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H Inoko

Publications and source records attributed to H Inoko.

At least 73 records · Page 4Linked to original sources

[HLA and hepatitis C virus positive cardiomyopathy].

The relationship between HCV (hepatitis C virus) and the susceptibility of cardiomyopathy has been indicated, but the detailed mechanism for close association is still unknown. It is well known that the human leukocyte antigen (HLA) may regulate the development of chronic hepatitis in HCV positive patients. We have analyzed the distribution of HLA class II alleles in Japanese patients with HCV antibody positive dilated cardiomyopathy (DCM) and hypertrophic cardiomyopathy (HCM), and HLA-DPB1*0901 was significantly increased in HCV Ab positive DCM, and the HLA-DRB1*0901-DQB1*0303 haplotype was in HCV Ab positive HCM. These results suggested that molecular mechanism for the development of cardiomyopathy mediated by HCV is different between DCM and HCM.

Alleles↗

Localization of the pathogenic gene of Behçet's disease by microsatellite analysis of three different populations.

PURPOSE: Behçet's disease (BD) is known to be associated with HLA-B51 in many ethnic groups. However, the pathogenic gene responsible for BD is as yet unknown. To localize the critical region of the pathogenic gene, microsatellite markers distributed around the HLA-B gene were investigated. The BD patients studied were of three ethnic origins: Japanese, Greek, or Italian. METHODS: The total group consisted of 172 BD patients, of whom were 95 Japanese, 55 Greek, and 22 Italian. Eight polymorphic microsatellite markers distributed within 1100 kb of the HLA-B gene were analyzed using PCR and subsequent automated fragment detection by fluorescent-based technology. RESULTS: Among the eight markers, allele 348 of the MIB microsatellite was remarkably common in all three BD populations (Japanese, PC: = 0.000014; Greek, PC: = 0. 00047; Italian, PC: = 0.11). However, HLA-B51 was found to be the marker most strongly associated with BD in each population (Japanese, PC: = 0.000000000017; Greek, PC: = 0.00000032; Italian, PC: = 0. 0074). In genotypic differentiation between the patients and controls, only HLA-B51 was found to be significantly associated with BD in all three populations. Stratification analysis suggested that significant associations of BD with MICA and other microsatellites resulted from a linkage disequilibrium with HLA-B51. CONCLUSIONS: These results suggest that the pathogenic gene of BD is HLA-B51 itself and not other genes located in the vicinity of HLA-B.

Behcet Syndrome↗

Molecular dynamics of MHC genesis unraveled by sequence analysis of the 1,796,938-bp HLA class I region.

The intensely studied MHC has become the paradigm for understanding the architectural evolution of vertebrate multigene families. The 4-Mb human MHC (also known as the HLA complex) encodes genes critically involved in the immune response, graft rejection, and disease susceptibility. Here we report the continuous 1,796,938-bp genomic sequence of the HLA class I region, linking genes between MICB and HLA-F. A total of 127 genes or potentially coding sequences were recognized within the analyzed sequence, establishing a high gene density of one per every 14.1 kb. The identification of 758 microsatellite provides tools for high-resolution mapping of HLA class I-associated disease genes. Most importantly, we establish that the repeated duplication and subsequent diversification of a minimal building block, MIC-HCGIX-3.8-1-P5-HCGIV-HLA class I-HCGII, engendered the present-day MHC. That the currently nonessential HLA-F and MICE genes have acted as progenitors to today's immune-competent HLA-ABC and MICA/B genes provides experimental evidence for evolution by "birth and death," which has general relevance to our understanding of the evolutionary forces driving vertebrate multigene families.

Base Pairing↗

Alpha1,3-fucosyltransferase IX (Fuc-TIX) is very highly conserved between human and mouse; molecular cloning, characterization and tissue distribution of human Fuc-TIX.

The amino acid sequence of Fuc-TIX is very highly conserved between mouse and human. The number of non-synonymous nucleotide substitutions of the Fuc-TIX gene between human and mouse was strikingly low, and almost equivalent to that of the alpha-actin gene. This indicates that Fuc-TIX is under a strong selective pressure of preservation during evolution. The human Fuc-TIX (hFuc-TIX) showed a unique characteristics, i.e. hFuc-TIX was not activated by Mn2+ and Co2+, whereas hFuc-TIV and hFuc-TVI were activated by the cations. The hFuc-TIX transcripts were abundantly expressed in brain and stomach, and interestingly were detected in spleen and peripheral blood leukocytes.

Amino Acid Sequence↗

Association analysis between the MIC-A and HLA-B alleles in Japanese patients with Behçet's disease.

OBJECTIVE: Behçet's disease is known to be strongly associated with HLA-B51 in many different ethnic groups. Recently, by association analysis using refined microsatellite mapping, the critical region for Behçet's disease was identified as a 46-kb segment centromeric to the HLA-B gene. No expressed gene has been detected in this segment to date except the MIC-A (major histocompatibility complex class I chain-related gene A) and HLA-B genes. The present study was undertaken to analyze allelic distribution of the MIC-A gene among Japanese patients with Behçet's disease. METHODS: Ninety-five Japanese patients with Behçet's disease and 116 ethnically matched healthy controls were enrolled in this study. MIC-A genotyping was performed by direct sequencing of polymerase chain reaction products from exons 2, 3, and 4 of the MIC-A gene, using an automated DNA sequencer. RESULTS: The MIC-A009 allele was significantly more frequent in the patient group (69.5%) compared with the healthy controls (31.0%) (relative risk 5.06, corrected P = 0.00000024). In stratification analysis on the confounding effect of MIC-A009 on HLA-B*51 association and vice versa, Behçet's disease was distinctively associated only with HLA-B*51. Further, MIC-A009 was found to be strongly associated not only with HLA-B51, but also with HLA-B52, which was not increased in the patient group to any degree. CONCLUSION: These results imply that the real disease susceptibility gene involved in the development of Behçet's disease is the HLA-B*51 allele itself and that the significant increase of the MIC-A009 allele in the patient group results secondarily from a strong linkage disequilibrium with HLA-B*51.

Adult↗

Genomic organization around the centromeric end of the HLA class I region: large-scale sequence analysis.

We previously sequenced two regions around the centromeric end of HLA class I and the boundary between class I and class III. In this paper we analyze the two regions of about 385 kb and confirm, giving a new line of evidence, that the following two pairs of the genomic segments were duplicated in evolution: (i) a 43-kb genomic segment including the HLA-B gene showing the highest polymorphism among the classical HLA class I loci (class Ia) and a 40-kb segment including the HLA-C locus showing the lowest polymorphism and (ii) a 52-kb segment including the MIC (MHC class I chain related gene) B and a 35-kb segment including MICA. We also found that repetitive elements such as SINEs, LINEs, and LTRs occupy as much as 47% of nucleotides in this 385-kb region. This unusually high content of repetitive elements indicates that repeat-mediated rearrangements have frequently occurred in the evolutionary history of the HLA class Ia region. Analysis of LINE compositions within the two pairs of duplicated segments revealed that (i) LINEs in these regions had been dispersed prior to both the duplication of the HLA-B and -C loci and the duplication of the MICB and MICA loci, and (ii) the divergence of the HLA-B and -C loci occurred prior to the duplication of the MICA and MICB loci. To find novel genes responsible for HLA class I-associated or other diseases, we performed computer analysis applying GenScan and GRAIL to GenBank's dbEST. As a result, at least five as yet uncharacterized genes were newly mapped on the HLA class I centromeric region studied. These novel genes should be analyzed further to determine their relationships to diseases associated with this region.

Base Sequence↗

Comparison between two human endogenous retrovirus (HERV)-rich regions within the major histocompatibility complex.

Sixteen human endogenous retrovirus (HERV) sequences were detected within 656 kb of genomic sequence obtained from the alpha- and beta-block of the class I region of the major histocompatibility complex (MHC). The HERVs were identified and characterized as family members of HERV-16 (11 copies), HERV-L (1 copy), HERV-I (2 copies), HERV-K91 (1 copy), and HARLEQUIN (1 copy) by sequence comparison using CENSOR or Repeat Masker, BLAST searches, and dot plots. The 11 copies of HERV-16 arose as products of duplication of genomic segments containing HLA class I (HLAcI) and PERB11 (MIC) genes inter alia, whereas the other five HERVs arose after duplication probably as a consequence of single insertion events or translocations. HERV-L and HERV-I are located between the duplicated genes PERB11.2 (MICB) and PERB11.1 (MICA), and HLA-B and HLA-C, respectively, whereas HERV-K91 and HARLEQUIN are located telomeric of HLA-C. A highly fragmented copy of HERV-I was also found telomeric of PERB11. 4. Structural analysis of open reading frames (ORFs) revealed the absence of intact coding sequence within the putative gag, pol, and env gene regions of all the HERVs with the exception of HERV-K91, which had two large ORFs within the region of the putative protease and pol genes. In addition, the 5'-LTR of HERV-L contained a 2.5-kb element that was AT-rich and large ORFs with putative amino acid sequences rich in tyrosines and isoleucines. HERV-I, HARLEQUIN, and at least four copies of HERV-16 appear to have been receptors for the insertion of other retrotransposons including Alu elements and fragments of L1 and THE1. Examination of flanking sequences suggests that HERV-I and HERV-L had occurred by insertion into ancient L1 fragments. This study has revealed that the alpha- and beta-block region within the MHC is rich in HERV sequences occurring at a much higher ratio (10 to 1) than normally observed in the human genome. These HERV sequences will therefore enhance further studies on disease associations and differences between human haplotypes and primates and their role in the evolution of class I genes in the MHC.

Amino Acid Sequence↗

Gene organization of the quail major histocompatibility complex (MhcCoja) class I gene region.

Class I genomic clones of the quail (Coturnix japonica) major histocompatibility complex (MhcCoja) were isolated and characterized. Two clusters spanning the 90.8 kilobase (kb) and 78.2 kb class I gene regions were defined by overlapping cosmid clones and found to contain at least twelve class I loci. However, unlike in the chicken Mhc, no evidence for the existence of any Coja class II gene was obtained in these two clusters. Based on comparative analysis of the genomic sequences with those of the cDNA clones, Coja-A, Coja-B, Coja-C, and Coja-D (Shiina et al. 1999), these twelve loci were assigned to represent one Coja-A gene, two Coja-B genes (Coja-B1 and -B2), four Coja-C genes (Coja-C1-C4), four Coja-D genes (Coja-D1-D4), and one new Coja-E gene. A class I gene-rich segment of 24.6 kb in which five of these genes (Coja-B1, -B2, -D1, -D2 and -E) are densely packed were sequenced by the shotgun strategy. All of these five class I genes are very compact in size [2089 base pairs (bp)-2732 bp] and contain no apparent genetic defect for functional expression. A transporter associated with the antigen processing (TAP) gene was identified in this class I gene-rich segment. These results suggest that the quail class I region is physically separated from the class II region and characterized by a large number of the expressible class I loci (at least seven) in contrast to the chicken Mhc, where the class I and class II regions are not clearly differentiated and only at most three expressed class I loci so far have been recognized.

ATP-Binding Cassette Transporters↗

MIC-A allele profiles and HLA class I associations in Behçet's disease.

Recently a new family of non-classical MHC molecules, the MHC class I chain-related protein (MIC), encoded by genes located in the major histocompatability complex have been identified. On the basis of the location of MIC genes and the structure and expression of MIC molecules it has been postulated that MIC may be a susceptibility factor in Behçet's disease (BD). We investigated the association of the 16 described external domain alleles and the transmembrane triplet repeats of MIC-A with BD in a Middle Eastern population. DNA from ninety-five patients and 102 age- and sex-matched controls were analyzed by polymerase chain reaction using allele specific primers. Our results show an increase of MIC-A*009 in the BD patient group 44/95 (46%) compared with controls 24/102 (24%) (chi2=11.3, OR=2.8, P=0.00078). MIC-A*009 was also found to be strongly associated with HLA-B51 in the patients 39/44 (88%) when compared with controls 10/24 (42%) (chi2=4, P=0.04). MIC-A*009 was also found in linkage disequilibrium with HLA-B52, but only in controls. The A6 form of a MIC-A transmembrane triplet repeat was found to be significantly raised in the patients (80/95; 84%;) compared with controls (58/102, 57%) (chi2=17.5, OR=4, P=0.000028). Although the MIC-A associations described are highly significant, the association with HLA-B51 independently remains the most significant factor (chi2=56.8, P<10(-6)). The data suggests that as both MIC-A*009 and A6 are in strong linkage disequilibrium with HLA-B51, they are unlikely to be the susceptibility gene for BD but may be markers for additional risk factors.

Adolescent↗

MIC-A polymorphism in Japanese and a MIC-A-MIC-B null haplotype.

A polymorphic gene, MIC-A, is one of the MIC family of genes which is composed of a group of homologous genes interspersed in the class III and class I regions of the major histocompatibility complex. MIC-A is located 46 kilobases (kb) centromeric of HLA-B, and is preferentially expressed in the epithelial cells and intestinal mucosa. Recently, MIC-A and the closely related MIC-B were reported as the molecules that conferred specificity in the recognition by the Vdelta1gammadeltaT cells. In the present study, polymorphic exons 2, 3, and 4 of the MIC-A gene were analyzed using the polymerase chain reaction-single-strand conformation polymorphism method. The number of patterns found in exons 2, 3, and 4 were 5, 6, and 4, respectively, in 114 healthy Japanese subjects. Eight MIC-A alleles were observed in Japanese individuals, among which one, tentatively named MIC-AMW, has not previously been reported. There was a strong linkage disequilibrium between MIC-A and HLA-B loci: each MIC-A allele showed strong association with a particular HLA-B group. In contrast, B*3901 showed association with multiple MIC-A alleles. Furthermore, the existence of a MIC-A-MIC-B null haplotype, which is associated with HLA-B*4801, was identified. In this haplotype, a large-scale deletion (of approximately 100 kb) including the entire MIC-A gene was indicated and the MIC-B gene possessed a stop codon.

Alleles↗

Triplet repeat polymorphism in the MICA gene in HLA-B27 positive and negative caucasian patients with ankylosing spondylitis.

Previously, we reported a triplet repeat polymorphism in the transmembrane region within the MICA gene closely linked to HLA-B in a limited number of B27-positive Caucasian patients with ankylosing spondylitis (AS) (N = 48). In this study, we enrolled much more patients including some negative for B27, 162 AS subjects consisting of 140 B27-positive, and 22 B27-negative patients. The microsatellite allele consisting of 4 repetitions of (GCT/AGC) (A4 allele) was present at a significantly higher phenotype frequency in the patient group than in the ethnically matched control group (Pc < 0.000001). However, the frequency of the A4 allele was not significantly higher in the B27-positive and B27-negative patient groups, as compared to the B27-positive and B27-negative control groups, respectively. The higher phenotype frequency of the A4 allele in the patient group was supposed to be due to a strong linkage disequilibrium between the MICA and HLA-B genes. Thus, the possibility that the MICA gene is involved in the pathogenesis of AS can be excluded, supporting the hypothesis of a primary association of AS with HLA-B27.

Case-Control Studies↗

Rapid HLA class I DNA typing using microtiter plate-reverse hybridization assay (MRHA) by simple thermoregulation: high-resolution subtyping of the HLA-A2 and -B40 antigen groups.

We have established a precise, rapid, simple and economical subtyping method for alleles encoding the HLA-A2 and -B40 antigens using microtiter plate-reverse hybridization assay (MRHA), which is based on the general principle of HLA oligotyping by reverse dot blot hybridization. Amino-modified sequence-specific oligonucleotide (SSO) probes were immobilized covalently onto a carboxylate-modified microtiter plate. In order to perform high-resolution subtyping of the HLA-A2 and -B40 antigen groups, the alpha1 and alpha2 domain regions were amplified using a pair of group-specific primers composed of an unlabeled sense primer and a biotinylated antisense primer. PCR-amplified products were hybridized with SSO probes in hybridization buffer containing formamide for 1 hour at 37 degrees C. After washing with 2 X SSC at room temperature, the bound PCR products were detected by alkaline phosphatase-conjugated streptavidine followed by color development. All of 8 HLA-B40 suballeles, all of 2 HLA-B47 suballeles (B40 group-specific primers used in this study allowed also B47 amplification) and 17 out of 21 HLA-A2 suballeles were discriminated. The remaining four HLA-A2 suballeles were determined by analysis after exon 4 amplification. HLA-DNA typing by this method was easily and exactly performed regardless of sample number. The greatest advantages of this technique are strong positive signals obtained, reproducibility and the ease of thermoregulation for hybridization and washing as compared to previously reported microtiter plate hybridization methods.

DNA Probes↗

Chromosome 11q13 and atopic asthma.

Asthma is a complex syndrome in which bronchial inflammation and smooth muscle hyperactivity lead to labile airflow obstruction. The commonest form of asthma is that due to atopy, which is an immune disorder where production of IgE to inhaled antigens leads to bronchial mucosal inflammation. The ultimate origins of asthma are interactive environmental and genetic factors. The genetics is acknowledged to be heterogeneous, and one chromosomal region of interest and controversy has been 11q13. To clarify the nature of the chromosome 11q13 effect in atopy and asthma, we conducted a genetic association study in subjects with marked atopic asthma and matched controls, which incorporated the study of 13 genetic variants over a distance of 10-12 cM and which took account of detailed immune and clinical phenotyping. Association with high IgE levels was limited to the interval flanked by D11S1335 and CD20 in a 0.8-Mb interval and was greatest for variants of Fc epsilonRIbeta and HTm4; these variants also associated with asthma (recurrent wheeze with labile airflow obstruction and need for regular inhaler treatment). At the more telomeric marker, D11S480, variants associated with asthma, but not with high IgE levels. The data might support the possibility of multiple loci relevant to atopic asthma on chromosome 11q13.

Alleles↗

HLA-A33 and -B44 and susceptibility to postherpetic neuralgia (PHN).

HLA class I and class II alleles of 32 Japanese patients with postherpetic neuralgia (PHN) and 136 healthy controls were analyzed by serological (class I) and DNA (class II) typing for any significance in the susceptibility to varicella-zoster virus (VZV). We recognized positive associations of the development of PHN with the HLA class I antigens HLA-A33 and -B44, and the HLA-A33-B44 haplotype. This haplotype is tightly linked to DRB1*1302 in a Japanese healthy population. However, no significant association between PHN and HLA class II alleles was observed with no linkage of the HLA haplotype HLA-A33-B44 to HLA-DRB1*1302 in the patients with PHN. These findings suggest that HLA class I gene may genetically control the immune response against VZV in the pathogenesis of PHN.

Aged↗