with a frequency of 0.02% in the Japanese population.

Animals↗

Identification of HLA class II antigens as the targets of effector clones which may cause transfusion-associated graft-versus-host disease.

We established T cell clones, which were considered to be the possible cause of transfusion-associated graft-versus-host disease (TA-GVHD), from the peripheral blood lymphocytes (PBLs) of two patients. In both cases, several CD4+ cytotoxic T-cell (CTL) clones were established. In case I, the target antigen of the established CD4+ clones was a DRB1*0403-related antigen serologically typed as HLA DR4, which was one of the patient HLA antigens. In case II, the target of four out of five established CD4+ CTL was a DRB1*1302-related antigen. One CD4+ CTL clone showed cytotoxicity against cells carrying A*2402, B*4403, Cw*1403 and DPB1*0401. A monoclonal antibody (mAb) blocking study showed only anti-DP mAb inhibited the cytotoxicity of this clone. Thus, it might be considered that this clone recognizes HLA-DP with its binding peptides derived from either A*2402, B*4403, Cw*1403 or DRB1*1302. Our findings indicate that CD4+ CTLs may play important roles in the aetiology of TA-GVHD and that the antigens of patients recognized by donor-derived effector cells may not always recognize a single HLA antigen.

Aged↗

Activation of the contact system by filtration of platelet concentrates with a negatively charged white cell-removal filter and measurement of venous blood bradykinin level in patients who received filtered platelets.

BACKGROUND: Several recent reports have described hypotensive transfusion reactions in patients receiving platelet concentrates (PCs) filtered through white cell-reduction filters. It is well known that a negatively charged surface activates the contact system, consisting of factor XII, prekallikrein, and high-molecular-weight kininogen. STUDY DESIGN AND METHODS: To clarify the mechanisms of these hypotensive reactions, the possibility that white cell-reduction filtration activates the contact system was examined. Venous blood plasma bradykinin levels were also measured in patients receiving PC transfusions through filters. RESULTS: None of the measured values were changed by filtration through a positively charged filter. However, filtration through a negatively charged filter resulted in a decrease in the amounts of prekallikrein and an increase in the amount of bradykinin generated, which indicated the activation of the contact system. The bradykinin level was inversely related to the activity of angiotensin-converting enzyme (ACE) in the PCs and was elevated by addition of an ACE inhibitor. Although the venous blood plasma bradykinin level did not change in two patients with a normal ACE activity during PC transfusion through the negatively charged filter, two patients who had decreased ACE activity, showed a significant increase in bradykinin during the transfusion. CONCLUSION: These results suggest that the generation of a large amount of bradykinin by filtration of PCs through a negatively charged filter might cause hypotensive reactions in patients with decreased ACE activity. The clinical significance of bradykinin generation requires further study.

Aged↗

Identification of HLA-C alleles using PCR-single-strand-conformation polymorphism and direct sequencing.

Alleles encoding HLA-C antigens in Japanese were identified by polymerase chain reaction followed by single strand conformation polymorphism (PCR-SSCP) and nucleotide sequencing analyses. The results showed that at least sixteen different alleles code for eight serologically detectable antigen groups and undetectable blanks. Cw1 was mainly encoded by Cw*0102, whereas two split antigens of Cw3, Cw9 and Cw10, were encoded by Cw*0303 and Cw*0304, respectively. Cw4 and Cw6 were encoded by Cw*0401 and Cw*0602, respectively. Seven alleles, Cw*0801, Cw*0803, Cw*1202, Cw*1203, Cw*1402, Cw*1403 and Cw*1502, were found to encode serological HLA-C "blanks" in Japanese. Moreover, errors in the published nucleotide sequences of Cw*0501 and Cw*1201 were corrected. Twenty-one HLA-C alleles were distinguished from each other by means of group-specific PCR amplification followed by the SSCP method developed in the present study. The system using genomic DNAs can be used effectively for identification of new HLA-C alleles.

Alleles↗

Five HLA-B22 group alleles in Japanese.

HLA-B22-group alleles in Japanese were identified using PCR-single-strand conformation polymorphism (SSCP) and sequence analyses. We analyzed genomic DNAs obtained from Japanese individuals positive for HLA-B22 group antigens (HLA-B54, B55, B56) including two locally proposed splits (B55.2, and B22N). In the SSCP analysis of both exons 2 and 3, we discriminated five different B22-group alleles. Each allelic pattern corresponded to each serological split antigen. Direct sequencing analysis of exon 2 and exon 3 showed that alleles encoding B54, B55.1 and B56 antigens in Japanese are encoded by B*5401, B*5502 and B*5601, respectively, and those encoding B55.2 and B22N antigens are previously unidentified alleles, B*5504 and B*5603, respectively. Full-length cDNA sequencing showed that the B*5603 sequence is identical to those of B*5501, B*5502, B*5601, and B*5602 in exons 1 to 2 except for a synonymous substitution at nucleotide position 165 in exon 2. On the other hand, the sequence of exons 3 to 7 was identical to those of some B15 and B46 alleles, suggesting that B*5603 was generated by a recombination event between one of the B55 and B56 alleles and one of the B15 and B46 alleles in intron 2. As for B*5504, the entire exon 1 to 7 sequence is identical to that of B*5502 except that the 5'-half of the exon 3 sequence is identical to those of some B7, B27, B40 and B48 alleles, suggesting that an event such as gene conversion, segmental exchange, or double recombination occurred in this region.

Alleles↗

The HLA system in the population of Mongolia.

The frequencies of HLA-A, B, C and DRB1 alleles and haplotype frequencies for HLA-A, B, C and A, B, DR loci were studied in 201 healthy unrelated Khalkha-Mongolians. The most common class I antigens were A24 (25.8%), A2 (23.4%), B61 (12.6%), B51 (8.5%), Cw10 (14.2%), Cw9 (14.1%), Cw7 (13.3%), Cw1 (11.8%) and Cw6 (10.2%). A total of 35 DRB1 alleles were identified in this group of samples. The most frequent DRB1 allele was DRB1*0301 (11.1%), followed by DRB1*0701 (9.7%) and DRB1*1101 (8.5%). One novel DRB1 allele (14MV) and three rare types, DRB1*1111, DRB1*1504 and DRB1*1412, recently described in Jews, the Dai minority of China and Japanese, respectively, were identified in Mongolians. The phylogenetic tree constructed by UPG method put Mongolians in the Northeast Asian cluster. A comparison of three locus haplotype distributions with world populations, revealed that Mongolians share several characteristics in common with other Mongoloids as well as with Caucasoids and Amerindians. The most common A, B and DR haplotype in Mongolians, A33-B58-DR3, was shared with Thai, Thai Chinese and Singapore Chinese. These data support that unique genetic background of Mongolians played a major role in ethnic formation and differentiation of Mongoloid populations.

Alleles↗