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Biomedical subjects

M Kohara

Publications and source records attributed to M Kohara.

At least 37 records · Page 2Linked to original sources

Possible role of cytotoxic T cells in acute liver injury in hepatitis C virus cDNA transgenic mice mediated by Cre/loxP system.

A line of hepatitis C virus (HCV) transgenic mice was established previously that was mediated by Cre/loxP system using HCV cDNA, including core, E1, E2 and NS2 genes. Intravenous infection of a recombinant adenovirus that expresses Cre DNA recombinase (AxCANCre) induced HCV structural protein expression in the liver of transgenic mice. HCV core protein production and transgene recombination in the mouse liver were serially evaluated after AxCANCre infusion. Core proteins were expressed efficiently and transgene was almost completely recombined in the liver of mice after 3 days and then the levels of both core protein production and transgene recombination decreased continuously for 28 days. However, 30.6% of the transgene recombination remained at 28 days and only 2.7% of core production remained at 28 days after infection. Compared with nontransgenic controls, the serum alanine aminotransferase levels in transgenic mice were significantly higher 10, 14, and 21 days after adenovirus infection. Histological scoring also indicated severe pathological changes in the liver of transgenic mice after adenovirus infection. AxCANCre infusion increased CD8+ lymphocyte infiltration into the liver of transgenic mice compared with that of non-transgenic controls. Furthermore, cytotoxic T lymphocytes (CTLs) isolated from transgenic mice during liver injury were specific for the HCV proteins. These results suggest that HCV structural proteins expressed in the liver of transgenic mice enhanced liver injury. HCV-specific CTLs may be to enhance hepatitis. Thus, the present HCV transgenic mouse model provides a useful model of liver injury due to HCV, and the host immune response may play a pivotal role(s) in the pathogenesis of HCV.

Adenoviridae↗

HCV-core protein accelerates recovery from the insensitivity of liver cells to Fas-mediated apoptosis induced by an injection of anti-Fas antibody in mice.

BACKGROUND/AIMS: Hepatitis C virus (HCV) is a major etiologic agent of chronic hepatitis, cirrhosis, and hepatocellular carcinoma. The aim of this study was to elucidate pathological effects of HCV-core protein on liver cells. METHODS: We have generated transgenic mice carrying HCV-core cDNA (Px-core) and pathologically examined livers of Px-core mice. RESULTS: HCV-core protein was detectable in livers from lines 5 (C5) and 8 (C8) of Px-core transgenic mice. Since chronic hepatitis and cirrhosis precede hepatocellular carcinoma in patients with HCV infection, we tried to examine the effect of repetitive injection of a small dose of anti-Fas antibody in the transgenic mice. Surprisingly, an initial injection of anti-Fas antibody induced resistance of liver cells to the second injection of anti-Fas antibody in both Px-core and littermate control mice. The insensitivity of liver cells induced in the control mice continued for more than 24 weeks after the first injection but was broken within 1 week after partial hepatectomy. However, the sensitivity was restored in the Px-core mice within 12 weeks after the injection. CONCLUSION: HCV-core protein in liver cells may affect persistence of Fas-mediated liver cell injury.

Animals↗

Hepatitis C virus replication and pathogenesis.

The mechanism involved in the development of persistent hepatitis C virus (HCV) infection and the pathogenesis remain unclear. The present review is an accumulation of evidence gathered to date. In addition, it discusses the system developed to characterize HCV.

Animals↗

Phosphorylation of nonstructural 5A protein of hepatitis C virus: HCV group-specific hyperphosphorylation.

We previously showed that two proteins with molecular weights of 56 and 58 kDa are produced from nonstructural protein 5A (NS5A) derived from hepatitis C virus (HCV)-1b genotype. The 56-kDa protein is phosphorylated at serine residues in NS5A, including those located in the C-terminal region of NS5A, while the 58-kDa protein, the hyperphosphorylated form of the 56-kDa protein, is phosphorylated at serine residues in the central region. This hyperphosphorylation is dependent on the presence of HCV NS4A protein. To clarify whether NS4A-dependent phosphorylation also occurs in other HCV genotypes, phosphorylation of NS5A was analyzed by two-dimensional gel electrophoresis. Here, we report that NS5A from the HCV-2a genotype was phosphorylated. However, hyperphosphorylation of NS5A occurs in the HCV-1b genotype but not in the -2a genotype. This result suggests that modification of NS5A phosphorylation reflects the virological features of HCV and that there are physiological differences in the roles of differently phosphorylated NS5A between HCV genotypes.

Alkaline Phosphatase↗

Correlation of interferon treatment response with GBV-C/HGV genomic RNA and anti-envelope 2 protein antibody.

The clinical significance of GB virus C/hepatitis G virus (GBV-C/HGV) co-infection was studied retrospectively in 100 consecutive patients with hepatitis C virus (HCV) infection. All 100 patients had been treated with interferon-alpha (IFN-alpha). Co-infection with GBV-C/HGV and HCV was detected in 10 of the 100 patients (10%) and anti-envelope 2 region (anti-E2) antibody was detected in 25 patients. None of the patients with GBV-C/HGV RNA had anti-E2 antibody. Co-infected patients were younger (P < .005) and their serum transaminase levels were lower than HCV-only infected patients (P< .01). In 7 of the 10 co-infected patients, HCV RNA was eradicated from serum after IFN-alpha treatment and normal alanine transaminase (ALT) levels continued in 6 of these 7 patients. In one patient who was negative for HCV RNA but positive for GBV-C/HGV RNA, the ALT level relapsed transiently. The rate of clearance of HCV and normalization of the ALT level was significantly higher in co-infected patients than in HCV-only infected patients (P < .05). GBV-C/HGV RNA disappeared from 6 of the 10 co-infected patients (60%) upon cessation of IFN-alpha treatment. However, continuous clearance of GBV-C/HGV was observed in only two patients and anti-E2 antibody could not be detected in the serum of these patients. These results indicate that co-infected patients tend to be younger and more sensitive to IFN-alpha treatment. However, long-term clearance of GBV-C/HGV after IFN-alpha treatment may be difficult. Moreover, anti-E2 antibody may act to neutralize GBV-C/ HGV.

Adult↗

Hepatitis C virus structural proteins induce liver cell injury in transgenic mice.

To develop an animal model of hepatitis C virus (HCV) infection, transgenic mice carrying part of the HCV cDNA (C980) encoding HCV-core and envelope proteins under control of the mouse class I major histocompatibility complex gene (H-2K) regulatory region were produced. HCV-C980 RNA and HCV-core protein were present in livers from line H36 as determined by RNase protection assay and immunostaining, respectively. More than 40 animals from line H36 were examined histologically. Most of these H36 mice after 10 months of age developed spontaneous focal infiltration of lymphocytes, hepatocyte necrosis, degeneration, and altered foci with mitotic hepatocytes. These pathological lesions were absent in livers from the age-matched control littermates. Liver cells from these H36 mice were sensitive to damage induced by intravenous administration of an anti-Fas antibody. It is suggested that HCV-C980 proteins by themselves may be one causative agent of liver cell injury in subjects with HCV infection.

Animals↗

Hepatitis C virus core protein binds to apolipoprotein AII and its secretion is modulated by fibrates.

Several lines of evidence suggest that hepatitis C virus (HCV) core protein may modulate cellular transduction signals and alter lipid metabolism. We have investigated the binding of HCV core protein to cellular proteins by combining 2 yeast hybrid, confocal, and surface plasmon resonance assays. Our results show the direct binding of the viral protein to apolipoprotein AII (apoAII) and map the interaction domain to the C-terminal of HCV core protein. To investigate the biological relevance of the interaction between HCV core and lipid metabolism, we took advantage of the well-established increase in apoAII expression caused by fibrates in HepG2 cells. After fenofibric acid treatment, we show a parallel increase in apoAII and core protein secretion, this effect being abolished by brefeldin A. Our study identifies apoAII as one of the cellular targets for HCV core protein. We also show that the intervention of fenofibric acid in cellular lipid metabolism directly affects the expression pattern of HCV core protein.

Apolipoprotein A-II↗

Real-time detection system for quantification of hepatitis C virus genome.

BACKGROUND & AIMS: For diagnosis of hepatitis C virus infection and monitoring of viral load in patients, a highly sensitive and accurate hepatitis C virus quantification system is essential. METHODS: Hepatitis C virus genome was detected by real/time detection system using an ABI Prism 7700 sequence detector (Perkin Elmer Corp./Applied Biosystems, Foster City, CA). RESULTS: As few as 10 copies of the genome were detected, and the quantification range was between 10(1) and 10(8) copies (r > 0.99). This system was 10-100-fold more sensitive than an Amplicor monitor (Roche Diagnostic Systems, Branchburg, NJ). The coefficient of variation values for both intra-assay precision and interassay reproducibility of identifying the genome quantification ranged from 0.37% to 2.00% and 0.88% to 4.66%, respectively. The system could detect the genome in 98% of patients with chronic hepatitis, 95.8% of patients with liver cirrhosis, and 100% of patients with hepatocellular carcinoma who had the antibody to hepatitis C virus, but could not detect the genome in patients without the antibody. CONCLUSIONS: The establishment of a real-time detection system enables more accurate diagnosis of infection and monitoring of viral load in interferon-treated patients via quantification of viral genome.

Carcinoma, Hepatocellular↗

Possible association between serum GB virus C RNA level and disease activity in fulminant hepatitis type G.

BACKGROUND/AIMS: Whether GB virus C causes serious liver diseases remains controversial. The aim of the present study was to determine whether there is an etiological relationship between GB virus C and fulminant hepatitis. METHODS: The level of GB virus C RNA in the sera of three patients with fulminant hepatitis was quantitatively determined using the newly developed real-time detection polymerase chain reaction method, which is based on Taq Man chemistry. The NS 3 region of the viral genome isolated from the sera was sequenced at several time points to confirm whether the same virus was responsible for fulminant hepatitis during the patients' clinical courses. RESULTS: The sensitivity of the PCR was comparable to that of nested PCR and a linear relationship between RNA copy number and threshold cycle was observed for 10(1) and 10(6) RNA copies/ml (r = 0.99). The serum level of GB virus C RNA closely paralleled that of ALT in all patients. Sequence analysis of the NS3 region isolated from the patients' sera revealed that the same GB virus C strain infected the patients during their entire clinical courses, despite plasma exchange therapy. CONCLUSIONS: These observations suggest that GB virus C may be etiologically associated with fulminant hepatic failure, and is not merely an inactive bystander introduced by therapeutic plasma exchange.

Adult↗

Quantitation of hepatitis B virus genomic DNA by real-time detection PCR.

Quantitation of hepatitis B virus (HBV) DNA in serum is a useful method for the monitoring of HBV replication. We attempted to develop a quantitative assay system for HBV DNA that is more sensitive, accurate, and reproducible than existing systems. We detected HBV DNA by real-time detection PCR (RTD-PCR) based on Taq Man chemistry. The efficacy of this assay was evaluated by quantitatively measuring sequential levels of synthetic DNA and DNA in clinical serum samples. The detection limit of this system was as few as 10 DNA copies/reaction. A linear standard curve was obtained between 10(1) and 10(8) DNA copies/reaction. The coefficient of variation for both intra- and interexperimental variability indicated remarkable reproducibility. This system detected HBV DNA in 100% of chronic hepatitis B patients tested and never detected HBV DNA in healthy volunteers who were negative for HBV markers. These observations suggest that RTD-PCR is an excellent candidate for a standard HBV quantification method.

Adult↗

Efficient conditional transgene expression in hepatitis C virus cDNA transgenic mice mediated by the Cre/loxP system.

Conditional gene expression has greatly facilitated the examination of the functions of particular gene products. Using the Cre/loxP system, we developed efficient conditional transgene activation of hepatitis C virus (HCV) cDNA (nucleotides 294-3435) in transgenic mice. Efficient recombination was observed in transgenic mouse liver upon intravenous administration of adenovirus that expresses Cre DNA recombinase. After transgene activation, most hepatocytes were stained with anti-core polyclonal antibody, and 21-, 37-, and 64-kDa proteins were detected by Western blot analysis in liver lysates using anti-core, E1, and E2 monoclonal antibodies, respectively. Serum core protein was detected in transgenic mice 7 days after transgene activation with concurrent increases in serum alanine aminotransferase levels. Subsequently, an anti-core antibody response was detected 14 days after infection. Furthermore, a CD4 and CD8 positive cell depletion assay normalized both the serum alanine aminotransferase increases and pathological changes in the liver. These results suggest that HCV proteins are not directly cytopathic and that the host immune response plays a pivotal role in HCV infection. Thus, this HCV cDNA transgenic mouse provides a powerful tool with which to investigate the immune responses and pathogenesis of HCV infection.

Adenoviridae↗

Determination of functional domains in polypyrimidine-tract-binding protein.

Polypyrimidine-tract-binding protein (PTB) is involved in pre-mRNA splicing and internal-ribosomal-entry-site-dependent translation. The biochemical properties of various segments of PTB were analysed in order to understand the molecular basis of the PTB functions. The protein exists in oligomeric as well as monomeric form. The central part of PTB (amino acids 169-293) plays a major role in the oligomerization. PTB contains several RNA-binding motifs. Among them, the C-terminal part of PTB (amino acids 329-530) exhibited the strongest RNA-binding activity. The N-terminal part of PTB is responsible for the enhancement of RNA binding by HeLa cell cytoplasmic factor(s).

Amino Acid Sequence↗

The native form and maturation process of hepatitis C virus core protein.

The maturation and subcellular localization of hepatitis C virus (HCV) core protein were investigated with both a vaccinia virus expression system and CHO cell lines stably transformed with HCV cDNA. Two HCV core proteins, with molecular sizes of 21 kDa (p21) and 23 kDa (p23), were identified. The C-terminal end of p23 is amino acid 191 of the HCV polyprotein, and p21 is produced as a result of processing between amino acids 174 and 191. The subcellular localization of the HCV core protein was examined by confocal laser scanning microscopy. Although HCV core protein resided predominantly in the cytoplasm, it was also found in the nucleus and had the same molecular size as p21 in both locations, as determined by subcellular fractionation. The HCV core proteins had different immunoreactivities to a panel of monoclonal antibodies. Antibody 5E3 stained core protein in both the cytoplasm and the nucleus, C7-50 stained core protein only in the cytoplasm, and 499S stained core protein only in the nucleus. These results clearly indicate that the p23 form of HCV core protein is processed to p21 in the cytoplasm and that the core protein in the nucleus has a higher-order structure different from that of p21 in the cytoplasm. HCV core protein in sera of patients with HCV infection was analyzed in order to determine the molecular size of genuinely processed HCV core protein. HCV core protein in sera was found to have exactly the same molecular weight as the p21 protein. These results suggest that p21 core protein is a component of native viral particles.

Animals↗

Histopathological study of the effect of phacoemulsification-aspiration on iris muscles.

Phacoemulsification-aspiration (PEA) followed by peripheral iridectomy was performed in 10 patients, and the dissected iris fragments were examined by electron microscopy. Organic changes such as cytoplasmic vacuolation and lamellar formation were observed in both the sphincter and dilator muscles of the pupil. No changes in the axons were detected. The same findings were observed when a simian eye was examined after PEA. These results indicate that PEA causes injury to iris muscles.

Aged↗

Genetic analysis of internal ribosomal entry site on hepatitis C virus RNA: implication for involvement of the highly ordered structure and cell type-specific transacting factors.

Hepatitis C virus (HCV) carries an internal ribosomal entry site (IRES) within the 5' portion of the RNA. To identify structures that influence efficiency of the translation initiation, relative activities of modified IRESs were examined by using engineered bicistronic mRNAs, between the two cistrons of which various mutant IRESs were inserted. An IRES derived from genotype 2b is at least two times more efficient than one from genotype 1b in cultured cells. Activity ratios of genotype 2b IRES to 1b IRES differ in magnification among cultured cells, suggesting the difference in assortment of IRES-related host factors among individual cell types. Recombinant IRESs between the genotypes show similar or higher activities compared with 2b IRES in cell-free systems and show intermediate activities in cultured cells. Patterns of relative activities of those IRESs indicate that the IRES activity is not regulated by defined structure(s), although a cluster of different nucleotides is observed in the genome region of nucleotides 176-224 between the two alleles. The results suggest that a highly ordered structure formed by the entire 5' portion of the RNA is important for the IRES activity. The 5' border of HCV IRES was examined by using a series of deletion RNAs in various systems. The results strongly suggest that the border resides between nucleotide positions 28 and 45. Patterns of relative activities of the deletion IRESs differ in translation systems or cell types. These results imply that interactions of HCV RNA with the related transacting factor(s) may differ in the translation systems or cell types.

Base Sequence↗

Hepatitis C virus core protein shows a cytoplasmic localization and associates to cellular lipid storage droplets.

There is now abundant evidence to substantiate an important role of hepatitis C virus (HCV) core protein in cellular gene expression as well as in the viral cycle. Thus the subcellular localization of this protein has important implications. However, several studies have shown controversial results: the HCV core has been, indeed, described as cytoplasmic or nuclear depending on the size of the protein or on the genotype analyzed. We have studied the localization of the HCV core protein in two different cell lines, one nonhepatic (CHO) and the other hepatic (HepG2). Double immunofluorescence staining using a nuclear membrane marker and confocal analysis showed the core protein pattern to be cytoplasmic and globular. This pattern is not cell cycle-regulated. Electron microscopy analysis revealed the nature of the globular staining observed in immunofluorescence. The HCV core protein accumulated at the surface of lipid droplets that were also the unique morphological feature of nonhepatic core transfected cells. The lipid droplets were isolated by sequential ultracentrifugation on the basis of their density; biochemical analysis revealed a prevalence of triglycerides. In addition the core protein colocalized with apolipoprotein AII at the surface of the lipid droplets as revealed by confocal microscopy. Moreover analysis of liver biopsies from chronically HCV-infected chimpanzees revealed that HCV core is cytoplasmic and localized on the endoplasmic reticulum and on lipid droplets. These results clearly define the subcellular localization of the HCV core protein and suggest a relationship between the expression of the HCV core protein and cellular lipid metabolism.

Animals↗

Acute hepatitis caused by sexual or household transmission of GBV-C.

BACKGROUND/AIMS: Transfusion transmission is the only known transmission route of the recently identified GBV-C. To date, no evidence of household transmission of GBV-C has been reported. In the present study, a case of acute GBV-C hepatitis was investigated with respect to the mode of transmission. METHODS: A 24-year-old woman with acute GBV-C hepatitis and her asymptomatic husband were examined. Two GBV-C RNA samples, isolated at different times from both the patient and her husband were amplified by reverse transcriptase-polymerase chain reaction using sequences from the NS3 region. Sequencing of this region was subsequently performed for all four samples. RESULTS/CONCLUSIONS: The genomic RNA sequences of GBV-C isolated from each partner at two different time points were found to be 100% homologous. However, these genomic GBV-C RNA sequences differed in the NS3 (helicase) region from the genomic RNA isolated from the GBV-C prototype previously reported by Simons et al. Nonetheless, high homology (83%) was found between the GBV-C prototype and the GBV-C isolated from our patients. In addition, four nucleotides of the GBV-C RNA in the present study are unique and are not present in any other reported sequences of GBV-C. These results strongly suggest that GBV-C is one of the etiological agents involved in severe liver injury and was transmitted between this couple.

Acute Disease↗