[Pediatric bedside conference. (4). Nervous system diseases (2), liver disease (2), and hematologic disease (2)].
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Hepatic aldehyde dehydrogenase isozyme activity was measured in 51 patients with various types of liver diseases, including 24 patients with alcoholic liver disease, to elucidate the relationship between hepatic aldehyde dehydrogenase activity and liver disease, especially alcoholic liver disease. The levels of low-Km and total aldehyde dehydrogenase activity in the liver decreased both in alcoholic and nonalcoholic liver disease patients, who showed an isoelectric focusing pattern of the usual type. There was no significant difference in the aldehyde dehydrogenase activity between alcoholic and nonalcoholic liver disease. In alcoholic liver disease, the decrease in the activity was significantly correlated with the progression of liver histology. The activity in liver cirrhosis was significantly lower than that in the other types of alcoholic liver disease. In nonalcoholic liver disease patients, the unusual type of hepatic aldehyde dehydrogenase activity observed was not different from the unusual type observed in nonhepatobiliary disease patients. These results indicate that the reduction of hepatic low-Km aldehyde dehydrogenase activity is a change that occurs subsequent to liver damage. Genetic abnormality in aldehyde dehydrogenase may not be important in the pathogenesis of alcoholic liver injury.
Liver tissue engineering using hepatocyte transplantation has been proposed as an alternative to whole-organ transplantation or liver-directed gene therapy to correct various types of hepatic insufficiency. Hepatocytes are not sustained when transplanted under the kidney capsule of syngeneic mice. However, when we transplanted hepatocytes with the extracellular matrix components extracted from Engelbreth-Holm-Swarm cells, hepatocytes survived for at least 140 days and formed small liver tissues. Liver engineering in hemophilia A mice reconstituted 5% to 10% of normal clotting activity, enough to reduce the bleeding time and have a therapeutic benefit. Conversely, the subcutaneous space did not support the persistent survival of hepatocytes with Engelbreth-Holm-Swarm gel matrix. We hypothesized that establishing a local vascular network at the transplantation site would reduce graft loss. To test this idea, we provided a potent angiogenic agent before hepatocyte transplantation into the subcutaneous space. With this procedure, persistent survival was achieved for the length of the experiment (120 days). To establish that these engineered liver tissues also retained their native regeneration potential in vivo, we induced two different modes of proliferative stimulus to the naive liver and confirmed that hepatocytes within the extrahepatic tissues regenerated with activity similar to that of naive liver. In conclusion, our studies indicate that liver tissues can be engineered and maintained at extrahepatic sites, retain their capacity for regeneration in vivo, and used to successfully treat genetic disorders.
Liver transplantation in patients with hepatitis B has been under discussion for 20 years because of inferior results without reinfection prophylaxis; therefore, we analyzed our overall experience with liver transplantation in hepatitis B patients with immunoprophylaxis, particularly the influence of the available antiviral treatment in different periods. From 1988 to 2000, 228 liver transplants in 206 hepatitis B patients were performed. Indications were acute liver failure (10%), hepatitis B virus (HBV) cirrhosis alone (67%) or with hepatitis D virus (HDV) (13%), or hepatitis C virus (HCV) coinfection (7%). All patients received long-term immunoprophylaxis (anti-HBs > 100 U/L). HBV DNA-positive patients were treated before and after surgery with famciclovir or lamivudine since 1993 and 1996, respectively. Since 1993, antivirals also were used for HBV reinfection. The 1-, 5-, and 10-year patient survival rates were 91%, 81%, and 73%. In patients with hepatocellular carcinoma (HCC) (60% 5-year survival, P <.01) or HBV reinfection (69% 5-year survival, P <.01) survival was significantly impaired. Those with HDV or HCV coinfection had a slightly better survival than with HBV monoinfection (P >.05, not significant). Preoperative positive HBV DNA (hybridization-assay) test results were associated with a slightly impaired patient survival (78% 5-year survival, P >.05, not significant versus DNA-negative). Preoperative positive hepatitis B e antigen (HBeAg) predicted significantly worse survival (P <.05 versus negative HBeAg). Graft loss caused by reinfection was most frequent before the availability of antiviral drugs. Two-year patient survival increased from 85% in era I (1988-1993) to 94% in era III (1997-2000, P <.05). The 2-year recurrence rates in these 2 periods were 42% and 8% (P <.05). In conclusion, excellent long-term results can be achieved in hepatitis B patients after liver transplantation with modern strategies, and survival rates are similar to other indications. Based on our experience, hepatitis B patients, including those with active viral replication, should not be excluded from liver transplantation.
Liver failure from chronic hepatitis C is the leading indication for liver transplantation in the United States. However, the pathogenesis of liver injury resulting from chronic hepatitis C virus (HCV) infection is not well understood. To examine the relationship between HCV replication in liver tissue and hepatocellular injury, a strand-specific in situ hybridization procedure was developed. The sensitivity and specificity of digoxigenin-labeled riboprobes were optimized by analyzing Northern blots and cell lines expressing HCV RNAs. For the current study, both genomic (sense) and replicative-intermediate (antisense) HCV RNAs were detected and quantified in 8 of 8 liver tissue specimens from infected patients versus 0 of 11 liver tissue specimens from noninfected controls. The distribution pattern for HCV replicative-intermediate RNA in liver was different from that for HCV genomic RNA. HCV genomic RNA was variably distributed throughout infected livers and was located primarily in the cytoplasm of hepatocytes, with some signal in fibroblasts and/or macrophages in the surrounding fibroconnective tissue. However, HCV replicative-intermediate RNA showed a more focal pattern of distribution and was exclusively localized in the cytoplasm of hepatocytes. There was no significant relationship between the distribution pattern for HCV genomic RNA and any indices of hepatocellular injury. However, a highly significant correlation was observed between the percentage of cells staining positive for replicative-intermediate RNA and the degree of hepatic inflammatory activity (P, < 0.0001). Furthermore, the ratio of cells staining positive for HCV replicative-intermediate versus genomic RNA correlated with the histological severity of liver injury (P, 0. 0065), supporting the hypothesis that active replication of HCV in liver tissue may be a significant determinant of hepatocellular injury.
Liver function and the presence of HBsAg and anti-HBsAg were studied in 90 hypertransfused thalassaemic children. Increased serum transaminases were found in 62 patients, and persisted from more than 6 months in 45 cases. Liver biopsy in this latter group led to a diagnosis of 14 cases of chronic persistent hepatitis, 9 cases of aggressive hepatitis, and 3 cases of hepatic fibrosis. In Italy thalassaemic children undergoing hypertransfusion therapy frequently encounter SH virus infection, with a consequent hepatitis that is generally anicteric and unrecognized unless systematically sought. In a liver already stressed by the concomitant iron overload, hepatitis infection might thus play a key role in the evolution of cirrhosis which frequently affects thalassaemics.
Liver fibrosis represents a significant health problem worldwide for which no effective therapy exists. A great deal of research has been carried out to understand the molecular mechanisms responsible for the development of liver fibrosis. Activated stellate cells are the primary cell type responsible for the production of collagen I, the key protein involved in the development of liver fibrosis. Excessive deposition of collagen I occurs along with impaired extracellular matrix remodeling. Following a fibrogenic stimulus stellate cells transform into an activated collagen type I-producing cell. Numerous changes in gene expression are associated with stellate cell activation, including the induction of several intracellular signaling cascades, which help maintain the activated phenotype and control the fibrogenic and proliferative state of the cell. Activation of stellate cells is mediated by factors released from hepatocytes and Kupffer cells as they produce reactive oxygen species, nitric oxide, cytokines, growth factors, and cyclooxygenase and lipoxygenase metabolites, which provide pivotal paracrine effects in the liver milieu. Inhibition of stellate cell activation, proliferation, and the increased production of extracellular matrix (i.e. collagen type I) are therefore crucial steps for intervention in hepatic fibrogenesis.
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BACKGROUND: The frequency of gliadin antibody (GA) positivity has been found to be increased among patients with chronic liver disease, as has that of coeliac disease (CD). CD has also been found to be increased among patients with primary biliary cirrhosis (PBC) or primary sclerosing cholangitis (PSC). METHODS: To investigate these relationships further, a micro-enzyme-linked immunosorbent assay and immunofluorescence tests for GAs and endomysial antibodies (EMAs) were performed in large subgroups of patients representing various chronic liver diseases and in healthy blood donors. RESULTS: As compared with blood donors (among whom it was 5%) the frequency of IgA GA positivity was higher in all patient subgroups: alcoholic liver disease, 20% (22 of 110, P < 0.001); PBC, 16% (16 of 101, P < 0.001); PSC, 24% (19 of 80, P < 0.001); chronic hepatitis, 19% (13 of 70, P < 0.001); and hepatitis C virus infection, 11% (11 of 104, P < 0.01). Two patients with autoimmune chronic hepatitis were EMA-positive, and in both cases the presence of CD was verified by small-bowel biopsy. CONCLUSIONS: IgA GA positivity generally occurs at increased frequency among patients with chronic liver disease and may represent non-specific immune activation. In liver disease GA testing is not useful in screening for CD, whereas the EMA test seems to be highly specific. CD is more prevalent than expected among patients with autoimmune chronic hepatitis but not among those with PBC or PSC.
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Exposure of cells to physical (eg, heat) or chemical (eg, alcohol) stress results in increased synthesis of a set of highly conserved polypeptides termed heat shock proteins (HSPs), among which the 70-kd protein (HSP 70) is one of the most consistently inducible and highly conserved. This HSP has adenosine triphosphate-binding properties and is known to associate strongly with cytoskeletal structures that are usually disrupted on injury by heat or alcohol. Some HSPs apparently function as accessories to a nonlysosomal, adenosine triphosphate-dependent proteolytic system that binds and digests away stress-generated abnormal or denatured proteins after their conjugation with ubiquitin, a small HSP. Ubiquitin has been demonstrated immunocytochemically in Mallory bodies, which represent mainly degenerated intermediate filaments accumulated in hepatocytes of alcoholic-diseased liver. We immunostained histologic sections from patients with alcoholic liver disease using a polyclonal antibody raised against HSP 70. Strong diffuse cytoplasmic immunoreactivity was observed in many hepatocytes, including cells without Mallory bodies or fatty degeneration. Positive immunoreactivity for HSP 70 points to a possible involvement of this HSP in the pathogenesis of alcoholic liver disease. It also suggests that immunocytochemical detection of HSP 70 may serve as a more sensitive indicator of hepatocellular injury.
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The management of children with end-stage chronic liver disease and acute liver failure mandates a multidisciplinary approach and intense monitoring. In recent years, considerable progress has been made in developing specific and supportive medical measures, but studies and publications have mainly concerned adult patients. Therapeutic approaches to complications of end-stage chronic liver disease and acute liver failure (e.g. refractory ascites, hepatorenal syndrome, encephalopathy, and cerebral edema) that may be applied to children are reviewed in this article.Mild-to-moderate ascites should be managed by modest salt restriction and oral diuretic therapy in the first instance. Large volume paracentesis associated with colloid volume expansion and diuretic therapy may be effective for acute relief. Treatment of hepatorenal syndrome type 1 with vasopressin analogs (terlipressin) is recommended prior to liver transplantation in order to improve renal function. Prevention and treatment of chronic hepatic encephalopathy are directed primarily at controlling the events that may precipitate hepatic encephalopathy and at reducing ammonia generation and increasing its detoxification or removal. In addition to reduction of gut ammonia production using non-absorbable disaccharides such as lactulose and/or antibacterials such as neomycin, sodium benzoate may be used on a long-term basis to prevent, stabilize, or improve hepatic encephalopathy. The management of hepatic encephalopathy in acute liver failure is considerably more unsatisfactory; treatment is aimed at preventing brain edema and intracranial hypertension. Extracorporeal liver support devices are now used commonly in critically ill children with acute renal failure, advanced hepatic encephalopathy, cerebral edema, intracranial hypertension, and severe coagulopathy. Continuous renal replacement therapy could potentially help support patients until liver transplantation is performed or liver regeneration occurs. The Molecular Adsorbent Recirculating System (MARS or albumin dialysis) is the liver support system most frequently used worldwide in adults and appears to offer distinct advantages over hepatocyte-based systems. There are no specific medical therapies or devices that can correct all of the functions of the liver. Apart from a few metabolic diseases presenting with severe liver dysfunction for which specific medical therapies may preclude the need for liver transplantation, liver transplantation still remains the only definitive therapy in most instances of end-stage chronic liver disease and acute liver failure. Future research should focus on gaining a better understanding of the mechanisms responsible for liver cell death and liver regeneration, as well as developments in hepatocyte transplantation and liver-directed gene therapy.
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