Showing posts with label Sofosbuvir. Show all posts
Showing posts with label Sofosbuvir. Show all posts

April 25, 2015

Gilead Announces Results From Studies Evaluating Sofosbuvir-Based Regimens in Chronic Hepatitis C Patients With Genotypes 2-5

Gilead

-- High Cure Rates Observed Across a Range of Genotypes --

VIENNA, Austria--(BUSINESS WIRE)--Apr. 25, 2015-- Gilead Sciences, Inc. (Nasdaq: GILD) today announced results from two studies evaluating the safety and efficacy of investigational uses of sofosbuvir-based regimens in chronic hepatitis C virus (HCV)-infected patients with genotypes 2, 3, 4 and 5. Results from the BOSON study of Sovaldi® (sofosbuvir 400 mg) in combination with ribavirin (RBV) or with pegylated interferon (PEG)/RBV demonstrated high cure rates across all patients with genotypes 2 and 3. Separately, results from a Phase 2 study demonstrate the safety and efficacy of Harvoni® (ledipasvir 90 mg/sofosbuvir 400 mg) in patients with genotypes 4 or 5 infection. Data from both studies will be presented in oral sessions at the 50th Annual Meeting of the European Association for the Study of the Liver (The International Liver Congress™ 2015) in Vienna, Austria.

Sovaldi and Harvoni are each approved in the United States for the treatment of chronic HCV infection. Sovaldi is used in combination with other agents and its efficacy has been established in patients with genotypes 1-4; Harvoni is indicated for patients with genotype 1.

BOSON (Study GS-US-334-0153, #LB05), a randomized Phase 3 study of 592 patients, evaluated the safety and efficacy of Sovaldi plus RBV for 16 or 24 weeks compared with Sovaldi plus PEG/RBV for 12 weeks among treatment-naïve or treatment-experienced genotype 3 patients with and without cirrhosis and treatment-experienced genotype 2 patients with cirrhosis. Thirty-seven percent of study participants had cirrhosis.

Among genotype 3 patients, rates of sustained virologic response 12 weeks after treatment (SVR12) were highest among those receiving Sovaldi plus PEG/RBV for 12 weeks (93 percent, n=168/181), compared to those receiving Sovaldi plus RBV for 24 weeks (84 percent, n=153/182) or for 16 weeks (71 percent, n=128/181). Treatment-experienced genotype 3 patients with cirrhosis receiving Sovaldi plus PEG/RBV demonstrated SVR12 rates of 86 percent (30/35).

Genotype 2 patients also demonstrated high SVR12 rates across all treatment arms. SVR12 rates among patients receiving Sovaldi plus PEG/RBV were 94 percent (15/16), and 100 percent (17/17) and 87 percent (13/15) for those receiving Sovaldi plus RBV for 24 and 16 weeks, respectively.

Sovaldi plus PEG/RBV and Sovaldi plus RBV were well tolerated. The most common adverse events in the study were fatigue, headache, insomnia and nausea. Overall, six patients (1 percent) discontinued treatment due to adverse events, one of whom was treated with Sovaldi plus PEG/RBV.

“It remains difficult to achieve a virological response in genotype 3, which is one of the most prevalent genotypes in the world, with higher prevalence in Europe and Asia,” said Graham R. Foster, FRCP, PhD, Professor of Hepatology, The Liver Unit, Queen Mary's University of London, Barts Health, London, United Kingdom. “These results are compelling because they represent the highest cure rates observed among treatment-experienced, cirrhotic genotype 3 patients in any Phase 3 clinical trial to date.”

In a separate open-label Phase 2 study of Harvoni conducted in France (Study GS-US-337-1119, O056), results demonstrated high SVR rates in both treatment-naïve and treatment-experienced patients with chronic HCV genotypes 4 or 5 infection, 50 percent of whom had cirrhosis.

Ninety-three percent of patients with genotype 4 (41/44) and 95 percent of patients with genotype 5 (39/41) achieved SVR12. Response rates were similar among both treatment-naïve and -experienced patients and regardless of cirrhosis.

The most common adverse events (affecting more than 10 percent of patients) were asthenia, headache and fatigue. Most adverse events were mild or moderate in severity and none resulted in treatment discontinuation. There were no grade 3 or 4 clinical laboratory abnormalities.

“HCV genotype 4 and 5 are less prevalent than other genotypes and therefore, have traditionally not been closely studied,” said Armand Abergel, MD, PhD, Department of Hepatology and Gastroenterology, Centre Hospitalier Universitaire-Estaing, Université d'Auvergne, Clermont-Ferrand, France. “These data provide important evidence that the all-oral, ribavirin-free Harvoni regimen is both safe and effective for many patients with genotype 4 or 5, regardless of prior treatment experience.”

The safety and efficacy of these investigational uses of Harvoni and Sovaldi have not been established.

Important Safety Information About Sovaldi

Contraindications

Sovaldi combination treatment with ribavirin or with peginterferon alfa plus ribavirin is contraindicated in women who are pregnant or may become pregnant and men whose female partners are pregnant because of the risk for birth defects and fetal death associated with ribavirin. Contraindications to peginterferon alfa and ribavirin also apply to Sovaldi combination treatment. Refer to the prescribing information of peginterferon alfa and ribavirin for a list of their contraindications.

Warnings and Precautions

Serious Symptomatic Bradycardia When Coadministered with Amiodarone and Another HCV Direct Acting Antiviral (DAA): Amiodarone is not recommended for use with Sovaldi in combination with another DAA due to the risk of symptomatic bradycardia, particularly in patients also taking beta blockers or with underlying cardiac comorbidities and/or with advanced liver disease. In patients without alternative, viable treatment options, cardiac monitoring is recommended. Patients should seek immediate medical evaluation if they develop signs or symptoms of bradycardia.

Pregnancy: Use with ribavirin or peginterferon alfa/ribavirin: Ribavirin therapy should not be started unless a report of a negative pregnancy test has been obtained immediately prior to initiation of therapy. Female patients of childbearing potential and their male partners must use two forms of non-hormonal contraception during treatment and for at least 6 months after treatment has concluded. Routine monthly pregnancy tests must be performed during this time. Refer to the prescribing information for ribavirin.

Use with Potent P-gp Inducers: Rifampin and St. John’s wort should not be used with Sovaldi as they may significantly decrease sofosbuvir plasma concentration, reducing its therapeutic effect.

Adverse Reactions

Most common (≥20 percent, all grades) adverse reactions for:

Sovaldi + peginterferon alfa + ribavirin combination therapy were fatigue, headache, nausea, insomnia, and anemia

Sovaldi + ribavirin combination therapy were fatigue, and headache

Drug Interactions

In addition to rifampin and St. John’s wort, coadministration of Sovaldi is not recommended with carbamazepine, oxcarbazepine, phenobarbital, phenytoin, rifabutin, rifapentine, and tipranavir/ritonavir. Such coadministration is expected to decrease the concentration of sofosbuvir, reducing its therapeutic effect.

Important Safety Information About Harvoni

Warnings and Precautions

Risk of Serious Symptomatic Bradycardia When Coadministered with Amiodarone: Amiodarone is not recommended for use with Harvoni due to the risk of symptomatic bradycardia, particularly in patients also taking beta blockers or with underlying cardiac comorbidities and/or with advanced liver disease. In patients without alternative, viable treatment options, cardiac monitoring is recommended. Patients should seek immediate medical evaluation if they develop signs or symptoms of bradycardia.

Risk of Reduced Therapeutic Effect of Harvoni Due to P-gp Inducers: Rifampin and St. John’s wort are not recommended for use with Harvoni as they may significantly decrease ledipasvir and sofosbuvir plasma concentrations.

Related Products Not Recommended: Harvoni is not recommended for use with other products containing sofosbuvir (Sovaldi).

Adverse Reactions

Most common (≥10 percent, all grades) adverse reactions were fatigue and headache.

Drug Interactions

In addition to rifampin and St. John’s wort, coadministration of Harvoni is also not recommended with carbamazepine, oxcarbazepine, phenobarbital, phenytoin, rifabutin, rifapentine, and tipranavir/ritonavir. Such coadministration is expected to decrease the concentration of ledipasvir and sofosbuvir, reducing the therapeutic effect of Harvoni.

Coadministration of Harvoni is not recommended with simeprevir due to increased concentrations of ledipasvir and simeprevir. Coadministration is also not recommended with rosuvastatin or co-formulated elvitegravir/cobicistat/emtricitabine/tenofovir disoproxil fumarate due to increased concentrations of rosuvastatin and tenofovir, respectively.

Consult the full Prescribing Information for Harvoni for more information on potentially significant drug interactions, including clinical comments.

About Gilead

Gilead Sciences is a biopharmaceutical company that discovers, develops and commercializes innovative therapeutics in areas of unmet medical need. The company’s mission is to advance the care of patients suffering from life-threatening diseases. Gilead has operations in more than 30 countries worldwide, with headquarters in Foster City, California.

Forward-Looking Statement

This press release includes forward-looking statements within the meaning of the Private Securities Litigation Reform Act of 1995 that are subject to risks, uncertainties and other factors, including the risk that Gilead may observe unfavorable results from additional clinical trials involving Sovaldi and Harvoni for various patient populations, including those with genotype 2, 3, 4 and 5 HCV. These risks, uncertainties and other factors could cause actual results to differ materially from those referred to in the forward-looking statements. The reader is cautioned not to rely on these forward-looking statements. These and other risks are described in detail in Gilead’s Annual Report on Form 10-K for the year ended December 31, 2014, as filed with the U.S. Securities and Exchange Commission. All forward-looking statements are based on information currently available to Gilead, and Gilead assumes no obligation to update any such forward-looking statements.

U.S. full Prescribing Information for Sovaldi and Harvoni is available at www.gilead.com.

Sovaldi and Harvoni are registered trademarks of Gilead Sciences, Inc., or its related companies.

For more information on Gilead Sciences, please visit the company’s website at www.gilead.com, follow Gilead on Twitter (@GileadSciences) or call Gilead Public Affairs at 1-800-GILEAD-5 or 1-650-574-3000.

Source: Gilead Sciences, Inc.

Gilead Sciences, Inc.
Sung Lee, +1 650-524-7792 (Investors)
Nathan Kaiser, +1 650-522-1853 (Media)
Michele Rest, +1 650-577-6935 (Media)

Source

April 24, 2015

EMA recommends avoidance of certain hepatitis C medicines and amiodarone together

Press Release

Capture

24/04/2015

Concomitant use may increase risk of slow heart rate and related problems

The European Medicines Agancy (EMA) has confirmed a risk of severe bradycardia (slow heart rate) or heart block (problems with conduction of electrical signals in the heart) when the hepatitis C medicines Harvoni (sofosbuvir with ledipasvir) or a combination of Sovaldi (sofosbuvir) and Daklinza (daclatasvir) are used in patients who are also taking the medicine amiodarone, which is an antiarrhythmic (a medicine used to treat irregular heartbeat).

To manage this risk the Agency recommends that amiodarone should only be used in patients taking these hepatitis C medicines if other antiarrhythmics cannot be given. If concomitant use with amiodarone cannot be avoided, patients should be closely monitored. Because amiodarone persists for a long time in the body, monitoring is also needed if patients start such hepatitis C treatments within a few months of stopping amiodarone.

The recommendations follow a review1 of cases of severe bradycardia or heart block in patients taking amiodarone who started treatment with the hepatitis C combinations. It was considered that there was a likely relationship of these events to the medicines. The possible mechanism behind these effects is unknown and further investigation of other cases with Sovaldi and other hepatitis C medicines is ongoing.

Information for patients

  • A few cases of severe slow heart rate or interference with electrical signals in the heart have been reported in patients taking the medicines Harvoni or Sovaldi plus Daklinza (used to treat hepatitis C, a liver infection) at the same time as the heart medicine amiodarone.
  • Most of these cases occurred within 24 hours of starting the hepatitis C medicine but some occurred after up to 12 days. Two of the patients needed treatment with a pacemaker and one patient died.
  • Patients who need these hepatitis C combinations should not also be given amiodarone unless there is no other suitable alternative.
  • If there is no alternative to giving amiodarone at the same time as the hepatitis C medicine, patients’ heart function must be carefully monitored by the doctor. This may include monitoring in hospital for 48 hours after starting treatment.
  • Because amiodarone remains in the body for a long time, monitoring is also needed when the hepatitis C treatment is given to patients who stopped amiodarone treatment within the last few months.
  • Patients who are taking Harvoni or Sovaldi and Daklinza at the same time as amiodarone, with or without other heart medicines, and who experience symptoms such as slow heartbeat, dizziness, faintness, unusual tiredness, shortness of breath or chest pain during treatment should contact their doctor immediately.
  • Patients who have any concerns about their treatment should discuss them with their doctor or pharmacist.

Information for healthcare professionals

  • Severe bradycardia and heart block have been reported in patients taking amiodarone and Harvoni, or amiodarone and a combination of Sovaldi and Daklinza. Of 8 cases reviewed up to April 2015, one case resulted in fatal cardiac arrest and two required pacemaker intervention.
  • Onset of bradycardia was within 24 hours of initiating hepatitis C treatment in 6 cases and within 2 to 12 days in the other 2 cases. Rechallenge in the context of continued amiodarone treatment resulted in recurrence of symptomatic bradycardia in 2 cases. Recurrence was also seen on rechallenge with the antivirals 8 days after stopping amiodarone, but not 8 weeks after stopping.
  • Amiodarone should only be initiated in patients treated with Harvoni, or Sovaldi plus Daklinza, if other antiarrhythmics are contra-indicated or not tolerated.
  • If concomitant use with amiodarone is unavoidable, patients should be closely monitored, particularly during the first weeks of treatment. Those at high risk of bradyarrhythmia should be monitored in an appropriate clinical setting for 48 hours after starting concomitant treatment.
  • Due to its long half-life, patients who have discontinued amiodarone within the past few months should also be monitored when starting hepatitis C treatment with Harvoni or Sovaldi plus Daklinza.
  • Patients receiving these hepatitis C medicines with amiodarone, with or without other medicines that lower heart rate, should be warned of the symptoms of bradycardia and heart block and should be advised to seek urgent medical advice if they experience them.

The product information for Harvoni, Sovaldi and Daklinza will be updated appropriately. A letter will also be sent to healthcare professionals involved in hepatitis C treatment explaining these risks and the measures to manage them.

Because the number of patients taking amiodarone who have been exposed to Harvoni or Sovaldi in combination with Daklinza is unknown, it is not possible to estimate the incidence of occurrence of these events. The mechanism behind the findings has not been established.

More about the medicine

Harvoni, Sovaldi and Daklinza are among several novel hepatitis C treatments recently evaluated by EMA, which are available as tablets. They have simplified the management of the disease and allow the prospect of curing the infection. Sovaldi (sofosbuvir) was authorised in the EU in January 2014, Daklinza (dataclasvir) in August 2014 and Harvoni (sofosbuvir/ledipasvir) in November 2014.

The active substance sofosbuvir blocks the action of an enzyme called ‘NS5B RNA-dependent RNA polymerase’, while dataclasvir and ledipasvir target a protein called ‘NS5A’; by blocking these targets the medicines stop the hepatitis C virus from multiplying and infecting new cells.

1The review was in the context of a “safety signal”. A safety signal is information on a new or incompletely documented adverse event that is potentially caused by a medicine and that warrants further investigation. The presence of a safety signal does not necessarily mean that a medicine has caused the reported adverse event.

Source

April 23, 2015

Gilead’s Harvoni and Sovaldi Demonstrate Efficacy and Safety among Chronic Hepatitis C Patients with Advanced Liver Disease

-- High Cure Rates in More Than 600 Genotype 1 and 4 Patients With Limited or No Approved Treatment Options --

VIENNA, Austria--(BUSINESS WIRE)--Apr. 23, 2015-- Gilead Sciences, Inc. (Nasdaq: GILD) today announced results from several Phase 2 clinical studies evaluating investigational uses of Harvoni® (ledipasvir 90 mg/sofosbuvir 400 mg) and other Sovaldi® (sofosbuvir 400 mg)-based regimens for the treatment of chronic hepatitis C virus (HCV) infection in patients with advanced liver disease, including patients with decompensated cirrhosis, patients with fibrosing cholestatic hepatitis C (a rare and severe form of the disease following liver transplantation) and patients with portal hypertension. These data will be presented this week at the 50th Annual Meeting of the European Association for the Study of the Liver (The International Liver Congress™ 2015) in Vienna, Austria.

“The patients included in these analyses are among the most difficult to both treat and cure and, until now, have had limited or no treatment options,” said Michael P. Manns, MD, Professor and Chairman, Department of Gastroenterology, Hepatology and Endocrinology, Hannover Medical School, Hannover, Germany. “These data demonstrate that, even among these difficult-to-treat patient groups, sofosbuvir-based oral therapy offers the potential of high cure rates, improves outcomes and is generally well tolerated with a favorable safety profile.”

Harvoni and Sovaldi are each approved in the United States for the treatment of chronic HCV infection. Harvoni is indicated for patients with genotype 1; Sovaldi is used in combination with other agents and its efficacy has been established in patients with genotypes 1-4.

Decompensated and Post-Liver Transplantation

In SOLAR-2 (Study GS-US-337-0124, Oral #G02), 328 genotype 1 or 4 HCV patients with decompensated liver disease before liver transplantation or recurrent HCV infection following liver transplantation were randomized to receive either 12 or 24 weeks of Harvoni plus ribavirin (RBV). Ten patients were excluded from the analysis because of transplantation (n=7) or because they were pre-transplantation, but not decompensated (n=3); an additional 27 of these patients have not yet reached post-treatment week 12. The number and proportion of genotype 1 patients with available data achieving sustained virologic response 12 weeks after treatment (SVR12) are summarized in the table below.

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Of the 32 genotype 4 patients, 27 (84 percent) achieved SVR12. Additionally, among patients with compensated and decompensated cirrhosis before and after liver transplantation, virologic response was associated with improvements in Model for End-Stage Liver Disease (MELD) and CPT scores used to stage end-stage liver disease.

The most common adverse events were fatigue, anemia, nausea and headache. Overall, six patients discontinued treatment due to adverse events, five of whom had decompensated cirrhosis.

Further supporting the safety profile of Harvoni plus RBV among this patient population was data from a pooled safety analysis of 659 patients treated in the SOLAR-1 and SOLAR-2 studies (ePoster #P0774). Both studies evaluated Harvoni plus RBV for 12 or 24 weeks in genotype 1 or 4 HCV patients with decompensated liver disease or recurrent HCV infection following liver transplantation. SOLAR-1 was conducted in the United States, with data presented in November at The Liver Meeting 2014 and SOLAR-2 was conducted in Australia, Canada, Europe and New Zealand. Overall, adverse events were similar to those seen in previous studies, including the Phase 3 ION studies. Fewer than three percent (n=19/659) of patients discontinued due to an adverse event, none of which were attributed to Harvoni treatment. There were a total of 20 deaths in these two studies, none of which was assessed by the investigator as related to study treatment.

Fibrosing Cholestatic Hepatitis C

A further subset of the SOLAR-1 and SOLAR-2 studies (ePoster #P0779) demonstrated 100 percent SVR12 rates among 11 patients who were confirmed to have fibrosing cholestatic hepatitis (FCH), following 12 or 24 weeks of Harvoni plus RBV. FCH is a rare and severe form of recurrent hepatitis that occurs after liver transplantation. It is associated with high morbidity and mortality rates and there are no currently approved treatment options.

Cirrhosis and Portal Hypertension

Study GS-US-334-0125 (ePoster LB #4283) evaluated 50 genotype 1-4 HCV-infected patients with cirrhosis and portal hypertension. Patients were randomized to receive either 48 weeks of Sovaldi plus RBV initially (n=25) or at the conclusion of a 24-week observation period (n=21). Four patients in the observation arm discontinued the study prior to receiving treatment. Of the patients who received treatment with Sovaldi plus RBV, 72 percent (n=33/46) achieved SVR12. A subset of 37 patients had paired hepatic venous pressure gradient (HVPG) measurements at baseline and end of treatment. Of these, 38 percent (14/37) of patients experienced a ≥10 percent reduction and 24 percent (9/37) of patients experienced a ≥20 percent decrease in HVPG from baseline to end of treatment. A baseline total bilirubin of <1.5 mg/dL was associated with a ≥20 percent decrease in HVPG (p=0.03). This study is the first to demonstrate the effect of direct acting antivirals like Sovaldi on HVPG, and additional assessments will be undertaken in these patients one-year post treatment.

The safety and efficacy of these investigational uses of Harvoni and Sovaldi have not been established.

Important Safety Information About Harvoni

Warnings and Precautions

Risk of Serious Symptomatic Bradycardia When Coadministered with Amiodarone: Amiodarone is not recommended for use with Harvoni due to the risk of symptomatic bradycardia, particularly in patients also taking beta blockers or with underlying cardiac comorbidities and/or with advanced liver disease. In patients without alternative, viable treatment options, cardiac monitoring is recommended. Patients should seek immediate medical evaluation if they develop signs or symptoms of bradycardia.

Risk of Reduced Therapeutic Effect of Harvoni Due to P-gp Inducers: Rifampin and St. John’s wort are not recommended for use with Harvoni as they may significantly decrease ledipasvir and sofosbuvir plasma concentrations.

Related Products Not Recommended: Harvoni is not recommended for use with other products containing sofosbuvir (Sovaldi).

Adverse Reactions

Most common (≥10 percent, all grades) adverse reactions were fatigue and headache.

Drug Interactions

In addition to rifampin and St. John’s wort, coadministration of Harvoni is also not recommended with carbamazepine, oxcarbazepine, phenobarbital, phenytoin, rifabutin, rifapentine, and tipranavir/ritonavir. Such coadministration is expected to decrease the concentration of ledipasvir and sofosbuvir, reducing the therapeutic effect of Harvoni.

Coadministration of Harvoni is not recommended with simeprevir due to increased concentrations of ledipasvir and simeprevir. Coadministration is also not recommended with rosuvastatin or co-formulated elvitegravir/cobicistat/emtricitabine/tenofovir disoproxil fumarate due to increased concentrations of rosuvastatin and tenofovir, respectively.

Consult the full Prescribing Information for Harvoni for more information on potentially significant drug interactions, including clinical comments.

Important Safety Information About Sovaldi

Contraindications

Sovaldi combination treatment with ribavirin or with peginterferon alfa plus ribavirin is contraindicated in women who are pregnant or may become pregnant and men whose female partners are pregnant because of the risk for birth defects and fetal death associated with ribavirin. Contraindications to peginterferon alfa and ribavirin also apply to Sovaldi combination treatment. Refer to the prescribing information of peginterferon alfa and ribavirin for a list of their contraindications.

Warnings and Precautions

Serious Symptomatic Bradycardia When Coadministered with Amiodarone and Another HCV Direct Acting Antiviral (DAA): Amiodarone is not recommended for use with Sovaldi in combination with another DAA due to the risk of symptomatic bradycardia, particularly in patients also taking beta blockers or with underlying cardiac comorbidities and/or with advanced liver disease. In patients without alternative, viable treatment options, cardiac monitoring is recommended. Patients should seek immediate medical evaluation if they develop signs or symptoms of bradycardia.

Pregnancy: Use with ribavirin or peginterferon alfa/ribavirin: Ribavirin therapy should not be started unless a report of a negative pregnancy test has been obtained immediately prior to initiation of therapy. Female patients of childbearing potential and their male partners must use two forms of non-hormonal contraception during treatment and for at least 6 months after treatment has concluded. Routine monthly pregnancy tests must be performed during this time. Refer to the prescribing information for ribavirin.

Use with Potent P-gp Inducers: Rifampin and St. John’s wort should not be used with Sovaldi as they may significantly decrease sofosbuvir plasma concentration, reducing its therapeutic effect.

Adverse Reactions

Most common (≥20 percent, all grades) adverse reactions for:

Sovaldi + peginterferon alfa + ribavirin combination therapy were fatigue, headache, nausea, insomnia, and anemia

Sovaldi + ribavirin combination therapy were fatigue, and headache

Drug Interactions

In addition to rifampin and St. John’s wort, coadministration of Sovaldi is not recommended with carbamazepine, oxcarbazepine, phenobarbital, phenytoin, rifabutin, rifapentine, and tipranavir/ritonavir. Such coadministration is expected to decrease the concentration of sofosbuvir, reducing its therapeutic effect.

About Gilead

Gilead Sciences is a biopharmaceutical company that discovers, develops and commercializes innovative therapeutics in areas of unmet medical need. The company’s mission is to advance the care of patients suffering from life-threatening diseases. Gilead has operations in more than 30 countries worldwide, with headquarters in Foster City, California.

Forward-Looking Statement

This press release includes forward-looking statements within the meaning of the Private Securities Litigation Reform Act of 1995 that are subject to risks, uncertainties and other factors, including that Gilead may observe unfavorable results from additional clinical trials involving Sovaldi and Harvoni for various difficult-to-treat patient groups, including patients with decompensated cirrhosis, fibrosing cholestatic hepatitis C and portal hypertension. These risks, uncertainties and other factors could cause actual results to differ materially from those referred to in the forward-looking statements. The reader is cautioned not to rely on these forward-looking statements. These and other risks are described in detail in Gilead’s Annual Report on Form 10-K for the year ended December 31, 2014, as filed with the U.S. Securities and Exchange Commission. All forward-looking statements are based on information currently available to Gilead, and Gilead assumes no obligation to update any such forward-looking statements.

U.S. full Prescribing Information for Sovaldi and Harvoni is available at www.gilead.com.

Sovaldi and Harvoni are registered trademarks of Gilead Sciences, Inc., or its related companies.

For more information on Gilead Sciences, please visit the company’s website at www.gilead.com, follow Gilead on Twitter (@GileadSciences) or call Gilead Public Affairs at 1-800-GILEAD-5 or 1-650-574-3000.

Source: Gilead Sciences, Inc.

Gilead Sciences, Inc.
Sung Lee, +1 650-524-7792 (Investors)
Nathan Kaiser, +1 650-522-1853 (Media)
Michele Rest, +1 650-577-6935 (Media)

Source

April 11, 2015

Hepatitis C virus reinfection after liver transplant: New chances and new challenges in the era of direct-acting antiviral agents

World J Hepatol. 2015 March 27; 7(3): 532-538.

Published online 2015 March 27. doi: 10.4254/wjh.v7.i3.532.

Copyright© The Author(s) 2015. Published by Baishideng Publishing Group Inc. All rights reserved.

Hepatitis C virus reinfection after liver transplant: New chances and new challenges in the era of direct-acting antiviral agents

Kerstin Herzer and Guido Gerken.

Kerstin Herzer, Guido Gerken, Department of Gastroenterology and Hepatology, University Hospital Essen, 45122 Essen, Germany

Kerstin Herzer, Department of General, Visceral, and Transplantation Surgery, University Hospital Essen, 45122 Essen, Germany

Author contributions: Herzer K wrote the manuscript; Gerken G contributed to the substantial supplementing of the manuscript.

Correspondence to: Kerstin Herzer, MD, Associate Professor, Department of Gastroenterology and Hepatology, University Hospital Essen, Hufeland str. 55, 45122 Essen, Germany. kerstin.herzer@uk-essen.de

Telephone: +49-201-7235147 Fax: +49-201-723 3393

Received August 29, 2014; Revised October 21, 2014; Accepted December 16, 2014;

Abstract

The first interferon-free regimens have been approved for the treatment of patients with chronic hepatitis C virus (HCV). In the liver transplant (LT) setting, these regimens are expected to have an important effect, because graft loss due to HCV recurrence is a serious problem after LT. The response to the hitherto conventional treatment with pegylated interferon and ribavirin is poor. The significantly better response rates achieved with boceprevir-based and telaprevir-based triple therapy have led to better graft and patient survival rates, but severe drug interactions with immunosuppressants limit the feasibility of this therapy for LT patients. With the approval of sofosbuvir in January 2014, of simeprevir in May 2014, and of daclatasvir in August 2014, three antiviral agents are now available and promise to be applicable without relevant adverse effects or negative interactions with immunosuppressants. Thus, 2014 marks the beginning of a new era of treatment options for HCV recurrence after LT. Although safety and efficacy studies of several interferon-free regimens for patients with HCV recurrence after LT have achieved good preliminary results, reports of clinical experiences with LT patients are scarce. The lack of randomized studies, the small number of enrolled and carefully selected patients, and the heterogeneity of these studies make the results questionable. Real-life experiences are eagerly awaited so that clinicians can estimate the usefulness and the pitfalls of these new regimens. Additionally, the high costs of these agents may limit their accessibility for many patients. The aim of this review is to summarize the current experience with and the expectations of the new direct-acting antiviral agents for LT patients.

Keywords: Hepatitis C virus, Liver transplant, Interferon, Sofosbuvir, Simeprevir, Daclatasvir

Core tip: In the liver transplant (LT) setting, graft loss due to hepatitis C virus (HCV) recurrence is a serious problem after LT. The former conventional treatment with pegylated interferon and ribavirin is unsatisfying, due to poor response rates and tolerability. With the first interferon-free regimens that are currently being approved for the treatment of patients with chronic HCV, 2014 marks the beginning of a new era of treatment options for HCV recurrence after LT. This review summarizes the current experience with and the expectations of the new direct-acting antiviral agents in the setting of LT.

LIVER TRANSPLANT IN THE SETTING OF CHRONIC HCV INFECTION

Chronic hepatitis C virus (HCV)-induced end-stage liver disease, with or without hepatocellular carcinoma, is still the leading indication for liver transplant (LT), and reinfection of grafts by HCV is the main cause of allograft loss[1,2]. Most patients experience recurrence of HCV infection after LT, and such recurrence can be associated with substantially accelerated cirrhosis of the graft in as many as 30% of patients[3,4]. A subgroup of patients experience fibrotic cholestatic hepatitis (FCH), a severe and extremely aggressive form of HCV recurrence characterized by rapid progression to graft failure and death. Once cirrhosis develops, the annual risk of hepatic decompensation is approximately 40%, and 10% to 25% of patients will die or require retransplantation within 5 years after the first LT[5]. Unfortunately, the outcome of patients undergoing retransplantation is poor, and most transplant centers are reluctant to offer a second LT for patients with cirrhosis of the graft due to HCV reinfection[6,7].

The shortage of donor organs, in conjunction with the accelerated progression of HCV in LT patients, emphasizes the need for effective clinical strategies aimed at treating or preventing HCV recurrence after transplant. Three approaches have been described, according to the timing of treatment: antiviral therapy before LT, which is appropriate only for patients with compensated cirrhosis; preemptive treatment after LT[8]; and treatment of an established reinfection[9]. Thus, after transplant, HCV patients can be treated either immediately with a preemptive approach or with a recurrence-based approach when liver damage is diagnosed. The advantages of preemptive or early treatment after transplant are low serum HCV-RNA levels and no substantial damage to the graft, as determined by histologic studies[10]. Although these factors are positive predictors of a favorable outcome, this therapeutic approach has been difficult to manage because the combination of pegylated interferon (PegIFN) and ribavirin (RBV) is associated with poor tolerability and reduced efficacy[5]. Therefore, the preferred approach to date has been to delay antiviral treatment until histological evidence establishes a diagnosis of HCV-related chronic hepatitis after transplant.

It has been reported that the presence of substantial portal tract fibrosis or of portal hypertension one year after LT are predictors of a higher risk of clinical decompensation and death; therefore, these characteristics help determine which patients urgently need treatment[11]. For patients with FCH, meaning a severe recurrence of HCV early after transplantation, antiviral therapy would be life-saving; however, previous treatment options were unable to eradicate HCV in most cases, with the deleterious consequences of graft loss and death.

PREVIOUS THERAPEUTIC STRATEGIES

Since the discovery of the HCV in 1989[12], the development of effective therapeutic strategies has been hampered by the unavailability of cell-culture and small-animal models for investigating the virus. During the last decades, therapeutic approaches remained limited to unspecific IFN-based regimens with insufficient efficacy. Early trials of IFN monotherapy achieved sustained virologic response (SVR) in fewer than 10% of cases[13]. The introduction of combination therapy with RBV and IFN and the modification of IFN to PegIFN, which can be administered weekly and is associated with improved pharmacokinetics (PK), resulted in higher SVR rates[14]. The PegIFN and RBV dual combination treatment was the standard of care for all HCV genotypes for about 10 years. For many chronically infected patients, this treatment regimen fails to eradicate HCV and is associated with additional adverse effects, and it is even less efficacious for LT patients. The overall rates of SVR with PegIFN plus RBV are low, ranging from 30% to 40% across various reports[5,15]. These poor virologic response rates were mainly due to a high frequency of treatment discontinuation and also dose reduction which became necessary because of poor tolerance or adverse effects[16]. Moreover, as LT recipients are susceptible to hematologic toxicities, especially anemia, RBV dose reductions and the use of erythropoietin are common. Hematologic toxicity necessitates a dose reduction for nearly 70% of patients and early discontinuation of treatment for nearly 30%[16-18]. Moreover, some reports indicate that antiviral therapy may increase the risk of acute graft rejection[19]. The risk of rejection for LT patients ranges from 5% to 10%[20]. However, the probability of survival for patients with SVR after LT is clearly better than that for patients who do not respond to therapy[21].

In May 2011, the first-generation protease inhibitors (PIs), boceprevir (BOC) and telaprevir (TLV), broke this paradigm. The United States Food and Drug Administration approved these drugs for use in association with PegIFN and RBV[16,22]. Both PIs inhibit the same viral protein (NS3/4A) that is crucial for viral replication, and both are active against GT 1 but not against other HCV genotypes. For the other HCV genotypes, PegIFN plus RBV remained the standard of care. Several studies have evaluated the feasibility of these regimens for several hundred LT patients with HCV recurrence[23-26]. About one-third of the patients received BOC and the majority was treated with TLV. Most patients had advanced-stage fibrosis, and approximately half had received at least one previous course of antiviral treatment. The reports described rapid virologic response rates from 53% to 67%, and SVR rates 12 wk after the end of therapy from 48% to 62%[27,28]. While these results were quite encouraging in terms of efficacy, the administration of direct-acting antiviral agents (DAAs) after LT was associated with serious concerns about tolerability and the risk of severe adverse events[24-26]. Indeed, the bone marrow-suppressive effect of TLV and BCV could amplify the anemia, neutropenia, and thrombocytopenia induced by RBV and PegIFN[29]. In addition, TLV and BCV cause severe dermatologic effects, such as generalized pruritus and anorectal disorders[30].

In addition, drug-drug interactions are a serious obstacle of the new antiviral agents. First-generation PIs (TLV, BCV) are not only processed by but also inhibit the CYP3A4 isoenzyme, which is involved in the metabolism of most drugs, including the calcineurin inhibitors (CNIs) cyclosporin A (CSA) and tacrolimus (TAC). BCV has been shown to cause a 2.7-fold increase in the area under the curve (AUC) of CSA and a 17-fold increase in the AUC of TAC, whereas TLV causes a 4.6-fold increase in the AUC of CSA and a 70-fold increase in the AUC of TAC[31,32]. Considering the narrow therapeutic range of CSA and TAC, dose adjustments are of imminent importance, and these drugs must be very closely monitored when they are combined with PIs[27,28,33].

Although the first-generation PIs achieved a substantial improvement in terms of efficacy, their described disadvantages and the fact that IFN is still necessary limit the patient population for which this treatment strategy is appropriate. For particular groups of patients, IFN-based regimens are contraindicated or not applicable or repeatedly failed. Those patients depend on the development of IFN-free regimens.

In this respect, the recent introduction of second-generation DAAs, including PIs, polymerase inhibitors, and nonstructural protein inhibitors has initiated a new era of HCV treatment.

FUTURE THERAPEUTIC STRATEGIES: NEW DAAS AND IFN-FREE REGIMENS AFTER LT

For decades, HCV has successfully escaped from all efforts to generate more efficient drugs, although research efforts have been intense[34]. Viral replication in vitro or in small-animal models could not be achieved, and functional studies were limited to chimpanzees[35-37], what caused an important drawback to DAA development. The ultimate breakthrough for HCV drug development may be dated to establishment of the HCV replicon system, what was not earlier that 1999[34,38]. HCV subgenomes, which compose the nonstructural proteins NS3-NS5 linked to a selectable marker, can efficiently replicate in vitro. A few years later, a full-length isolate of HCV became available which can produce infectious viral particles in vitro[34,39]. The resulting improvement in the understanding of the viral life cycle opened the doors for the development of the first-generation DAAs. Drug development was further supported by structural biology, which has provided high-resolution images of the structures of the virus, revealing additional crucial drug targets, such as NS3, NS5A, and NS5B. These images have allowed modelling of interactions between specific replication inhibitors and their targets[34,40,41].

With the advent of the NS5B polymerase inhibitor sofosbuvir (SFV)[42], the NS3 PI simeprevir (SMV)[43], and the NS5A replication inhibitor daclatasvir (DCV)[44], three “second-wave” DAAs are now available and promise to be appropriate for LT patients, without severe adverse effects or negative interactions with immunosuppressants.

However, reports of trials of IFN-free DAA combinations in patients after LT are still scarce. The combination of SFV and RBV was the first IFN-free regimen to be tested for treating HCV recurrence in a compassionate use program[45]. Preliminary results of the use of this combination for 24 wk with recurrent HCV hepatitis after LT report a high overall SVR rate of almost 80%. The treatment is not only well tolerated but did also achieve a significant improvement in liver function tests and encephalopathy as well as decompensation[16,46]. Importantly, no clinically significant interactions with common immunosuppressants were observed and no episodes of rejection occurred. Overall, the preliminary analysis of experiences with patients in these programs indicate that a SFV-based regimen can inhibit HCV replication in most patients. This impairement of viral load goes in line with an improvement in clinical parameters and condition in the majority of those patients. However, although these results are already very encouraging, longer follow-up periods and a larger number of patients are needed to assess the impact on disease progression[46]. In addition, SFV and RBV have been successfully used to treat FCH[47,48].

In a phase 2, open-label study, 61 patients who were on the waiting list for liver transplant due to HCV cirrhosis were treated with SFV and RBV for up to 48 wk. At the time of LT, 43 patients had HCV RNA below detection levels and 30 patients (70%) had still a negative viral load 12 wk after LT. The most frequently reported adverse events were fatigue, headache and anemia[49].

To date, only a few reports reflect experiences with the use of other IFN-free regimens other than SFV and RBV for LT patients. Fontana et al reported the first patients who were successfully treated with a combination of DCV and IFN or DCV and SFV for 24 wk combatting a severe HCV recurrence after LT[50,51]. In the meantime, several multicentric clinical trials are ongoing to assess the safety and efficacy of several oral DAA combinations for patients with HCV recurrence: (1) ABT450/ABT267/ABT333/RBV for 24 wk (NCT01782495); (2) SMV/DCV for 24 wk (NCT01938625); (3) SFV/RBV for 24 wk (NCT01779518); and (4) SFV/LDV/RBV for 12 or 24 wk (NCT01938430).

It is expected that the approval of these combinations for the use after LT will dramatically change the management and outcome of LT patients[16]. First summary reports implement suggestions for IFN-free treatment regimens for LT patients[52,53]. However, there remain several challenges and uncertainties for the use of IFN-free regimens to treat patients with very aggressive forms of hepatitis C (such as FCH), which occurs very early after transplantation. The pitfall may be the early setting while patients are still taking high doses of immunosuppressants[16]. Therefore, this period bears the risk of opportunistic infections[54]. Moreover, patients are during that period are often recovering from or being treated for surgical complications.

Indeed, the potential interaction of DAAs with CSA, TAC, and other immunosuppressants is an important issue for LT patients. Fortunately, most anti-HCV therapeutics which currently in phase 3 development have been successfully tested for potential interactions with CSA and TAC, at least in healthy volunteers. Co-administration studies in healthy volunteers found no clinically significant interactions with CSA or TAC[16,51].

Another common feature of LT patients is renal failure. Most patients exhibit a low glomerular filtration rate (GFR) because of previous renal damage that is aggravated by the long-term use of CSA or TAC[55]. In some cases, dose adjustments may be necessary and some compounds like SFV may be excluded from application if the GFR is lower than 30 mL/min.

A further issue that requires particular attention is the usually high viral load in patients who underwent LT, most likely due to the immunosuppression[56]. Exorbitantly high viral loads may well be a prerequisite for the selection of drug-resistant strains that may result in a virologic relapse if the appropriate combination of DAAs is not used. Therefore, after LT, resistance testing may become a necessary tool in the choice of the appropriate antiviral combination for the benefit of treatment efficacy and patient outcome[57].

TREATMENT BEFORE OR AFTER LIVER TRANSPLANT?

Treatment of patients while before liver transplant or while they are awaiting LT, respectively, may have several advantages. From the experiences with successful therapy of Hepatitis B, improvement in liver function may also be awaited for HCV clearance, and LT may become unnecessary in some cases. However, safety data and pharmakokinetics are not available for all compounds when administered to patients with cirrhosis classified as Child-Pugh B or C. Early reports suggest that deterioration of liver function is slightly accelerated after the administration of SFV/DCV to patients with decompensated cirrhosis after LT[58]. These observations suggest that treatment immediately after LT may be the better strategy for decompensated and severely sick patients.

Currently still a problem concerning patients awaiting LT is the uncertainty of treatment duration, because the length of time that a patient must remain on the waiting list cannot be predicted[16]. Though we can anticipate that, in the near future, all patients awaiting LT will receive successful treatment with the opportunity to receive LT after clearance of the virus, given the historical course of HBV.

Concerning treatment of HCV infection after LT, a few issues remain to be solved. Safety data as well as PK analyses are needed for this special patient population, particularly for those patients with advanced graft damage.

As well, drug-drug interaction studies are crucial because of the metabolism of CSA and TAC and a therapeutic range which is considerably narrow. This accounts not only for interactions with immunosuppressants but also with other commonly used drugs. Last but not least, a high barrier to resistance is also relevant for the use of direct-acting antivirals, particularly when high serum levels of HCV-RNA are observed[16].

CONCLUSION

Liver transplant due to HCV is a yet unmet challenge and a public health burden. Current developments predict a fundamental change of this situation: a large patient population for whom IFN-based treatment regiments are contraindicated, will now achieve access to potent antiviral therapies. While the use of novel DAA-based regimens in sufficient time before LT will prevent reinfection of the graft with HCV and avoid the need for retransplantation, the successful treatment of already recurred graft infection and damage in immunosuppressed patients after LT will pave the way to make a retransplant feasible. Most importantly, an early enough treatment of HCV patients on the waiting list will stabilize liver function with the consequence that LT will be dispensable in those individuals and HCV-related end stage liver disease can be expected to disappear from the transplant waiting list in the near future.

However, the efficacy of DAAs applied after LT in terms of SVR cannot yet be quantified, nor has their adverse-event profile been ascertained for patients who have undergone LT. In addition, the potential predictors of SVR have not yet been identified. However, the absence of drug- drug interactions between CNIs and DCV, SMV, and SOF, in combination with the so far reported significantly improved SVR rate achieved with these DAAs, offers a promising perspective. Given the potential clinical benefits, more extensive and reliable clinical data about the effects of these new potent HCV inhibitors on patients with recurrence of HCV infection after LT are urgently needed.

One of the remaining difficulties with these new regimens is the huge increase in treatment costs[42]. Affordability could be the pacemaker to set up strategies for personalization of treatment in areas of the world with economic limitations and also in selected patient populations. Some old but in certain cases sufficiently effective regimens using IFN-based regimens may find a niche in those patients with a history of several failed DAA regiments or who harbor multiple resistance-associated variants. While we experience the dusk of IFNs, these substances might stay advantageous for HCV therapy in consideration of features like absence of viral resistances, comparatively low costs and avoidance of drug-drug interactions in patients who are reliant on various concomitant medications.

Footnotes

Open-Access: This article is an open-access article which was selected by an in-house editor and fully peer-reviewed by external reviewers. It is distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/4.0/

Peer-review started: August 29, 2014

First decision: September 30, 2014

Article in press: December 16, 2014

P- Reviewer: Chiang T, Kapoor S, Li ZF, Narciso-Schiavon JL S- Editor: Tian YL L- Editor: A E- Editor: Wu HL

References

Source

June 14, 2014

My Treatment Approach to Chronic Hepatitis C Virus (Genotypes 1–6)

Article in Press

Mitchell L. Shiffman, MD, April G. Long, NP, Amy James, FNP, Phillip Alexander, NP

Published Online: May 24, 2014

DOI: http://dx.doi.org/10.1016/j.mayocp.2014.04.013

Publication stage: In Press Corrected Proof

Abstract

The treatment of chronic hepatitis C virus (HCV) is evolving rapidly. In 2014, the standard of care and new backbone of HCV treatment is the polymerase inhibitor sofosbuvir (SOF). Our treatment approach in patients with HCV genotype 1 is 12 weeks of SOF, peginterferon (PEGINF), and ribavirin (RBV). In patients with cirrhosis or extrahepatic manifestations of HCV who cannot tolerate PEGINF, we use 12 weeks of SOF and simeprevir. The latter is less costly and more effective than SOF and RBV for 24 weeks. Our treatment approach in all patients with genotype 2 is SOF and RBV for 12 weeks. Hepatitis C virus genotype 3 is now the most costly and difficult to cure. Our approach to treatment-naive patients with genotype 3 is SOF and RBV for 24 weeks. In patients who have previously undergone PEGINF and RBV treatment, we use PEGINF, SOF, and RBV for 12 weeks, which is equally if not more effective and less costly than SOF and RBV for 24 weeks. Patients with cirrhosis who cannot tolerate PEGINF should be treated for 24 weeks with SOF and RBV, although the sustained virologic response is suboptimal.

Chronic hepatitis C virus (HCV) affects an estimated 4 million persons in the United States and 300 million personsworldwide.1 In the 1960s through the 1980s, most US patients were infected with HCV through the transfusion of blood products and injection drug use. These patients have been infected for 30 to 50 years, and this is the primary driver for the increasing rates of cirrhosis and hepatocellular carcinoma (HCC) in the United States today.2 Many of these patients are asymptomatic, and the disease remains undiagnosed. The need to identify these patients is why the US Preventive Services Task Force and the Centers for Disease Control and Prevention have recommended that all persons born between 1945 and 1965 be screened for HCV.3, 4

Long-term studies conducted over the past 2 decades have found that a sustained virologic response (SVR) is long-lasting and that HCV can be “cured.”5, 6 Patients who achieve an SVR have improvement in liver histologic features and regression of fibrosis.7, 8 Patients with cirrhosis who achieve an SVR rarely experience hepatic decompensation and have a 10-fold decrease in the risk of HCC and a significant reduction in mortality.9, 10, 11

For the past 15 years, interferon and then peginterferon (PEGINF) have been the backbone of HCV treatment on which ribavirin (RBV) and more recently HCV protease inhibitors have been added.12 In late 2013, the treatment of chronic HCV entered a new era when 2 new oral antiviral agents, simeprevir (SMV) and sofosbuvir (SOF), were approved by the US Food and Drug Administration (FDA). Simeprevir is a protease inhibitor, and its approval by the FDA was based on studies in which it was used with PEGINF and RBV in patients with HCV genotype 1.13 Although SMV inhibits the NS3/4A protease like telaprevir (TPV) and boceprevir (BOC), it is taken only once daily, has fewer adverse effects and drug-drug interactions, and appears to have a somewhat higher SVR rate.14

Sofosbuvir is a polymerase inhibitor that is highly effective in suppressing replication in all HCV genotypes.15 It is also taken once daily and has few drug-drug interactions and minimal adverse effects. Resistance is extremely rare, and SVR rates of over 90% are achieved in most patients with HCV. In 2014, SOF has become the new backbone of HCV treatment.

The treatment of HCV continues to evolve rapidly. Several pharmaceutical companies have developed and are currently testing combinations of oral antiviral agents for HCV (Table 1).16, 17, 18, 19, 20 Two of these treatments have already completed phase 3 clinical trials, and an all-oral antiviral treatment for HCV genotype 1 is expected to be available before the end of 2014. The current dilemma for physicians wanting to treat HCV and patients who want to be cured of this virus is not whether HCV should be treated but rather what agents should be used and when treatment should be initiated. This article summarizes the data that led to the FDA approval of SMV and SOF and describes our treatment approach to patients with chronic HCV in 2014. Given the rapid proliferation of new oral antiviral agent combinations for treatment of HCV, this approach will need to be modified in 2015.

Capture

Simeprevir

Simeprevir is a pangenotypic NS3/4A protease inhibitor that is effective in vitro against HCV genotypes 1 through 6.21 To date, clinical trials have been completed only in patients with genotype 1. A study in patients with HCV genotype 4 is currently under way. Preliminary data from this study suggest that PEGINF, SOF, and RBV could achieve SVR rates approaching 80%.22 Simeprevir is highly effective and has been approved by the FDA for treatment of patients with chronic HCV genotype 1. Simeprevir binds to the same site as TPV and BOC. It has not been studied in patients in whom TPV or BOC treatment failed or resistance to TPV or BOC developed. Given its mechanism of action, it is unlikely to be effective and should not be used in these patients.13

Simeprevir is used as triple therapy with PEGINF and RBV for 12 weeks, followed by an additional 12 weeks of PEGINF and RBV (total duration of therapy, 24 weeks) in all patients who are treatment naive or who have had a relapse while taking PEGINF and RBV, including those with cirrhosis. Approximately 80% of patients achieve a rapid virologic response (RVR), and HCV RNA is undetectable within 4 weeks of initiating treatment. The SVR in these patients is approximately90%.23, 24, 25 As opposed to TPV and BOC, for which the duration of therapy is adjusted on the basis of whether an RVR is achieved, response-guided therapy is not necessary with SMV. In patients who have no response to PEGINF and RBV, 12 weeks of SMV, PEGINF, and RBV is followed by 36 weeks of PEGINF and RBV (total duration of therapy, 48 weeks). The SVR rate in these patients is 53% to 65%.26 All patients with HCV RNA levels greater than 25 IU/mL at weeks 4, 12, or 24 should stop treatment. Although controlled clinical trials comparing the SVR rates of the 3 protease inhibitors have not been conducted, each has been evaluated against a placebo control with PEGINF and RBV. Comparison of the improvement in SVR over control for the 3 protease inhibitors suggests that RVR and SVR rates are somewhat higher with SMV compared with TPV or BOC.13

Simeprevir offers considerable advantages over TPV and BOC, the most important of which is that SMV does not cause additional anemia compared with PEGINF and RBV.23, 24, 25, 26 In phase 2 and 3 clinical trials, patients treated with SMV, PEGINF, and RBV did not have any adverse events with greater frequency than those taking PEGINF and RBV. Simeprevir is taken as a single once-daily tablet, no special diet is required, and far fewer drug-drug interactions have been observed.

The success in patients treated with SMV, like other protease inhibitors, is dependent on an effective interferon response, which is modulated by IL28B genotype.27 In treatment-naive patients, the SVR approaches 90% in patients with IL28BCC genotype and declines in patients with the CT and TT genotypes.23, 24 In patients with a previous nonresponse to PEGINF and RBV, the SVR rates during retreatment with SMV triple therapy follow a similar trend of interferon responsiveness: higher rates of SVR with a previous partial response and lower SVR rates in previous nonresponders.26

The primary limitation of SMV is that a sequence variation at the Q80K loci of HCV significantly limits the antiviral efficacy of this protease inhibitor and reduces SVR to values that are similar to that achieved with PEGINF and RBV.23, 24, 25, 26This sequence variation is present in about 40% of patients with HCV genotype 1a. It is not present in HCV genotype 1b. The FDA has suggested that all patients with genotype 1a undergo resistance testing for the presence of the Q80K sequence variation in HCV and that the physician strongly consider using a treatment other than SMV if this sequence variation is present.

The Q80K sequence variation has the greatest impact and considerably lowers SVR in patients who are genetically less sensitive to PEGINF. In contrast, patients with IL28B CC genotype, who are highly sensitive to interferon, have similar SVR rates regardless of the presence or absence of the Q80K sequence variation.23, 24, 25, 26 We therefore disagree with the FDA recommendations somewhat and strongly believe that patients with HCV genotype 1a and Q80K who haveIL28B CC genotype could be treated successfully with SMV, PEGINF, and RBV. We do not recommend and we do not treat our patients who have HCV genotype 1 with SMV, PEGINF, and RBV. However, if a physician or payer chooses this regimen, our recommendation would be to test those patients with genotype 1a for IL28B genotype. If the patient hasIL28B CC genotype, then no viral resistance testing is necessary. If the patient has IL28B CC or TT genotype, the patient would then need to be tested for Q80K, and if absent, they could also be treated with SMV, PEGINF, and RBV. In contrast, if the patient has IL28B CT or TT genotype and Q80K sequence variation, we would not recommend SMV.

Sofosbuvir

Sofosbuvir is the first polymerase inhibitor to be approved by the FDA for the treatment of chronic HCV.15 It is a nucleotide analogue that inhibits the NS5B polymerase and is effective in all HCV genotypes. Sofosbuvir is incorporated into the growing RNA sequence during replication and acts as a chain terminator. A specific sequence variation in the polymerase, S282T, is resistant to SOF by preventing incorporation of the nucleotide analogue into the growing polypeptide chain. However, this sequence variation also impacts the ability of HCV RNA to elongate with normal nucleotides and is therefore a nonviable sequence variation that cannot persist long-term. Resistance to SOF is therefore extremely uncommon and was not observed in any patient treated in the phase 3 clinical trials.28, 29, 30 Virtually all patients treated with SOF have undetectable HCV RNA within 2 to 4 weeks of initiating treatment, and all patients are treated for a fixed duration (12 or 24 weeks) on the basis of their genotype.

Sofosbuvir was studied as triple therapy with PEGINF and RBV for just 12 weeks in patients with genotypes 1, 4, 5, and6.28 This was a single-arm study with no comparison with PEGINF and RBV. More than 90% of patients treated with SOF triple therapy had undetectable HCV RNA within 2 weeks, and virtually all patients achieved an RVR. The overall SVR rate was 90%; the SVR rate was 89% in patients with genotype 1 and 96% in patients with genotype 4. In patients with cirrhosis, the SVR rate was 80%. All 7 patients with HCV genotypes 5 and 6 achieved an SVR. Sofosbuvir triple therapy has not been evaluated in patients in whom either PEGINF and RBV or triple therapy with a protease inhibitor failed. However, because protease inhibitors and SOF have a completely different site of action, there is no virologic reason why SOF should not be equally effective in patients in whom treatment with a protease inhibitor failed. In treatment-naive patients with HCV genotype 1 who have the least favorable treatment response characteristics—Metavir fibrosis score of F3 or F4, high viral load, IL28B non-CC genotype—the SVR rate with SOF, PEGINF, and RBV was 71%. In contrast, the SVR rate for patients with these characteristics treated with PEGINF and RBV with or without a protease inhibitor is only 3% to 50%. On the basis of these data, the FDA recommended that all patients with chronic HCV genotypes 1 and 4, regardless of treatment history, could be treated with SOF, PEGINF, and RBV for 12 weeks.

The combination of SOF and RBV represents the first interferon-free regimen approved by the FDA to treat patients with chronic HCV. Sofosbuvir and RBV were studied in 4 clinical trials in patients with genotypes 2 and 3.28, 29, 30 In patients with HCV genotype 2, SOF and RBV for only 12 weeks yielded superior SVR rates compared with PEGINF and RBV for 24 weeks. In patients without cirrhosis, SOF and RBV achieved SVR rates of 90% to 97%. In patients with cirrhosis, the SVR ranged from 60% to 94%. The lowest SVR in patients with genotype 2 was observed in a single study that included only 10 patients in whom previous treatment with PEGINF and RBV had failed.29 Extending the duration of SOF and RBV from 12 to 16 weeks in this study yielded an SVR of 78%. Excluding this one study, the SVR in patients with cirrhosis was 90%. The overall SVR rate for all patients with cirrhosis included in all 4 registration studies was 84%; in patients with cirrhosis and previous PEGINF and RBV treatment, the SVR was 82%. On the basis of these data, the FDA recommended that all patients with genotype 2 could be treated with SOF and RBV for 12 weeks.

In patients with genotype 3, treatment with SOF and RBV for 12 weeks yielded an SVR rate of only 61% to 68% in treatment-naive patients without cirrhosis and 21% to 34% in patients with cirrhosis.28, 29, 30 These SVR rates are somewhat lower, or at best similar, to that observed with 24 weeks of PEGINF and RBV. In patients in whom previous PEGINF and RBV therapy failed, 12 weeks of SOF and RBV yielded SVR rates of only 19% and 37% in patients with and without cirrhosis, respectively. Extending the duration of SOF and RBV to 16 weeks in patients with previous PEGINF and RBV failure did not significantly change the SVR in patients without cirrhosis but increased the SVR in patients with cirrhosis to 61%. The highest SVR rates in patients with genotype 3 were observed when the duration of SOF and RBV was extended to 24 weeks. In the treatment-naive population, the SVR rate was 92% to 93% in patients with or without cirrhosis. In patients in whom previous treatment with PEGINF and RBV failed, 24 weeks of SOF and RBV achieved an SVR rate of 85% in patient without cirrhosis but only 60% in patients with cirrhosis.30 On the basis of these data, the FDA recommended that all patients with HCV genotype 3 could be treated with SOF and RBV for 24 weeks.

Sofosbuvir and RBV were also studied in patients with genotypes 1, 2, and 3 who had coinfection with human immunodeficiency virus (HIV).31 The duration of treatment was 24 weeks for patients with genotypes 1 and 3 and 12 weeks for patients with HCV genotype 2. Sustained virologic response rates of 76%, 88%, and 92% were observed for patients with genotypes 1, 2, and 3, respectively. This study led the FDA to approve SOF and RBV for the treatment of HCV in patients coinfected with HIV. This represents the first antiviral agent to be approved for treatment of HCV-HIV coinfection. The results of this study supported the FDA recommendation to use SOF and RBV for 24 weeks in patients with HCV genotype 1 who had intolerance or contraindications to the use of PEGINF.

Sofosbuvir and RBV have also been studied without PEGINF in patients with HCV and HCC awaiting liver transplant and in patients with post–liver transplant HCV recurrence. The pretransplant HCC study patients who met criteria for the MELD exception were treated with SOF and RBV up until the time they underwent liver transplant.32 Treatment was stopped at the time of the transplant. Overall, 64% of patients did not have HCV recurrence after the transplant. In patients with undetectable HCV RNA for at least 30 days before undergoing transplant, 95% did not experience HCV recurrence. These data led the FDA to approve SOF and RBV for use in patients with HCC awaiting liver transplant.

Two studies have been conducted in the post–liver transplant population.33, 34 One study included patients with stable normal graft function at least 6 months after transplant.33 These patients were treated with SOF and RBV for 24 weeks. Of the 40 patients in this study, 83% had genotype 1. All patients had undetectable HCV RNA within 4 weeks of initiating SOF and RBV. Only data on HCV RNA undetectable 4 weeks after stopping treatment (SVR-4) are available to date, but this level was achieved in 77% of the patients. The other posttransplant study was a compassionate use program for patients with severe HCV recurrence after transplant.34 Most of these patients had either fibrosing cholestatic hepatitis within the first year or had development of decompensated recurrent cirrhosis 2 or more years after their transplant. Of the 20 patients treated with SOF and RBV for 24 weeks, all had undetectable HCV RNA, 64% had clinical improvement, and 60% achieved an SVR; 30% of patients died of complications of their advanced liver disease despite achieving a virologic response.

Sofosbuvir is an extremely safe antiviral agent with minimal adverse effects.15 In a study in which SOF and RBV were compared with placebo in patients who could not take PEGINF and RBV, the only adverse effects occurring more frequently with SOF and RBV than with placebo were anemia and pruritus, both of which were attributed to RBV.29 In the 5 phase 3 clinical trials, the drop-out rate due to adverse events was greatest in the placebo-treated group (4%); the drop-out rate was only 2% in patients treated with PEGINF, SOF, and RBV for 12 weeks and less than 1% in all SOF and RBV treatment groups.

Combining SOF and SMV in Patients With Genotype 1

The combination of SOF and SMV for either 12 or 24 weeks with or without RBV has been evaluated in 167 patients with HCV genotype 1.35 No single arm of this 2-cohort, 4-arm study had more than 54 patients, and only SVR-4 data are currently available for half the patients. However, the results are extremely noteworthy. Sustained virologic response rates of 93% to 100% were observed in all but one of the groups regardless of whether patients were treated for 12 or 24 weeks and whether they received RBV or not. The lowest SVR (79%) was observed in the group treated with SOF, SMV, and RBV for 24 weeks in which 4 patients had nonvirologic failure. All 14 patients with cirrhosis achieved SVR-4 within just 12 weeks of initiating SOF and SMV. Of the 7 patients with cirrhosis and previous nonresponse, all achieved SVR. In patients with genotype 1a and the Q80K sequence variation, the SVR rate was 90%. In patients without this sequence variation, the SVR rate was 100%.

Adding PEGINF to SOF and RBV in Patients With Genotype 3

Of all patients with HCV, those with genotype 3 have the most difficulty achieving a cure. Many believe this is difficulty is related to the much higher hepatic content of micovesicular steatosis that is unique to patients with HCV genotype 3.36Sustained virologic response in patients with genotype 3 is also negatively impacted by previous nonresponse to PEGINF and RBV. In patients without cirrhosis, a previous nonresponse to PEGINF and RBV is associated with a reduction in SVR from 93% to 85%, and in those with cirrhosis, the SVR is reduced from 92% to 60%.28, 29, 30 This negative impact of previous PEGINF and RBV treatment is also observed in patients with genotype 2 but to a far lesser extent. In patients with genotype 2 who have previously undergone PEGINF and RBV treatment, the SVR in response to SOF and RBV is reduced from 97% to 91% in those without cirrhosis and from 100% to 88% in those with cirrhosis.

The SVR in patients with HCV genotype 3, especially patients previously treated with PEGINF and RBV, appears to be enhanced by adding PEGINF to SOF and RBV.37 In a small study of only 24 patients with genotype 3 and previous nonresponse to PEGINF and RBV (half of whom had cirrhosis), 12 weeks of treatment with PEGINF, SOF, and RBV yielded an SVR of 83% in patients with and without cirrhosis. In the same study, 14 patients with HCV genotype 2, cirrhosis, and previous nonresponse to PEGINF and RBV achieved an SVR of 93% when re-treated with PEGINF, SOF, and RBV.

Our Treatment Approach

In January 2014, a joint guideline for treating HCV was issued by the American Association for the Study of Liver Diseases and the Infectious Diseases Society of America.38 These recommendations and the FDA recommendations for use of SOF39 are summarized in Table 2. Our treatment approach to chronic HCV at the Liver Institute of Virginia in 2014 is based on the available data and focuses on maximizing SVR while also respecting the cost of treatment (Table 2). In several situations, we believe the American Association for the Study of Liver Diseases/Infectious Diseases Society of America treatment guidelines are overly aggressive, are too costly, and have no clinical trial data to substantiate the recommendation.

Table 2 2014 Treatment Recommendations for Patients With HCV

Variable AASLD/IDSA FDA LIV
Genotype 1: Treatment naive and prior PEGINF and RBV relapse
INF tolerant, no cirrhosis or compensated cirrhosis PEGINF, SOF, and RBV for 12 wk
INF intolerant, no cirrhosis SOF and SMV ± RBV for 12 wk SOF and RBV for 24 wk Defer treatment
INF intolerant, cirrhosis     SOF and SMV for 12 wk
Genotype 1: Prior PEGINF and RBV nonresponse
INF tolerant, no cirrhosis or compensated cirrhosis SOF and SMV ± RBV for 12 wk PEGINF, SOF, and RBV for 12 wk
INF intolerant, no cirrhosis SOF and SMV ± RBV for 12 wk SOF and RBV for 24 wk Defer treatment
INF intolerant, cirrhosis     SOF and SMV for 12 wk
Genotype 1: Prior treatment with PEGINF, RBV, and TPV or BOC
INF tolerant, no cirrhosis or compensated cirrhosis SOF for 12 wk, PEGINF and RBV for 12-24 wk PEGINF, SOF, and RBV for 12 wk
INF intolerant, no cirrhosis NR SOF and RBV for 24 wk Defer treatment
INF intolerant, cirrhosis     SOF and SMV for 12 wk
Genotype 2
Treatment naive or PEGINF-RBV relapse, no cirrhosis or compensated cirrhosis SOF and RBV for 12 wk SOF and RBV for 12 wk SOF and RBV for 12 wk
Prior PEGINF-RBV nonresponse, no cirrhosis SOF and RBV for 12 wk    
Prior PEGINF-RBV nonresponse, cirrhosis SOF and RBV for 12-16 wk    
Genotype 3
Treatment naive SOF and RBV for 24 wk SOF and RBV for 24 wk SOF and RBV for 24 wk
Prior PEGINF-RBV, INF tolerant, no cirrhosis or compensated cirrhosis     PEGINF, SOF, and RBV for 12 wk
Prior PEGINF-RBV, INF intolerant, no cirrhosis     Defer treatment
Prior PEGINF-RBV, INF intolerant, cirrhosis     SOF and RBV for 24 wk
Genotype 4
INF tolerant PEGINF, SOF, and RBV for 12 wk
INF intolerant SOF and RBV for 24 wk SOF and SMV for 12 wk
Genotypes 5 and 6
INF tolerant PEGINF, SOF, and RBV for 12 wk NA PEGINF, SOF, and RBV for 12 wk
INF intolerant NR NA SOF and RBV for 24 wk

AASLD = American Association for the Study of Liver Diseases; BOC = boceprevir; FDA = Food and Drug Administration; IDSA = Infectious Diseases Society of America; INF = interferon; LIV = Liver Institute of Virginia; NA = not approved; NR = no recommendation; PEGINF = peginterferon; RBV = ribavirin; SMV = simeprevir; SOF = sofosbuvir; TPV = telaprevir.

Genotypes 1, 4, 5, and 6

Genotype 1 is the most common form of HCV worldwide. Genotype 4 is the dominant genotype in Egypt and the Middle East, genotype 5 is frequent in South Africa, and genotype 6 is common in Vietnam and Cambodia.40 In the United States, genotypes 4 through 6 are uncommon and rarely seen except in immigrants from the aforementioned regions of the world.

In patients with genotypes 1, 4, 5, or 6 without cirrhosis, our treatment approach is PEGINF, SOF, and RBV for 12 weeks. The SVR rate is 92% or greater, and less than 2% of these patients will be unable to tolerate this regimen. For patients who have not achieved an SVR during previous treatment with PEGINF and RBV or PEGINF, RBV, and either TPV or BOC, our approach is the same. Patients without cirrhosis who prefer not to be treated with PEGINF or have intolerance or contraindications to PEGINF can defer treatment and wait for an FDA-approved all-oral antiviral combination. Two such regimens are expected to be available before 2015. We do not promote either SOF and RBV for 24 weeks or SOF and SMV for 12 weeks in patients without cirrhosis.

In patients with cirrhosis and genotypes 1, 4, 5, or 6, our approach is still PEGINF, SOF, and RBV for 12 weeks as long as the platelet count and serum albumin level are normal and there is no history of hepatic decompensation or evidence of esophageal varices or subclinical hepatic encephalopathy. In contrast, we would not treat patients with cirrhosis and any of these laboratory or clinical abnormalities with a PEGINF-containing regimen. In a previous study in which patients with these characteristics were treated with PEGINF, RBV, and either TPV or BOC, more than half experienced severe anemia, 25% discontinued treatment, and 1% to 2% died as a result of hepatic decompensation.41 In our opinion, the risk that this poor outcome could also occur with a 12-week PEGINF and RBV–containing regimen is considerable. In addition, the SVR that could be achieved with PEGINF, SOF, and RBV is reduced to 80% or less in such patients.

In patients with genotype 1 or 4 and cirrhosis who have intolerance or contraindications to PEGINF, our treatment approach is SOF and SMV for 12 weeks. In patients with HCV-induced extrahepatic manifestations such as symptomatic cryoglobulinemia, glomerulonephritis, or B-cell lymphoma, regardless of fibrosis stage, we also use SOF and SMV. We do not believe that testing for the Q80K sequence variation is necessary when treating patients who have genotype 1a with SOF and SMV. The SVR when this sequence variation is present is still 90%, and there is no suggestion from the data that adding RBV or extending the duration of therapy to 24 weeks enhances SVR. We do not recommend 24 weeks of SOF and RBV in these patients; the cost of this regimen is prohibitive, and the SVR rate is estimated to be only in the 70% to 75% range, approximately 20% lower than that observed with SOF and SMV. We also do not recommend deferring treatment in this population, and payers should recognize their need for treatment. These patients have cirrhosis, are at risk for development of severe and life-threatening complications of cirrhosis, and should not have to wait for an alternative all-oral regimen.

In patient with genotypes 5 or 6, cirrhosis, and intolerance or contraindications to PEGINF, we use SOF and RBV for 24 weeks. Although this regimen is costly, this group represents only a limited number of patients with HCV, and no alternative treatment is on the horizon. Simeprevir has activity against HCV genotypes 5 and 6 in vitro, but without any clinical data to support its use, it is difficult to recommend this treatment.

Our treatment approach to patients with HCV genotype 1 does not include TPV, BOC, or SMV in combination with PEGINF and RBV. All of these antiviral agents have a lower SVR rate and require a longer duration of PEGINF and RBV compared with an SOF-containing regimen.14

Genotype 2

Our treatment approach for all patients with genotype 2, regardless of fibrosis stage, is SOF and RBV for 12 weeks. This group includes patients with cirrhosis in whom PEGINF and RBV failed previously. The SVR rate in this nonresponse subpopulation with cirrhosis is 88% but exceeds 90% in all other subpopulations. A more effective, less costly regimen is unlikely to be developed for patients with HCV genotype 2 in the foreseeable future.

Genotype 3

Patients with genotype 3 are now the most difficult and costly to treat and the most controversial regarding recommendations for treatment. Treatment-naive patients, regardless of the degree of fibrosis, require twice the duration of SOF and RBV (24 weeks) and twice the cost to achieve an SVR of at least 90%. We believe that SOF, RBV, and PEGINF for 12 weeks would yield an SVR of at least 90% and be more cost-effective, but with no data in the treatment-naive population, this approach is difficult to adopt. Therefore, our approach to treatment-naive patients with genotype 3 with or without cirrhosis is SOF and RBV for 24 weeks.

In patients with genotype 3 who have previously undergone PEGINF and RBV treatment and do not have cirrhosis, 24 weeks of SOF and RBV is nearly twice as costly yet offers an SVR similar to 12 weeks of PEGINF, SOF, and RBV (85% vs 83%, respectively). Because only 12 weeks of PEGINF is generally tolerated, we use the cheaper regimen (PEGINF, SOF, and RBV for 12 weeks). Patients with genotype 3 who do not have cirrhosis and are intolerant of PEGINF can defer treatment until a more cost-effective therapy is available. In patients with cirrhosis who do not have contraindications to PEGINF, our approach is to also use PEGINF, SOF, and RBV. The SVR with this treatment is also 83% compared with only 60% for 24 weeks of SOF and RBV. In patients with cirrhosis that is too advanced for PEGINF (see criteria outlined in the “Genotypes 1, 4, 5, and 6” section) and patients with PEGINF intolerance for other reasons, we have no choice but to use the inferior and more costly treatment (SOF and RBV for 24 weeks).

Recommendations

For 2014, SOF has replaced PEGINF as the backbone of HCV therapy. Sofosbuvir is superior to all other currently available antiviral agents with respect to efficacy, adverse effects, drug-drug interactions, viral resistance, and duration of therapy. Peginterferon should still be used in many patients with genotype 1 and in selected patients with genotype 3 because it offers higher efficacy and is less costly than 24 weeks of SOF and RBV. In 2015, another era of HCV treatment will begin, and our need for PEGINF and possibly RBV will no longer exist. Patients with genotype 1 and no cirrhosis may choose to defer treatment until then.

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Potential Competing Interests: Dr Shiffman has participated in advisor meetings with Achillion Pharmaceuticals, Inc, Bristol-Myers-Squibb, Boehringer-Ingelheim, Gilead Sciences, Gen-Probe, Inc, Globeimmune Inc, GlaxoSmithKline, Janssen Pharmaceutical Companies, Merck & Co, Inc, Novartis Corp, Genentech, Inc, and Vertex Pharmaceuticals Inc; is on the speakers' bureau for Bayer AG, Gilead Sciences, Janssen Pharmaceutical Companies, Merck & Co, Inc, Genentech, Inc, and Vertex Pharmaceuticals Inc; and receives grant support from Abbott Laboratories, Achillion Pharmaceuticals, Inc, Beckman Coulter, Inc, Bristol-Myers-Squibb, Boehringer-Ingelheim, Gilead Sciences, Globeimmune Inc, Idenix Pharmaceuticals, Inc, Intercept Pharmaceuticals, Inc, Merck & Co, Inc, Mochida Pharmaceutical Co, Inc, Novartis Corp, and Genentech, Inc. Ms Long has participated in advisor meetings with AbbVie Inc, Gilead Sciences, Janssen Pharmaceutical Companies, Kadmon Pharmaceuticals, Merck & Co, Inc, and Vertex Pharmaceuticals Inc and is on the speakers' bureau for Merck & Co, Inc, GlaxoSmithKline, Kadmon Pharmaceuticals, Salix Pharmaceuticals, Inc, and Vertex Pharmaceuticals Inc. Ms James has participated in advisor meetings with Gilead Sciences and Janssen Pharmaceutical Companies and is on the speakers' bureau for Janssen Pharmaceutical Companies. Mr Alexander has participated in advisor meetings with Gilead Sciences.

© 2014 Mayo Foundation for Medical Education and Research. Published by Elsevier Inc. All rights reserved.

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