Biomedical subjects
Paul D Berk
Publications and source records attributed to Paul D Berk.
Hyperbilirubinemia in the setting of antiviral therapy.
Hyperbilirubinemia is a common side effect of antiviral medications. The mechanisms underlying its development are multiple and unique to each therapy. During administration of antiviral medications, the hyperbilirubinemia observed in the absence of liver injury is most frequently manifested by isolated increases in the indirect-reacting fraction. Relevant mechanisms leading to indirect hyperbilirubinemia in this setting include hemolysis, decreased hepatic bilirubin clearance as a result of impairment of bilirubin conjugation, or circumstances in which both processes occur simultaneously. Underlying genetic susceptibilities may potentiate these side effects of antiviral therapy. Conjugated (direct-reacting) hyperbilirubinemia can be a consequence of generalized hepatocellular injury, selective cholestatic defects, biliary obstruction, or, rarely, genetic disorders of bilirubin transport. In the specific setting of antiviral therapy, preexisting liver disease or antiviral hepatotoxicity, such as is encountered with the use of the nucleoside and non-nucleoside human immunodeficiency virus reverse transcriptase inhibitors, are the most frequent causes of direct-reacting or mixed direct- and indirect-reacting hyperbilirubinemia. Modification in antiviral drug choice or dose may be required in cases of liver injury or of brisk hemolysis leading to significant anemia. The mild indirect hyperbilirubinemia associated with impairment in conjugation tends to be well tolerated and of little consequence. The decision to continue or discontinue antiviral therapy in the face of hyperbilirubinemia should be made after an assessment of the cause of the elevated bilirubin level and a thorough assessment of the risks and benefits of antiviral therapy.
Evaluation of fatigue in U.S. patients with primary biliary cirrhosis.
OBJECTIVES: Fatigue, which may have a significant impact on quality of life, is the most common reported symptom in primary biliary cirrhosis (PBC). Multiple instruments to quantify fatigue and quality of life in liver disease have been validated, but have not been broadly applied to U.S. PBC patients. This study examines the extent of fatigue and its effect on quality of life in U.S. PBC patients. METHODS: Seventy patients with PBC were administered two validated questionnaires about quality of life (the Mayo version of the NIDDK-QA) and fatigue (the Fisk Fatigue Impact Score) and a proposed physical measure of fatigue in PBC (the grip strength test) on the day of routine physician visit. Nonparametric methods were employed. RESULTS: The fatigue and quality of life domain scores (physical functioning, liver symptoms, health satisfaction, Karnofsky index) discriminated between patients with and without self-reported fatigue (p < 0.05), as opposed to the grip strength results. Fatigue and quality of life domains correlated strongly with each other (r between 0.33 and 0.74, p</= 0.006) and not with the grip strength results. Neither quality of life nor fatigue scores correlated with age. CONCLUSIONS: The correlation between fatigue and quality of life scores suggests fatigue has an impact on quality of life in U.S. primary biliary cirrhosis patients. However, our fatigue scores suggest U.S. PBC patients have less fatigue than non-U.S. PBC patients. The grip strength is an insensitive measure of fatigue in U.S. PBC patients.
Increased hepatocellular uptake of long chain fatty acids occurs by different mechanisms in fatty livers due to obesity or excess ethanol use, contributing to development of steatohepatitis in both settings.
Long chain fatty acids (LCFA) enter cells by both facilitated transport and diffusion, the former accounting for > or = 90%. Facilitated LCFA transport is up-regulated in adipocytes from obese rats, mice, and humans. To clarify the role of hepatocellular LCFA uptake in hepatic steatosis (fatty liver), [3H]-oleic acid (OA) uptake was studied in hepatocytes isolated from Zucker fatty(Z) and control(C) and ethanol-fed(E) Wistar rats, and demonstrated both saturable and non-saturable components, each a function of the unbound OA concentration ([OAu]). The uptake Vmax was identical in C and Z animals, but was increased 2.4-fold in E animals (p < 0.01). The non-saturable uptake rate constant did not differ between groups. Plasma LCFAs averaged 600 microM in C and E and 1,200 microM in Z animals. Total LCFA uptake averaged 1.35, 2.78 and 3.54 pmol/sec/50,000 cells in C, Z, and E animals, respectively. A 2-fold uptake increase in Z animals, in which Vmax was unaltered, entirely reflected the increased plasma LCFA concentration, whereas the 2.6-fold increase in E animals, in which plasma LCFA were not increased, resulted from up-regulation of facilitated transport. Thus, while increased hepatic LCFA uptake contributes to pathogenesis of hepatic steatosis in both obesity and excessive ethanol consumption, the mechanisms differ.
Lipid metabolism in hepatic steatosis.
Hepatic steatosis is a consequence of both obesity and ethanol use. Nonalcoholic steatosis (NASH) resemble alcoholic steatosis and steatohepatitis. Both exhibit increased hepatocellular triglycerides(TG), reflecting an increase in long chain fatty acids (LCFA). LCFA enter cells by both facilitated transport and passive diffusion. A driving force for both is the plasma unbound LCFA concentration ([LCFAu]). In both obese rodents and obese patients, adipocyte LCFA uptake via both facilitated transport and diffusion is increased. However, the LCFA uptake Vmax in hepatocytes is not increased in obese animals. Nevertheless, total LCFA uptake in obese rodents is increased ~3-fold, reflecting increased plasma LCFA concentrations. With advancing obesity, resistance to the antilipolytic effects of insulin results in increased lipolysis within the omental fat depot, a consequent further rise in portal venous LCFA, and an even greater rise in portal [LCFAu]. This causes a further increase in hepatocellular LCFA uptake, increased intracellular generation of reactive oxygen species (ROS), and transition from simple steatosis to NASH. By contrast, in rodent hepatocytes and in human hepatoma cell lines, ethanol up-regulates the LCFA uptake Vmax. Consequently, although plasma LCFA are unaltered, hepatocellular LCFA uptake in ethanol-fed rats is also increased~3-fold, leading to increased ROS generation and evolution of alcoholic hepatitis. Thus, while increased hepatic LCFA uptake contributes to the pathogenesis of both NASH and alcoholic hepatitis,the underlying mechanisms differ. Recognizing these mechanistic differences is important in developing strategies for both prevention and treatment of these conditions.
Leptin and insulin modulate nutrient partitioning and weight loss in ob/ob mice through regulation of long-chain fatty acid uptake by adipocytes.
Leptin treatment of ob/ob mice leads to weight loss appreciably greater than that in pair-fed mice. To test whether this "extra" weight loss is mediated by leptin-induced alterations in nutrient partitioning, the effects in ob/ob mice of subcutaneous leptin infusion (500 ng/h for 0.5 vs. normal C57BL/6J controls). Adipocyte mRNA levels for plasma membrane fatty acid binding protein and fatty acid translocase, putative fatty acid transporters that are up-regulated three- to fourfold in adipocytes from ob/ob mice, had also normalized by d 21. The initial changes in V(max) preceded decreases in food intake and body weight by at least 24 h. In pair-fed mice, insulin levels, V(max) and body weight all declined more slowly than in leptin-treated mice, and all remained significantly elevated compared with normal values at d 21. The data suggest that insulin up-regulates and leptin down-regulates adipocyte fatty acid uptake, leading to alterations in fatty acid partitioning that affect adiposity.
Methotrexate therapy for primary biliary cirrhosis.
OBJECTIVE: Preliminary data suggested possible benefits of methotrexate in primary biliary cirrhosis. We assessed the effectiveness of methotrexate use in primary biliary cirrhosis and its tolerance in patients with this disease. METHODS: A total of 110 primary biliary cirrhosis patients began methotrexate 15 mg/wk; for most, ursodeoxycholic acid was added during the study. We analyzed data from patients completing 5 yr of treatment with methotrexate to assess its effect on biochemical and histologic parameters after 5 yr of therapy. Based on an intent to treat analysis, we also compared survival of our patients (n = 110) with that of patients in a previously published, placebo-controlled trial of ursodeoxycholic acid (n = 180). RESULTS: Only half of the study group completed 5 yr of methotrexate therapy. Therapy did not prevent progression of disease, as indicated by a rising Mayo risk score. Portal fibrosis tended to remain the same. Methotrexate did not diminish the risk of death or liver transplantation when compared with ursodeoxycholic acid or placebo; however, ursodeoxycholic acid use decreased the risk of death or transplant (p = 0.006). CONCLUSIONS: Methotrexate is not well tolerated in primary biliary cirrhosis. The toxicity of methotrexate and its inability to prevent complications of progressive liver disease or improve survival and the need for liver transplantation limits its utility. The benefits of ursodeoxycholic acid were again confirmed.
Foreword: the impact of liver disease in children.
Explore the source record for details and available documents.