Showing posts with label Pretransplant HCV Treatment. Show all posts
Showing posts with label Pretransplant HCV Treatment. Show all posts

June 15, 2014

Directly Acting Antivirals (DAAs) for the Treatment of Chronic Hepatitis C Virus Infection in Liver Transplant Patients

American Journal of Transplantation

'A Flood of Opportunity'

E. J. Gane, K. Agarwal

American Journal of Transplantation. 2014;14(5):994-1002.

Abstract and Introduction

Abstract

Chronic hepatitis C virus (HCV) is the leading cause of liver transplantation (LT) in adults. However, infection of the allograft is universal and associated with reduced graft and patient survival. Although successful eradication improves posttransplant outcome, current antiviral therapies have poor efficacy and tolerability. Direct acting antiviral agents (DAAs) provide new opportunities for treatment of HCV recurrence. The addition of a first-generation NS3/4A protease inhibitor (PI) has increased the efficacy of pegylated interferon and ribavirin in patients with chronic HCV genotype 1 infection. Preliminary efficacy results from open-labeled studies of PI-based triple therapy in LT recipients are encouraging. However, the tolerability of triple therapy is reduced following LT, because of increased anemia and drug–drug interactions. The use of PI-based triple therapy in LT recipients seems best suited to larger centers, experienced with management of PI toxicity. Fortunately, other classes of DAAs targeting different steps of HCV replication are in clinical trials, including nucleotide polymerase (NUC-NS5B) inhibitors, nonnucleotide polymerase (non-NUC-NS5B) inhibitors and NS5A inhibitors. Several dual and triple DAA regimens are in clinical development. Phase II studies conducted in patients before and after LT suggest that these regimens will dramatically reduce the impact of recurrent HCV.

Introduction

Chronic hepatitis C virus (HCV) infection is a global epidemic affecting almost 180 million people, with an estimated 3–4 million new infections every year.[1,2] Unfortunately, low treatment uptake combined with an aging HCV-infected cohort effect has resulted in increasing rates of complications. The proportion of the HCV-infected population with established cirrhosis is projected to double over the next decade[3,4] and numbers with hepatocellular carcinoma (HCC) and liver failure will treble by 2030.[5–7] HCV-related liver failure and HCC are already the leading indications for liver transplantation (LT).[8,9]

In a patient with active HCV infection at the time of LT, infection of the allograft is universal at the time of reperfusion. The natural history of HCV is accelerated following LT with 20–40% progressing to cirrhosis within 5 years.[10–12] As a result, graft and patient survival following transplantation for HCV cirrhosis is reduced compared with other elective indications.[13]

The increasing demand for transplantation for HCV-related end-stage liver disease, combined with the negative impact of recurrent HCV on patient and graft survival, has made recurrent hepatitis C the biggest unmet medical need facing LT units.

The primary goal in the management of recurrent HCV is prevention of graft loss through delay or prevention of fibrosis progression. Although several baseline viral, donor and recipient factors are associated with more rapid progression of HCV recurrence, few can be prospectively altered (Table 1). The only intervention that has been demonstrated to improve graft and patient outcomes is successful eradication of HCV infection with antiviral therapy either before or after LT.[14]

Table 1.  Baseline predictors of disease progression

(a.) Pretransplant

Viral Factors

  • High viral load
  • HIV co-infection

Host Factors

  • ↓CD4+, CD8+ responses
  • ↓innate NK/NKT responses
  • Cryoglobulinemia
  • IL-28B genotype

(b.) Posttransplant

Immunosuppression

  • Adjuvant therapy for rejection
  • Rapid weaning of steroids

Pattern of recurrence

  • Cholestatic hepatitis
  • Severe inflammation at 1 year
  • Persistently elevated ALT
  • Early high HCV RNA levels

(c.) Donor

  • Older age
  • Female donor
  • DCD donor
  • Steatosis
  • Diabetes
  • Ischemic time
  • IL-28B genotype

The effectiveness of antiviral therapy against chronic HCV mono-infection has improved dramatically over the past decade, with expected sustained virological response (SVR) rates of almost 75% in previously untreated patients, regardless of genotype. For patients infected with HCV genotype (GT)-2 or -3, the current standard of care is pegylated interferon plus ribavirin (PEG-IFN/RBV) for 24 weeks. For patients infected with HCV GT-1, the addition of one of the two recently approved first-generation protease inhibitors (PIs), telaprevir and boceprevir, to PEG-IFN/RBV for 48 weeks has increased the SVR rate from 45% to 75% and allowed shortened duration of therapy in most patients to 24–28 weeks.

However, these major advances in the treatment of HCV have not delivered a similar impact in the treatment of HCV recurrence. Post-LT patients represent a challenging population with multiple baseline negative predictors for viral response to IFN, including (i) host factors such as non-CC IL-28B genotype which is a negative predictor for response to retreatment with currently licensed; (ii) viral factors such as high prevalence of HCV GT-1 infection and high pretreatment viremia levels 1–2 logs higher than pretransplant, usually exceeding 106 units/mL;[12,15,16] (iii) direct effects of immunosuppression on IFN efficacy through blunting of HCV-specific T cell immune responses.[17,18] The most negative predictor for viral response is lack of tolerability from PEG-IFN/RBV—more than 80% of patients dose reduce and almost 30% cease therapy because of adverse effects. This reflects the co-morbidity spectrum associated with LT encompassing renal dysfunction, cytopenias and diabetes mellitus.

This review focuses on recent advances in antiviral therapy against HCV and their relevance to management of HCV infection before and after LT. We highlight the specific safety and tolerability issues associated with directly acting antiviral agents (DAAs) and summarize the efficacy of these DAA regimens in Phase II studies in these difficult-to-treat patient populations (Figure 1).

824568-fig1

Figure 1. Specific targets of the direct acting antiviral agents.

Current Therapies

SVR rates achieved with PEG-IFN/RBV in LT recipients with recurrent HCV GT-1 are significantly lower than those in non-LT patients. In the US multicenter PROTECT study, which is the largest open-label study to-date of PEG-IFN/RBV for recurrent HCV infection, only 36/125 (29%) patients achieved SVR following 48 weeks therapy.[19] Other studies report SVR rates from 18% to 43% (see Figure 2).[20–22]

824568-fig2

Figure 2. Treatment of recurrent hepatitis C virus infection with pegylated interferon plus ribavirin.

Studies have identified a number of baseline viral and host factors associated with SVR, of which viral genotype non-1 and host IL-28BCC genotype are the strongest predictors (see Table 2). IL-28B encodes for IFN-lambda and modulates host IFN-stimulated gene response to exogenous IFN, with the CC genotype associated with favorable response and SVR. In LT recipients with recurrent HCV, both donor and recipient IL-28B genotypes appear to be important in determining response to PEG-IFN/RBV. The highest rates were achieved when both donor and recipient were matched CC (86%) and lowest SVR rates when both were non-CC (16%).[23,24]

Table 2.  Predictors of response to PEG-IFN/RBV

1. Host factors

  • Younger donor age
  • Lack of severe fibrosis
  • Lack of insulin resistance
  • Donor IL-28B genotype CC
  • Recipient IL-28B genotype CC

2. Viral factors

  • Low pretransplant viremia level
  • Low posttransplant viremia level
  • HCV genotype 2/3
  • Lack of HIV co-infection

3. Treatment-related factors

  • Early on-treatment response
  • Adherence to PEG-IFN and RBV
  • Reduced time since transplant
  • Maintenance cyclosporine

Timing of commencement of antiviral therapy influences the likelihood of response. Several trials of early "preemptive" therapy prior to the onset of established graft fibrosis have reported very poor efficacy and tolerability due to the presence of renal impairment and cytopenias. In the largest randomized study of early preemptive therapy with PEG-IFN/RBV (the PHOENIX study), the rates of histological recurrence, graft loss and death were similar in the active and control groups.[25] Thus, antiviral therapy is best undertaken for established HCV recurrence rather than preemptive therapy. Given the limitations of current therapy, treatment should target those recipients with the greatest chance of response (including HCV GT-2/3 or GT-1/4 with D/R IL-28B CC genotype) and those at highest risk for rapid fibrosis progression, recurrent cirrhosis and graft loss. The most reliable predictor is the presence of moderate histological necroinflammation or fibrosis in the 1-year protocol allograft biopsy.[26–28] Measurement of hepatic venous pressure gradient may also be a valuable tool for predicting disease progression—in one study, the presence of hepatic venous pressure gradient of 6 mmHg or greater at 1 year posttransplant was strongly associated with subsequent hepatic decompensation.[29]

Finally, the choice of maintenance immunosuppression may impact on the outcome of HCV antiviral therapy. Several studies have reported higher SVR rates in patients receiving cyclosporine than in those receiving tacrolimus because of a lower risk of relapse.[30,31] The proposed mechanism is thought to be from a direct antiviral effect of cyclosporine through inhibition of NS5B binding to cyclophillin B.[32] This effect, however, is small, and currently, there is no firm evidence base to recommend switching patients to cyclosporine prior to commencing antiviral therapy.[33]

The development of robust models of HCV replication has driven the development of new classes of therapeutic agents termed DAAs, which are rapidly moving into the clinical arena. Importantly, rapid advances with new DAAs in the clinical trial environment utilizing combinations of different classes seem destined to deliver effective efficacy (approx. 90%) and allow shorter exposure, or indeed no exposure, to PEG-IFN. Since 2011, for patients with HCV GT-1infection, first-generation PIs, telaprevir and boceprevir, in combination with PEG-IFN/RBV is the standard of care in non-LT HCV, offering further improvements in SVR from 40% to 70–75% with shortened viral response guided duration.[34–37]

Initial large clinical trial data sets have now been supplemented by real-life experience in patients with advanced HCV cirrhosis and portal hypertension. The CUPIC (Compassionate Use of Protease Inhibitors in Viral C Cirrhosis) cohort demonstrated a higher rate of serious adverse events (49% telaprevir; 38% boceprevir) and a high rate of discontinuation due to severe adverse events (15% telaprevir; 7% boceprevir).[38] Grade 2 anemia (hemoglobin [Hb] <10.0 g/dL) occurred in approximately 20% of patients receiving telaprevir or boceprevir, while Grade 3/4 anemia (hemoglobin [Hb] <8.0 g/dL) occurred in 10% of patients, despite liberal use of growth factor support and blood transfusion; 71% of patients on telaprevir and 61% of patients on boceprevir had undetectable HCV RNA after 16 weeks of treatment.[39] However, the final SVR rates (40–41%) are sobering and reflect the complexity of PI-based, PEG containing triple therapy in this advanced population with the significant risks of sepsis, hepatic decompensation and death.

At present, the use of PI-based triple therapy cannot be recommended in patients' evidence of borderline decompensation due to a significant additive toxicity profile, with those having an albumin of <30 g/L and platelet count of <100 000/m3 demonstrating a 50% risk of decompensation with PI-based triple therapy.

PI-based triple therapy might play a limited role in patients listed for LT with HCC and compensated HCV cirrhosis. One study, reported in abstract form, treated 20 patients who were awaiting LT with predominately telaprevir, demonstrating 44% had undetectable HCV viral load at 4 weeks rising to 71% at 12 weeks.[40] Triple therapy was discontinued early in 25% of patients and 10% decompensated on treatment but 6/8 remained HCV negative at 12 weeks post-LT, inferring a lack of allograft infection.

Given the increasing impact of recurrent hepatitis C and lack of efficacy of PEG-IFN/RBV, it is not surprising that PI-based triple therapy has been attempted in this post-LT "population of need." Small case series and real life experience have preceded clinical trial data in this population, with SVR efficacy outcomes now reported in predominantly abstract form. Early pharmacokinetic data tempered expectations in the post-LT group. Data on the use of telaprevir in healthy volunteers resulted in a significant increase in cyclosporine (fivefold) and tacrolimus levels (70-fold) due to the inhibition of the cytochrome P450 3A metabolic pathway.[41] Drug–drug interactions remain a significant clinical issue and concern regarding toxicities and risk of rejection given the use of first-generation PIs with PEG-IFN/RBV mandated a cautious approach for clinicians. The required reduction in tacrolimus dosing (80–95%) is greater than that for cyclosporine (50–75%).[42–44]

An early report demonstrated significant drug–drug interactions between calcineurin inhibitors and boceprevir in five patients post-LT. Reduction in cyclosporine dose of 50% and up to 80% reduction in tacrolimus dose were required, steady levels being achieved by 4 days. Follow-up was limited to treatment week 12 but all patients achieved a virological response (≥2 log drop) during this time. Anemia was the more frequent side effect with all patients requiring erythropoietin. Although the numbers are small, this study demonstrated "proof of concept" that the newer DAAs can be used safely with encouraging on-treatment virological response rates.

Individual centers are now reporting their experience with the use of the new PIs in the posttransplant period.[42–48] Several generalizations emerge from the data:

  1. PI-based therapy has only been utilized in HCV patients with established recurrence. Parallel to the non-LT experience, outcomes and safety seem better in those without advanced HCV recurrence. Similarly, toxicity is similar to that reported in non-LT cohorts but with additive anemia, additive complexity in management, increased discontinuation rates and poor tolerability. Increased incidence of sepsis, requirement for dose adjustment and hospitalization is demonstrated. Two multicenter observational reports (US CRUSH-C Group and the European LT Group) both report SVR12 rates of approximately 50% in GT-1 HCV patients.[42,43] Discontinuation rates were observed in 23% of CRUSH-C and 40% European series (which comprised a higher proportion of recipients with more advanced HCV recurrence). Blood transfusion was required in 46% and 35% of patients, respectively. Additionally, mortality associated with sepsis and hepatic decompensation in advanced recurrent HCV post-LT was reported.

  2. Switching patients to cyclosporine appears to be common due to smaller variations in dosing, although tacrolimus-based immunosuppression levels appear to be manageable.[46,48] Meticulous management of immunosuppression with PI-based therapy avoids graft dysfunction and rejection.

  3. The use of a lead in phase with PEG-IFN/RBV informs patient and graft tolerability prior to the additive introduction of PI is widespread.

  4. The number of patients being treated is small. No data are currently available regarding the development of viral resistance and its impact in the post-LT period.

A Phase IIIb study of the use of telaprevir (REPLACE) in stable, noncirrhotic LT patients with GT-1 disease is currently ongoing and will report in early 2014.[49]

Overall, evidence is accruing that PI-based, PEG-IFN containing antiviral therapy is feasible and can deliver SVR, albeit at the price of significant toxicity and requiring intensive and meticulous on-treatment management. Although more effective and better tolerated IFN-free therapies are being developed, at this time, PI-based triple therapy should still be considered for those patients who are at greatest risk of graft loss and who have baseline predictors of response.

Combination DAA Therapy to Treat Established Recurrent Hepatitis C

The poor safety and efficacy of IFN-containing regimens in patients with end-stage liver disease and in LT recipients have hastened the development of IFN-free strategies for the prevention and treatment of recurrent HCV infection.

The HIV treatment paradigm suggests that combining DAAs, which target different steps of viral replication, should provide additive and possibly synergistic antiviral potency, prevent the emergence of DAA resistance and consequently remove the need for IFN. The first IFN-free DAA combinations against HCV consisted of a PI and a non-NUC-NS5B inhibitor—both DAA classes with low barriers to resistance.[50–52] Unfortunately, rapid emergence of dual resistance resulted in high rates of virological breakthrough and relapse, especially in patients infected with HCV subtype 1a and prior null responders to IFN-based therapy.

Fortunately, the addition of a third DAA, an NS5A inhibitor, to a PI and non-NUC NS5B inhibitor (ABT-267/ABT-333-r/ABT-450; daclatasvir/asunaprevir/BMS-791325) prevents the emergence of resistance and improves efficacy to over 90% across all HCV GT-1 patient populations, including those infected with subtype 1a and prior null responders.[53,54] These triple DAA regimens are now in Phase III registration studies for treatment of patients with chronic HCV infection GT-1. However, before they can be used to treat transplant recipients with recurrent HCV infection, extensive drug–drug interaction studies with the calcineurin inhibitors are required because both the PIs and the non-NUC NS5B inhibitors are substrates and inhibitors of CYP-3A4 and Pg-p metabolic pathways.

In contrast to the other DAA classes, the nucleotide polymerase inhibitors (NUCs) appear ideally suited for use following LT. Because these agents do not undergo hepatic metabolism, NUCs do not require dose adjustment in patients with allograft dysfunction and do not interact with calcineurin inhibitors. NUCs are chain terminators of HCV RNA synthesis. The target is the highly conserved catalytic site of the RNA-dependent RNA polymerase, thereby conferring pan-genotypic antiviral potency and a very high barrier to resistance. The uridine-based NUC sofosbuvir (SOF) was recently approved by the US Food and Drug Administration for the treatment of chronic HCV infection GT-1/2/3/5.[55] In Phase III studies in non-LT patients, 24 weeks of SOF plus RBV achieved SVR in 97% patients infected with HCV GT-2 and 85% infected with GT-3.[56–58] This same regimen achieves SVR12 in 55–84% patients with HCV GT-1 infection. No specific toxicities have been observed in more than 3000 patients treated to date.

The addition of an NS5A inhibitor (either daclatasvir or ledipasvir) to SOF increased the SVR rate to 100% across different patient populations including cirrhotic and prior nonresponders to both PEG-IFN/RBV and triple therapy with telaprevir or boceprevir.[59–62]

The efficacy and safety of IFN-free SOF-based regimens in LT recipients with recurrent HCV were confirmed in the published case report of successful rescue of an LT recipient with cholestatic HCV following 24 weeks treatment with SOF plus daclatasvir—an NS5A inhibitor.[63] At the time of treatment initiation, this patient had advanced allograft failure (jaundice, encephalopathy and refractory ascites with Model for End-Stage Liver Disease score of 24). Rapid viral suppression was accompanied by resolution of ascites and recovery of liver synthetic function, and at the time of writing, the patient remains well with normal allograft function and undetectable HCV RNA, more than 2 years posttreatment. Following this remarkable rescue of what had previously been a universally fatal condition, Gilead Sciences instituted a compassionate access program of SOF/RBV for LT recipients with allograft failure from severe recurrent hepatitis C.[64] In the first 44 patients (almost half with fibrosing cholestatic hepatitis C), on-treatment viral suppression was achieved in 78% and SVR in 69%. Virological response was associated with resolution of clinical signs of decompensation. Eight patients died during this study from complications of liver failure, reflecting the severity of liver disease at study entry.

In the first open-label Phase II study, 40 LT recipients with compensated recurrent hepatitis C (all HCV genotypes) were treated with SOF/RBV for 24 weeks.[65] All patients achieved RVR (undetectable HCV RNA at 4 weeks) and 77% achieved posttreatment SVR4.

It is expected that the addition of a second DAA will improve efficacy and shorten the duration of therapy to 12 weeks. Therefore, in the larger follow-on study, 300 patients with both compensated and decompensated recurrent hepatitis C will be randomized to either 12 or 24 weeks of the fixed dose combination of SOF plus the NS5A inhibitor ledipasvir plus RBV.[66] This study is actively recruiting and primary efficacy results are expected in late 2014.

In another open-label Phase II study, 30 LT recipients with compensated recurrent hepatitis C (HCV GT-1 only) are being treated with the AbbVie triple DAA regimen combined with RBV for 24 weeks.[67] Careful adjustment of the calcineurin inhibitor dose will be required because of the inhibition of CYP-3A4 by the ritonavir-boosted PI ABT-450. This study is fully recruited and primary efficacy results are expected in mid-2014.

In the latest open-label Phase II study, 40 patients with compensated recurrent hepatitis C (HCV subtype 1b only) will receive daclatasvir (NS5A inhibitor), combined with simeprevir (PI recently approved by the US Food and Drug Administration in combination with PEG-IFN/RBV) and RBV for 24 weeks.[68] This study has not yet commenced recruitment and primary efficacy results are expected in mid-2015.

Combination DAA Therapy to Prevent Recurrent Hepatitis C

Universal prophylaxis before or at the time of transplant to prevent HCV infection of the allograft is the ultimate goal. SOF-based regimens seem ideal for this purpose because of the excellent tolerability and lack of hepatic metabolism. In a recent landmark study, SOF plus RBV was administered to LT candidates listed with compensated HCV cirrhosis and HCC for 48 weeks or until the day of LT (whichever occurred earlier).[69] Of the 41 who have been transplanted, 65% have remained free from recurrence at least 6 months post-LT. The best predictor of freedom from HCV virological recurrence was the length of time that serum HCV RNA target was not detectable by sensitive PCR assays (target not detected [TND]) prior to transplant. HCV recurred in only 1/24 patients with TND for 30 days and in none if TND for 90 days.

It is hoped that successful HCV eradication in patients with decompensated HCV will rescue many patients from the need for transplantation, analogous to the impact of oral antiviral therapies in decompensated chronic hepatitis B.[70] The rapid viral suppression to undetectable and normalization of alanine aminotransferease observed in the Phase II and III programs of SOF/RBV would suggest that this treatment in patients with decompensated HCV cirrhosis will improve liver synthetic function and remove the need for LT. An ongoing study is now evaluating the safety and efficacy of SOF/RBV in patients with decompensated HCV cirrhosis.[71]

Like NUCs, the NS5A inhibitors have an excellent safety profile and do not undergo hepatic metabolism and both seem ideally suited for use in patients with end-stage liver disease. A study with the fixed dose combination of SOF plus ledipasvir is currently under way.[66] It seems possible that the increased antiviral potency of this combined DAA regimen will improve the likelihood of rescue from transplantation in patients with decompensated cirrhosis.

Although widespread uptake of effective combination DAA therapy should reduce the demand for transplantation for HCV-related liver failure, this may be offset by increasing demand for HCV-related HCC because: (i) there already exists a large population with established cirrhosis at risk for this complication; and (ii) DAA therapy will dramatically reduce end-stage liver disease deaths in this cirrhotic population, thereby increasing the number of patients with cirrhosis who remain at risk for HCC.[72] Longer follow-up of DAA studies in HCV cirrhosis will determine whether successful treatment will result in fibrosis regression and reduction in life-time risk of HCC, as has been observed with hepatitis B virus therapy.[73,74]

Conclusions

HCV cirrhosis remains the leading indication for LT and this demand is projected to double in the next decade. Unfortunately, HCV infection of the allograft is universal and associated with accelerated disease progression with reduced graft and patient survival compared to other transplant indications.

Current antiviral therapy, with a PEG-IFN/RBV component, has limited applicability peri- and post-LT because of poor tolerability and efficacy in these patient populations. The improved efficacy of first-generation PIs, boceprevir and telaprevir, in the treatment of recurrent hepatitis C is offset by increased toxicity in LT recipients, especially anemia, and significant drug–drug interactions, especially with tacrolimus.

In contrast, the NUC-NS5B inhibitors and the NS5A inhibitors lack toxicity and significant drug interactions with either cyclosporine or tacrolimus and seem ideally suited for post-LT treatment of recurrent HCV infection. Recent clinical studies of SOF plus RBV therapy confirm the safety and efficacy of IFN-free DAA therapy before and after LT. Subsequent studies of DAA combinations (SOF plus ledipasvir, or ABT-450/ABT-333/BT-267) are expected to achieve almost 100% response with shorter duration of therapy.

In summary, chronic hepatitis C is both the leading indication for LT and the leading cause of posttransplant graft loss. The poor tolerability of IFN-based therapy in decompensated liver disease has limited pretransplant treatment to well-compensated patients listed for HCC. The primary goal of IFN-based antiviral therapy was to improve posttransplant outcomes through delayed treatment of patients with established recurrence in the allograft. The superior efficacy and tolerability of direct antiviral agents should move the primary goal of antiviral therapy to universal pre-LT prophylaxis in all patients listed with HCV cirrhosis, thus abrogating the impact of HCV allograft infection and improving long-term graft and patient survival. Finally, combination DAA therapy may salvage patients presenting with decompensated HCV cirrhosis, thereby reducing both the demand for LT and the need for re-LT.

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45. de Oliveira Pereira AP, Shin HJ, Safdar A. Post liver transplant therapy with telaprevir for recurrent hepatitis C. Am J Transplant 2012; 12: 430.

46. Kwo P, Ghabril M, Lacerda M, et al. Use of telaprevir plus PEG interferon/ribavirin for null responders post OLT with advanced fibrosis/cholestatic hepatitis C. J Hepatol 2012; 56: S86.

47. Pungpapong S, Murphy J, Henry T, et al. P234-III initial experience utilising telaprevir with peginterferon and ribavirin for treatment of hepatitis C genotype 1 after liver transplantation. Am J Transplant 2012; 12: 430.

48. Coilly A, Roche B, Dumortier J, et al. Safety and efficacy of protease inhibitors to treat hepatitis C after liver transplantation: A multicenter experience. J Hepatol 2014; 60: 78–86.

49. An Efficacy and Safety Study of Telaprevir in Patients With Genotype 1 Hepatitis C Infection After Liver Transplantation (REPLACE). Available at: Clinicaltrials.gov: NCT01571583. Accessed November 20, 2012.

50. Zeuzem S, Soriano V, Asselah T, et al. Faldaprevir and deleobuvir for HCV genotype 1 infection. N Engl J Med 2013; 369: 630–639.

51. Di Bisceglie A, Nelson D, Gane E, et al. VX-22 with TVR alone or in combination with PEG-IFN and RBV in treatment naive patients with chronic HCV GT-1: ZENITH study interim results. J Hepatol 2011; 54: S540.

52. Poordad F, Lawitz E, Kowdley K, et al. 12 Week IFN-free regimen of ABT-450/r+ABT-333+RBV achieved SVR12 in more than 90% of treatment naĆÆve HCV GT-1 infected subjects and in 47% of previous nonresponders. J Hepatol 2012; 56: S549.

53. Kowdley K, Lawitz E, Poordad F, et al. Safety and efficacy of IFN-free regimen of ABT-450/r, ABT-267 and ABT-333 +/− RBV in patients with chronic HCV GT-1 infection. J Hepatol 2013; 58: S2.

54. Everson G, Sims K, Rodriguez-Torres M, et al. Interim analysis of IFN-free and RBV-free regimen of daclatasvir, asunaprevir and BMS-791325 in treatment-naive HCV GT-1 infected patients. J Hepatol 2013; 58: S573.

55. http://www.fda.gov/NewsEvents/Newsroom/PressAnnouncements/ucm377888.htm. Accessed December 6, 2013.

56. Jacobson I, Gordon S, Kowdley K, et al. Sofosbuvir for hepatitis C genotype 2 or 3 in patients without treatment options. N Engl J Med 2013; 368: 1867–1877.

57. Lawitz E, Mangia A, Wiles D, et al. Sofosbuvir for previously untreated chronic hepatitis C infection. N Engl J Med 2013; 368: 1878–1887.

58. Zeuzem S, Dusheiko G, Salupere R, et al. Sofosbuvir+ribavirin for 12 or 24 weeks for patients with HCV genotype 2 or 3: The VALENCE trial. Hepatology 2013; 58: 733A.

59. Sulkowski MS, Gardiner D, Rodriguez-Torres M, et al. Sustained virologic response with daclatasvir plus sofosbuvir±ribavirin (RBV) in chronic HCV genotype (GT) 1-infected patients who previously failed telaprevir (TVR) or boceprevir (BOC). J Hepatol 2013; 58: S570.

60. Gane E, Stedman C, Hyland R, et al. Nucleotide polymerase inhibitor sofosbuvir plus the NS5A inhibitor ledipasvir or the NS5B nonnucleoside inhibitor GS-9669 for hepatitis C genotype 1. Gastroenterology 2013; 146: 736–743.

61. Sulkowski M, Gardiner D, Rodriguez-Torres M, et al. Daclatasvir plus sofosbuvir for previously treated or untreated chronic HCV infection. N Engl J Med 2014; 370: 211–221.

62. Gane E, Stedman C, Symonds W, et al. Once daily PSI-7977 plus RBV: Pegylated interferon-alfa not required for sustained virologic response in treatment-naĆÆve patients with HCV GT2 or GT3. N Engl J Med 2013; 368: 34–44.

63. Fontana R, Hughes E, Bifano M, et al. Sofosbuvir and daclatasvir combination therapy in a liver transplant recipient with severe recurrent cholestatic hepatitis C. Am J Transplant 2013; 13: 1601–1605.

64. Forns X, Fontana R, Moonka D, et al. Initial evaluation of the sofosbuvir compassionate use program for patients with severe recurrent HCV following liver transplantation. Hepatology 2013; 58: 732A.

65. Charlton M, Gane E, Manns M, et al. Sofosbuvir and RBV for the treatment of established recurrent HCV infection after liver transplantation: Preliminary results of a prospective, multicenter study. Hepatology 2013; 58: LB2.

66. A Phase 2, multicenter, open-label study to investigate the safety and efficacy of sofosbuvir/ledipasvir fixed-dose combination+ribavirin administered in subjects infected with chronic HCV who have advanced liver disease or are post-liver transplant. Clinicaltrials. gov: NCT01938430. Accessed November 2013.

67. Open-label, single arm, Phase 2 study to evaluate the safety and efficacy of the combination of ABT-450/ritonavir/ABT-267 (ABT-450/r/ABT-267) and ABT-333 coadministered with ribavirin (RBV) in adult liver transplant recipients with genotype 1 hepatitis C virus (HCV) infection. Available at: Clinicaltrials.gov: NCT01782495. Accessed November 20, 2012.

68. Phase 2, Open-label study to investigate the pharmacokinetics, efficacy, safety, and tolerability of the combination of simeprevir (TMC435), daclatasvir (BMS-790052) and ribavirin (RBV) in subjects with recurrent chronic hepatitis C genotype 1b infection after orthotopic liver transplantation. Available at: Clinicaltrials.gov: NCT01938625. Accessed December 15, 2012.

69. Curry M, Forns X, Chung R, et al. Pretransplant sofosbuvir and ribavirin to prevent recurrence of HCV infection after liver transplantation. Hepatology 2013; 58: 314A.

70. Liaw YF, Sheen IS, Lee CM, et al. Tenofovir disoproxil fumarate (TDF), emtricitabine/TDF, and entecavir in patients with decompensated chronic hepatitis B liver disease. Hepatology 2011; 53: 62–72.

71. A Phase 2, multicenter, open-label, randomized study to investigate the safety and efficacy of GS-7977 and ribavirin administered for 48 weeks in patients infected with chronic HCV with cirrhosis and portal hypertension with or without liver decompensation. Clinicaltrials.gov: NCT01687257. Accessed August 2013.

72. Kim WR, Kongley S, Roberts L, et al. Impact of highly effective antiviral therapy on burden of hepatocellular carcinoma in hepatitis C cirrhosis. J Hepatol 2013; 58: S653.

73. Liaw YF, Sung JJ, Chow WC, et al. Lamivudine for patients with chronic hepatitis B and advanced liver disease. N Engl J Med 2004; 351: 1521–1531.

74. Kim WR, Berg T, Lomba R, et al. Long-term tenofovir therapy and the risk of hepatocellular carcinoma. J Hepatol 2013; 58: S19.

75. Mukherjee S, Rogge J, Weaver L, Schafer DF. Pilot study of pegylated interferon alfa-2b and ribavirin for recurrent hepatitis C after liver transplantation. Transplant Proc 2003; 35: 3042–3044.

76. Abdelmalek MF, Firpi RJ, Soldevila-Pico C, et al. Sustained viral response to interferon and ribavirin in liver transplant recipients with recurrent hepatitis C. Liver Transpl 2004; 10: 199–207.

77. Stravitz R, Shiffman M, Sanyal A, et al. Effects of interferon on liver histology and allograft rejection in patients with recurrent hepatitis C following liver transplantation. Liver Transpl 2004; 10: 850–888.

78. Rodriguez-Luna H, Khatib A, Sharma P, et al. Treatment of recurrent HCV infection after liver transplantation with combination Peg-IFN alpha 2b and ribavirin. Transplantation 2004; 77: 190–194.

79. Castells L, Vargas V, Allende H, et al. Combined treatment with pegylated interferon and ribavirin in the acute phase of HCV recurrence after liver transplantation. J Hepatol 2005; 43: 53–59.

80. Toniutto P, Fabris C, Fumo E, et al. Pegylated versus standard interferon-alfa in antiviral regimens for post-transplant recurrent hepatitis C: Comparison of tolerability and efficacy. J Gastroenterol Hepatol 2005 20: 577–582.

81. Babatin M, Schindel L, Burak K, et al. Peg-IFN alpha 2b and ribavirin for recurrent hepatitis C after liver transplantation. Can J Gastroenterol 2005; 19: 359–365.

82. Oton E, Barcena R, Moreno-Planas J, et al. Hepatitis C recurrence after liver transplantation: Viral and histologic response to full-dose PEG-interferon and ribavirin. Am J Transplant 2006; 6: 2345–2355.

83. Veldt B, Poterucha J, Watt K, et al. Impact of pegylated interferon and ribavirin treatment on graft survival in liver transplant patients with recurrent hepatitis C infection. Am J Transplant 2008; 8: 2426–2433.

84. Reiberger T, Rasoul-Rockenschaub S, Rieger A, et al. Efficacy of interferon in immunocompromised HCV patients after liver transplantation or with HIV co-infection. Eur J Clin Invest 2008; 38: 421–429.

85. Berenguer M, Aguilera V, Prieto M, et al. Worse recent efficacy of antiviral therapy in liver transplant recipients with recurrent hepatitis C. Liver Transpl 2009; 15: 738–746.

Source

April 11, 2014

New Data Reveals Positive Outcomes for Hep C Transplant Patients

London, United Kingdom, Friday 11 April 2014: New research announced at the International Liver CongressTM 2014 today provides new hope for the notoriously difficult-to-treat population of liver transplant patients with recurring hepatitis C (HCV).[1]

As part of a compassionate use program, 104 post-liver transplant patients with recurring HCV who had exhausted all treatment options and had poor clinical prognoses, received sofosbuvir (SOF) and ribavirin (RBV) with pegylated interferon (PEG) included at the physicians’ discretion for up to 48 weeks. Among patients whose clinical outcomes have been reported, 62% achieved SVR12. Additionally, 62% of patients had improvements in clinical conditions associated with hepatic decompensation (e.g., ascites and encephalopathy) and/or improvement in liver function tests. SOF+RBV±PEG was well-tolerated and led to high rates of virologic suppression.

EASL’s European Policy Councillor Professor Patrizia Burra of the Multivisceral Transplant Unit, Padova University Hospital, Padua, Italy said: “There are currently no effective treatment options for this patient group. However, this new trial involving the nucleotide polymerase inhibitor sofosbuvir (SOF) has demonstrated promising results, providing further evidence of its clinical potential.”

“For patients with advanced hepatitis C liver disease, liver transplants offer a second chance,” continued Professor Burra, “and for those who continue to suffer post-surgery, it’s important for us to keep following up all avenues possible to improve their quality of life.”

Other research revealed at the International Liver CongressTM 2014 showed that most patients with mild hepatitis C recurrence diagnosed one year after liver transplant have excellent long-term outcomes.[2]

In the second study, 172 patients who were diagnosed with mild hepatitis C recurrence one year after undergoing liver transplant surgery between 1999 and 2012 were followed for six and a half years with all relevant transplant-related, donor and recipient variables recorded. The cumulative probability of HCV-related graft loss five and 10 years after liver transplant were 3% and 10%, respectively.

However one third of these patients are still at risk of going on to develop cirrhosis, further demonstrating the need for antiviral therapy pre or post-transplant.

Hepatitis C infection is a common cause of liver transplantation, with virus-related diseases comprising 40% of primary indications for liver transplantation in Europe among patients with cirrhosis.[3]

More than 5,500 liver transplantations are currently performed in Europe per year.[3]

Disclaimer: the data referenced in this release is based on the submitted abstract. More recent data may be presented at the International Liver Congress™ 2014.

- Ends -

Notes to Editors

About EASL

EASL is the leading European scientific society involved in promoting research and education in hepatology. EASL attracts the foremost hepatology experts and has an impressive track record in promoting research in liver disease, supporting wider education and promoting changes in European liver policy.

EASL’s main focus on education and research is delivered through numerous events and initiatives, including:

About The International Liver CongressTM 2014

The International Liver Congress™ 2014, the 49th annual meeting of the European Association for the study of the Liver, is being held at ExCel London from April 9 – 13, 2014. The congress annually attracts in excess of 9000 clinicians and scientists from around the world and provides an opportunity to hear the latest research, perspectives and treatments of liver disease from principal experts in the field.

For further information on the studies, or to request an interview, please do not hesitate to contact the EASL Press Office on:

Email: easlpressoffice@cohnwolfe.com

Helena Symeou  +44 7976 562 430

Courtney Lock +44 7894 386 422

1. X.FORNS ET AL. SOFOSBUVIR COMPASSIONATE USE PROGRAM FOR PATIENTS WITH SEVERE RECURRENTHEPATITIS C INCLUDING FIBROSING CHOLESTATIC HEPATITIS FOLLOWING LIVER TRANSPLANTATION. ABSTRACTPRESENTED AT THE INTERNATIONAL LIVER CONGRESS™ 2014

2. M.GAMBATO ET AL. LONG TERM OUTCOME OF MILD HEPATITIS C RECURRENCE AFTER LIVER TRANSPLANTATION: A LARGEPROSPECTIVE STUDY. ABSTRACT PRESENTED AT THE INTERNATIONAL LIVER CONGRESS™ 2014

3. EU BURDEN OF LIVER DISEASE: A REVIEW OF AVAILABLE EPIDEMIOLOGICAL DATA. EUROPEAN ASSOCIATION FOR THE STUDYOF THE LIVER. 2013. HTTP://WWW.EASL.EU/ASSETS/APPLICATION/FILES/54AE845CAEC619F_FILE.PDF ACCESSED 16.02.14.

Source

December 3, 2013

Sofosbuvir for Hepatitis C: Simpler, Shorter, Safer?

William F. Balistreri, MD
December 03, 2013

Aiming for the Ideal Strategy

In 2011, the American Association for the Study of Liver Diseases (AASLD) issued an updated version of its practice guidelines for the treatment of chronic genotype 1 hepatitis C virus (HCV) infection.[1] The current standard-of-care regimens include a protease inhibitor -- telaprevir or boceprevir -- in combination with pegylated interferon (PEG-IFN) and ribavirin. Protease inhibitor-based strategies for patients with genotype 1 HCV have led to high rates of sustained virologic response (SVR); however, there are several recurring concerns.

The disadvantages of IFN treatment are well known. Moreover, this strategy presents a complex and prolonged therapeutic course (24-48 weeks), low tolerability, a low barrier to resistance, and reduced efficacy in prior null responders or cirrhotic patients. These regimens are not an option for many patients because of contraindications or intolerability to IFN.[2-7]

To address these concerns, there has been a massive effort to create the ideal agent or strategy for use in updated therapeutic efforts. The pace of discovery has been unprecedented, and several agents are in the later phases of development. The approach has been to discover drugs that directly target various aspects of the HCV life cycle -- hopefully leading to combinations of agents that will more effectively treat patients, while minimizing intolerable side effects or adverse events.

Sofosbuvir Enters the Fray

A recent article discussed simeprevir, an HCV NS3/4A protease inhibitor. [Editor's note: The US Food and Drug Administration (FDA) approved simeprevir (Olysio™) on November 22, 2013.]

The latest drug to emerge from this effort is sofosbuvir. In late October, an FDA advisory panel recommended the approval of sofosbuvir for the treatment of 2 groups of patients with chronic HCV: previously untreated adults with genotypes 1 and 4 infections (in combination with PEG-IFN and ribavirin) and adults with genotype 2 and 3 infections (in combination with ribavirin alone), which would allow an all-oral, IFN-free treatment for these 2 genotypes.

Sofosbuvir, an orally administered nucleotide analogue inhibitor of the HCV NS5B polymerase, exerts potent antiviral activity against HCV genotypes 1 through 6. This drug is meant to be taken once daily at a dose of 400 mg. Sofosbuvir has been extensively studied in various patient populations in combination with PEG-IFN/ribavirin, as well as with other direct-acting antiviral agents in treatment-naive patients with genotype 1 HCV infection.[8-12]

The FDA advisory committee reviewed primary efficacy and safety data from a series of clinical trials. The data supported the possibility of effectively treating HCV infection with a brief, well-tolerated, all-oral, once-daily regimen that has no known safety issues and no resistance development. Phase 3 trials of sofosbuvir in treatment-naive patients with hepatitis C virus genotypes 1 through 6 demonstrated that patients with genotype 1 infection have excellent treatment response that is superior overall to published response rates for combination therapy and currently available triple therapies. For patients with genotypes 2 and 3, efficacy was similar between an IFN-free sofosbuvir regimen and a standard PEG-IFN/ribavirin regimen.

Evidence for Sofosbuvir

Numerous studies have emerged; a brief overview of a few representative studies of sofosbuvir in combination with other direct-acting antiviral agents is offered here:

  • Sofosbuvir was combined with simeprevir with and without ribavirin; SVR rates of 93%-96% were reported.[11]
  • Sofosbuvir plus the NS5A inhibitor daclatasvir led to SVR at 12 weeks (SVR12) rates of 86%-100%.[13]
  • Ledipasvir is a novel HCV NS5A inhibitor that has shown potent antiviral activity against genotypes 1a and 1b HCV infection.[14,15] It is active against HCV with the S282T mutation, the only variant known to reduce susceptibility to sofosbuvir.[16] All treatment-naive patients and prior null responders (noncirrhotic) who received 12 weeks of sofosbuvir and ledipasvir plus ribavirin achieved high SVR12 rates (95%-100%). Patients treated for 12 weeks had a similar response to patients who received 8 weeks of therapy, suggesting that this shorter treatment strategy might be sufficient for noncirrhotic patients who have not previously been treated for HCV.

In all of these studies, sofosbuvir was well tolerated, with a low incidence of adverse events. In conjunction with the suggested brief duration of this regimen, this indicates that drug combinations should improve treatment adherence compared with IFN-based treatment. Traditional predictors of response, such as IL28B genotype and baseline viral load, do not seem to affect response rates. Other large multicenter trials are under way, designed to address the optimal treatment combination and duration, the need for ribavirin, and the efficacy in patients with compensated cirrhosis in both treatment-naive and previously treated patients.

Data on the Drug

Presentations offered at the AASLD's Liver Meeting 2013 abetted the data submitted to the FDA. Several studies reported pan-genotypic efficacy and safety of sofosbuvir, as well as other potential uses for this agent in various drug combinations and in various populations, including the following:

  • In a phase 3 trial, 12 weeks of sofosbuvir plus ribavirin demonstrated high SVR rates in a predominantly treatment-experienced patient population with genotypes 2 and 3 HCV infection, with higher response rates in patients infected with genotype 2 than in those infected with genotype 3 HCV.[17]
  • In a phase 2, randomized, open-label study, the combination of sofosbuvir plus simeprevir plus ribavirin for 12 or 24 weeks in patients with HCV genotype 1 infection resulted in high SVRs. This study included null responders and patients with cirrhosis.[18]
  • Sofosbuvir plus ledipasvir given in a fixed combination elicited a rapid decline in HCV RNA levels in all patient populations, with no viral breakthrough. In treatment-naive patients with genotype 1 infection and without cirrhosis, a reduction in duration of therapy from 12 to 6 weeks increased the rate of relapse.[19]In genotype 1-infected patients who were prior null responders and had cirrhosis, the addition of ribavirin to sofosbuvir and ledipasvir reduced the rate of relapse.
  • Treatment-naive patients with HCV genotype 2 and 3 who were coinfected with HIV achieved high SVR12 rates with an IFN-free, oral regimen of sofosbuvir plus ribavirin.[20] The SVR12 rates were 76% among patients with HCV genotype 1, 88% among those with genotype 2, and 67% among those with genotype 3; these are similar to the rates observed for patients infected with HCV only. These preliminary data suggest that sofosbuvir plus ribavirin treatment was well tolerated and safe, even with the coadministration of multiple antiretroviral drugs.

A Markov model, developed to evaluate the long-term outcomes of sofosbuvir-based therapy for HCV infection, indicated that regimens incorporating this agent are highly effective in preventing progression to advanced liver disease.[21]

New Opportunities Bring New Challenges

Recurrence of HCV infection is the most common cause of graft loss and mortality in HCV-infected liver transplant recipients. IFN-based post-transplantation antiviral regimens, including those using protease inhibitors, are poorly tolerated and achieve SVRs that are lower than those in nontransplant patients.

Administration of sofosbuvir plus ribavirin after liver transplantation in the setting of established HCV recurrence was well tolerated, and approximately 80% of patients achieved an early SVR at 4 weeks. There were no episodes of rejection or drug interaction, and there was no apparent effect of sofosbuvir on serum levels of immunosuppressive medications, offering the potential for an all-oral therapy for treatment of HCV infection after liver transplantation.[22] Sofosbuvir and ribavirin may, in fact, be used in the pretransplant phase to prevent recurrence of HCV infection after transplantation.[23]

In summary, 2 novel direct-acting antiviral agents -- sofosbuvir and simeprevir -- target various components of the HCV genome. Advantages of these drugs include a high barrier to viral resistance, a shorter duration of treatment, once-daily dosing, absence of food restrictions, few clinically significant drug interactions, and similar efficacy in all genotypes. This will offer clinicians new options as well as new challenges. A recent review addressed some of these anticipated issues, such as the off-label use of HCV medications and the roles of the FDA, consumer pressure, medical society guidelines, and third-party payers.[24]

The availability of these agents will provide unprecedented opportunities for off-label use of these therapies in many patients, including those with decompensated cirrhosis or chronic kidney disease, pediatric populations, and those with HIV coinfection. Because many of these populations represent relatively small numbers of patients with HCV, it may be difficult to accumulate the requisite data and possibly cost-prohibitive for manufacturers to apply for FDA approval.

The bottom line is that simpler, shorter, and safer strategies for treatment of patients infected with HCV are at hand.

References

Source

November 11, 2013

Promising New Era in Hepatitis C Treatment

Medscape Medical News > Conference News

Miriam E. Tucker

November 11, 2013

WASHINGTON, DC — Hepatitis C treatment options on the horizon that hold promise for better viral clearance with less toxicity than current regimens enthused many hepatologists here at The Liver Meeting 2013.

"This is a very exciting time in liver diseases," Greg Fitz, MD, president of the American Association for the Study of Liver Diseases (AASLD), told reporters attending a news conference. "In the past 10 years, a revolution has taken place. Suddenly, it's realistic to think we can cure most patients with hepatitis C."

In October, a US Food and Drug Administration advisory committee voted unanimously to recommend approving the NS5B polymerase inhibitor sofosbuvir (Gilead) and the protease inhibitor simeprevir (Medivir and Janssen) for use in combination with pegylated interferon alfa and ribavirin in select patients infected with hepatitis C.

It is anticipated that both direct-acting antiviral agents will receive approval on December 8.

“This is a very exciting time in liver diseases.”

New data were presented at the meeting for both direct-acting antivirals and for some investigational agents used in combination regimens for patients with genotypes 1 to 4 hepatitis C. Several trials suggest the potential for interferon- and ribavirin-free all-oral regimens for genotypes 2 and 3 hepatitis C, and there is a variety of new combinations for the hard-to-treat genotype 1.

To date, research has shown better sustained viral clearance rates for the new direct-acting antivirals than for current regimens containing interferon and ribavirin (80% vs 50%), and with greater tolerability.

"I think the move away from interferon and toward a high probability of success is remarkably encouraging for all of us," Dr. Fitz told reporters.

The new data "are giving us a peek at what the next incremental steps are likely to be, and those are coming soon," he told Medscape Medical News in an interview before the meeting.

Fast-Paced Change

At the news conference, Dr. Fitz reporters that the AASLD is collaborating with the Infectious Disease Society of America and will launch a Web site in January 2014 to keep clinicians who treat patients with hepatitis C apprised of the rapidly moving field.

Practice guidelines can "take 2 years to develop. In this field at this time, that's too long. If something happens, we want it out there in a couple weeks. It's not going to be guidelines, but it's intended to be current info you can trust," Dr. Fitz explained.

Some key industry-sponsored trials were presented in late-breaking oral abstract sessions or were highlighted by other speakers during state-of-the-art symposia.

An open-label phase 3 study conducted in Japan evaluated Bristol Myers-Squibb's all-oral interferon- and ribavirin-free triple combination of the investigational NS5A replication inhibitor daclatasvir, the NS3 protease inhibitor asunaprevir, and the non-nucleoside NS5B polymerase inhibitor BMS-791325.

The regimen was compared in 135 interferon-ineligible or -intolerant patients with genotype 1b hepatitis C and 87 nonresponders to interferon and ribavirin. Sustained viral response at 24 weeks was better in the ineligible or intolerant group than in the nonresponders (87.4% vs 80.5%). Serious adverse events occurred in 5.9% of patients, and 5.0% discontinued treatment because of adverse events — 90% of which were related to liver enzyme elevation. Bristol Myers-Squibb has filed for regulatory review of the triple therapy in Japan.

A 12-week phase 2b study evaluated the same triple combination in 166 treatment-naĆÆve patients with genotype 1 hepatitis C. Sustained viral response at 12 weeks, considered to be a cure, was achieved in more than 90% of the 15 patients with genotype 1a or 1b and in the 151 with or without cirrhosis.

Studies Abound

In a phase 3 study of another all-oral regimen, sustained viral response at 12 weeks was achieved in 85% of 250 patients with genotype 3 hepatitis C who were treated with Gilead's combination of sofosbuvir plus ribavirin for 24 weeks. The majority of the patients had failed previous therapy.

A Gilead-sponsored 12-week open-label study evaluated the triple combination of sofosbuvir, interferon, and ribavirin. Of the 47 patients with genotype 2 or 3 hepatitis C who had previously failed treatment with interferon and ribavirin, 26 had cirrhosis. Sustained viral response at 12 weeks was achieved by 96% of those with genotype 2 and 83% of those with genotype 3 disease. Adverse events were consistent with the safety profile of interferon and ribavirin without sofosbuvir.

A 2-part open-label phase 2a study involved the interferon-free combination of sofosbuvir plus simeprevir with or without ribavirin in patients with genotype 1 hepatitis C. One study cohort consisted of 80 previous null responders to interferon and ribavirin who had a METAVIR score of F0 to F2; the second cohort consisted of 87 patients who were both treatment-naĆÆve and previous null responders with more severe liver fibrosis (METAVIR score, F3 or F4). Sustained viral response at 12 weeks in the first cohort was 93% without ribavirin and 96% with it.

In the second cohort, rates were 100% for the treatment-naĆÆve patients with or without ribavirin and for the nonresponders without ribavirin. For nonresponders who received ribavirin, the response was 93%.

This is high cost, high-gain therapy for those who respond. Patients can be cured.”

A phase 3 study looked at the investigational combination of faldaprevir, interferon, and ribavirin (Boehringer Ingelheim). In 500 treatment-naĆÆve patients with genotype 1 hepatitis C, sustained viral response at 12 weeks was 72% to 73%, depending on dosage. In treatment-experienced patients, response was 70% in the 99 who had relapsed on previous treatment and 58% in the 57 who had partially responded to previous treatment. Sustained viral response at 12 weeks was 33% in the 145 patients who had not responded at all to previous treatment.

An open-label phase 3 all-oral study of sofosbuvir plus ribavirin evaluated 68 treatment-naĆÆve patients who were coinfected with HIV. Sustained viral response at 12 week rates was 88% for the 26 patients with genotype 2 hepatitis C and 67% for the 42 patients with genotype 3. Most were also on antiretroviral therapy.

In a phase 2 trial of 61 patients infected with hepatitis C who were awaiting liver transplantation, 37 had an undetectable viral load (<25 IU/mL) after 48 weeks of treatment with sofosbuvir and ribavirin. Of those, 62% had an undetectable viral load 12 weeks after transplantation. In a second phase 2 study of 35 patients with established recurrent hepatitis C infection after liver transplantation, 77% responded after 24 weeks of sofosbuvir and ribavirin.

"I think this field is going to have multiple agents and multiple combinations," Dr. Fitz said. "There's absolutely a requirement for an individual doctor and an individual patient to come together. If something fails, you might opt for off-label use, but that's not the same as knowing what works best. Doing the studies is going to be necessary for using these new tools wisely."

He noted that screening is merited to identify more patients and get them into treatment, even though the new treatments are likely to be expensive. "This is high cost, high-gain therapy for those who respond. Patients can be cured. That is a powerful positive that really demands treatment."

These studies are industry funded and many of the investigators have financial relationships with the companies. Dr. Fitz has disclosed no relevant financial relationships.

The Liver Meeting 2013: American Association for the Study of Liver Diseases (AASLD). Presented November 3 and 4, 2013.

Source

November 8, 2013

Hepatitis C Pretreatment Cuts Transplant Infections

Meeting Coverage

Published: Nov 7, 2013 | Updated: Nov 7, 2013

By Michael Smith, North American Correspondent, MedPage Today

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WASHINGTON -- Successful hepatitis C (HCV) treatment before a liver transplant markedly reduced the risk of re-infection, a researcher said here.

Without treatment, HCV re-infection of the transplanted liver is "universal," according to Michael Curry, MD, of Beth Israel Deaconess Medical Center in Boston.

But 64% of patients successfully treated with the investigational agent sofosbuvir along with the standard medication ribavirin remained virus-free 12 weeks after the transplant, Curry reported at the annual meeting of the American Association for the Study of Liver Diseases.

The only predictor for success, he said, was a period of at least 30 days in a row before transplant when HCV could not be detected in the patient.

Curry was also an author on a bookend study, presented earlier at this meeting, that showed that the same agents delivered after transplant can also improve outcomes.

Taken together, the studies hold out hope for HCV patients who need a new liver, commentedMichael Fried, MD, of the University of North Carolina Chapel Hill, who was not part of the study.

Recurrent HCV infection after transplant leads quickly to renewed illness, graft loss, and often death, Fried told MedPage Today. "If you go in viremic, you come out viremic," he said.

Moreover, the post-transplant course of the disease is much faster than it was in the first place, he noted. So "finding strategies to try to prevent re-infection is, of course, very attractive," he said, and transplant specialists are watching these trials with great interest.

Curry reported data on 44 patients who have been transplanted following the drug treatment, of whom 41 had virus below the lower limit of quantification at the time of surgery.

One patient of the 41 has been lost to follow-up and another has not reached the 12-week follow-up after surgery, Curry reported, but of the remaining 39, 25 have undetectable virus.

In a multivariate analysis, the only factor that predicted success, Curry said, was the continuous length of time in the run-up to transplant in which the virus could not be detected.

For each such day, the odds ratio for avoiding re-infection rose 4%, he said -- an odds ratio of 1.042 (95% CI 1.012-1.083, P=0.0007.)

Indeed, of the 25 patients who remain virus-free 12 weeks after transplant, all but five had more than 30 days "target not detected," Curry said.

In contrast, only one patient whose HCV recurred had more than 30 days without the virus being detected.

The study, Fried said, seems to show clearly that: "If you can get people virus-negative for at least 30 days prior to their transplant, they have an extremely low risk of having recurrence."

But he cautioned that the numbers in the study are small and it's "hard to make set judgments on 30 or 40 patients."

But if sofosbuvir is approved, he said, it's very likely that transplant centers will be eager try it out, which will quickly yield better real-world data on outcomes and any possible problems.

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August 21, 2013

Hepatitis C virus: Antiviral therapy in wait-listed patients

Clinical Liver Disease

Volume 2, Issue 4, pages 173–176, August 2013

Review

Asmeen Bhatt M.D., Ph.D.*, Gregory T. Everson M.D.

Article first published online: 19 AUG 2013

DOI: 10.1002/cld.225

Copyright © 2012 the American Association for the Study of Liver Diseases

Abstract

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Recurrent infection with hepatitis C virus (HCV) after liver transplantation (LT) is universal in patients who are viremic at the time of transplantation. Recurrent HCV is associated with reduced graft survival and increased patient mortality.1, 2 Current antiviral treatments for established posttransplant recurrence are characterized by low rates of virological clearance, poor tolerability, cytopenias, infections, drug interactions with immunosuppressants, and a risk of allograft rejection. In addition, allografts are often significantly damaged by HCV by the time of the initiation of antiviral treatment.3 Preventing the recurrence of HCV infection is desirable.

Pretransplant antiviral therapy for wait-listed patients is one strategy for preventing allograft reinfection by HCV. In some cases, achieving a sustained virological response (SVR) might stabilize or reverse the liver disease and potentially prevent the need for LT. However, for most wait-listed patients, the primary goal is rendering the blood free of HCV at the time of transplantation to achieve posttransplant viral clearance, which is defined as HCV RNA being undetectable 12 weeks or more after transplantation [posttransplant viral response (pTVR)]. Achieving pTVR eliminates the risk of recurrence and should preserve graft function, increase graft survival, and improve patient outcomes and survival.4, 5, 6, 7 Despite the potential benefits, the effectiveness of pretransplant treatment is dependent on the potency and tolerability of the antiviral regimen and the severity of the underlying liver disease.

Interferon-Based Treatment

Current treatment options are limited. The standard of care for HCV genotype 1 (GT1) is peginterferon (PEG)/ribavirin (RBV) plus either telaprevir or boceprevir (triple therapy).8, 9, 10, 11, 12 For non-1 genotypes, the standard of care is PEG/RBV alone.13, 14, 15 These treatments are less effective in patients with cirrhosis because of reduced virological responses and poor tolerability.

Patients with HCV on the waiting list exhibit a wide range of disease severity, which affects selection for treatment. Interferon-related side effects, adverse reactions, and serious adverse events occur with greater frequency and severity in patients with decompensated cirrhosis. Patients with high Model for End-Stage Liver Disease (MELD) scores or clinical complications such as ascites, variceal hemorrhage, and encephalopathy are poor candidates because they are at increased risk for serious infections, hepatic decompensation, and even death. Thus, interferon-based treatment is limited to patients with MELD scores < 18 and lesser hepatic impairment, such as potential recipients of living donor grafts and potential recipients of deceased donor grafts with MELD upgrades for hepatocellular carcinoma.

The Low Accelerating Dose Regimen-Adult-to-Adult Living Donor Liver Transplantation Study (LADR-A2ALL) was a randomized controlled trial of PEG/RBV treatment.16 Candidates included HCV patients with either potential living donors or MELD upgrades for hepatocellular carcinoma. Among the treated GT1/genotype 4 (GT4)/genotype 6 (GT6) patients, 23 of 30 received a transplant, and 22% of these patients achieved pTVR. Among the treated genotype 2 (GT2)/genotype 3 (GT3) patients, 21 of 29 received a transplant, and 29% of these patients achieved pTVR. The likelihood of achieving pTVR was related to the duration of treatment: 50% of the patients who received the treatment for >16 weeks achieved pTVR (P = 0.01; Fig. 1). The overall pTVR rate reported in this study (25%) was similar to the rates reported by Everson et al.17 (26%), Forns et al.18 (23%), and Carrión et al.19 (23%). In all of these studies, some treated patients experienced serious, even life-threatening adverse events (mainly infections). Antibiotic prophylaxis to prevent spontaneous bacterial peritonitis is recommended. Patients with cirrhosis frequently have baseline cytopenias that worsen during treatment. In LADR-A2ALL, 75% of the treated patients required an erythropoietin analogue or granulocyte colony-stimulating factor, alone or in combination.16 Eltrombopag can raise platelet counts and potentially improve the chances for SVR, but it carries a risk for portal vein thrombosis and hepatic decompensation.20

nfig001

Figure 1. Results of pretransplant treatment with the low accelerating dose regimen in LADR-A2ALL.16 The likelihood of pTVR was related to the duration of treatment: the pTVR rate was 50% for patients receiving greater than 16 weeks of PEG/RBV. At LTx refers to the HCV RNA status at the time of LT; pTVR indicates undetectable HCV RNA 12 weeks or more after transplantation.

Patients infected with HCV GT1 currently have the option to be treated with triple therapy. The A New Direction in HCV Care: A Study of Treatment-Naive Hepatitis C Patients with Telaprevir (ADVANCE),9 Illustrating the Effects of Combination Therapy with Telaprevir (ILLUMINATE),11 and Serine Protease Inhibitor Therapy-2 (SPRINT-2) studies10 showed that patients with cirrhosis have much higher rates of SVR when they are treated with triple therapy versus PEG/RBV. SVR with triple therapy is also predicted by the responsiveness to interferon. Patients who have interleukin-28b polymorphism CC (versus CT or TT), a greater than 1 log10 drop in HCV RNA during the lead-in with PEG/RBV, or a relapse response to prior PEG/RBV are more likely to achieve SVR when they are treated with triple therapy.8, 9, 10, 11, 12

There is limited information regarding the use of triple therapy in wait-listed patients. Verna et al.21 presented results for 28 HCV GT1 patients awaiting LT. Nine (32%) discontinued treatment because of adverse events, a null response, relapse, hepatic decompensation, or death. Rates for achieving undetectable HCV RNA were 50%, 71%, and 80% at weeks 4, 8, and 12, respectively. Eight patients (28%) underwent LT, and six of them had undetectable HCV RNA after transplantation (pTVR rate = 75%). One patient with pTVR received only 3 weeks of triple therapy. Among the transplant patients, 75% were treatment-experienced, and 88% had hepatocellular carcinoma. There were two deaths: one before transplantation (due to an unknown cause) and one after transplantation (due to sepsis).

This early experience suggests that pretransplant treatment using triple therapy may be more effective than PEG/RBV alone in achieving pTVR in patients with an HCV GT1 infection. However, the treatment is complicated by serious side effects, adverse events, and potentially life-threatening complications. Anemia is a major problem requiring RBV dose reduction, the use of erythropoietin analogues, and blood transfusions.

Abbreviations

1st first-generation drug, 2nd later generation drug, 5aI inhibitor of nonstructural 5A protein, DAA direct-acting antiviral, GT1 genotype 1, GT2 genotype 2, GT3 genotype 3, GT4 genotype 4, GT5 genotype 5, GT6 genotype 6 ,HCV hepatitis C virus, LADR-A2ALL Low Accelerating Dose Regimen-Adult-to-Adult Living Donor Liver Transplantation Study, LT liver transplantation, MELD Model for End-Stage Liver Disease, NI nucleos(t)ide-based inhibitor of nonstructural 5B polymerase, PEG peginterferon, PI inhibitor of nonstructural 3/4A protease, pTVR posttransplant viral response, RBV ribavirin, SOF sofosbuvir, SVR sustained virological response

Emerging Drugs and Interferon-Free Treatment

The next wave of antiviral drugs for HCV may include sofosbuvir (SOF; nonstructural 5b polymerase inhibitor), simeprevir (nonstructural 3/4a protease inhibitor), faldaprevir (nonstructural 3/4a protease inhibitor), and daclatasvir (nonstructural 5a protein inhibitor). These drugs have greater potency, a lower potential for drug-drug interactions, once daily dosing, a shorter duration of therapy, and fewer side effects. The increased tolerability should expand the pool of pretransplant patients who could be candidates for treatment22 (Table 1).

Table 1. Speculations Regarding Future Drug Regimens for Pretransplant Treatment, Timelines, and Potential or Expected SVR or pTVR Rates, Treatment Durations, and Severity of Side Effects

Genotype Year Treatment Options SVR or pTVR Rate (%) Optimum Duration of Treatment (%) Severity of Side Effects
<8 Weeks 8-16 Weeks >16 Weeks
  1. This table was adapted with permission from Clinics in Liver Disease.22 Copyright 2013, Elsevier.

  2. Abbreviations: 1st, first-generation drug; 2nd, later generation drug; 5aI, inhibitor of nonstructural 5A protein; NI, nucleos(t)ide-based inhibitor of nonstructural 5B polymerase; PI, inhibitor of nonstructural 3/4A protease. + shows severity of side effects, where + is minimum and +++++ is maximum side effects.

GT2 or GT3 2013 PEG/RBV 29-50 100 ++++
≥2013 RBV-NI >65 20 80 +
GT1a or GT1b 2013 PEG/RBV 20-25 100  
2013 PEG/RBV + PI-1st 40 80 20 +++++
≥2013 PEG/RBV + PI-2nd 55 80 20 +++
≥2014 PEG/RBV-5aI 55 80 20 +++
≥2014 PEG/RBV-NI >60 100 ++
≥2014 RBV-NI >55 100 +
≥2014 Multi-DAA >60 20 80 ++
GT1b ≥2014 5aI + PI-2nd >60 20 80 +
GT1a >2014 PEG/RBV + 5aI + PI-2nd >60 20 80 ++

GT1 [and GT4, Genotype 5 (GT5), and GT6]

The initial use of SOF, simeprevir, faldaprevir, or daclatasvir in patients infected with HCV GT1, GT4, GT5, or GT6 is likely to be in combination with PEG/RBV. In a trial of treatment-naive patients, 17% of whom had cirrhosis, 12 weeks of SOF/PEG/RBV achieved an SVR rate of 92% in patients without cirrhosis and an SVR rate of 80% in patients with cirrhosis23 (Fig. 2). In studies of simeprevir/PEG/RBV, 85% to 93% of patients had a rapid virological response and qualified for a reduced treatment duration of 24 weeks. Overall, 79% to 81% of patients achieved SVR despite F3/F4 fibrosis in 22% to 31% of the cases (Medivir press releases, December 2012). Clearly, the new drugs offer advantages over both telaprevir and boceprevir: higher potency, ease of dosing, and fewer side effects. However, virological responses may be further impaired in sicker wait-listed patients who have more advanced liver disease.

nfig002

Figure 2. Impact of cirrhosis on SVR with SOF-based treatment.23, 27 Cirrhosis reduces the likelihood of achieving SVR during SOF treatment. This effect of cirrhosis is true whether patients are treatment-naive (GT1 and GT3); interferon-ineligible, intolerant, or unwilling (GT3); or treatment-experienced (GT2 and GT3). The negative impact of cirrhosis on SVR can be at least partially reversed by an extension of the duration of SOF/RBV treatment (GT2 and GT3). P stands for PEG/RBV, % SVR 12 stands for sustained viral response at 12 weeks post treatment. Weeks indicated in the X-axis are duration of total treatment.

Preliminary results with multi direct-acting antivirals (DAAs), interferon-free regimens in HCV GT1 patients without cirrhosis are very encouraging.24, 25, 26 SVR rates approach 100% with few, if any, side effects or adverse reactions. Promising combinations, with or without RBV, include SOF/ledipasvir, SOF/daclatasvir, SOF/simeprevir, daclatasvir/asunaprevir, daclatasvir/asunaprevir/BMS-791325, and ABT-450/r/ABT-333/ABT-267. We must emphasize that none of these regimens has been adequately tested in patients with cirrhosis (particularly decompensated cirrhosis) or in patients on the waiting list for LT.

GT2 and GT3

Three phase 3 trials have examined the efficacy of SOF/RBV in patients infected with HCV GT2 or GT323, 27 (Fig. 2). HCV RNA declines rapidly and is undetectable by week 4 in nearly all patients. Treatment failures are primarily due to relapse without evidence of viral resistance. The reported side effects have been those associated with RBV. Treatment-naive patients with HCV GT2 (even those with cirrhosis) achieved an SVR rate > 90% with 12 weeks of treatment. Treatment-experienced HCV GT2 patients with cirrhosis benefited from an extension of the treatment from 12 to 16 weeks (the SVR rate improved from 60% to 78%). Treatment-experienced HCV GT3 patients with cirrhosis demonstrated the greatest improvement in SVR when the treatment duration was increased from 12 to 16 weeks (the SVR rate increased from 19% to 61%).

This simple all-oral regimen would seem to be ideal as a pretransplant treatment for preventing recurrent infection of the allograft. However, the metabolic derangements and portosystemic shunting of cirrhosis could alter the pharmacokinetics and bioavailability of these drugs and impair efficacy. We anxiously await results from studies of interferon-free combinations of DAAs in cirrhosis and advanced liver disease.

In summary, the era of DAAs for HCV has expanded treatment options for the wait-listed patient. Rates of pTVR after pretransplant treatment have improved with current triple therapy, but the management of side effects and complications remains challenging. Future regimens incorporating interferon-free, multi-DAA treatments should improve the effectiveness and tolerability of pretransplant treatment.

References

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