Showing posts with label Asunaprevir (BMS-650032). Show all posts
Showing posts with label Asunaprevir (BMS-650032). Show all posts

October 3, 2013

Interim Analysis of an Interferon (IFN)- And Ribavirin (RBV)-Free Regimen of Daclatasvir (DCV), Asunaprevir (ASV), and BMS-791325 In Treatment-Naive, Hepatitis C Virus Genotype 1-Infected Patients

Infectious Disease Week (IDWeek)
October 2-6, 2013
San Francisco, Ca

1828. Interim Analysis of an Interferon (IFN)- And Ribavirin (RBV)-Free Regimen of Daclatasvir (DCV), Asunaprevir (ASV), and BMS-791325 In Treatment-Naive, Hepatitis C Virus Genotype 1-Infected Patients

Session: Oral Abstract Session: Hepatitis C

Saturday, October 5, 2013: 2:45 PM

Room: The Moscone Center: 250-262

Background: The IFN- and RBV-free regimen of DCV (NS5A inhibitor), ASV (protease inhibitor) and BMS-791325 (non-nucleoside NS5B inhibitor, 75mg BID) achieved sustained virologic response (SVR4, SVR12) >90% in treatment-naïve, hepatitis C virus (HCV) genotype (GT) 1 patients. We evaluated this regimen using two BMS-791325 doses (75 vs 150 mg BID).

Methods: HCV GT1, treatment-naïve, non-cirrhotic patients (N=32) were randomized 1:1 to DCV 60mg QD, ASV 200mg BID, and BMS-791325 75mg BID for 24 (Group 1) or 12 (Group 2) weeks. Subsequently, 34 additional patients were randomized to DCV, ASV, and BMS-791325 150mg BID for 24 (Group 3) or 12 (Group 4) weeks. The primary end point was HCV RNA <25 IU/mL at 12 weeks post-treatment (SVR12). Interim results are presented.

Results: Patients were mainly GT1a (74%), white (79%), and IL28Bnon-CC (70%). 64/66 patients had HCV RNA <25 IU/mL by Week 4 (Table). There was no difference in virologic response between 12 and 24 weeks of treatment. Overall, patients achieved SVR4 92% (46/50), SVR12 94% (30/32), and SVR24 94% (15/16). No patient discontinued for adverse events (AEs) related to DCV+ASV+BMS-791325. Most common AEs (≥10% total) were headache, asthenia, and gastrointestinal. Two serious AEs were reported, both unrelated to DCV+ASV+BMS-791325. No hepatotoxicity or Grade 3/4 elevations of ALT/AST or bilirubin were reported.

Conclusion: DCV+ASV+BMS-791325 achieved high rates of SVR4, SVR12, and SVR24 in treatment-naive GT1 patients, characterized by GT1a and IL28Bnon-CC. This regimen was well tolerated with no apparent safety signals. Expansion of the current study is underway to better define the efficacy and safety of this regimen.

Virologic Response During and After Treatment

BMS-791325 Dose

 

75 mg

 

150 mg

Duration

 

24 weeks

 

12 weeks

 

24 weeks

 

12 weeks

Group

 

1 (N=16)

 

2 (N=16)

 

3 (N=16)

 

4 (N=18)

HCV RNA <25IU/mL, n(%)

 

 

 

 

 

 

 

 

     Week 4

 

16(100)

 

16(100)

 

16(100)

 

16(89)a

     EOT/Last on-treatment

 

15(94)b

 

16(100)

 

-

 

17(94)c

     SVR4

 

15(94)b

 

15(94)d

 

-

 

16(89)c,e

     SVR12

 

15(94)b

 

15(94)d

 

-

 

-

     SVR24

 

-

 

15(94)f

 

-

 

-

Virologic breakthrough, n(%)

 

0

 

0

 

1(7)

 

1(6)

Relapse, n(%)

 

0

 

0

 

-

 

1(6)

aOne patient with isolated HCV RNA of 43 IU/mL, one patient missing; b Patient withdrew consent; cOne viral breakthrough; dOne missing; eOne relapse; fA second patient missing.

Gregory T. Everson1, Karen D. Sims2, Maribel Rodriguez-Torres, MD3, Christophe Hézode4, Eric Lawitz5, Marc Bourlière6, Veronique Loustaud-Ratti7, Vinod Rustgi8, Howard Schwartz9, Harvey Tatum10, Patrick Marcellin11, Stanislas Pol12, Paul J. Thuluvath13, Timothy Eley, PhD2, Xiaodong Wang2, Shu-Pang Huang14, Fiona Mcphee15, Megan Wind-Rotolo14, Ellen Chung2, Claudio Pasquinelli2, Dennis M. Grasela2 and David F. Gardiner2, (1)University of Colorado Denver, Aurora, CO, (2)Bristol-Myers Squibb, Hopewell, NJ, (3)Gastroenterology, Fundacion de Investigacion, Rio Piedras, PR, (4)CHU Henri Mondor, Service d’Hépato-Gastroentérologie, Créteil, France, (5)Alamo Medical Research, San Antonio, TX, (6)Hôpital Saint Joseph, Service d’Hépato-Gastroentérologie, Marseille, France, (7)University Hospital of Limoges, Limoges, France, (8)Metropolitan Research, Arlington, VA, (9)Miami Research Associates, South Miami, FL, (10)Options Health Research, Tulsa, OK, (11)Hôpital Beaujon, Clichy, France, (12)Université Paris Descartes, INSERM U1610 and Liver Unit, Hôpital Cochin, Paris, France, (13)Mercy Medical Center, Baltimore, MD, (14)Bristol-Myers Squibb, Princeton, NJ, (15)Bristol-Myers Squibb, Wallingford, CT

Disclosures:

G. T. Everson, Bristol-Myers Squibb: Investigator, Research support

K. D. Sims, Bristol-Myers Squibb: Employee, Salary

M. Rodriguez-Torres, Bristol-Myers Squibb: Investigator, Research support

C. Hézode, Bristol-Myers Squibb: Investigator, Research support

E. Lawitz, Bristol-Myers Squibb: Investigator, Research support

M. Bourlière, Bristol-Myers Squibb: Investigator, Research support

V. Loustaud-Ratti, Bristol-Myers Squibb: Investigator, Research support

V. Rustgi, Bristol-Myers Squibb: Investigator, Research support

H. Schwartz, Bristol-Myers Squibb: Investigator, Research support

H. Tatum, Bristol-Myers Squibb: Investigator, Research support

P. Marcellin, Bristol-Myers Squibb: Investigator, Research support

S. Pol, Bristol-Myers Squibb: Investigator, Research support

P. J. Thuluvath, Bristol-Myers Squibb: Investigator, Research support

T. Eley, Bristol-Myers Squibb: Employee, Salary

X. Wang, Bristol-Myers Squibb: Employee, Salary

S. P. Huang, Shu-Pang Huang: Employee, Salary

F. Mcphee, Bristol-Myers Squibb: Employee, Salary

M. Wind-Rotolo, Bristol-Myers Squibb: Employee, Salary

E. Chung, Bristol-Myers Squibb: Employee, Salary

C. Pasquinelli, Bristol-Myers Squibb: Employee, Salary

D. M. Grasela, Bristol-Myers Squibb: Employee, Salary

D. F. Gardiner, Bristol-Myers Squibb: Employee, Salary

Source

October 1, 2013

Bristol-Myers Squibb to Present Range of New Hepatitis C Data at the 2013 American Association for the Study of Liver Diseases (AASLD) Annual Meeting

BMS-logo

  • Phase III SVR24 data on daclatasvir + asunaprevir, an investigational, interferon-free and ribavirin-free treatment regimen, in Japanese HCV patients with high unmet needs selected to lead off this year’s Presidential Plenary session
  • Data presentations provide further insight on dosing, tolerability and safety of multiple daclatasvir-based investigational HCV regimens
  • 16 accepted abstracts on HCV and HBV underscore the breadth of the company’s hepatitis portfolio

Tuesday, October 1, 2013 11:46 am EDT  

PRINCETON, N.J.--(BUSINESS WIRE)--Bristol-Myers Squibb Company (NYSE:BMY) announced today that 16 abstracts have been accepted for presentation at The Liver Meeting® 2013, the 64th Annual Meeting of The American Association for the Study of Liver Diseases (AASLD), in Washington D.C., November 1 – 5. These abstracts include new data supporting the company’s broad pipeline of hepatitis C (HCV) compounds.

Key presentations include:

  • Results from a Phase III study of an all-oral combination of daclatasvir (DCV) and asunaprevir (ASV) in Japanese HCV genotype 1b patients who are either ineligible or intolerant to interferon-based therapies or who are non-responders to both interferon and ribavirin. This is the first presentation of a Phase III study evaluating an all-oral, interferon-free and ribavirin-free regimen. Presentation of complete SVR24 results from this study will lead the Viral Hepatitis Presidential Plenary session on Tuesday, November 5.
  • Additional dosing, safety and efficacy data on DCV, ASV and BMS-791325, several BMS investigational HCV compounds that are being studied as a fixed-dose combination.
  • Findings from health economics and outcomes research studies including long-term morbidity and mortality in chronic hepatitis C patients in the U.S. Veterans Health Administration; and an analysis of the burden of alfa-interferon based therapies on chronic hepatitis C patients in Japan.

“The wealth of Bristol-Myers Squibb data at this year’s AASLD meeting reflects our long-standing commitment to researching the unmet medical needs of patients with hepatitis C. We are particularly excited about our investigational, all-oral regimen of daclatasvir and asunaprevir and its potential for HCV patients, including many in Japan who currently have no treatment options,” said Brian Daniels, MD, senior vice president, Global Development and Medical Affairs, Research and Development, Bristol-Myers Squibb. “Just 25 years after the discovery of the hepatitis C virus, the HCV research community is on the cusp of a cure for more patients than ever before. Bristol-Myers Squibb is proud to be among the companies standing at the forefront of this major shift in the treatment paradigm.”

Bristol-Myers Squibb is studying a broad portfolio of new compounds in hopes of providing flexible treatment options which aim to help address the diverse unmet medical needs of a global HCV patient population. These investigational compounds include DCV, ASV, BMS-791325, and peginterferon lambda-1a (Lambda). The company also continues to study the full potential of Baraclude® (entecavir), an oral antiviral agent with selective activity against HBV. Baraclude is a leading treatment for chronic hepatitis B and is approved in more than 90 countries.

The complete list of Bristol-Myers Squibb data presentations is below. Abstracts can be accessed on the AASLD website at www.aasld.org/livermeeting.

 

Title     Date/Time
Hepatitis C: Direct-Acting Antiviral Data      
Presidential Plenary: All-oral Combination of Daclatasvir plus Asunaprevir in Interferon Ineligible Naive/Intolerant and Nonresponder Japanese Patients Chronically Infected with HCV Genotype 1b: Results from a Phase III Trial     Tuesday, November 5,

8 – 8:15 a.m.

Asunaprevir Pharmacokinetics and Safety in Subjects With Impaired Renal Function     Saturday, November 2,

5:30 p.m. – 7:00 p.m.

Lack of Pharmacokinetic Interaction Between the HCV Protease Inhibitor MK-5172 and HCV NS5A Inhibitor Daclatasvir In Normal Healthy Volunteers
No Clinically-Relevant Interactions Between Asunaprevir and Selective Serotonin Reuptake Inhibitors (Escitalopram and Sertraline) in Healthy Subjects      
Daclatasvir Pharmacokinetics in Healthy Subjects: No Clinically-Significant Drug-Drug Interactions with Cyclosporine or Tacrolimus Sunday, November 3,

12:30 p.m. – 2 p.m.

Analysis of HCV Resistance Variants in a Phase III Trial of Daclatasvir Combined With Asunaprevir for Japanese Patients with Genotype 1b Infection
Safety and Efficacy of BMS-791325, a Non-Nucleoside NS5B Polymerase Inhibitor, Combined with Peginterferon Alfa-2a and Ribavirin in Treatment-Naïve Patients Infected with Hepatitis C Virus Genotype 1    
Hepatitis C and B: PEG-Interferon Lambda Data      
Inverse Modulation in Hepatic Expression of Interferon Receptor Complexes for Alpha and Lambda during HCV Infection are Associated with Altered Interferon Signaling Induction upon Treatment with Peginterferon Alfa-2a Compared to Peginterferon Lambda-1a     Saturday, November 2,

5:30 p.m. – 7 p.m.

Safety Profile of Peginterferon Lambda for Treatment of Chronic Hepatitis B Virus (HBV) or Chronic Hepatitis C Virus (HCV) Infection: Cross-Study Analysis of Patients Treated in Three Phase 2 Studies     Sunday, November 3,

12:30 p.m. – 2 p.m.

Hepatitis C: Outcomes Research / Real-World Data      
Impact of Treatment on Long-Term Morbidity and Mortality in Chronic Hepatitis C Patients Receiving Care Through the U.S. Veterans Health Administration     Tuesday, November 5,

12:30 p.m. – 12:45 p.m.

Using Laboratory Data to Predict Long-Term Morbidity and Mortality in Chronic Hepatitis C Patients Through The U.S. Veterans Health Administration Tuesday, November 5,

10:30 a.m. – 12 p.m.

Patient Burden of Peginterferon Alfa (Alfa)-Based Therapy Among Patients with Chronic Hepatitis C Infection in Japan: Report from a 2013 National Survey Study
The Comparative Effectiveness of Daclatasvir Plus Asunaprevir vs Telaprevir Triple Therapy in Nonresponder Japanese Patients Chronically Infected With HCV Genotype 1b: Results from a Bayesian Meta-Analysis
A Meta-Analysis Platform for the Continuous Updating of Knowledge Regarding Treatment Regimens for Hepatitis C Virus Infection    
Chronic Hepatitis B: BARACLUDE (entecavir) Clinical Data      
The Safety and Efficacy of Entecavir and Tenofovir Combination Therapy for Chronic Hepatitis B in Patients with Previous Nucleos(t)ide Treatment Failure Sunday, Nov. 3,

8 a.m. – 5:30 p.m.

Entecavir Pharmacokinetics Among Nucleos/tide-Naїve Pediatric Subjects    
 

About Bristol-Myers Squibb’s Commitment to Liver Disease

Bristol-Myers Squibb’s hepatitis C pipeline includes compounds with different mechanisms of action, pursuing both biologics as well as small molecule direct-acting antivirals. These compounds are being studied as part of multiple treatment regimens with the goal of increasing SVR rates across diverse patient types and geographies.

  • Our investigational NS5A replication complex inhibitor daclatasvir (DCV) has been extensively studied in thousands of patients to date as a foundational agent for multiple DAA-based combination therapies and is currently in Phase III development. DCV has shown antiviral potency and pan-genotypic activity across HCV genotypes in vitro. DCV has a drug-drug interaction profile that supports its continued study in a variety of HCV combination regimens
  • Asunaprevir (ASV) is an NS3 protease inhibitor in Phase III development for hepatitis C as a component of DCV-based treatment regimens
  • BMS-791325 is a non-nucleoside inhibitor of the NS5B polymerase, currently in Phase II development for hepatitis C as a component of DCV-based treatment regimens
  • Lambda is an investigational type III interferon that has the potential to offer an alternative to alfa-interferon in patients for whom an interferon-based regimen is required or preferred

About Hepatitis C

Hepatitis C is a virus that infects the liver and is transmitted through direct contact with infected blood and blood products. An estimated 170 million people worldwide are infected with hepatitis C, with genotype 1 being the most prevalent genotype. Up to 90 percent of those infected with hepatitis C will not clear the virus and will become chronically infected. According to the World Health Organization, 20 percent of people with chronic hepatitis C will develop cirrhosis and, of those, up to 25 percent may progress to liver cancer. In Japan, the hepatitis C virus is the most common cause of chronic hepatitis and cirrhosis, and approximately 1.2 million people there are living with the hepatitis C virus.

INDICATION and IMPORTANT SAFETY INFORMATION about BARACLUDE (entecavir) 0.5mg/1mg Tablets:

INDICATION

BARACLUDE (entecavir) is indicated for the treatment of chronic hepatitis B virus (HBV) infection in adults with evidence of active viral replication and either evidence of persistent elevations in serum aminotransferases (ALT or AST) or histologically active disease.

The following points should be considered when initiating BARACLUDE:

1. This indication is based on histologic, virologic, biochemical, and serologic responses in nucleoside-treatment-naïve and lamivudine-resistant adult subjects with HBeAg-positive or HBeAg-negative chronic HBV infection and compensated liver disease.

2. Virologic, biochemical, serologic, and safety data are available from a controlled study in adult subjects with chronic HBV infection and decompensated liver disease.

3. Virologic, biochemical, serologic, and safety data are available for a limited number of adult subjects with HIV/HBV co-infection who have received prior lamivudine therapy.

IMPORTANT SAFETY INFORMATION

WARNINGS: SEVERE ACUTE EXACERBATIONS OF HEPATITIS B, PATIENTS CO-INFECTED WITH HIV AND HBV, and LACTIC ACIDOSIS AND HEPATOMEGALY

Severe acute exacerbations of hepatitis B have been reported in patients who have discontinued anti-hepatitis B therapy, including entecavir. Hepatic function should be monitored closely with both clinical and laboratory follow-up for at least several months in patients who discontinue anti-hepatitis B therapy. If appropriate, initiation of anti-hepatitis B therapy may be warranted.

Limited clinical experience suggests there is a potential for the development of resistance to HIV (human immunodeficiency virus) nucleoside reverse transcriptase inhibitors if BARACLUDE is used to treat chronic HBV infection in patients with HIV infection that is not being treated. Therapy with BARACLUDE is not recommended for HIV/HBV co-infected patients who are not also receiving highly active antiretroviral therapy (HAART).

Lactic acidosis and severe hepatomegaly with steatosis, including fatal cases, have been reported with the use of nucleoside analogues, alone or in combination with antiretrovirals.

Warnings and Precautions

• Before initiating BARACLUDE (entecavir) therapy, HIV antibody testing should be offered to all patients. BARACLUDE has not been studied as a treatment for HIV infection and is not recommended for this use.

• Lactic acidosis with BARACLUDE use has been reported, often in association with hepatic decompensation, other serious medical conditions, or drug exposures. Patients with decompensated liver disease may be at higher risk for lactic acidosis. BARACLUDE should be suspended in any patient who develops clinical or laboratory findings suggestive of lactic acidosis or pronounced hepatotoxicity.

Adverse Reactions

• In clinical trials in patients with compensated liver disease, the most common (≥3%) adverse reactions of any severity with at least a possible relation to study drug for BARACLUDE-treated subjects were headache, fatigue, dizziness, and nausea. In these trials, the most common adverse reactions of moderate to severe intensity (grades 2-4) were diarrhea, dyspepsia, nausea, vomiting, fatigue, headache, dizziness, somnolence, and insomnia.

• In the decompensated liver disease trial, the most common adverse reactions of any severity among patients treated with BARACLUDE (entecavir), regardless of causality, included: peripheral edema (16%), ascites (15%), pyrexia (14%), hepatic encephalopathy (10%), and upper respiratory infection (10%). In this trial, 18% (18/102) of BARACLUDE patients and 20% (18/89) of adefovir patients died during the first 48 weeks of therapy. The majority of those deaths were due to liver related causes.

Drug Interactions

BARACLUDE is primarily eliminated by the kidneys, therefore coadministration of BARACLUDE with drugs that reduce renal function or compete for active tubular secretion may increase serum concentrations of either BARACLUDE or the coadministered drug. Patients should be monitored closely when receiving BARACLUDE with other renally-eliminated drugs.

Pregnancy and Nursing Mothers

• There are no adequate and well-controlled studies of BARACLUDE (entecavir) in pregnant women. BARACLUDE should be used during pregnancy only if clearly needed and after careful consideration of the risks and benefits.

• There are no studies on the effect of BARACLUDE on transmission of HBV from mother to infant. Therefore, appropriate interventions should be used to prevent neonatal acquisition of HBV.

• It is not known whether BARACLUDE is excreted into human milk; however, many drugs are excreted into breast milk. Due to the potential for serious adverse reactions in nursing infants from BARACLUDE, risks and benefits should be considered when deciding whether to discontinue breast-feeding or discontinue BARACLUDE in nursing women.

Pediatric Use

• Safety and effectiveness of BARACLUDE in pediatric patients below the age of 16 years have not been established.

Renal Impairment

• Dosage adjustment of BARACLUDE is recommended for patients with a creatinine clearance <50 mL/min, including those on hemodialysis or continuous ambulatory peritoneal dialysis.

Liver Transplant Recipients

• Renal function must be carefully monitored both before and during treatment with BARACLUDE in a liver transplant recipient who has received or is receiving an immunosuppressant that may affect renal function, such as cyclosporine or tacrolimus.

Dosage and Administration

BARACLUDE (entecavir) should be administered on an empty stomach (at least 2 hours after a meal and at least 2 hours before the next meal).

The recommended dose of BARACLUDE:

• in nucleoside-naïve adults and adolescents (16+ yrs) with compensated liver disease is 0.5 mg once daily

• in adults and adolescents (16+ yrs) with compensated liver disease, and refractory to lamivudine or with known lamivudine or telbivudine resistance mutations (rtM204I/V with or without rtL180M, rtL80I/V, or rtV173L) is 1 mg once daily

• in adults with decompensated liver disease is 1 mg once daily

The optimal duration of treatment with BARACLUDE (entecavir) for patients with chronic HBV infection and the relationship between treatment and long-term outcomes such as cirrhosis and hepatocellular carcinoma are unknown.

Additional Information

BARACLUDE is not a cure for HBV. Patients should be advised that treatment with BARACLUDE has not been shown to reduce the risk of transmission of HBV to others through sexual contact or blood contamination.

Please see accompanying Full Prescribing Information, including Boxed WARNINGS click here.

About Bristol-Myers Squibb

Bristol-Myers Squibb is a global biopharmaceutical company whose mission is to discover, develop and deliver innovative medicines that help patients prevail over serious diseases. For more information, please visit http://www.bms.com or follow us on Twitter at http://twitter.com/bmsnews.

Bristol-Myers Squibb Forward Looking Statement

This press release contains "forward-looking statements" as that term is defined in the Private Securities Litigation Reform Act of 1995 regarding the research, development and commercialization of pharmaceutical products. Such forward-looking statements are based on current expectations and involve inherent risks and uncertainties, including factors that could delay, divert or change any of them, and could cause actual outcomes and results to differ materially from current expectations. No forward-looking statement can be guaranteed. Among other risks, there can be no guarantee that the clinical trials of these compounds will support regulatory filings, or that the compounds described in this release will receive regulatory approvals or, if approved, that they will become commercially successful products. Forward-looking statements in this press release should be evaluated together with the many uncertainties that affect Bristol-Myers Squibb's business, particularly those identified in the cautionary factors discussion in Bristol-Myers Squibb's Annual Report on Form 10-K for the year ended December 31, 2012, in our Quarterly Reports on Form 10-Q and our Current Reports on Form 8-K. Bristol-Myers Squibb undertakes no obligation to publicly update any forward-looking statement, whether as a result of new information, future events or otherwise.

BARACLUDE® (entecavir) is a registered trademark of Bristol-Myers Squibb Company

Contact:

Bristol-Myers Squibb
Media:
Carrie Fernandez, 609-252-4831
carrie.fernandez@bms.com
Julie Ferguson, 609-252-5597
julie.ferguson@bms.com
or
Investors:
Ranya Dajani, 609-252-5330
ranya.dajani@bms.com
Ryan Asay, 609-252-5020
ryan.asay@bms.com

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January 7, 2013

Interferon free therapy with direct acting antivirals for HCV

Liver International

Special Issue: Proceedings of the 6th Paris Hepatitis Conference, International Conference on the Management of Patients with Viral Hepatitis

Volume 33, Issue Supplement s1, pages 93–104, February 2013

Review Article

Tarik Asselah*, Patrick Marcellin

Article first published online: 3 JAN 2013

DOI: 10.1111/liv.12076

© 2012 John Wiley & Sons A/S

Abstract

The current treatment for hepatitis C virus (HCV) genotype 1 chronic infection is the addition of direct-acting antivirals (DAA) with a protease inhibitor (telaprevir or boceprevir) to the pegylated interferon (PEG-IFN) plus ribavirin (RBV) regimen. Major progress has been made in the past few years: numerous ongoing trials with different compounds, increasing sustained virological response (SVR) rates with oral regimens and shortened treatment duration. Combinations of antivirals with additive potency that lack cross-resistance and with a good safety profile may provide new regimens in the future to make HCV the first chronic viral infection to be eradicated worldwide with a finite duration of combination DAA therapy without IFN.

Hepatitis C virus (HCV) is a major cause of chronic liver disease, with an estimated 170 million people infected worldwide [1]. Hepatitis C virus, identified in 1989, is an enveloped virus with a 9.6-kb single-stranded RNA genome [2], a member of the Flaviviridae family, genus Hepacivirus. The goal of treatment is to obtain a sustained virological response (SVR) defined as undetectable HCV RNA in serum after 24 weeks of post-treatment follow-up [3]. Twelve-week post-treatment follow-up appears to be relevant at 24 weeks to define SVR [4]. SVR results in the eradication of HCV infection and improvement of the histological outcome [5]. In 2011, two direct acting antivirals (DAAs) were approved for HCV genotype 1 chronic infection, telaprevir and boceprevir and opened a new area for HCV therapy [6]. These two NS3/4 protease inhibitors (PI) are given in combination with pegylated interferon (PEG-IFN) and ribavirin (RBV). Phase III clinical trials have shown that approximately 25–35% of G1 treatment-naïve patients and 50–60% of G1 HCV patients who failed to respond to a first course of treatment with PEG-IFN and RBV do not achieve SVR and are not cured of HCV infection with this triple combination. Therefore, there is a need to develop new DAAs to improve SVR. Furthermore, IFN has several side effects. The aim of this review is to describe the mechanisms of action of DAAs and summarize the results obtained with DAA combinations without IFN.

Viral cycle and targets for drug development

The HCV life cycle begins with virion attachment to its specific receptor. The HCV RNA genome serves as a template for viral replication and as a viral messenger RNA for viral production. It is translated into a polyprotein that is cleaved by proteases. Then, viral assembly occurs. Potentially, each step of the viral cycle is a target for drug development (Fig. 1). Knowledge of the structures of HCV protease and HCV polymerase has allowed structure-based drug design to develop inhibitors to these enzymes [7, 8]. Several findings suggest that HCV modulation of IFN induction and signalling attenuates the expression of IFN-stimulated genes, allowing HCV to escape the antiviral actions of the host response [9-11].

liv12076-fig-0001

Figure 1. Hepatitis C virus (HCV) viral cycle. The HCV lifecycle starts with virion attachment to its specific receptor (not clearly identified). The HCV RNA genome serves as a template for viral replication and as a viral messenger RNA for viral production. It is translated into a polyprotein that is cleaved by proteases. Then, viral assembly occurs. Potentially, each step of the viral cycle is a target for drug development.

All the HCV enzymes – NS2-3 and NS3-4A proteases, NS3 helicase NS5A and NS5B RdRp – are essential for HCV replication, and are potential drug discovery targets (Fig. 2). Therefore, DAA with different viral targets, including NS3 protease inhibitors, nucleoside/nucleotide analogue and non-nucleoside inhibitors of the RNA-dependent RNA polymerase, and NS5A inhibitors are under development. General characteristics of different classes of DAA are indicated in Table 1.

Table 1. General characteristics of different classes of DAAs
Efficacy Genotype dependency Barrier to resistance
NS3/4A (protease inhibitors) +++ +++ ++
NS5A +++ +++ ++
NS5B (nucleos(t)ides) +++ +++ +++
NS5B (nonnucleosides) ++ + +

liv12076-fig-0002

Figure 2. Hepatitis C virus (HCV) genome and potential drug discovery targets. The HCV RNA genome serves as a template for viral replication and as a viral messenger RNA for viral production. It is translated into a polyprotein that is cleaved by proteases. All the HCV enzymes – NS2-3 and NS3-4A proteases, NS3 helicase, NS5A and NS5B RdRp – are essential for HCV replication, and are therefore potential drug discovery targets.

Protease inhibitors

The NS3 serine protease is located in the N-terminal region of NS3. The NS3 serine protease domain associates with the NS4A cofactor to cleave four specific sites.

This enzyme has been characterized at the biochemical level and its structure is known [7, 8]. The serine protease activity of NS3 is an attractive target for new drugs that could effectively block viral replication. The NS3/4A protease inhibitors can be divided into two chemical classes: macrocyclic inhibitors and linear tetra-peptide a-ketoamid derivatives. In 2003, a protease inhibitor (BILN 2061) that blocks HCV replication in the replicon model was shown to be effective in humans [12-14].

Although protease inhibitors have a high antiviral efficacy, they have several potential limitations. Protease inhibitors are highly specific and as the amino acid sequence of the NS3 protease domain differs significantly between HCV genotypes, their antiviral efficacy differs among genotypes. Indeed, telaprevir is less effective in non-1 genotypes. Furthermore, as HCV has a high mutation replication rate, with a lack of proof reading, resistance is an important issue.

The genetic barrier to resistance is defined as the number of amino acid substitutions required to confer full resistance to a drug. Usually, DAA with a low genetic barrier to resistance require only one or two amino acid substitutions for high resistance. DAA with a high barrier of resistance usually require three or more amino acid substitutions in the same region.

The genetic barrier to protease inhibitors is usually low. Resistance differs significantly between HCV subtypes. Viral resistance to telaprevir occurred much more frequently in genotype 1a compared with genotype 1b. This result of nucleotide differences at position 155 in HCV subtype 1a (AGA, encodes R) vs. 1b (CGA, also encodes R). The mutation most frequently associated with resistance to telaprevir was R155K; changing R–K at position 155 requires one nucleotide change in HCV subtype 1a and two nucleotide changes in subtype 1b isolates [15].

As illustrated with the R155K mutation, which reduces replication capacity in the replicon model [16], resistance mutations frequently impair viral fitness.

However, under antiviral pressure, during therapy, second site mutations are selected that restore fitness, explaining why the R155K primary mutation is frequently found in association with V36M in genotype 1a viruses. Therefore, it is recommended to stop rapid treatment in patients with viral breakthrough and good adherence to therapy.

Polymerase inhibitors

Polymerase inhibitors interfere with viral replication by binding to the NS5B RNA-dependent RNA polymerase. NS5B RNA polymerase inhibitors can be divided into two distinct categories – nucleoside inhibitors and non-nucleotide inhibitors.

Nucleoside analogue inhibitors mimic the natural substrates of the polymerase and are incorporated into the RNA chain causing direct chain termination [17]. Nucleoside analogue polymerase inhibitors are compounds that require conversion to an active triphosphate form. As the active site of NS5B is highly conserved, nucleoside analogue inhibitors are potentially effective against all the different genotypes. Moreover, single amino acid substitutions in every position of the active site may result in loss of function. Resistance to nucleoside analogue inhibitors is usually low.

Non-nucleoside inhibitors bind to several discrete sites on the HCV polymerase, which results in conformational protein change before the elongation complex is formed [17]. NS5B is structurally organized in a characteristic ‘right-hand motif’ containing finger, palm and thumb domains, and offers at least four NNI-binding sites, a benzimidazole (thumb 1)-binding, thiophene (thumb 2)-binding, benzothiadiazine (palm1)-binding and benzofuran-(palm 2)-binding site. Resistance is more frequent with non-nucleoside inhibitors. Furthermore, mutations at non-nucleoside inhibitor-binding sites do not necessarily lead to impaired function of the enzyme.

NS5A inhibitors

The NS5A is a membrane-associated phosphoprotein present in basally phosphorylated (p56) and hyperphosphorylated (p58) forms [18-20]. It was previously reported that only p58-defective mutants could be complemented in trans, and NS5A is involved in HCV virion production, suggesting that different forms of NS5A exert multiple functions at various stages of the viral life cycle. The N terminus of NS5A (domain I) has been crystallized in alternative dimeric forms and contains both zinc- and RNA-binding domains, properties that have been demonstrated in vitro. NS5A has been shown to interact with a number of host proteins and plays a role in interferon resistance in vivo [19]. Daclatasvir (previously BMS 790052) is active at picomolar concentrations in vitro towards replicons expressing a broad range of HCV genotypes and acts in an additive to synergistic fashion with IFN and other DAAs [18-20]. The resistance profile of daclatasvir reveals inhibitor sensitivity maps to the N terminus of domain 1 of NS5A [19]. It has been demonstrated that NS5A inhibitors could block hyperphosphorylation of NS5A, which is believed to play an essential role in the viral life cycle.

Interferon-free combination trials

Several IFN-free combination trials are ongoing with different DAAs: NS3/4a protease Inhibitor, HCV polymerase complex – non-nucleoside NS5B, nucleoside NS5B or NS5A inhibitor. Major progress has been made in the past few years: numerous ongoing trials with different DAAs; increasing SVR rates with oral regimens and shortened treatment duration. The priorities for future combination are listed in Table 2. Among the unmet needs is the treatment of genotype 4 infected patients. Approximately 20% among the 170 millions, HCV-infected patients worldwide are genotype 4 (approximately 34 millions). The standard treatment for HCV G4 is PEG-IFN/RBV for 48 weeks. Naive G4 IL28B non-CC patients have SVR rates below 50% with the standard PEG-IFN/RBV for 48 weeks [21]. Furthermore, previous relapsers or non-responders G4 patients have very low chance to cure with the same PEG-IFN/RBV regimen.

Table 2. High priorities for HCV drug development
High efficacy (potency)
Favourable safety profile
High barrier to resistance
Oral regimen (IFN free)
Pan-genotypic
Favourable pill burden (once or twice a day)
Short duration
Few drug–drug interactions
Available for ELD, cirrhosis and HIV-HCV
Price affordable

Hepatitis C Virus drug development is nowadays faster because of short treatment durations, no need for a control arm with IFN-based regimens, and also because 12-week post-treatment follow-up is as relevant as 24 weeks to determine the SVR [4]. At present, several studies of DAA combinations are ongoing in treatment-naïve HCV patients (Table 3).

Table 3. IFN free ongoing clinical trials
First drug (company) Second drug Third drug Fourth drug
Boehringer Ingelheim
Faldaprevir (BI201335) BI207127 Ribavirin  
Protease inhibitor NS5B NNI    
Abbott
ABT-450/r ABT 267 ABT 333 Ribavirin
Protease inhibitor NS5A inhibitor NS5B NNI  
Gilead
Sofosbuvir (GS 7977) Ribavirin    
Sofosbuvir (GS 7977) GS 5885    
NS5B NI NS5A inhibitor    
Gilead/BMS
Sofosbuvir (GS 7977) Daclatasvir ± Ribavirin  
NS5B NI NS5A inhibitor    
BMS
Asunaprevir Daclatasvir    
Protease inhibitor NS5A inhibitor    
Vertex
Telaprevir VX 222    
Protease inhibitor NS5B NNI Ribavirin
Sound-C2 study: faldaprevir, BI 207127 with or without ribavirin (Boehringer-Ingelheim)

Sound-C2 is an open-label, randomized, Phase IIb study with 362 treatment-naïve HCV genotype-1 patients in one of five treatment arms (Fig. 3A). This study evaluated the safety and efficacy of faldaprevir (protease inhibitor) and BI 207127 (polymerase inhibitor), with and without ribavirin [22]. Final results from the Phase IIb study, Sound-C2, showed that up to 85% of GT-1b HCV patients achieved SVR (Fig. 3B). The optimal regimen was 28 weeks of faldaprevir (once a day), and BI 207127 (BID). The full results from the largest IFN-free trial to date include patients with cirrhosis and have confirmed early data [23].

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Figure 3. (A) Sound C2 Trial Design : Faldaprevir (BI 201335) and BI 207127 (Boehringer-Ingelheim). Three hundred and sixty-two treatment-naïve patients with chronic genotype-1 HCV infections were randomized into five IFN-free treatment arms, each with 120 mg BI 201 335 once daily (QD), but with different dosings of BI 207 127 and RBV. (B) Results from the Sound C2 trial : Faldaprevir (BI 201 335) and BI 207 127 (Boehringer-Ingelheim) 85 per cent of HCV patients infected with genotype-1b (GT-1b) achieved sustained virological response with the optimal regimen of 28 weeks of faldaprevir (BI 201 335, once a day), and BI 207 127 (BID) (22).

SVR was achieved for 70%, compared with 85% in the prevalent GT-1b patient subgroup. Nine per cent of the total population had cirrhosis and achieved SVR rates of up to 67 per cent.

The most common adverse events (AEs) were mild skin changes (itchy skin, rash or photosensitivity) or gastrointestinal disorders and transient indirect hyperbilirubinaemia, which sometimes presented as jaundice. Thirty-six per cent of patients experienced some form of side effect, 12% of these were considered severe and 8% led to discontinuation of treatment. IFN-free phase III studies with Faldaprevir, BI 207127 and RBV are ongoing.

Aviator study: ABT-450/r, ABT-267, ABT-333 and ribavirin (Abbott)

The Aviator phase 2b study assesses the safety and efficacy of ABT-450/r (dosed 100/100–200/100 mg QD), ABT-267 (25 mg QD), ABT-333 (400 mg BID) and RBV in non-cirrhotic treatment-naïve patients and prior peg-interferon/ribavirin null responders for 8, 12 or 24 weeks (Fig. 4A) [24].

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Figure 4. (A) Aviator Study trial design: ABT-450/r, ABT-267, ABT-333 and ribavirin (Abbott). This phase 2b study assesses the safety, and efficacy of ABT-450/r (dosed 100/100 mg to 200/100 mg QD), ABT-267 (25 mg QD), ABT-333 (400 mg BID) and ribavirin in non-cirrhotic treatment-naïve patients and prior peg-interferon/ribavirin null responders for 8, 12 or 24 weeks. (B) Results from the Aviator Study: ABT-450/r, ABT-267, ABT-333 and ribavirin (Abbott) sustained virological response (SVR)12 in treatment-naïve genotype 1 (GT1) patients was 97.5 per cent (77 of 79), and 93.3 per cent (42 of 45) in GT1 null responder patients. In GT1a patients, SVR12 was achieved in 96 per cent (52 of 54) of treatment-naïve patients and 89 per cent (25 of 28) of null responder patients. In GT1b patients, SVR12 was achieved in 100 per cent of treatment-naïve (25 of 25) and null responder patients (17 of 17). In addition, results from the 12-week triple-DAA regimen without RBV in treatment-naïve patients showed: SVR12 was achieved in 87.3 per cent (69 of 79) of GT1 patients; SVR12 in GT1a patients was 83 per cent (43 of 52); SVR12 in GT1b patients was 96 per cent (24 of 25) (24).

ABT-450 is a protease inhibitor, boosted by ritonavir; ABT-267 is an NS5A inhibitor; and ABT-333 is a NS5B polymerase NNI. Enrolment was open to GT1-infected patients regardless of IL28B host genotype. Ribavirin dosing was weight-based. Results from the treatment groups are summarized in Fig. 4B.

The SVR12 in treatment-naïve GT1 patients was 97.5% (77 of 79), and 93.3% (42 of 45) in GT1 null responder patients.

In GT1a patients, SVR12 was achieved in 96% (52 of 54) of treatment-naïve patients and 89% (25 of 28) of null responder patients.

In GT1b patients, SVR12 was achieved in 100% of treatment-naïve (25 of 25) and null responder patients (17 of 17).

In addition, results from the 12-week triple-DAA regimen without RBV in treatment-naïve patients showed:

• SVR12 in 87.3% (69 of 79) of GT1 patients.

• SVR12 in 83% (43 of 52) of GT1a patients.

• SVR12 in 96% (24 of 25) of GT1b patients.

The treatment was well tolerated. Four of 448 patients (1%) in the 8- and 12-week arms discontinued treatment because of adverse events. Of five serious AEs (1%), one (arthralgia or joint pain) was possibly study drug-related. In the trial, the most common adverse events were fatigue (28 and 27%) and headache (28 and 31%) for treatment-naïve and null responders respectively.

Electron study: sofosbuvir (GS-7977), GS-5885 and ribavirin (Gilead)

Interim data from the ongoing Phase 2 Electron study examining a 12-week course of therapy with the NS5B nucleotide inhibitor Sofosbuvir (formerly GS-7977), the NS5A inhibitor GS-5885 and RBV in patients with genotype 1 chronic HCV infection were reported [25]. Among treatment-naïve patients receiving this combination, 100% (n = 25/25) remained HCV RNA undetectable 4 weeks after the end of treatment (SVR4) (Table 4). Among the nine genotype 1 previous null responders who were treated with Sofosbuvir, GS-5885 and ribavirin for 12 weeks, three of nine patients have reached the 4-week post-treatment time point and all three remain HCV negative. Both Sofosbuvir in combination with ribavirin and sofosbuvir in combination with GS-5885 and ribavirin were well tolerated. The most common AEs were headache, fatigue, upper respiratory tract infection and nausea. The most common clinically significant grade 3/4 laboratory abnormality was a haemoglobin reduction.

Table 4. Sofosbuvir, GS-5885 and Ribavrin (Results) (25)
HCV RNA <15 IU/mL SOF + RBV SOF + GS-5885 + RBV
Treatment-naïve (n = 25) Null responder(n = 10) Treatment-naïve (n = 25) Null responder (n = 9)
Week 1 8/25 (32) 1/10 (10) 11/25 (44) 0/9 (0)
Week 2 17/25 (68) 7/10 (70) 22/25 (88) 4/9 (44)
Week 4 25/25 (100) 10/10 (100) 25/25 (100) 8/9 (89)
EOT 25/25 (100) 10/10 (100) 25/25 (100) 9/9 (100)
SVR4 22/25 (88) 1/10 (10) 25/25 (100)* 3/3 (100)†
SVR12 21/25 (84) 1/10 (10)

Interestingly, important results were reported with a dual therapy of Sofosbuvir plus ribavirin in a genotype 1 naïve patient population [26]. In 60 HCV-G1 treatment-naïve patients, Sofosbuvir with RBV for 24 weeks resulted in:

• Full dose RBV: SVR4 of 77% (ITT), 82% (mITT).

• Low dose RBV: SVR4 of 56% (ITT), 64% (mITT).

Gilead recently initiated the first Phase 3 trial (ION-I) evaluating a fixed-dose combination of sofosbuvir and GS-5885 in treatment-naïve genotype 1 patients. This four-arm study is evaluating the fixed-dose combination with and without ribavirin for 12- and 24-week durations in 800 patients; 20 per cent of whom have evidence of cirrhosis.

Daclatasvir (BMS) plus sofosbuvir (Gilead) with or without ribavirin

This trial was designed to test the combination of daclatasvir (NS5A inhibitor) and sofosbuvir (NS5B nucleotide inhibitor) in three genotypes of the virus (1, 2 and 3), with or without RBV, for 12 or 24 weeks of therapy, and with or without a week-long run-in with sofosbuvir [27].

A total of 44 patients with the viral genotypes 2 and 3 were enrolled in three arms – one with a 7-day sofosbuvir run-in followed by 23 weeks of the two together, one with the combination for 24 weeks and one with the combination plus ribavirin for 24 weeks. Eighty-eight per cent of patients in the first group reached an SVR12, compared with 100% in the second group, and 86% in the third group.

In genotype 1, the trial had three arms, with a total of 44 patients with the same regimens as in the genotype 2/3 patients. They also tested the combination with and without RBV for 12 weeks in a total of 82 patients. All patients receiving the first three regimens achieved an SVR12 and, all but one remained undetectable at SVR24. Sulkowski et al. reported that of the 82 patients in the 12-week arms, 68 had reached 12 weeks post-treatment and all had SVR12.

Daclatasvir, asunaprevir and BMS-791325 (BMS)

Daclatasvir is the first NS5A replication complex inhibitor to be investigated in HCV clinical trials and is currently in Phase III development. Asunaprevir is an NS3 protease inhibitor in Phase III development with daclatasvir. BMS-791325 is a non-nucleoside inhibitor of the NS5B polymerase, currently in Phase II development as a component of daclatasvir-based treatment regimens.

This Phase II study combines these three different classes of DAAs – daclatasvir, asunaprevir and BMS-791325 – in HCV G1 treatment-naïve patients (Fig. 5A). Data reported here are from an interim analysis of Part 1 of this study [28].

liv12076-fig-0005

Figure 5. (A) Trial Design: Daclatasvir, Asunaprevir and BMS-791325 (BMS) In Part 1, 32 patients were randomized 1:1 (n = 16/arm) into two groups with 24 weeks (group 1) or 12 weeks (group 2) of the triple therapy with Daclatasvir, Asunaprevir and BMS-791 325. (B) Results from the trial : Daclatasvir, Asunaprevir and BMS-791 325 (BMS) Group 1 (24-week treatment): 94% (15/16) achieved undetectable viral load by the end of treatment and sustained through sustained virological response (SVR)4. Group 2 (12-week treatment): 100% (16/16) achieved undetectable viral load by the end of treatment and 94% (15/16) achieved SVR12 (28).

Group 1 (24-week treatment): 94% (15/16) achieved undetectable viral load by the EOT and SVR4. Two patients discontinued the study drugs prior to the protocol-defined last treatment visit, one because of inability to comply with study procedures (poor venous access) who achieved SVR4, and one who withdrew consent and was lost to follow-up.

Group 2 (12-week treatment): 100% (16/16) achieved undetectable viral load by the EOT and 94% (15/16) achieved SVR12. The remaining one patient was lost to follow-up after completing treatment, but did return approximately 24 weeks post-treatment and in preliminary data, has achieved SVR24. One patient discontinued study drugs prior to the protocol-defined last treatment visit (because of poor/non-compliance) and achieved SVR12.

Viral load declined rapidly in both groups and was below LLOQ in all patients (32/32) by week 4. There was no viral breakthrough during treatment and no post-treatment relapse.

There were no discontinuations because of adverse events. Headache was the most common adverse event in this study (31%, 10/32). There were no deaths, discontinuations owing to AEs, or serious AEs owing to study drugs. Most AEs were mild to moderate in severity. The most common AEs (≥10% total) were headache, diarrhoea and asthaenia. No grade 3–4 elevations in liver enzymes (ALT/AST) or bilirubin were observed. One grade 3 AE (headache) resolved after 7 days with continued study treatment and one grade 3–4 laboratory abnormality (lymphopaenia) was recorded in Group 2 at a single study visit concomitant with influenza. All other AEs were grade 1 or 2.

Daclatasvir and asunaprevir (BMS) in genotype 1b prior null responders

Previous data on daclatasvir and asunaprevir have reported exciting results in genotype 1b null responders [29, 30].

A new Phase II study demonstrated that the dual regimen of daclatasvir and asunaprevir, without IFN or RBV, achieved high rates of SVR12 in GT1b patients who were prior null responders to IFN alfa and RBV [31].

Trial design is presented in Fig. 6A. In Group A1 (daclatasvir + asunaprevir 200 mg BID), 78% (14/18) of patients achieved SVR12. Of the four patients who did not achieve SVR12, one patient was missing a viral load measurement at 12 weeks post-treatment and one had transient viraemia (detectable viral load). Both of these patients had undetectable viral load on subsequent visits.

liv12076-fig-0006

Figure 6. (A) Trial Design: Daclatasvir and Asunaprevir Patients received one of five treatment regimens for 24 weeks. Genotype 1b infected patients were randomized to receive one of four treatment regimens for 24 weeks (two DCV/ASV Dual treatment groups, two DCV/ASV/Alfa/RBV Quad treatment groups). Genotype 1a infected patients were randomized to receive one of two treatment regimens for 24 weeks (two DCV/ASV/Alfa/RBV Quad treatment groups). A fifth group (DCV/ASV/RBV Triple therapy) included both GT1a and GT1b infected patients and enrolled separately. The DCV/ASV Dual treatment groups received DCV 60 mg once daily and ASV 200 mg either twice daily (Group A1) or once daily (Group A2). (B) Results from the trial: Daclatasvir and Asunaprevir. In Group A1 (DCV + ASV 200 mg BID), 78% (14/18) of patients achieved SVR12. In Group A2 (DCV + ASV 200 mg QD), 65% (13/20) of patients achieved SVR12 (31).

In Group A2 (daclatasvir + asunaprevir 200 mg QD), 65% (13/20) of patients achieved SVR12. With daclatasvir and asunaprevir Dual therapy, eight patients experienced virological breakthrough – 2 patients in Group A1 and 6 in Group A2. All received rescue therapy with the addition of IFNalfa/RBV to their regimen. One patient in Group A2 relapsed at week 4 post-treatment.

An analysis of HCV sequences confirmed that 5/6 Group A2 patients with a virological breakthrough had baseline polymorphisms that confer Daclatasvir resistance (NS5A domain). In addition, at breakthrough, seven patients had confirmed resistance to both Daclatasvir and Asunaprevir.

There were no serious adverse events owing to study drug in the patients treated with daclatasvir and asunaprevir combination therapy, no deaths and no treatment discontinuations owing to AEs. Most AEs were mild to moderate. The most common AEs were headache, diarrhoea, asthaenia, and insomnia.

Grade 3–4 ALT/AST elevations were infrequent and none were accompanied by elevated total or direct bilirubin. All AST/ALT elevations improved without intervention.

The daclatasvir and asunaprevir dual regimen is part of a global registrational programme and a registrational programme specific to Japan, where the majority of HCV patients have GT1b.

Zenith study: VX-222, telaprevir and ribavirin (Vertex)

VX-222 is a selective, non-nucleoside, non-competitive inhibitor of the hepatitis C virus (HCV) NS5B polymerase. Telaprevir is a selective, HCV NS3/4A protease inhibitor. ZENITH is assessing the safety and efficacy of two dose levels of VX-222 with TVR either alone (DUAL), or with RBV (TRIPLE), or with PR (QUAD) in chronic HCV genotype 1 treatment-naϊve patients [32] (Fig. 7).

The two arms being presented represent arms E and F of the overall study in treatment-naïve genotype 1 patients without cirrhosis. Patients received VX -222 400 mg bid plus telaprevir 1125 mg bid plus ribavirin for 12 weeks. Arm E consisted of 23 genotype 1b patients, Arm F 23 genotype 1a patients.

Patients with undetectable HCV RNA at weeks 2 and 8, with no evidence of breakthrough during the first 12 weeks of treatment were assigned to stop treatment after 12 weeks. In contrast, patients with detectable HCV RNA at weeks 2 and/or 8 received an additional 24 weeks of PR therapy starting after week 12. Patients with vBT during the first 12 weeks had the option to enter the extension phase and receive 48 weeks of PR.

Overall, SVR occurred in 70% of patients in arm E and 73% in arm F. The most common adverse events during oral therapy are shown here, and included diarrhoea, rash, pruritus, nausea, fatigue. Also, anaemia was reported in 13%.

There were no serious adverse events, but grade ¾ Aes occurred in 7%. Haemoglobin less than 10 occurred in 7 or 15%, but there were no cases of haemoglobin < 8.5.

ALS-2200 (VX 135), nucleotide HCV polymerase inhibitor (Alios, Vertex)

ALS-2200 is a novel uridine-base nucleoside analogue, which has demonstrated potent, highly specific inhibition of NS5B-directed HCV RNA replication. ALS-2200 showed activity in HCV replicon cell lines that show resistance to other DAAs. The compound has pan-genotypic activity in replicon cell lines and a long half-life of NTP in human hepatocytes making ALS-2200 potentially suitable for once-daily dosing.

Rapid, dose-related reductions in HCV RNA observed after 7 days of treatment with ALS-2200 [33]. No viral breakthrough observed during dosing period. ALS-2200 was well tolerated. Fig. 8.

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Figure 7. Results from the Zenith trial sustained virological response (SVR)12 rates in the overall cohort and in 2 subgroups. Overall, SVR occurred in 70% of patients in arm E and 73% in arm F. Patients who discontinued treatment before week 12 are counted as failures here. In the blue bars are shown the patients who completed 12 weeks of total therapy, (the all-oral regimen), we see that among genotype 1b patients who met criteria for discontinuation of all therapy at week 12, 5 of 5 had SVR compared with 4 of 6 of the genotype 1a patients. In the grey bars, we see the patients who were assigned to PR for an additional 24 weeks, and had SVR rates of 85 and 93% (32).

liv12076-fig-0008

Figure 8. Results obtained with ALS-200 Rapid, dose-related reductions in HCV RNA observed after 7 days treatment with ALS-2200. Near maximal reduction in HCV RNA observed in high-dose groups. Median 4.54 log10 reduction after 7 days with 200 mg dose, 5 of 8 subjects below LLQ after 7 days with 200 mg dose + RBV (33).

Conclusion

Several trials with DAA combinations have reported increased SVR, low resistance and a good safety profile. There is realistic hope for an oral regimen against HCV in the near future, as several compounds with different mechanisms of action are in advanced drug development. Some of these drugs or drug combinations have pan-genotypic activity. This rapid progress strongly suggests that in the near future, IFN-free short duration DAA combinations will make HCV the first chronic viral infection to be eradicated worldwide.

Disclosure

Tarik Asselah is a speaker and investigator for BMS, Boehringer-Ingelheim, Tibotec, Janssen, Gilead, Roche and Merck. Patrick Marcellin is a speaker and investigator for BMS, Boehringer-Ingelheim, Tibotec, Janssen, Gilead, Roche and Merck.

References

Source