February 2, 2014

Hepatitis C virus genotype 1b increases cumulative lifetime risk of hepatocellular carcinoma

Int J Cancer. 2014 Jan 31. doi: 10.1002/ijc.28753. [Epub ahead of print]

Lee MH, Yang HI, Lu SN, Jen CL, You SL, Wang LY, L'italien G, Chen CJ, Yuan Y; for the REVEAL-HCV Study Group.

Abstract

The association between subtypes of hepatitis C virus (HCV) and risk of hepatocellular carcinoma (HCC) remained inconclusive and evaluated in both case-control and cohort studies. In the case-control study, 397 HCC cases from medical centers were compared with 410 community-based non-HCC controls. All of them were anti-HCV-seropositive, HBsAg-seronegative with serum HCV RNA levels ≥1000 IU/mL. Logistic regression models were utilized to estimate the odds ratio (OR) with 95% confidence interval (95% CI) of HCV subtype after controlling for other HCC risk factors. In the cohort study, 866 anti-HCV-seropositive individuals were followed from 1991 to 2008 to assess the long-term HCC predictability of HCV subtypes. Newly developed HCC cases were ascertained by follow-up health examinations and computerized linkage with national databases. The percentage of HCV 1b subtype was higher among HCC cases than controls (64% vs. 55%, p<0.001). Participant infected with HCV 1b had a higher mean serum HCV RNA level (2.0×106 IU/mL) than those with HCV non-1b (1.2×106 IU/mL, p<0.001). The multivariate-adjusted OR (95% CI) of developing HCC for HCV 1b comparing to non-1b was 1.43 (1.02-2.02). After the long-term follow-up, the cumulative lifetime (30-80 years old) HCC risk was 19.2% and 29.7% for patients infected with HCV non-1b and 1b, respectively (p<0.001). The multivariate-adjusted hazard ratio (95% CI) was 1.85 (1.06-3.22) for HCV 1b compared to non-1b. HCV subtype 1b, the most prevalent subtype in Taiwan, was associated with an increased HCC risk and a proactive clinical management is suggested for patients with HCV 1b. © 2014 Wiley Periodicals, Inc.

Copyright © 2014 UICC.

KEYWORDS: HCV RNA levels, HCV variability, long-term liver progression

PMID: 24482200 [PubMed - as supplied by publisher]

Source

Statins for prevention of hepatocellular cancer: One step closer? Commentary

Provided by NATAP

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\Hepatology 24 DEC 2013

SIDDHARTH SINGH, M.D.1
PREET PAUL SINGH, M.D.2

1Division of Gastroenterology and Hepatology Mayo Clinic Rochester, MN 2Department of Medical Oncology Mayo Clinic Rochester, MN

"there is mounting evidence from epidemiological studies that statin use may be associated with a lower risk of HCC.....n their study, Tsan et al. observed a decrease in HCC risk with statin use even in patients treated with antiviral therapy, although this was not statistically significant due to the small number of HCC cases developing in treated HCV patients"

Tsan YT, Lee CH, Ho WC, Lin MH, Wang JD, Chen PC. Statins and the risk of hepatocellular carcinoma inpatients with hepatitis C virus infection. J Clin Oncol
2013;31:1514-1521

Abstract

Purpose: Statins may have protective effects against cancer, but no studies have focused on their effects in patients with chronic hepatitis C virus (HCV) infection. The purpose of this study was to investigate the association between use of statins and risk of hepatocellular carcinoma (HCC) in HCV-infected patients.

Patients and Methods: Ours was a population-based cohort study of 260,864 HCV-infected patients enrolled in the Taiwan National Health Insurance Research Database since January 1, 1999, and observed through December 31, 2010. Cox proportional hazards regression with time-dependent covariates for drug exposures was employed to evaluate the association between statin use and HCC risk.

Results: There were 27,883 cases of HCC in the HCV cohort during a follow-up period of 2,792,016.6 person-years. Among the 35,023 patients using statins (defined as ≥28 cumulative defined daily doses [cDDDs]), 1,378 had HCC. Among the 225,841 patients not using statins (<28 cDDDs), 26,505 were diagnosed with HCC. A dose-response relationship between statin use and HCC risk was observed. The adjusted hazard ratios were 0.66 (95% CI, 0.59 to 0.74), 0.47 (95% CI, 0.40 to 0.56), and 0.33 (95% CI, 0.25 to 0.42) for patients with 28 to 89, 90 to 180, and >180 cDDDs per year, respectively, relative to nonusers. The reduction in risk also demonstrated a progressive duration-response relationship in patients with ≥28 cDDDs per year when compared with nonusers.

Conclusion: Among patients with HCV infection, statin use was associated with reduced risk of HCC. Further research is needed to elucidate the mechanism responsible for this effect.

Comment

Hepatocellular cancer (HCC) is the sixth most common cancer worldwide and the second leading cause of cancer death, with a rising incidence in the Western population.[1, 2] Chemopreventive strategies to prevent or delay the development of HCC are appealing.

Nearly one in four Americans age 45 years or older are prescribed statins for cardiovascular diseases, making them the second most common prescription medication in the United States.[3] Preclinical as well as epidemiologic studies have shown that besides cholesterol reduction, statins may be protective against inflammation-driven cancers.[4-6] Statins have antiproliferative, proapoptotic, antiangiogenic, immunomodulatory, and antiinfective effects.[7] By competitive inhibition of 3-hydroxy-3-methyl-glutaryl-CoA (HMG-CoA) reductase, statins inhibit products of the mevalonate pathway, preventing posttranslational modification of Ras/Rho proteins. Myc activation is a critical step in hepatocarcinogenesis, and its inactivation using atorvastatins has been shown to induce sustained regression of HCC.[8] Besides their direct effect on hepatocarcinogenesis, statins have also been shown to have antiinfective effects against HCV.[9] There is a growing body of evidence suggesting a protective association between statin use and risk of incident HCC.[10, 11]

In their population-based cohort study, Tsan et al.[12] used the comprehensive Taiwanese National Health Insurance Database to study the association between statin use and risk of HCV-associated HCC. They followed 260,864 HCV-infected patients (13.4% statin users) over a mean 10.7 years, and observed 27,883 cases of HCC (~1% risk of HCC/year). The incidence rate of HCC was 340.5 and 1,110.2 cases per 100,000 person-years among statin users and statin nonusers, respectively. After adjusting for potential confounders, including age, sex, cirrhosis, diabetes, medications such as anti-HCV therapy, aspirin, and angiotensin converting enzyme inhibitors, they observed that statin users had a 47% lower risk of HCC as compared to statin nonusers(adjusted hazard ratio [HR], 0.53; 95% confidence interval [CI], 0.49-0.58). A dose-response relationship was also observed: compared to statin nonusers, patients dispensed 28-89, 90-180, and >180 cumulative defined daily dose (which encompasses both dosage and duration of exposure) of statins were 34%, 53%, and 67% less likely to develop HCC,respectively (P-trend < 0.001). The results were stable in several subgroup analyses, by patient age, sex, and presence or absence of cirrhosis and diabetes. These results are similar to the 53% risk reduction observed in statin users that the authors' had previously reported in their cohort of 33,413 HBV-infected adults.[11]

There are several inherent limitations to such a population-based observational study. Observational studies lack the experimental random allocation of the intervention necessary to test exposure-outcome hypotheses optimally. The 34% lower risk of HCC observed with a short dose-duration of statin use suggests the presence of unmeasured factors, such as healthy-user bias, contributing to this association. It is not possible to exclude residual confounding, in particular, confounding by indication and by severity of liver disease. Primary care physicians may be less likely to prescribe statins to patients with cirrhosis, leading to overestimation of the protective effect of statins. However, a dose-dependent association between statins and HCC risk was observed both in patients with and without cirrhosis; this association persisted even after excluding statin use recorded within 2 years before HCC diagnosis. Hence, the likelihood of significant confounding by indication was minimal. Besides acknowledged limitations of not adjusting for smoking, alcohol and coffee consumption, and obesity, the authors failed to adjust for the concomitant use of antidiabetic medications (27.6% patients in their cohort had diabetes), which have inherent cancer-modifying effects.[13] However, in their previous study on the association between statins and HBV-associated HCC risk, reanalysis of their data after adjusting for antidiabetic medications showed a persistent independent protective effect of statins.[14]

In contrast to observational studies where six out of eight published studies have shown a protective association between statin use and risk of HCC (including all studies performed in patients at high risk for HCC such as cirrhosis, HBV, diabetics), randomized controlled trials (RCTs) have failed to show such an association.[15] In a post-hoc analysis of 22 RCTs from the Cholesterol Treatment Trialists' collaboration, there was no difference in the risk of HCC among statin users and nonusers (adjusted odds ratio [OR], 1.06; 95% CI, 0.66-1.71).[16] However, these statin RCTs for cardiovascular endpoints have several intrinsic limitations: (1) patients enrolled in these RCTs performed in the Western population were inherently at low risk for development of HCC, limiting the power of these studies to detect a significant difference between placebo and statin groups with regard to development of HCC; (2) the follow-up in these RCTs was short and at the end of the study, patients assigned to placebo were likely to have switched to statins, hence attenuating any potential effect that may have been observed with longer duration of follow-up; and (3) statin nonusers in these groups had a competing, elevated risk of cardiovascular mortality.

Hence, there is mounting evidence from epidemiological studies that statin use may be associated with a lower risk of HCC. In a meta-analysis of 10 studies, we observed a 37% lower risk of HCC in statin users as compared to nonusers, in both Asian and Western populations.[15] So, should we proceed with an RCT to definitively study the effect of statins against HCC? From observational studies, it is difficult to know the appropriate dose, duration, frequency, as well as timing of initiation of statins for chemoprevention. Moreover, such an RCT would be logistically and ethically challenging given the relatively low incidence of HCC. Assuming a 4% annual rate of progression to HCC among patients with cirrhosis-stage HCV and a 50% decline in the risk of HCC with the use of statins, as compared to placebo, 2,396 patients would need to be followed for 1 year, with strict adherence to therapy. Factoring in patient dropout, disease progression requiring additional therapies such as liver transplantation and competing risk of mortality in patients with cirrhosis, the number of patients needed to perform such a chemoprevention trial would be much higher.

Additionally, even if this was logistically possible, it would be ethically impermissible since one would have to withhold antiviral therapy to minimize confounding. Whether statins have a chemopreventive effect over and above that observed with anti-HCV therapy is unclear; in their study, Tsan et al. observed a decrease in HCC risk with statin use even in patients treated with antiviral therapy, although this was not statistically significant due to the small number of HCC cases developing in treated HCV patients.[12]Not surprisingly, a search of the World Health Organization International Clinical Trials Registry Platform did not identify any registered clinical trials on chemoprevention against HCC. In comparison, well-designed population-based prospective cohort studies with complete long-term follow-up in a susceptible population may be more feasible, yet well suited, to answer the question. Any such study would require careful adjustment for known risk factors for HCC such as age, sex, presence and severity of chronic liver disease, diabetes, use of other medications with putative chemopreventive effect and also account for the propensity to prescribe these medications.

Source

February 1, 2014

Efficacy of an Interferon- and Ribavirin-Free Regimen of Daclatasvir, Asunaprevir, and BMS-791325 in Treatment-Naive Patients With HCV Genotype 1 Infection – Full Text

Provided by NATAP

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Gastroenterology
February 2014

"This all-oral, interferon-free, ribavirin-free treatment consisting of daclatasvir, asunaprevir, and BMS-791325 75 or 150 mg twice daily achieved up to 94% SVR12 after 24 or 12 weeks of treatment. Sustained response was achieved in both HCV GT 1a-infected and HCV GT 1b-infected patients, including patients with reduced interferon responsiveness predicted by IL28B non-CC genotypes. No viral breakthrough or relapse was observed in patients treated with the 75 mg twice-daily dose of BMS-791325. There was 100% concordance between SVR4 and subsequent SVR time points in all patients with available data.....An important aspect to this study is that SVR was achieved without inclusion of ribavirin"

"In our study, virologic failure was uncommon and observed in only 3 patients in the 150 mg twice-daily dosing groups: 2 patients with viral breakthrough, and 1 patient with virologic relapse. The reasons for treatment failure in these patients remain unclear but could include baseline virus polymorphisms, host immune status, and/or reduced drug exposure or adherence. Two of these patients were infected with HCV GT 1a. One patient had a pre-existing NS5A variant with increased resistance to daclatasvir (L31M, 250-fold change in the EC50 of daclatasvir in vitro). The second patient had baseline resistance-associated polymorphisms to daclatasvir and asunaprevir (NS5A-H58P and NS3-V36M, respectively), which alone do not appear to alter the EC50 value of the direct-acting antivirals in vitro. It is possible that these variants acted in a compensatory manner by enhancing the fitness of the emergent variants. The emergent linked NS5A substitution M28A-Q30R confers high-level resistance to daclatasvir in vitro (>200,000-fold resistance). NS3-V36M enhances resistance by approximately 3-fold against asunaprevir when combined with NS3-R155K in vitro. The HCV-RNA sequences of the third patient with HCV GT 1b reported at screening have not been amplified successfully despite numerous attempts, thus the HCV GT remains unconfirmed and the presence of baseline and emergent variants is unknown. The relationship between pre-existing polymorphisms and treatment failure of interferon-free regimens is unclear because patients in this and other studies with similar findings have achieved a sustained response. Thus, larger studies are needed to clarify the impact of pre-existing polymorphisms on efficacy.13, 22, 32, 33 The role of IL28B host genotype in virologic failure in patients treated with other interferon-free regimens also is unclear. All 3 patients with virologic failure in this study were IL28B non-CC, but this may be a reflection of most patients enrolled in the study (70%) being IL28B non-CC. Recent studies have confirmed that interferon-free regimens achieve high SVR rates in patients with IL28B non-CC genotype, and IL28B non-CC genotype did not predict failure.7, 11, 12, 13, 22, 25 Finally, preliminary pharmacokinetic assessments of patients in this study do not suggest any clinically relevant drug-drug interactions among the 3 direct-acting antivirals in this combination, and the pharmacokinetic profiles of daclatasvir, asunaprevir, and BMS-791325 did not differ markedly in the 3 patients with virologic failure as compared with the remainder of the patients in the study.34 The observation that virologic failure occurred only among patients receiving BMS-791325 150 mg may reflect the small sample size studied thus far and not necessarily represent a true difference in efficacy between BMS-791325 doses. Both doses remain under evaluation in the ongoing phase 2b study expansion."

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Efficacy of an Interferon- and Ribavirin-Free Regimen of Daclatasvir, Asunaprevir, and BMS-791325 in Treatment-Naive Patients With HCV Genotype 1 Infection\

Gastroenterology
February 2014

Parts of this study were presented at The Liver Meeting: The 63rd Annual Meeting of the AASLD, Boston, MA, November 9-13, 2012, Oral LB-3; and The International Liver Congress 2013: The 48th Annual Meeting of the European Association for the Study of the Liver, Amsterdam, The Netherlands, April 24-28, 2013.

Gregory T. Everson,1 Karen D. Sims,2 Maribel Rodriguez-Torres,3 Christophe Hezode,4 Eric Lawitz,5 Marc Bourliere,6 Veronique Loustaud-Ratti,7 Vinod Rustgi,8 Howard Schwartz,9 Harvey Tatum,10 Patrick Marcellin,11 Stanislas Pol,12 Paul J. Thuluvath,13 Timothy Eley,2 Xiaodong Wang,2 Shu-Pang Huang,14 Fiona McPhee,15 Megan Wind-Rotolo,14 Ellen Chung,2 Claudio Pasquinelli,2 Dennis M. Grasela,2 and David F. Gardiner2

1University of Colorado Denver, Aurora, Colorado; 2Bristol-Myers Squibb, Hopewell, New Jersey; 3Fundacion de Investigacion, San Juan, Puerto Rico; 4Service d'Hepato-Gastroenterologie, CHU Henri Mondor, Creteil, France; 5The Texas Liver Institute, University of Texas Health Science Center, San Antonio, Texas; 6Service d'Hepato-Gastroenterologie, Hopital Saint Joseph, Marseille, France; 7University Hospital of Limoges, Limoges, France; 8Metropolitan Research, Arlington, Virginia; 9Miami Research Associates, South Miami, Florida; 10Options Health Research, Tulsa, Oklahoma; 11Hopital Beaujon, Clichy, France; 12Universite Paris Descartes, INSERM U1610 and Liver Unit, Hopital Cochin, Paris, France; 13Mercy Medical Center, Baltimore, Maryland; 14Bristol-Myers Squibb, Princeton, New Jersey; 15Bristol-Myers Squibb, Wallingford, Connecticut

Background & Aims

The combination of peginterferon and ribavirin with telaprevir or boceprevir is the standard treatment of hepatitis C virus (HCV) genotype 1 infection. However, these drugs are not well tolerated because of their side effects and suboptimal virologic responses. In a phase 2a, open-label study, we examined the safety and efficacy of an interferon-free, ribavirin-free regimen of direct-acting antivirals, comprising daclatasvir (an NS5A replication complex inhibitor), asunaprevir (an NS3 protease inhibitor), and BMS-791325 (a non-nucleoside NS5B inhibitor), in patients with chronic HCV infection.

Methods

\We analyzed data from 66 treatment-naive patients with HCV genotype 1 infection without cirrhosis who were assigned randomly to groups given daclatasvir (60 mg, once daily), asunaprevir (200 mg, twice daily), and BMS-791325 (75 or 150 mg, twice daily) for 12 or 24 weeks. The primary end point was an HCV-RNA level less than 25 IU/mL at 12 weeks after treatment (sustained virologic response at 12 weeks [SVR12]).

Results

In 64 patients, HCV-RNA levels were less than 25 IU/mL by week 4 of treatment (including 48 of 49 patients with HCV genotype 1a infection and 45 of 46 patients with the non-CC interleukin 28B genotype). Sixty-one patients (92%) achieved SVR12, based on a modified intention-to-treat analysis. Virologic responses were similar between 12 and 24 weeks of treatment. During the study, 2 patients experienced viral breakthrough and 1 patient relapsed. There were no grade 3-4 increases in levels of alanine or aspartate aminotransferases or bilirubin; there were no deaths or discontinuations resulting from serious adverse events or adverse events related to the treatment regimen. The most common adverse events were headache, asthenia, and gastrointestinal symptoms.

Conclusions

In a phase 2a study, the all-oral, interferon-free, and ribavirin-free regimen of daclatasvir, asunaprevir, and BMS-791325 was well tolerated and achieved high rates of SVR12 in patients with HCV genotype 1 infection. Further studies of this regimen are warranted. ClinicalTrials.gov, number NCT01455090.

The current standard of care for the treatment of patients chronically infected with hepatitis C virus (HCV) genotype (GT) 1 is a 3-drug regimen, with peginterferon alfa and ribavirin plus telaprevir or boceprevir. Sustained virologic response (SVR) rates with 3-drug therapy are approximately 70% in treatment-naive patients, a significant improvement over the SVR of approximately 40% for peginterferon/ribavirin alone.1, 2, 3, 4 Despite improvement in SVR, these regimens are poorly tolerated. The most common side effects of peginterferon alfa/ribavirin are flu-like symptoms, depression, and hematologic toxicity.5 Addition of boceprevir or telaprevir to peginterferon alfa/ribavirin increases the severity of anemia and adds additional side effects, such as rash, which can be life-threatening.3, 4 In addition, these regimens require 24 to 48 weeks of weekly injections of peginterferon, up to 3 pills twice daily of ribavirin, and administration of 3 or 4 pills of telaprevir or boceprevir with a meal 3 times a day. An interferon-free, ribavirin-free regimen with improved tolerability and less-frequent dosing for improved adherence, while achieving high rates of SVR, is desirable.

Several antivirals with different mechanisms of action that directly inhibit HCV replication are currently in clinical development.6 Lok et al7 showed that SVR was possible with an interferon-free, ribavirin-free regimen combining multiple direct-acting antivirals, each having a different mechanism of action. In this study, daclatasvir, an NS5A replication complex inhibitor,8 was combined with asunaprevir, an NS3 protease inhibitor,9 to treat patients with HCV GT 1 who were null responders to prior treatment with peginterferon/ribavirin.10 This dual combination achieved SVR at 24 weeks after end of treatment (SVR24) in 36% of the patients (2 of 9 patients with GT 1a and 2 of 2 patients with GT 1b).7 In subsequent studies this dual regimen achieved SVR24 of 83%-91% in HCV GT 1b null responders,11, 12, 13 but a more potent regimen is required for HCV GT 1a. Addition of ribavirin to this dual combination did not improve response rates in GT 1a null responder patients,11 thus it was hypothesized that addition of a third direct-acting antiviral agent may enhance antiviral potency.

The addition of the selective non-nucleoside polymerase inhibitor, BMS-791325, to daclatasvir and asunaprevir achieves inhibition of 3 distinct viral targets that are responsible for HCV replication. Potentially, this strategy would increase the SVR rate and protect against the emergence of viral resistance. Avoiding interferon and ribavirin also would improve tolerability, perhaps increasing compliance, resulting in more effective therapy. The study presented here describes outcomes from 12 or 24 weeks of treatment with an interferon-free, ribavirin-free combination of daclatasvir, asunaprevir, and BMS-791325 in treatment-naive patients with HCV GT 1 infection.

Methods

Study Design

This open-label, randomized, phase 2a study recruited patients from 13 centers in the United States and France. Patients were enrolled and completed treatment from November 17, 2011, to March 5, 2013. The study was approved by appropriate institutional review boards and/or independent ethics committees, and was performed in accordance with the Declaration of Helsinki and Good Clinical Practice as defined by the International Conference on Harmonization and ethical principles of local regulatory requirements. All patients provided written informed consent. All authors had access to the study data and reviewed and approved the final manuscript.

Inclusion criteria were age 18-70 years, chronic HCV GT 1 infection with RNA level of 105 IU/mL or greater, no previous HCV therapy (treatment-naive), and no evidence of cirrhosis (as documented by markers of cirrhosis, FibroTest [BioPredictive, Paris, France] score ²0.72 and aspartate aminotransferase:platelet ratio ²2, or liver biopsy). Patients with a FibroTest or aspartate aminotransferase:platelet ratio score exceeding the threshold for study inclusion were required to have a liver biopsy documenting the absence of cirrhosis. METAVIR category for each patient was derived from the FibroTest result based on the conversion on the manufacturer's website.

Exclusion criteria included an alanine aminotransferase level that was 5x or more the upper limit of normal, total bilirubin level of 2 mg/dL or greater, direct bilirubin level greater than the upper limit of normal, international normalized ratio of 1.7 or greater, albumin level of 3.2 g/dL or less, hemoglobin level less than 11 g/dL for women and less than 12 g/dL for men, absolute neutrophil count less than 1.5 x 109 cells/L (or <1.2 x 109 cells/L for African American individuals), platelet count less than 90 x 109 cells/L, creatinine clearance less than 50 mL/min, and ineligibility for peginterferon alfa 2a or ribavirin if needed for treatment intensification (see later). Women of child-bearing potential were required to use at least 2 contraception methods.

All randomized patients received daclatasvir (60 mg, orally, once daily), asunaprevir (200 mg, orally, twice daily), and BMS-791325 orally at either 75 or 150 mg twice daily. The dose selection of BMS-791325 was based on phase 1 antiviral activity and safety. Initially, eligible patients were assigned randomly to group 1 (BMS-791325 75 mg twice daily for 24 weeks) or group 2 (BMS-791325 75 mg twice daily for 12 weeks) using a computer-generated randomization scheme. After 4 weeks of observation, a second cohort was assigned randomly to group 3 (BMS-791325 150 mg twice daily for 24 weeks) or group 4 (BMS-791325 150 mg twice daily for 12 weeks). Patients were stratified by genotype 1a/1b, with 1b patient enrollment targeted between 25% and 38% or less of the total number of patients in each group. The primary end point was an HCV-RNA level less than 25 IU/mL at SVR12. Other end points included analysis of HCV RNA at various time points during and after treatment, rates of viral breakthrough and relapse, and assessment of safety and tolerability. In the event of viral breakthrough (defined as confirmed increase in HCV-RNA level ≥1 log10 from nadir or confirmed HCV RNA level ≥25 IU/mL on or after week 8), patients were eligible to receive treatment intensification, defined as peginterferon alfa-2a (180 μg subcutaneously, once weekly) and ribavirin (1000 mg orally per day if patient weighed <75 kg, or 1200 mg orally per day if patient weighed >75 kg) in addition to continuation of the direct-acting antivirals for up to an additional 48 weeks.

Laboratory Assessment

Blood samples were drawn at baseline, days 1-7, days 9, 11, 14, 21, 28, every week through week 8, then every 2 weeks until the end of treatment, and post-treatment weeks 4, 12, 24, 36, and 48. HCV-RNA level was determined at a central laboratory using the COBAS TaqMan v2 assay (Roche Molecular Diagnostics, Pleasanton, CA), with a lower limit of quantitation of 25 IU/mL and a lower limit of detection of approximately 10 IU/mL. HCV genotypes were determined by polymerase chain reaction amplification and sequencing using the VERSANT HCV Amplification 2.0 Kit (LiPA) (Siemens, Munich, Germany). The host interleukin (IL)28B genotype (rs12979860 single-nucleotide polymorphism) was determined by Monogram Biosciences (South San Francisco, CA) using a real-time polymerase chain reaction assay. All baseline samples were analyzed for polymorphisms in HCV NS3, NS5A, and NS5B associated with drug resistance using population sequencing (sensitivity, Å20%).

Safety Assessments \\

Safety and tolerability were measured by serious adverse events, treatment-emergent adverse events, discontinuations owing to adverse events, severity grade 3/4 adverse events, and severity grade 3/4 laboratory abnormalities. Vital sign and electrocardiographic measurements, physical examinations, and clinical laboratory results were assessed throughout the study.

Statistical Analysis

Binary antiviral activity end points were assessed using modified intent-to-treat methodology. Patients prescribed a different treatment as assigned for the whole treatment duration were analyzed based on actual treatment (as treated). The numerator was based on treated patients meeting response criteria (defined as an HCV-RNA level <25 IU/mL; patients with missing HCV-RNA values were considered failures for that visit; however, failure owing to a missed value does not carry forward, in that, the patient can return later and be counted in future analyses of sustained response). The denominator was based on all treated patients.

Results

Disposition, Demographics, and Baseline Characteristics

Sixty-six patients were randomized. In addition to daclatasvir and asunaprevir, patients in groups 1 (N = 16) and 2 (N = 16) received BMS-791325 75 mg twice daily for 24 or 12 weeks, respectively, and patients in groups 3 (N = 16) and 4 (N = 18) received BMS-791325 150 mg twice daily for 24 or 12 weeks, respectively. In group 1, 2 patients discontinued treatment before week 24, 1 patient withdrew consent at week 9, and the other patient was discontinued at week 14 by the investigator because of inability to comply with study procedures. In groups 2 and 3, 1 patient discontinued treatment at week 11 because of poor compliance and 1 patient voluntarily discontinued treatment at week 18 of the 24-week regimen for reasons unrelated to the study. All group 4 patients (N = 18) completed the study. All groups were similar in age, race, and baseline HCV-RNA viral load (Table 1). Seventy-four percent of all patients were infected with HCV GT 1a, 70% of all patients had IL28B non-CC genotype, and more than 50% of all patients had FibroTest-derived METAVIR scores of F2 or greater; patients with FibroTest scores suggestive of cirrhosis (>0.72) were enrolled based on biopsy results showing an absence of cirrhosis (Table 1). Eighteen percent of patients were African American (Table 1).

Virologic Response

Groups 1 and 2, BMS-791325 75 mg twice daily

After treatment initiation, HCV-RNA levels rapidly decreased in both groups (Figure 1A and B). By week 4, all patients (N = 32) had achieved an HCV-RNA level less than 25 IU/mL and 97% (31 of 32) maintained an HCV-RNA level less than 25 IU/mL through the end of treatment. One patient (group 1) had an HCV-RNA level of 118 IU/mL at the last on-treatment visit but had an HCV-RNA level less than 25 IU/mL at 2, 4, and 12 weeks after treatment, suggesting a possible laboratory error. By using the modified intent-to-treat analysis (Table 2), 94% (30 of 32) of patients achieved SVR4 and SVR12. Ninety-one percent (29 of 32) of patients achieved SVR24 and no patient experienced viral breakthrough or post-treatment relapse.

Two patients missed their post-treatment week 4 and 12 visits and were counted as failures at these time points (Table 2): 1 patient (group 1) withdrew consent but showed undetectable HCV-RNA levels at treatment discontinuation (on-treatment week 9), and 1 patient (group 2) missed SVR4 and SVR12 but achieved SVR24. Two patients, 1 patient from each group, missed post-treatment week 24 visits but both had achieved SVR4 and SVR12.

Groups 3 and 4, BMS-791325 150 mg twice daily

After treatment initiation, HCV-RNA levels also rapidly decreased in both groups (Figure 1C and D). By week 4, all patients in group 3 (N = 16) achieved HCV-RNA levels less than 25 IU/mL and 94% (15 of 16) maintained HCV-RNA levels less than 25 IU/mL through the end of treatment. All but 2 patients in group 4 achieved an HCV-RNA level less than 25 IU/mL at week 4: 1 patient had an unconfirmed HCV-RNA level of 43 IU/mL and another patient missed the week 4 visit, but both achieved SVR12 and SVR24. Ninety-four percent of patients (32 of 34) receiving BMS-791325 150 mg achieved an HCV-RNA level less than 25 IU/mL at the last on-treatment visit. By using modified intent-to-treat analysis (Table 2), 91% (31 of 34) of patients receiving BMS-791325 150 mg achieved SVR4 and SVR12.

Three patients overall experienced virologic failure: 1 patient each in groups 3 and 4 experienced viral breakthrough, and 1 patient in group 4 experienced relapse at follow-up week 4. The patient in group 3 with viral breakthrough was a 61-year-old black woman, randomized as GT 1b, however, further sequencing suggested a GT1 non-1a or 1b subtype analysis was ongoing. The patient further showed IL28B TT genotype, a FibroTest score of 0.62 (derived METAVIR F3), and a baseline HCV-RNA level of 5.1 log10 IU/mL. The patient achieved an HCV-RNA level less than 25 IU/mL at week 3 and experienced viral breakthrough at week 6. The group 4 patient was a 32-year-old white man with GT 1a, IL28B TT genotype, FibroTest score of 0.11 (derived METAVIR F0), and a baseline HCV-RNA level of 7.1 log10 IU/mL. The patient achieved an HCV-RNA level of approximately 10 IU/mL (undetectable) on week 4 and experienced viral breakthrough at week 8. Both patients intensified treatment by adding peginterferon alfa/ribavirin to the direct-acting antivirals. Sixteen weeks after starting treatment intensification, the group 3 patient discontinued all treatment because of a serious adverse event (cerebral vasoconstriction related to peginterferon alfa/ribavirin) and subsequently relapsed. The patient from group 4 achieved an HCV-RNA level less than 25 IU/mL 6 weeks after the addition of peginterferon alfa/ribavirin, and in preliminary data has achieved SVR4. One patient (group 4) relapsed between the end of treatment and post-treatment week 4. This patient was a 61-year-old white man, with GT 1a, IL28B CT genotype, FibroTest score of 0.66 (derived METAVIR F3), and baseline HCV-RNA level of 6.8 log10 IU/mL. The patient achieved an HCV-RNA level of approximately 10 IU/mL (undetectable) at week 3, which continued through the end of treatment. Resistance-associated variants detected at baseline and at the time of virologic failure are summarized for the 3 patients who experienced virologic failure in Supplementary Table 1.

Supp2

Resistance
Polymorphisms at amino acid positions associated with resistance to one or more of the direct-acting antivirals were detected at baseline (Table 4).14, 15, 16, 17 One patient from group 4 infected with HCV GT 1a had NS5A-L31M at baseline and experienced viral breakthrough at week 8; this polymorphism has been shown to yield a 250-fold change in the in vitro median effective concentration (EC50) of daclatasvir.15 NS5A-Q30R-L31M, NS3-R155K, and NS5B-P495L were detected at viral breakthrough. Another HCV GT 1a-infected patient (group 4) who experienced a relapse 4 weeks after treatment had NS5A-H58P and NS3-V36M polymorphisms at baseline, and NS5A-M28A-Q30R-H58P, NS3-V36M-R155K, and NS5B-P495L at post-treatment weeks 4 and 12. Sequence polymorphism data at baseline and virologic failure for the patient in group 3 who experienced viral breakthrough at week 6 currently are unavailable owing to poor sequence amplification despite multiple methodologies.

Supp3

Supp4

Safety

\One serious adverse event of ureteral calculus (group 2) occurred on treatment day 24 and was considered by the investigator to be unrelated to study therapy (Table 5). No deaths or adverse events leading to discontinuation occurred during the study on the direct-acting antiviral regimen alone (Table 5). One patient (group 2) had a grade 3 headache that resolved after 7 days with continuation of study treatment. The most common adverse events (≥10% of patients) included headache, asthenia, diarrhea, nausea, and abdominal pain, all were mild or moderate in intensity. One patient (group 2) experienced grade 4 lymphopenia on day 14 concomitant with influenza infection, which started on day 12 (Table 5). All subsequent lymphocyte results were within the normal range. During treatment intensification, 1 patient (group 3) experienced grade 3 neutropenia and a serious adverse event of cerebral vasoconstriction (grade 3) leading to treatment discontinuation, both considered by the investigator to be related to peginterferon alfa/ribavirin and not to the direct-acting antiviral regimen. There were no grade 3-4 laboratory events on the direct-acting antiviral regimen alone specific to alanine aminotransferase, aspartate aminotransferase, bilirubin, hemoglobin, leukocytes, absolute neutrophil count, or platelet count. Importantly, no clinically meaningful change in hemoglobin values were observed during treatment, although modest mean hemoglobin changes of -0.42 to -0.92 g/dL were observed up to treatment week 4 (Supplementary Table 2). These decreases were not dose-dependent and improved during the course of treatment, thus likely reflecting the intense safety, efficacy, and pharmacokinetic phlebotomy requirements during the first 28 days of this study.

\Discussion

Currently approved treatment regimens for HCV GT 1-infected patients include a protease inhibitor combined with peginterferon/ribavirin and have modest antiviral activity, poor tolerability, and long treatment durations.18, 19, 20 For these reasons, interferon-free treatment regimens with multiple direct-acting antivirals are in clinical development. Two direct-acting antivirals, daclatasvir and asunaprevir, without interferon or ribavirin, were able to achieve high SVR rates in GT 1b-infected patients, but a high rate of viral breakthrough occurred in patients infected with GT 1a.7, 11, 12, 13 This finding is consistent with modeling that predicts successful interferon-free, direct-acting antiviral combinations must impose a high genetic barrier to 4 or more HCV variants to prevent emergence of resistance.21 Two clinical paradigms have emerged to enhance the genetic barrier of interferon-free regimens. First, treatment with a combination of 2 direct-acting antivirals, including a nucleotide polymerase inhibitor with a high barrier to viral resistance such as sofosbuvir, combined with a direct-acting antiviral with a different mechanism of action with high potency such as the NS5A inhibitor daclatasvir or the NS3 protease inhibitor simeprevir, can achieve sustained response without viral breakthrough.22, 23 An alternative strategy involves combining 2 or more non-nucleotide direct-acting antivirals with or without ribavirin to improve the genetic barrier to resistance.24, 25, 26, 27 An interferon-free combination of 3 direct-acting antivirals (an NS5B non-nucleoside inhibitor, a ritonavir-boosted protease inhibitor, and an NS5A inhibitor) plus ribavirin showed high SVR rates, but treatment success was reduced when ribavirin or any single direct-acting antiviral was omitted.27 In this study, combining 3 direct-acting antivirals without interferon or ribavirin showed a high SVR rate after 12 weeks of treatment in HCV GT 1-infected, treatment-naive patients.

This all-oral, interferon-free, ribavirin-free treatment consisting of daclatasvir, asunaprevir, and BMS-791325 75 or 150 mg twice daily achieved up to 94% SVR12 after 24 or 12 weeks of treatment. Sustained response was achieved in both HCV GT 1a-infected and HCV GT 1b-infected patients, including patients with reduced interferon responsiveness predicted by IL28B non-CC genotypes. No viral breakthrough or relapse was observed in patients treated with the 75 mg twice-daily dose of BMS-791325. There was 100% concordance between SVR4 and subsequent SVR time points in all patients with available data.

An important aspect to this study is that SVR was achieved without inclusion of ribavirin. Ribavirin contributes to anemia and it is teratogenic; thus, effective treatments without ribavirin are desirable. This interferon- and ribavirin-free regimen did not alter hemoglobin levels in a clinically meaningfully manner as evidenced by no grade 1 or higher hemoglobin reductions and no adverse events of anemia. The mechanism of action of ribavirin is not clear, and its contribution to clinical efficacy varies by regimen. Ribavirin clearly improves SVR rates in interferon-based therapies, including telaprevir-based regimens.28 Among interferon-free regimens, the benefit of ribavirin remains unclear. The combination of the ritonavir-boosted protease inhibitor ABT-450, the NS5B non-nucleoside inhibitor ABT-333, and the NS5A inhibitor ABT-267 with or without ribavirin showed lower SVR rates without ribavirin.27 However, the combination of daclatasvir and sofosbuvir did not require ribavirin to achieve high SVR rates in patients with unfavorable characteristics, including HCV genotypes 1a and 3, and host IL28B non-CC genotypes.22 The regimen presented here provides additional evidence that combinations of potent direct-acting antivirals do not always require ribavirin to achieve a sustained response.

\This study also assessed the impact of treatment duration on SVR and the regimen showed efficacy with only 12 weeks of treatment. This therapeutic duration is consistent with publication of viral kinetic modeling data suggesting 10 weeks of treatment with a potent antiviral regimen may be needed to clear infected hepatocytes.29 In contrast, current treatment for GT 1-infected patients includes peginterferon, ribavirin, and the NS3 protease inhibitors telaprevir or boceprevir for up to 48 weeks.30 Shorter treatment durations are preferable because they may improve patient compliance. In this study, treatment periods of both 12 and 24 weeks yielded high SVR rates, suggesting no advantage for extending treatment duration to 24 weeks. The study using ABT-450 boosted with ritonavir, ABT-333, ABT-267, and ribavirin in GT 1 treatment-naive patients also showed high rates of SVR with only 12 weeks of therapy.27 Similarly, regimens including sofosbuvir and daclatasvir with or without ribavirin also showed high rates of SVR with 12 weeks of treatment.22, 31

In our study, virologic failure was uncommon and observed in only 3 patients in the 150 mg twice-daily dosing groups: 2 patients with viral breakthrough, and 1 patient with virologic relapse. The reasons for treatment failure in these patients remain unclear but could include baseline virus polymorphisms, host immune status, and/or reduced drug exposure or adherence. Two of these patients were infected with HCV GT 1a. One patient had a pre-existing NS5A variant with increased resistance to daclatasvir (L31M, 250-fold change in the EC50 of daclatasvir in vitro). The second patient had baseline resistance-associated polymorphisms to daclatasvir and asunaprevir (NS5A-H58P and NS3-V36M, respectively), which alone do not appear to alter the EC50 value of the direct-acting antivirals in vitro. It is possible that these variants acted in a compensatory manner by enhancing the fitness of the emergent variants. The emergent linked NS5A substitution M28A-Q30R confers high-level resistance to daclatasvir in vitro (>200,000-fold resistance). NS3-V36M enhances resistance by approximately 3-fold against asunaprevir when combined with NS3-R155K in vitro. The HCV-RNA sequences of the third patient with HCV GT 1b reported at screening have not been amplified successfully despite numerous attempts, thus the HCV GT remains unconfirmed and the presence of baseline and emergent variants is unknown. The relationship between pre-existing polymorphisms and treatment failure of interferon-free regimens is unclear because patients in this and other studies with similar findings have achieved a sustained response. Thus, larger studies are needed to clarify the impact of pre-existing polymorphisms on efficacy.13, 22, 32, 33 The role of IL28B host genotype in virologic failure in patients treated with other interferon-free regimens also is unclear. All 3 patients with virologic failure in this study were IL28B non-CC, but this may be a reflection of most patients enrolled in the study (70%) being IL28B non-CC. Recent studies have confirmed that interferon-free regimens achieve high SVR rates in patients with IL28B non-CC genotype, and IL28B non-CC genotype did not predict failure.7, 11, 12, 13, 22, 25 Finally, preliminary pharmacokinetic assessments of patients in this study do not suggest any clinically relevant drug-drug interactions among the 3 direct-acting antivirals in this combination, and the pharmacokinetic profiles of daclatasvir, asunaprevir, and BMS-791325 did not differ markedly in the 3 patients with virologic failure as compared with the remainder of the patients in the study.34 The observation that virologic failure occurred only among patients receiving BMS-791325 150 mg may reflect the small sample size studied thus far and not necessarily represent a true difference in efficacy between BMS-791325 doses. Both doses remain under evaluation in the ongoing phase 2b study expansion.

In summary, the combination of daclatasvir, asunaprevir, and BMS-791325 generally was well tolerated and may represent a significant improvement over current treatments. SVR rates generally exceeded 90%, and the most common adverse events were headache, asthenia, and gastrointestinal complaints (diarrhea, nausea, and abdominal pain); and did not lead to treatment discontinuation. Furthermore, no serious adverse events related to these direct-acting antivirals were observed and only one grade 3 or 4 laboratory value was documented while on direct-acting antiviral-only therapy (reversible lymphopenia during influenza infection). These adverse events and side effects were minor in comparison with the reported rates and severity of adverse events associated with peginterferon, ribavirin, and either telaprevir or boceprevir.35, 36 Indeed, during treatment intensification with peginterferon alfa/ribavirin, 1 patient experienced a serious adverse event of cerebral vasoconstriction (cerebrovascular disorders are observed with the use of peginterferon alfa-2a [Pegasys, Genentech - Hoffmann-La Roche, South San Francisco, CA] per the package insert).37 This tolerability profile is also similar to that observed in studies of asunaprevir and daclatasvir given as dual therapy for HCV GT 1b,7, 11, 12, 13 suggesting that the addition of BMS-791325 does not add to the adverse event profile of this regimen.

We conclude that this all-oral, interferon-free, ribavirin-free treatment of daclatasvir, asunaprevir, and BMS-791325 is a promising therapy for chronic hepatitis C that warrants additional investigation. Limitations of this pilot study included small patient numbers, restrictive inclusion and exclusion criteria, and selection of noncirrhotic, treatment-naive HCV GT 1-infected patients for initial study. This study has been expanded to examine both doses of BMS-791325 in additional HCV GT 1 treatment-naive patients, GT 1 null responders to prior peginterferon/ribavirin treatment, patients with cirrhosis, and patients infected with HCV GT 4.

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AbbVie Headed to FDA, Clash With Gilead Set

Provided by The Motley Fool

By Brian Orelli | More Articles
January 31, 2014 | Comments (0)

AbbVie (NYSE: ABBV ) has finished up its phase 3 clinical-trial program for its all-oral hepatitis C drug cocktail. There were six clinical trials in total, testing the drugs in different patient populations in many cases with and without generic ribavirin.

All the treatment regimens produced sustained virologic responses -- essentially a cure -- in the 90 percents, sans one treatment arm where all 91 patients were cured.

Three years ago, the best a patient infected with genotype 1 hepatitis C could hope for was a 50% chance of clearing the virus. Approval of Vertex Pharmaceuticals'  Incivek and Merck's Victrelis in 2011 raised the cure rate near 80%, but patients still have to take peginterferon, an injected drug that causes flu-like symptoms, for 24-48 weeks.

AbbVie's drugs only have to be taken for 12 weeks in most cases and don't require peginterferon. The data is good news for Enanta Pharmaceuticals (NASDAQ: ENTA ) , which helped develop ABT-450, one of the components of the cocktail. Enanta is due double-digit royalties on sales of the drug.

Not the only player in town
Abbvie said it's shooting for submitting its marketing application for the cocktail early in the second quarter, but it won't be the first all-oral cocktail if Gilead Sciences(NASDAQ: GILD ) sticks to its guidance of submitting to the FDA in the first quarter.

We could make comparisons between trials run by the two companies on patients with the same genotypes to see which has higher cure rates, but with most above 95%, the difference isn't likely to be statistically meaningful. Most doctors won't choose between AbbVie's or Gilead's regimen based on a percentage point or two difference in the clinical trial efficacy results.

The earlier filing could give Gilead Sciences a bit of a head start, although it may not have much of one. There's only one day between the end of the first quarter and the start of the second quarter after all. But Gilead already has an indirect head start. One of the components of Gilead's cocktail, Sovaldi, was recently approved for use in combination with peginterferon in genotype 1 patients. Doctors' familiarity with Sovaldi and Gilead's sales reps could give the biotech a leg up.

The choice between the two cocktails could come down to convenience. Gilead's cocktail requires fewer pills, which on the surface doesn't seem like much. As long as patients are taking their medications on the correct schedule it doesn't really matter, but doctors may feel that fewer pills will result in better compliance, which is a really big deal for antiviral medications. If patients don't take all their medication and the virus is knocked down but not out, it can give the virus time to mutate in a way that makes it resistant to the medications.

The deciding factor may come down to price, especially as insurers get involved. If one of the companies is willing to substantially undercut the other, insurers may require that cocktail be used first. Given the high cure rates, that wouldn't leave many scraps for the other company.

If it comes down to price, launching second could give AbbVie a huge advantage.

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January 31, 2014

FDA and Health Canada: Working Together for an Efficient Pathway for Drug Applications

Posted on January 31, 2014 by FDA Voice

By:  Robert Yetter, PhD

At FDA, we work closely with national regulatory agencies around the world on issues relating to the safety, efficacy and availability of medical products. An exciting example of such collaborative efforts is the Common Electronic Submissions Gateway (or CESG), an outcome of the US-Canada Regulatory Cooperation Council (RCC). Through a cooperative research and development agreement, FDA worked with our counterparts in Health Canada, to share technology that will make it more efficient for industry to submit applications to both the U.S. and Canada for the approval of pharmaceutical and biological products. A common infrastructure would enable industry to submit to both countries using the same electronic format for technical documents.

The RCC Initiative was announced in February 2011 by President Barack Obama and Prime Minister Stephen Harper. Its goals are to promote economic growth, job creation and benefits to consumers and businesses through increased regulatory transparency and coordination. The electronic submissions gateway is one such project designed to meet those goals.

So just what is this gateway? It’s an electronic “post office” that uses secure Internet connections to receive electronic versions of medical product applications and related documents from industry sponsors seeking regulatory approval. The technology was developed under contract, and implementation at FDA was led by the Center for Biologics Evaluation and Research.  FDA’s Electronic Submissions Gateway (ESG) has been in operation since 2006. It has now been modified to accommodate submissions from both Canada and the U.S. using the same interface and technology, and subsequently sending those submission transmissions to one or both regulatory authorities.

The collaboration on the Common Electronic Submissions Gateway has the potential to yield long-term positive outcomes for both FDA and Health Canada. The collaboration continues the work between the two regulatory partners to streamline both agencies’ submission requirements while maintaining consistency in regulatory requirements. It could also lead to cost reductions for regulated industry, which would not have to follow separate technical requirements for submission to the two countries.

We’re very proud of our work with Health Canada to make this technology accessible in a relatively short amount of time, going from concept to delivery in 26 months. This is yet another example of the steps FDA is taking as part of our Global Initiative, which envisions enhanced collaboration with our regulatory partners.

Robert Yetter, PhD, is the Associate Director for Review Management in FDA’s Center for Biologics Evaluation and Research

Source

What is the purpose of liver function tests?

Provided by Nursing Times

Practice educator

31 January, 2014

Author

Andrew Blann is a consultant at City Hospital, Birmingham, and senior lecturer in medicine, University of Birmingham.

ABSTRACT

Blann A (2014) Routine blood tests 2: what is the purpose of liver function tests? Nursing Times; 110: 6, 17-19.

The liver is the body’s largest single discrete organ. It has four major functions: metabolism and synthesis; excretion; storage; and the detoxification of potential poisons. These diverse functions mean that a single test does not give enough information to assess fully how the liver is functioning; at least five different liver function tests are required.

This article, part 2 in a four-part series, discusses the information on acute and chronic liver disease that these tests can provide, and how disease affects liver function.

  • This article has been double-blind peer reviewed
  • Figures and tables can be seen in the attached print-friendly PDF file of the complete article in the ‘Files’ section of this page

5 KEY POINTS

  1. The liver plays an important role in synthesis, excretion, storage and detoxification
  2. Its multiple metabolic and excretory functions mean disease of the liver can have serious consequences
  3. The most obvious indication of liver disease is jaundice, a sign of high levels of bilirubin
  4. Although the liver largely regenerates after damage, if damage is prolonged it loses its ability to do so
  5. There are few clinical situations where a diagnosis can be made based on a single blood test

The liver, the largest single discrete organ in the body, has four main functions and plays a major part in many metabolic and excretory processes. Due to its multiple functions, liver disease has numerous consequences, many of which can be detected and monitored with blood tests known as liver functions tests (LFTs).

Main functions of the liver

Synthesis

The liver produces and exports many proteins and lipids into the blood, so reduced levels of certain proteins (such as albumin and clotting proteins) may indicate damage to the liver. The liver also synthesises fatty acids, triacylglycerols and cholesterol, but the levels of these lipids are not regarded as markers of liver function.

Excretion

When red blood cells die much is recycled, and what cannot be recycled is converted into bilirubin. Some bilirubin moves as bile into the gall bladder, while some immediately flows down the bile duct and through the duodenum, colouring the faeces brown.

The liver plays a significant role in removing excess nitrogen from the body through the production of urea.

Storage

Glucose is converted into the polysaccharide glycogen, which is stored in the liver. When there is too much glucose, it is converted into fat, which can be deposited in the liver and elsewhere. The liver also stores iron, vitamins, and copper.

Detoxification

In addition to synthesis and recycling, the liver has a role in detoxification. This includes metabolising plant, animal and fungal toxins (such as the fungal aflatoxin), as well as drugs and medication.

Liver disease

To carry out its diverse metabolic tasks, the liver uses several enzymes (Table 1). These help to link many of the liver’s functions to specific or non-specific tests; for many, the most obvious indication of liver disease is jaundice, a sign of high bilirubin levels.

Capture

Jaundice

Jaundice is a clear sign of liver disease, and is present when blood levels of bilirubin are so high (generally greater than 40mmol/L), that it enters the skin. This is most apparent in the sclera (white) of the eye. Jaundice is also called icterus and can develop in three ways: haemolytic, following red cell destruction; damage to liver cells; and failure to excrete bile, most likely due to obstruction.

At such high levels in the blood, this bilirubin finds its way to the kidney and into the urine, which becomes dark yellow and possibly orange/brown; this is an additional important clinical sign.

Cholestasis

This common condition is caused by obstruction or stenosis of the bile duct by, for example, gallstones or a tumour. This prevents the liver and biliary system from excreting bile, leading to obstructive cholestasis.

Inflammatory cholestasis occurs when inflammation of the bile duct prevents bile from passing into the duodenum; the liver continues to generate bile, which fills the gall bladder leading to congestion. Once the gall bladder is full, bile cannot leave the liver and it passes into the blood causing jaundice. A further sign of cholestasis is a change in the colour of the faeces from brown to grey, a likely indication that bile is not entering the intestines.

Cirrhosis

If damaged, such as after a viral infection or exposure to a poison, the liver has a remarkable capacity to regenerate.

However, if the damage is prolonged, for example due to a chronic infection, the renewal processes may be unable to continue regenerating functioning liver cells, leading to fibrous tissues being deposited instead. Cirrhosis can be the end result of several lengthy pathological processes, including: autoimmune diseases; chronic hepatitis virus B infection; longstanding biliary obstruction; and alcohol misuse.

Eventually, the loss of functioning cells may lead to chronic liver failure, and possibly liver cancer.

Ascites

Ascites is the excessive accumulation of plasma-like fluid in the peritoneal cavity. In up to 75% of patients, it is a consequence of advanced cirrhosis leading to portal hypertension. Other causes include heart failure, cancer and inflammation (Senousy and Draganov, 2009).

Cancer

The primary malignancy of the liver is hepatocellular carcinoma (HCC). According to Cancer Research UK (2014), it makes up 1.3% of cancers, and well over 3,000 new cases arise each year.

HCC is also sometimes referred to as hepatoma, but technically this means a mass within the liver that may not necessarily be a malignancy.

The vast majority of liver cancer occurs in the liver cells (hepatocytes) themselves; cancer of the bile ducts - cholangiocarcinoma - is less common.

The main causes of liver cancer are chronic viral infection (hepatitis B and C) and long-term alcohol misuse. The key laboratory test for this type of cancer is alpha-fetoprotein (AFP); however, if the liver is the site of a secondary cancer (metastasis), AFP will be negative.

Fatty liver (steatosis)

Fat is effective for storing energy, and large deposits can be found in various parts of the body, such as around the heart and liver.

However, if fat intake is excessive, in certain rare metabolic conditions and if alcohol is misused, fat starts to be stored in the liver. In the absence of alcohol misuse, this leads to non-alcohol fatty liver disease, which in its mild form is described as steatosis.

The damage caused by lipid overloading leads to hepatocellular damage, inflammation and fibrosis, and the disease transforms to non-alcoholic steatohepatitis (NASH). This progresses to cirrhosis in about 5-8% of patients within five years, and may be complicated by hepatocellular carcinoma and liver failure (Adams and Angulo, 2006). NASH may be secondary to a number of conditions including diabetes, impaired fasting glycaemia, malnutrition, hypertension and obesity.

There are many other less common liver diseases, some of which are in Table 2.

Capture2

Liver function tests

The interpretation of LFTs is complicated: there are few examples of clinical situations where a single blood test is sufficiently reliable to diagnose a precise disease, so practitioners need to gather as much information as possible before making a clinical judgement.

Aspartate aminotransferase (AST) and alanine aminotransferase (ALT)

Increased levels of these enzymes are traditionally seen as markers of damage to liver cells, which could have any one of several causes including infective agents, autoimmune disorders and toxins.

Infections with microbial pathogens all cause an increase in AST and/or ALT, although the latter is better for monitoring viral activity in chronic hepatitis B and C as it is released from damaged hepatocytes more easily.

AST and ALT are found in many non-liver cells, including skeletal and cardiac muscle, so raised levels following a heart attack do not necessarily imply liver disease. Similarly, raised AST is commonly found in haemolytic anaemia as this enzyme is present in red blood cells. Another blood test, lactate dehydrogenase (LDH), can be helpful in confirming the diagnosis of haemolytic anaemia.

Many drugs and toxins can also raise AST and/or ALT levels. These include alcohol, industrial solvents and cholesterol-lowering drugs of the statin class.

Bilirubin

This has been described as the only true LFT, as clearing this potential toxin is a major liver function. Although the most common non-hepatic cause of raised bilirubin is excessive haemolysis, true liver disease, such as Wilson’s disease, may also cause red blood cell destruction and anaemia.

Bilirubin in neonates deserves special mention. The neonatal liver is under-developed and shortly after birth may not be mature enough to process its own bilirubin. This may lead to hyperbilirubinaemia and jaundice, which should normalise within 2-3 days after birth as the liver matures.

Alkaline phosphatase (ALP)

The most common cause of raised ALP is obstruction of the bile duct or its tributaries (cholestasis), commonly caused by gallstones. Primary biliary cirrhosis and pancreatic malignancy also cause an increase in ALP levels.

The major non-hepatic source of plasma ALP is bone, and raised levels are found in the absence of liver disease in patients with metabolic bone disease, such as Paget’s disease. Increased ALP may also be present in a primary or secondary bone cancer (typically metastases from prostate and breast cancer).

Gamma-glutamyl transpeptidase (gamma-GT)

There are numerous hepatic and non-hepatic causes of raised gamma-glutamyl transpeptidase (gamma-GT); it is often present in: cirrhosis or hepatitis; haemochromatosis; HCC; and secondary cancer.

Gamma-GT levels are also influenced by several commonly used drugs, such as phenytoin, barbiturates, carbamazepine and alcohol, which make this test less reliable.

Comparing the LFTs

In paracetamol poisoning, AST needs to be considered alongside bilirubin in assessing prognosis using serial results, perhaps over a period of a week.

If the AST and bilirubin fall in parallel, it suggests hepatic recovery and good prognosis. However, a falling AST with a rising bilirubin indicates critical loss of hepatocytes and a poor prognosis.

The ratio of the aminotransferases can be helpful. An AST:ALT ratio greater than 2:1 implies alcohol misuse because of the release of mitochondrial AST due to damage from alcohol metabolites.

A rise in AST may also be compared with rises in ALP; if AST is higher, this is suggestive of hepatitis. ALP and gamma‑GT often rise and fall together in many conditions, but ALP is the better marker of biliary and bone disease and GGT of alcoholic disease.

Table 3 gives a synopsis of the LFTs.

Capture2

● This article was adapted from: Blann AD (2013) Routine Blood Tests Explained. Keswick: M&K Update.

References:

Adams LA, Angulo P (2006) Treatment of non-alcoholic fatty liver disease. Postgraduate Medical Journal; 82, 315-322.

Cancer Research UK (2014) Twenty Most Common Cancers.

Senousy BE, Draganov PV (2009) Evaluation and management of patients with refractory ascites. World Journal of Gastroenterology; 15, 67-80.

Source

Abbvie completes largest phase III program of an all-oral, interferon-free therapy for the treatment of hepatitis C genotype 1

- NINETY-NINE PERCENT SVR(12) RATES WITH AND WITHOUT RIBAVIRIN IN CERTAIN PATIENT TYPES

- EVEN IN DIFFICULT-TO-TREAT PATIENTS (CIRRHOTIC PATIENTS) ACHIEVED 92-96 PERCENT SVR(12) RATES

- ABBVIE EXPECTS U.S. LAUNCH IN 2014

Jan 31, 2014

NORTH CHICAGO, Ill., Jan. 31, 2014 /PRNewswire/ -- AbbVie (NYSE: ABBV) announced the completion of its phase III clinical program and released results of four additional studies designed to assess AbbVie's investigational all-oral, interferon-free therapy with and without ribavirin (RBV) in patients with chronic genotype 1 (GT1) hepatitis C virus (HCV) infection. These results described below confirm previously reported AbbVie data and further demonstrate high sustained virologic response rates 12 weeks post treatment (SVR12) and tolerability in these GT1 patients.

AbbVie Phase III Clinical Program Results

Study

Patients

Treatment Regimen

SVR12

PEARL-II

(12 weeks)

GT1b treatment-experienced

(N=179)

AbbVie regimen + RBV (n=88)

97%

(85/88)

AbbVie regimen only (n=91)

100%

(91/91)

PEARL-III

(12 weeks)

GT1b treatment-naive

(N=419)

AbbVie regimen + RBV (n=210)

99%

(209/210)

AbbVie regimen only (n=209)

99%

(207/209)

PEARL-IV

(12 weeks)

GT1a treatment-naive

(N=305)

AbbVie regimen + RBV (n=100)

97%

(97/100)

AbbVie regimen only (n=205)

90%

(185/205)

TURQUOISE-II

(12 & 24 weeks)

GT1 treatment-naive 
and treatment-experienced with 
compensated cirrhosis

(N=380)

AbbVie regimen + RBV, 12 weeks (n=208)

92%

(191/208)

AbbVie regimen + RBV, 24 weeks (n=172)

96%

(165/172)

SAPPHIRE-I

(12 weeks)

GT1 treatment-naive

(N=631)

AbbVie regimen + RBV (n=473)

96%

(455/473)

SAPPHIRE-II

(12 weeks)

GT1 treatment-experienced

(N=394)

AbbVie regimen + RBV (n=297)

96%

(286/297)

"The outcomes of AbbVie's comprehensive phase III studies in 2,300 patients across 25 countries demonstrate how our investigational regimen performs across a broad spectrum of genotype 1 patients, including those with compensated liver cirrhosis," said Scott Brun, M.D., vice president, pharmaceutical development, AbbVie. "The high rates of response and tolerability of our regimen, coupled with the low rates of discontinuation are promising."

The AbbVie investigational regimen consists of the fixed-dose combination of ABT-450/ritonavir (150/100mg) co-formulated with ABT-267 (25mg), dosed once daily, and ABT-333 (250mg) with or without ribavirin (weight-based), dosed twice daily. The combination of three different mechanisms of action interrupts the HCV replication process with the goal of optimizing SVR rates across different patient populations. In May of 2013, AbbVie's regimen with and without ribavirin for HCV GT1 was designated as a Breakthrough Therapy by the U.S. Food and Drug Administration (FDA). AbbVie is on track to begin major regulatory submissions early in the second quarter of 2014. AbbVie will disclose detailed study results at future scientific congresses and in publications.

About Study M13-389 (PEARL-II)
PEARL-II is a global, multi-center, randomized, open-label, controlled study to evaluate the efficacy and safety of 12 weeks of treatment with AbbVie's regimen with and without ribavirin in non-cirrhotic, GT1b HCV-infected, treatment-experienced adult patients.

The study population consisted of 179 GT1b treatment-experienced patients with no evidence of liver cirrhosis: 91 patients randomized to the regimen without ribavirin for 12 weeks, and 88 patients randomized to the regimen with ribavirin for 12 weeks. In the ribavirin-free arm, 100 percent (n=91/91) of patients achieved SVR12, while 97 percent (n=85/88) achieved SVR12 in the ribavirin-containing arm.

The most commonly reported adverse events were fatigue and headache. Discontinuations due to adverse events were reported in none of the patients in the ribavirin-free arm and two (2 percent) patients in the ribavirin-containing arm. There were no patients in either arm of the study that experienced virologic relapse or breakthrough.

About Study M13-961 (PEARL-III)
PEARL-III is a global, multi-center, randomized, double-blind, placebo-controlled study to evaluate the efficacy and safety of 12 weeks of treatment with AbbVie's regimen with and without ribavirin in non-cirrhotic, GT1b HCV-infected, treatment-naive adult patients.

The study population consisted of 419 GT1b treatment-naive patients with no evidence of liver cirrhosis: 209 patients randomized to the regimen without ribavirin for 12 weeks, and 210 patients randomized to the regimen with ribavirin for 12 weeks. Following 12 weeks of treatment, 99 percent receiving the regimen without ribavirin (n=207/209) and 99 percent receiving the regimen with ribavirin (n=209/210) achieved SVR12.

The most commonly reported adverse events were headache and fatigue. No patient discontinued study drug due to adverse events. Virologic relapse or breakthrough was noted in none of the patients receiving the regimen without ribavirin and 0.5 percent of patients receiving the regimen with ribavirin.

About Study M14-002 (PEARL-IV)
PEARL-IV is a global, multi-center, randomized, double-blind, placebo-controlled study to evaluate the efficacy and safety of 12 weeks of treatment with AbbVie's regimen with and without ribavirin in non-cirrhotic, GT1a HCV-infected, treatment-naive adult patients.

The study population consisted of 305 GT1a treatment-naive patients with no evidence of liver cirrhosis: 205 patients randomized to the regimen without ribavirin for 12 weeks, and 100 patients randomized to the regimen with ribavirin for 12 weeks. Following 12 weeks of treatment, 90 percent of patients receiving the regimen without ribavirin (n=185/205) and 97 percent receiving the regimen with ribavirin (n=97/100) achieved SVR12.

The most commonly reported adverse events were fatigue, headache and nausea. Discontinuations due to adverse events were reported in two (1 percent) patients receiving the regimen without ribavirin and no patients in the ribavirin-containing arm. Virologic relapse or breakthrough was noted in 8 percent of patients receiving the regimen without ribavirin and 2 percent of patients receiving the regimen with ribavirin.

About Study M13-099 (TURQUOISE-II)
TURQUOISE-II is the first phase III study completed exclusively in GT1 cirrhotic patients investigating an all-oral, interferon-free regimen. It is a global, multi-center, randomized, open-label study evaluating the efficacy and safety of 12 or 24 weeks of treatment with AbbVie's regimen with ribavirin in cirrhotic, GT1a and GT1b HCV-infected, treatment-naive and treatment-experienced adult patients.

The study population consisted of 380 GT1a and GT1b, treatment-naive and treatment-experienced patients with compensated cirrhosis: 208 patients randomized to the regimen with ribavirin for 12 weeks, and 172 patients randomized to the regimen with ribavirin for 24 weeks. Following 12 weeks of treatment, 92 percent of patients (n=191/208) achieved SVR12. Following 24 weeks of treatment, 96 percent of patients (n=165/172) achieved SVR12.

The most commonly reported adverse events were fatigue, headache and nausea. Discontinuations due to adverse events were reported in four (2 percent) patients receiving the regimen with ribavirin for 12 weeks and four (2 percent) patients in the 24-week arm. Virologic relapse or breakthrough was noted in 6 percent of patients in the 12-week arm and 2 percent in the 24-week arm.

Additional information about AbbVie's phase III studies can be found on www.clinicaltrials.gov.

Globally, approximately 160 million people are chronically infected with hepatitis C[1]. AbbVie's multinational HCV program is the largest all-oral, interferon-free clinical program in GT1 patients being conducted to date[2]. GT1 (with subtypes 1a and 1b) is the most prevalent genotype worldwide.

AbbVie's HCV Development Program
The AbbVie HCV clinical development program is intended to advance scientific knowledge and clinical care by investigating an interferon-free, all-oral regimen with and without ribavirin with the goal of producing high SVR rates in as many patients as possible, including those that typically do not respond well to treatment, such as previous non-responders to interferon-based therapy or patients with advanced liver fibrosis or cirrhosis.

ABT-450 was discovered during the ongoing collaboration between AbbVie and Enanta Pharmaceuticals (NASDAQ: ENTA) for HCV protease inhibitors and regimens that include protease inhibitors. ABT-450 is being developed by AbbVie for use in combination with AbbVie's other investigational medicines for the treatment of HCV.

Safety Information for Ribavirin and Ritonavir
Ribavirin and ritonavir are not approved for the investigational use discussed above, and no conclusions can or should be drawn regarding the safety or efficacy of these products for this use.

There are special safety considerations when prescribing these drugs in approved populations.

Ritonavir must not be used with certain medications due to significant drug-drug interactions and in patients with known hypersensitivity to ritonavir or any of its excipients.

Ribavirin monotherapy is not effective for the treatment of chronic hepatitis C virus and must not be used alone for this use. Ribavirin causes significant teratogenic effects and must not be used in women who are pregnant or breast-feeding and in men whose female partners are pregnant. Ribavirin must not be used in patients with a history of severe pre-existing cardiac disease, severe hepatic dysfunction or decompensated cirrhosis of the liver, autoimmune hepatitis, hemoglobinopathies, or in combination with peginterferon alfa-2a in HIV/HCV co-infected patients with cirrhosis and Child-Pugh score ≥ 6.

See approved product labels for more information.

About AbbVie
AbbVie is a global, research-based biopharmaceutical company formed in 2013 following separation from Abbott Laboratories. The company's mission is to use its expertise, dedicated people and unique approach to innovation to develop and market advanced therapies that address some of the world's most complex and serious diseases. AbbVie employs approximately 25,000 people worldwide and markets medicines in more than 170 countries. For further information on the company and its people, portfolio and commitments, please visit www.abbvie.com. Follow @abbvie on Twitter or view careers on our Facebook or LinkedIn page.

Forward-Looking Statements
Some statements in this news release may be forward-looking statements for purposes of the Private Securities Litigation Reform Act of 1995. The words "believe," "expect," "anticipate," "project" and similar expressions, among others, generally identify forward-looking statements. AbbVie cautions that these forward-looking statements are subject to risks and uncertainties that may cause actual results to differ materially from those indicated in the forward-looking statements. Such risks and uncertainties include, but are not limited to, challenges to intellectual property, competition from other products, difficulties inherent in the research and development process, adverse litigation or government action, and changes to laws and regulations applicable to our industry.

Additional information about the economic, competitive, governmental, technological and other factors that may affect AbbVie's operations is set forth in Item 1A, "Risk Factors," in AbbVie's 2012 Annual Report on Form 10-K/A, which has been filed with the Securities and Exchange Commission.

AbbVie undertakes no obligation to release publicly any revisions to forward-looking statements as a result of subsequent events or developments, except as required by law.

[1] Lavanchy D. Evolving epidemiology of hepatitis C virus. Clin Microbiol Infect. 2011; 17(2):107-15.  
[2] Comparison based on review of data from www.clinicaltrials.gov for phase 3a programs of Gilead, BMS and BI as of November 15, 2013.

SOURCE AbbVie

For further information: Media: Elizabeth Hoff, +1 (847) 935-4236, elizabeth.hoff@abbvie.com , or Javier Boix, +1 (847) 937-6113, javier.boix@abbvie.com, Investor Relations: Elizabeth Shea, +1 (847) 935-2211, elizabeth.shea@abbvie.com

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