Showing posts with label GS-9451. Show all posts
Showing posts with label GS-9451. Show all posts

April 29, 2013

'Quad' HCV Tx Works but No More Trials Planned

By Michael Smith, North American Correspondent, MedPage Today

Published: April 29, 2013

Reviewed by Zalman S. Agus, MD; Emeritus Professor, Perelman School of Medicine at the University of Pennsylvania

AMSTERDAM – A four-drug regimen was effective in hard-to-treat hepatitis C (HCV) patients who had previously failed therapy, a researcher said here, but the drug combination is not being further developed.

In a phase II study, 70% of patients had undetectable HCV virus 12 weeks after ending the so-called "quad regimen," according to Gregory Everson, MD, of the University of Colorado in Aurora.

The drug protocol consisted of an NS5A inhibitor dubbed ledipasvir and a protease inhibitor, GS-9451, along with pegylated interferon and ribavirin.

Among those who responded to the four-drug regimen quickly and persistently, the rate was even higher at 87%, Everson reported at the meeting of the European Association for the Study of the Liver.

But despite the promise of what he called a "re-treatment protocol," Everson said further development of the regimen is not in the cards.

He did not immediately respond to an email from MedPage Today seeking clarification, but other experts here suggest it may have to do with the perception that pegylated interferon and ribavirin are on the way out.

Meanwhile, ledipasvir and GS-9451 remain in clinical development, according to a spokesman for the developer, Gilead Sciences of Forest City, Calif.

The results of the trial "are not entirely unexpected," commented Heiner Wedemeyer, MD, of Hannover Medical School in Hannover, Germany, who was not involved with the study.

"This specific regimen is not being further developed," he said, but what investigators "learned is that if we add more potent drugs, we can treat more difficult patients. We confirmed that concept."

It seems likely, he said, that the two drugs will continue to be developed for use without interferon and perhaps ribavirin. "The question will be whether we can shorten treatment," Wedemeyer said.

Until 2011, standard therapy for HCV genotype 1 was 48 weeks of pegylated interferon with ribavirin, a regimen regarded as difficult to tolerate with a substantial proportion of treatment failures.

Current standard therapy adds a third drug, one of the protease inhibitors telaprevir (Incivek) or boceprevir (Victrelis), but those medications have their own side effects and risks.

Patients who fail standard treatment – either relapsing or not responding in the first place – need better options, Everson said here.

He and colleagues tested the four drugs (ledipasvir, GS-9451, pegylated interferon, and ribavirin) in a response-guided fashion, enrolling 163 patients, including 52 who had not responded to previous therapy, 28 who had a partial response, and 83 who either relapsed or had viral breakthrough on treatment.

Patients who had undetectable viral RNA at weeks four through 20 of treatment stopped therapy after 24 weeks, while the others stopped ledipasvir and GS-9451 but continued the other two drugs for another 24 weeks.

The 70% rate of undetectable virus 12 weeks after the end of therapy (SVR12) indicated a "fairly robust antiviral effect," Everson said, and response during therapy was "highly predictive " of treatment success.

Among those who had a so-called extended rapid virologic response – no detectable virus from weeks four through 20 – the SVR12 rate was 87%, compared with just 28% among those who did not have such a response.

Everson said that patients with genotype 1b did better than those with genotype 1a, while those with the favorable CC variant of the IL-28B gene did better than those with other versions.

He added that 5% of patients had a serious adverse event during the study and 7.3% stopped treatment because of adverse events, all attributed to the interferon or ribavirin.

The overall pattern of adverse events, he said, was "typical" of what is seen with the two older drugs.

The study was supported by Gilead. Everson reported financial links with the company as well as BMS, Abbott, Roche/Genentech, Vertex, Merck/Schering-Plough Novartis, Janssen/Tibotec, GSK, Eisai, and BioTest.

Wedemeyer reported financial links with Abbott, Achillion, Biolex, BMS, Gilead, Janssen-Cilag, Merck, Novartis, Roche, Siemens, Transgene, and ViiV.

Primary source: European Accociation For the Study of the Liver
Source reference:
Everson GT, et al "Combination of the NS5A inhibitor, GS-5885, the NS3 protease inhibitor, GS-9451, and pegylated interferon plus ribavirin in treatment experienced patients with genotype 1 hepatitis C infection" EASL 2013; Abstract 13.

Source

October 11, 2012

A Phase 1, randomized, placebo-controlled, three-day, ascending-dose study of GS-9451, an NS3/4A protease inhibitor, in genotype 1 hepatitis C patients

Antivir Ther. 2012 Sep 28. doi: 10.3851/IMP2415. [Epub ahead of print]

Lawitz EJ, Hill JM, Marbury T, Demicco MP, Delaney W, Yang J, Moorehead L, Mathias A, Mo H, McHutchison JG, Rodriguez-Torres M, Gordon SC.

Source

Alamo Medical Research, San Antonio, TX, USA. lawitz@alamomedicalresearch.com.

Abstract
BACKGROUND: GS-9451 is a novel inhibitor of the hepatitis C virus (HCV) NS3/4A protease and demonstrates potent in vitro suppression of HCV genotype 1 replicons.
METHODS: The safety, pharmacokinetics, and antiviral efficacy of GS-9451 were evaluated in a Phase 1 study in treatment-naïve, HCV genotype 1 infected patients. Patients were randomized to 3 days of once-daily dosing with placebo (n=8) or GS-9451 60 mg (n=8 genotype 1a), 200 mg (n=8 genotype 1a; n=8 genotype 1b), or 400 mg (n=9 genotype 1a). Plasma samples were collected through Day 14 for pharmacokinetic evaluation, serum HCV RNA quantitation, and NS3 sequencing.

RESULTS: No patients interrupted or discontinued dosing due to an adverse event. The median (range) maximal HCV RNA reductions from baseline were -0.88 (-1.24, -0.64), -3.19 (-3.31, -2.94), and -3.64 (-4.08, -3.54) log(10) IU/mL in genotype 1a patients receiving 60, 200, and 400 mg/d GS-9451, respectively, and -3.48 (-3.54, -3.03) log(10) IU/mL in genotype 1b patients receiving GS-9451 200 mg/d. Median half-life ranged from 14-17 hours. Day 3 mean C(tau) was 5.5- and 17-fold above protein-binding adjusted mean EC(50) in 200- and 400-mg cohorts, respectively. No resistance mutations were detected with GS-9451 60 mg/d. In the 200 mg/d or 400 mg/d groups, predominant mutations were NS3 R155 (R155K) in genotype 1a patients and D168 (D168E, D168V and D168G) in genotype 1b patients.

CONCLUSIONS: GS-9451 was well tolerated. During 3 days of monotherapy, GS-9451 200 mg/d or 400 mg/d demonstrated potent antiviral activity in both HCV genotype 1a and 1b infected patients. GS-9451 is currently being evaluated in combination regimens with and without peginterferon alfa.

PMID: 23047118 [PubMed - as supplied by publisher]

Source

April 22, 2012

EASL 2012: [SLIDES] Interim Sustained Virologic Response Rates in Treatment-Naïve HCV Genotype 1a and 1b Patients Treated for 12 or 24 Weeks with an Interferon-Free All-Oral Quad Regimen

Gilead Sciences, Inc.
333 Lakeside Drive
Foster City, CA 94404
Tel: (650)522-6009
Fax: (650)522-5260

Poster
Number 1421

47th Annual Meeting of the
European Association for the Study of the Liver
April 18 - 22, 2012
Barcelona, Spain

M. Sulkowski1, M. Rodriguez-Torres2, E. Lawitz3, M. Shiffman4, S. Pol5, R. Herring6, J.G. McHutchison7, P.S. Pang7, K.A. Wong7, B. Massetto7, Y. Zhu7, D.M. Brainard7, D. Wyles8, F. Habersetzer9

1Johns Hopkins University School of Medicine, Lutherville, MD; 2Fundacion de Investigacion de Diego, Santurce, PR; 3Alamo Medical Research, San Antonio, TX; 4Liver Institute of Virginia, Richmond, VA; 5Hôpital Necker, Paris, France; 6Nashville Gastrointestinal Specialists, Inc.,
Nashville, TN; 7Gilead Sciences, Inc., Foster City, CA; 8University of California, San Diego, La Jolla, CA; 9Hôpitaux Universitaires de Strasbourg, Strasbourg, France

Introduction

  • Combinations of direct-acting antivirals (DAAs) without interferon (IFN) have demonstrated variable rates of sustained virologic response (SVR) in genotype 1 patients1,2
    ─ Lower SVR rates have been reported in genotype 1a as compared to genotype 1b HCV
    ─ The optimal duration of IFN-free treatment regimens in genotype 1 has not been established
    ─ Virologic failure in IFN-free regimens without a nucleos(t)ide analogue has been associated with multidrug resistance
  • This ongoing Phase 2 study (NCT01353248) was designed to assess the effi cacy and safety of a 3-DAA-containing regimen plus ribavirin (RBV), including a protease inhibitor, NS5A inhibitor, and a non-nucleoside NS5B inhibitor
  • We report preliminary SVR4, SVR12, and safety data from patients treated for 12 or 24 weeks

Table 1. In Vitro Characteristics of DAAs Administered in the Current Study

Tab1

*In vitro and following 3 or 7 days of monotherapy in HCV-infected patients

Methods

Patients

Major inclusion criteria:

  • Chronic infection with HCV genotype 1a or 1b
  • HCV treatment-naïve
  • Plasma HCV RNA ≥104 IU/mL during screening
  • Exclusion of cirrhosis by liver biopsy within 2 years or Fibroscan within 6 months

Major exclusion criteria:

  • Coinfection with human immunodefi ciency virus or hepatitis B virus
  • Contraindication to treatment with IFN and/or RBV
  • Current or prior hepatic decompensation
  • Prespecifi ed laboratory abnormalities

Study design (Figure 1)

  • Patients were randomized 1:2 to the following treatment groups:
    ─ Arm 1: GS-5885 30 mg QD + GS-9451 200 mg QD + GS-9190 30 mg BID + RBV
    ─ Arm 2: GS-5885 90 mg QD + GS-9451 200 mg QD + GS-9190 30 mg BID + RBV
  • Patients with HCV RNA ≥25 IU/mL at Week 2 (non-vRVR) were offered peginterferon (PEG)-containing rescue therapy or discontinuation from the study
  • Patients in Arm 2 with HCV RNA <25 IU/mL from Week 2 through Week 10 were
    re-randomized at Week 12 to either stop treatment or continue treatment through Week 24

Figure 1. Study Design  Fig1

  • Randomization stratifi ed by HCV RNA at screening (≤ or >800,000 IU/mL) and genotype 1a or 1b
  • Virologic breakthrough defi ned as confi rmed, on-treatment HCV RNA ≥25 IU/mL after Week 2
    ─ Patients with breakthrough offered PEG-containing rescue therapy
  • Plasma HCV RNA measured using the Roche COBAS TaqMan HCV/HPS assay v2.0 with a lower limit of quantifi cation of 25 IU/mL

Table 2. Summary of Baseline Characteristics (N = 140)

Tab2

Figure 2. Patient Disposition

Fig2

Table 3. Preliminary Post-treatment Response Rates by Treatment Arm and
Genotype Subtype, n (%)

Tab3

*SVR4 and SVR12 rates calculated using treatment completers who had available data at the given timepoint

Figure 3. On-treatment Response by Arm, IL28B Genotype, and HCV Subtype

Fig3

Figure 4. HCV RNA Kinetics in Patients with Virologic Breakthrough by Treatment Arm and Genotype Subtype

Fig4

45 patients enrolled in rescue Rescue therapy with PEG + GS-5885 + GS-9451

Table 4. Patients Achieving HCV RNA <25 IU/mL During Rescue Therapy

Tab4

a. 1 early termination (ET) due to lack of effi cacy; 1 ET due to an AE
b. ET due to lack of effi cacy; 1 of 16 patients experienced breakthrough after achieving <25 IU/mL
c. 1 ET due to lack of effi cacy; 1 ET due to an AE; 1 patient has not reached <25 IU/mL after 16 weeks in rescue

Table 5. Safety Summary, n (%)

Tab5

  • One subject in Arm 1 had 2 SAEs (pancreatitis requiring overnight hospitalization and viral gastroenterititis); no doses of study medications were missed
  • Two subjects in Arm 2 had 5 AEs (acute psychosis, alcohol intoxication, decreased muscle mass, heartburn, irritability)
  • Reported grade 3 AEs were pancreatitis (also SAE), stomatitis, fatigue, elevated bilirubin, viral gastroenteritis (also SAE), alcohol poisoning (led to study discontinuation), tendonitis, and acute psychosis

Table 6. Most Common (≥10%) Treatment-Emergent AEs, n (%) Arm 1 (GS-5885 30 mg) Arm 2

Tab6

Table 7. Laboratory Parameters of Interest, n (%)

Tab7

  • Rates and severity of anemia were consistent with what has been reported in other IFN-free, RBV-containing studies3,4
  • Indirect hyperbilirubinemia was observed in approximately 60% of patients without concomitant transaminase elevations
    ─ GS-9451 is an inhibitor of the bilirubin transporter protein OATP1B1 and has been associated with transient indirect hyperbilirubinemia in healthy volunteers5
    ─ No Grade 4 (≥6.0 g/dL) hyperbilirubinemia was observed

Summary and Conclusions

Preliminary data from this ongoing Phase 2 study of a multi-DAA
regimen without a nucleos(t)ide analogue has shown in genotype 1
patients that:

  • A regimen including 3 DAAs + RBV was well tolerated for up to 24 weeks
  • The 90-mg dose of GS-5885 provides improved antiviral effi cacy over the 30-mg dose of GS-5885 without an increase in toxicity
  • Rates of viral breakthrough and relapse were lower in genotype 1b patients than in genotype 1a patients
  • Patients with the IL28B CC genotype showed lower rates of breakthrough than IL28B non-CC patients, particularly in Arm 2 (GS-5885 90mg)
  • Virologic breakthrough was associated with multi-DAA resistance
    ─ Viral suppression with the addition of PEG occurs in most virologic failures

References and Acknowledgements

1. Lok A, et al. N Engl J Med 2012;366;3:216-24.
2. Zeuzem S, et al. Gastroenterology 2011;141:2047-54.
3. Zeuzem et al. AASLD 2011. Abstract LB-15
4. Gane EJ, et al. AASLD 2011. Abstract 34
5. Yang JC, et al. EASL 2012.

The study team and investigators thank the patients for their participation in this clinical trial.

© 2012 Gilead Sciences, Inc.

Source

April 18, 2012

EASL 2012: Gilead Sciences to Present New Hepatitis B and C Data at European Conference on Liver Disease This Week

Gilead

- Presentations Include First Results For Lead Hepatitis C Candidate GS-7977 In Treatment-Naïve Genotype 1 Patients -

BARCELONA, Spain, Apr 18, 2012 (BUSINESS WIRE) --Gilead Sciences, Inc. (Nasdaq:GILD) today announced that 30 abstracts examining the company's products and investigational agents for hepatitis B and C have been selected for presentation at the 47th Annual Meeting of the European Association for the Study of the Liver (International Liver Congress 2012) taking place April 18-22 in Barcelona, Spain. The abstracts describe clinical and preclinical data for a number of investigational chronic hepatitis C compounds, as well as new long-term data for Viread(R) (tenofovir disoproxil fumarate) for chronic hepatitis B.

Presentations will include data from several studies examining Gilead's late-stage nucleotide analog polymerase inhibitor, GS-7977, in treatment-naïve genotype 1 hepatitis C patients. Genotype 1 is the most prevalent strain of the hepatitis C virus (HCV), and also the hardest to treat with existing therapies. Data from ELECTRON (Poster #1113) and ATOMIC (Oral Abstract #1) will be presented and both studies have been selected for inclusion in official EASL Press Office activities.

In addition to GS-7977, Gilead is advancing multiple oral compounds with different mechanisms of action with the goal of creating an efficacious, well tolerated and convenient all-oral treatment regimen for chronic HCV. Notably, data will be presented for two of these compounds, GS-5885 (an NS5A inhibitor) and GS-9669 (a non-nucleoside polymerase inhibitor):

  • Interim efficacy and safety results for a Phase 2 study (Study 120) examining 12 weeks of treatment with GS-5885, GS-9451, tegobuvir (GS-9190) and ribavirin. Based on the results of this trial and other studies involving more than 800 patients treated with GS-5885 for at least 12 weeks, Gilead has selected a 90 mg dose of GS-5885 for further clinical development (Latebreaker Poster #1421).
  • Results of a three-day, Phase 1, ascending-dose study, which demonstrate the potent antiviral activity of GS-9669, a non-nucleoside polymerase inhibitor, when administered once-daily (Poster #1189).

Seven abstracts at the International Liver Congress will highlight the safety and efficacy profile of Viread, the most-prescribed treatmentfor chronic hepatitis B in the United States and major countries of Europe. Notably, new data further characterize Viread's well-established renal safety profile:

  • The VIREAL prospective cohort study reports on 115 chronic hepatitis B patients with reduced renal function at baseline, the majority of whom either remained stable or improved after 48 weeks of treatment with Viread (Poster #531).

Abstracts for Gilead's presentations can currently be accessed on the EASL website, with the exception of the ELECTRON and ATOMIC studies, which are embargoed until Thursday, April 19, 2012 due to their inclusion in the press program of the International Liver Congress. Gilead will issue press releases describing the data from these studies. Further information about these studies can also be found at www.clinicaltrials.gov.

GS-7977, GS-5885, GS-9669, GS-9451 and tegobuvir (GS-9190) are investigational products and their safety and efficacy have not yet been established.

Important Information About Viread for Chronic Hepatitis B

Viread (tenofovir disoproxil fumarate) is indicated for the treatment of chronic hepatitis B in adults. The following points should be considered when initiating therapy with Viread for the treatment of HBV infection: This indication is based primarily on data from the treatment of nucleoside-treatment-naïve patients, and a smaller number of patients who had previously received lamivudine or adefovir. Patients were adults with HBeAg-positive and HBeAg-negative chronic hepatitis B with compensated liver disease. Viread was evaluated in a limited number of subjects with chronic hepatitis B and decompensated liver disease. The number of patients in clinical trials who had lamivudine- or adefovir-associated substitutions at baseline was too small to reach conclusions of efficacy.

Lactic acidosis and severe hepatomegaly with steatosis, including fatal cases, have been reported with the use of nucleos(t)ide analogs, including Viread, in combination with other antiretrovirals.

Severe acute exacerbations of hepatitis have been reported in HBV-infected patients who have discontinued anti-hepatitis B therapy, including Viread. 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, including Viread. If appropriate, resumption of anti-hepatitis B therapy may be warranted.

New onset or worsening of renal impairment including cases of acute renal failure and Fanconi syndrome has been reported with the use of Viread. It is recommended to assess creatinine clearance (CrCl) before initiating treatment with Viread and monitor CrCl and serum phosphorus in patients at risk, including those who have previously experienced renal events while receiving Hepsera(R). Administering Viread with concurrent or recent use of nephrotoxic drugs should be avoided.

Viread should not be used with other tenofovir-containing products (e.g., Atripla(R), Complera(R), Truvada(R)). Viread should not be administered in combination with Hepsera.

Due to the risk of development of HIV-1 resistance, Viread should only be used as part of an appropriate antiretroviral combination regimen in HIV-infected patients with or without HBV coinfection. HIV antibody testing should be offered to all HBV-infected patients before initiating therapy with Viread.

Decreases in bone mineral density (BMD) have been observed in HIV-infected patients. It is recommended that BMD monitoring be considered for patients with a history of pathologic fracture or who are at risk for osteopenia. The bone effects of Viread have not been studied in patients with chronic HBV infection. Cases of osteomalacia (associated with proximal renal tubulopathy and which may contribute to fractures) have been reported in association with the use of Viread.

In controlled clinical trials in patients with chronic hepatitis B with compensated liver disease, the most common adverse reaction (all grades) was nausea, observed in 9 percent of patients taking Viread at week 48. Other adverse reactions observed at week 48 in greater than 5 percent of patients treated with Viread include abdominal pain, diarrhea, headache, dizziness, fatigue, nasopharyngitis, back pain and skin rash.

In HBV-infected patients with decompensated liver disease, the most common adverse reactions (all grades) reported in greater-than or equal to 10 percent of patients treated with Viread were abdominal pain (22 percent), nausea (20 percent), insomnia (18 percent), pruritus (16 percent), vomiting (13 percent), dizziness (13 percent), and pyrexia (11 percent).

Coadministration of Viread with didanosine increases didanosine concentrations. Use with caution and monitor for evidence of didanosine toxicity (e.g., pancreatitis, neuropathy). Didanosine should be discontinued in patients who develop didanosine-associated adverse reactions. In adults weighing >60 kg, the didanosine dose should be reduced to 250 mg when it is coadministered with Viread. Data are not available to recommend a dose adjustment of didanosine for patients weighing <60 kg. Coadministration of Viread with atazanavir decreases atazanavir concentrations and increases tenofovir concentrations. Use atazanavir with Viread only with additional ritonavir; monitor for evidence of tenofovir toxicity. Coadministration of Viread with lopinavir/ritonavir increases tenofovir concentrations. Monitor for evidence of tenofovir toxicity.

The recommended dose for the treatment of chronic hepatitis B is 300 mg once daily taken orally without regard to food. The dosing interval of Viread should be adjusted and renal function closely monitored in patients with moderate and severe renal impairment.

The parent compound of Viread was discovered through a collaborative research effort between Dr. Antonin Holy, Institute for Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic (IOCB) in Prague and Dr. Erik DeClercq, Rega Institute for Medical Research, Katholic University in Leuven, Belgium.

Please see full Prescribing Information for Viread, Atripla, Complera, Truvada and Hepsera (including BOXED WARNINGS).

About Gilead Sciences

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 worldwide. Headquartered in Foster City, California, Gilead has operations in North America, Europe and Asia Pacific.

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 possibility of unfavorable subsequent results in studies examining GS-7977, GS-5885, GS-9669, GS-9451 and tegobuvir (GS-9190). As a result, these compounds may never be successfully commercialized. In addition, Gilead may make a strategic decision to discontinue development of these compounds if, for example, Gilead believes commercialization will be difficult relative to other opportunities in its pipeline. Further, Gilead may be unable to develop an all-oral antiviral regimen for HCV genotype 1 patients or a pangenotypic regimen for all HCV patients. 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, 2011, 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 Viread is available at www.Viread.com.
U.S. full prescribing information for Atripla is available at www.Atripla.com.
U.S. full prescribing information for Complera is available at www.Complera.com.
U.S. full prescribing information for Truvada is available at www.Truvada.com.
U.S. full prescribing information for Hepsera is available at www.Hepsera.com.

Viread, Complera, Truvada and Hepsera are registered trademarks of Gilead Sciences, Inc.
Atripla is a registered trademark of Bristol-Myers Squibb & Gilead Sciences, LLC.

For more information on Gilead Sciences, please visit the company's website at www.gilead.com or call Gilead Public Affairs at 1-800-GILEAD-5 or 1-650-574-3000.

SOURCE: Gilead Sciences, Inc.

Gilead Sciences, Inc.
Susan Hubbard, 650-868-5215 (Investors)
shubbard@gilead.com
Patrick O'Brien, 650-522-1936  (Investors)
pobrien@gilead.com
Cara Miller, 650-576-7849 (Media)
cmiller@gilead.com

Source

April 4, 2012

EASL 2012: High SVR Rate in Treatment-Naïve HCV Genotype 1a and 1b Patients Treated for 12 Weeks with an Interferon-Free All-Oral Quad Regimen: Interim Results

top_600

Abstract

Title: High Sustained Virologic Response Rate in Treatment-Naïve HCV Genotype 1a and 1b Patients Treated for 12 Weeks with an Interferon-Free All-Oral Quad Regimen: Interim Results

Speaker: Mark Sulkowski

Author: M. Sulkowski1*, M. Rodriguez-Torres2, E. Lawitz3, M. Shiffman4, S. Pol5, R. Herring6, J. McHutchison7, P. Pang7, D. Brainard7, D. Wyles8, F. Habersetzer9

Affiliation: 1Johns Hopkins University School of Medicine, Lutherville, MD, USA, 2Fundacion de Investigacion de Diego, Santurce, Puerto Rico, 3Alamo Medical Research, San Antonio, TX, 4Liver Institute of Virginia, Richmond, VA, USA, 5Hôpital Necker, Paris, France, 6Nashville Gastrointestinal Specialists, Inc., Nashville, TN, 7Gilead Sciences, Inc., Foster City, 8University of California, San Diego, La Jolla, CA, USA, 9Hôpitaux Universitaires de Strasbourg, Strasbourg, France. *msulkowski@jhmi.edu

Background and aims: The efficacy and safety of an all-oral regimen of the NS5a inhibitor GS-5885, non-nucleoside NS5b inhibitor tegobuvir, NS3 protease inhibitor GS-9451, and ribavirin for 12 or 24 weeks were assessed in chronic HCV genotype (GT) 1-infected patients. We report interim results in patients who received a 12-week treatment regimen.

Methods: 141 treatment-naïve patients were randomized 1:2 to receive GS-5885 30mg/day (Arm 1; n=47) or GS-5885 90mg/day (Arm 2; n=94); patients in both arms received tegobuvir 30mg BID + GS-9451 200mg QD + ribavirin 1000-1200mg/day. Patients not achieving HCV RNA < 25 IU/mL at Week 2 (vRVR; Roche Cobas Taqman v2 with LLOQ=25 IU/mL) were switched to peginterferon-containing rescue therapy. Arm 2 patients who achieved vRVR and remained undetectable were re-randomized (1:1) at Week 12 to stop therapy immediately or continue for an additional 12 weeks (total duration, 24 weeks).

Results: 94 patients randomized to Arm 2 received treatment: 59% male, 12% black, 60% non-CC allele, 72% GT1a, 87% HCV RNA >600,000 IU/mL. 74 achieved vRVR and 64 were eligible for re-randomization at Week 12. 27/33 patients who stopped therapy at Week 12 have reached post-treatment Week 4. Of these, 26 (96%) achieved SVR4 (18/19 [95%] of the GT1a patients and all 8 GT1b patients). Viral breakthrough occurred only in GT1a patients (8/55). Two patients terminated early: 1 due to alcohol abuse and 1 withdrew consent. IL28B status did not appear to correlate with SVR4 or breakthrough. The most frequently reported AEs were headache (21%), fatigue (16%), diarrhea (14%), nausea (13%), and rash (11%). No WBC or platelet reductions were observed. Mean hemoglobin reduction was -2.3 g/dL. No patients were discontinued from all-oral therapy due to a drug-related adverse event.

Conclusions: High SVR rates were observed with this well-tolerated, 12-week, interferon-free, all-oral quad regimen in HCV GT1a and 1b patients who achieved vRVR and remained undetectable during 12 weeks of therapy. Viral breakthrough and relapse were limited to GT1a-infected patients.

p_455_00428

[Study Flow Chart]

Source

February 16, 2012

The Era of Direct-acting Antivirals Has Begun: The Beginning of the End for HCV?

From Seminars in Liver Disease

Marie-Louise Vachon, M.D., M.Sc.; Douglas T. Dieterich, M.D.

Posted: 02/15/2012; Semin Liver Dis. 2011;31(4):399-409. © 2011 Thieme Medical Publishers

Abstract and Introduction
Abstract

The year 2011 marks the dawn of the new era of direct-acting antivirals for hepatitis C. For the first time since 1998, the U.S. Food and Drug Administration approved two new antiviral drugs for the treatment of chronic hepatitis C virus genotype 1. Dual therapy with pegylated interferon and ribavirin is no longer the standard of care for genotype 1. The new treatment paradigm includes one direct-acting antiviral, a protease inhibitor, in combination with pegylated interferon and ribavirin. This combination nearly doubles the chances of response to treatment, but at the cost of increased toxicity. Many agents with different mechanisms of action and improved safety profiles are in clinical development. The holy grail of HCV treatment is an all oral, interferon-free treatment. The ideal regimen will be potent, well tolerated, with minimal drug-drug interactions and once daily. This article covers new concepts of treatment of hepatitis C with DAAs and gives an overview of the recent highlights in direct-acting antiviral development.

Introduction

In May 2011, telaprevir and boceprevir were approved by the U.S. Food and Drug Administration (FDA) for treatment of chronic hepatitis C virus (HCV) genotype 1. Dual therapy with pegylated interferon (pegIFN) and ribavirin (RBV) is no longer the standard of care for genotype 1 HCV. The new treatment paradigm includes one direct-acting antiviral (DAA), a protease inhibitor (PI), in combination with pegIFN and RBV. The addition of a DAA to pegIFN/RBV nearly doubles the chances of response to treatment at the cost of increased toxicity. This is only the first wave of DAA use since many agents with different mechanisms of action and improved safety profiles are in phase I, II, and III of clinical development (Table 1 and Table 2). The use of three agents to treat HCV mirrors human immunodeficiency virus (HIV) triple combination treatment in many ways. Combination treatment seems inevitable to prevent emergence of resistance in HCV. Clinical trials are ongoing to identify the ideal regimen which would be potent, well tolerated, with minimal drug-drug interactions, once daily, all oral, and for as short a duration as possible (Table 3). Two major differences between HIV and the treatment of HCV are that treatment of HCV is for a definite duration and that HCV is curable. In this article, we examine new concepts of treatment of HCV with DAAs in general and review investigational compounds that have entered phase II of clinical development.

New Concepts of DAA Use

Several new concepts arose with the development of DAAs to treat hepatitis C. Because DAAs are true antivirals that target critical steps of HCV replication, similar to antiretrovirals inhibiting HIV, selection of resistant mutants is inevitable with monotherapy.[1] The HCV replication cycle and the different sites at which DAAs can interfere with HCV replication are thoroughly reviewed elsewhere.[2,3] RNA viruses like HCV inherently possess an error-prone RNA-dependent RNA polymerase that lacks the proofreading function. As a result, and with the rapid HCV viral turnover (up to 1012 virions produced each day), it is estimated that one mutation is contained in every single genome copied.[4] There are thus many variant populations coexisting in a given individual, the patient's quasispecies. Most of these variant populations are susceptible to DAAs because wild-type viruses usually have the advantage of fitness, but some of these preexisting variants are drug-resistant at baseline.[5,6] When selection pressure is applied with the use of a DAA in monotherapy, these preexistent variants are rapidly selected and can become the predominant circulating population, potentially leading to treatment failure.[7–9] Resistance profiles differ between drug classes. Some drugs have different resistance mutations within the same class. A new concept that emerged as part of PI development is the difference in resistance profile between genotype 1a and genotype 1b. For example, the R155K substitution typically emerges when HCV genotype 1a is exposed to telaprevir.[8] Only one nucleotide change is required for the 1a subtype to develop resistance whereas two nucleotide changes must occur in genotype 1b.[10] This is not specific to PI use and has been described with other drug classes, for example, nonnucleoside polymerase inhibitors.[10] As a result, antiviral responses can vary between HCV genotype 1 subtypes during treatment with DAAs, while response was similar when treated with pegIFN and RBV dual therapy.

Response-guided therapy (RGT) refers to the use of on-treatment virologic response to tailor the duration of therapy for an individual patient.[11] This concept was used with pegIFN/RBV treatment but really emerged in the era of DAAs. Both telaprevir and boceprevir can be used for a shorter treatment duration in patients who achieve HCV RNA undetectability early on in treatment.[12,13] This is RGT. In the telaprevir studies, extended rapid virologic response (eRVR) was used to determine if RGT could be used.[12,14] The definition of eRVR was HCV RNA <10 IU/mL at week 4 and 12. In the boceprevir studies, RGT was used when HCV RNA was less than 9.3 IU/mL at week 8 through week 24.[13] Most phase II and III clinical trials of DAAs are exploring this possibility of shortening treatment duration in patients who achieve eRVR.

The concept of lead-in is also widely discussed in the DAA literature. Lead-in is the use of pegIFN and RBV for a short duration preceding the initiation of DAA. Lead-in was initially introduced in an attempt to lower HCV RNA levels before PI exposure to minimize the emergence of resistance. Also, by achieving proper pegIFN and RBV drug levels before the initiation of the DAA, it would avoid functional monotherapy. Studies of boceprevir used a 4-week lead-in of pegIFN and RBV. It turns out the lead-in was most useful in the assessment of interferon responsiveness. In the SPRINT-2 study evaluating boceprevir in combination with pegIFN/RBV in previously untreated patients with chronic HCV genotype 1, a decrease in the HCV RNA level by ≥1 log10 IU/mL after the 4-week lead-in increased the chances of sustained virologic response (SVR; undetectable HCV RNA 24 weeks after the end of treatment) ninefold (adjusted odds ratio [AOR], 9.0; 95% confidence interval [CI], 6.3–12.8; P <.001).[13] There was no advantage to lead-in when used with other DAAs, for example, with telaprevir and BI 201335.[14,15]

Lower Limit of Detection (LLOD) Versus Lower Limit of Quantification (LLOQ)

The LLOD is the HCV RNA concentration at which less than 5% of the samples that contain a known amount of an RNA standard yield a signal that can be detected. The LLOQ refers to the lowest HCV RNA concentration that is within the validated quantitative range of an assay. An undetectable result indicates that HCV RNA was not detected in the sample. The limit of detection and the limit of quantification vary according to the assay used. Both the boceprevir and telaprevir phase III studies used the COBAS TaqMan HCV RNA assay, version 2.0 (Roche), with a LLOD of 10 IU/mL and a LLOQ of 25 IU/mL. Eligibility for RGT was based on the lower limit of detection (<10 IU/mL) of the assay. There is thus a range in which HCV RNA can be detectable, but falls below the level of quantification. This situation is not uncommon during HCV treatment and is associated with lower SVR rates. In the SPRINT-2 trial, 53% of the 1071 patients enrolled had at least one on-treatment result showing detectable HCV RNA, but below the level of quantification.[13] For example, in the patients who received boceprevir and who had detectable HCV RNA at week 6 (any level), detectable HCV RNA at week 8 but below level of quantification, and undetectable HCV RNA at week 10, the SVR rate was 74%. In the patients who received boceprevir and who had detectable HCV RNA at week 6 (any level) but undetectable HCV RNA at weeks 8 and 10, the SVR rate was 86%. When assessing eligibility to response-guided therapy with DAAs, an undetectable HCV RNA (<LLOD) is not equivalent to a detectable HCV RNA that is below the limit of quantification of the assay (detectable but <LLOQ). The package inserts of telaprevir and boceprevir reflect this fact.

NS3/4A PIs

HCV NS3/4A PIs are often divided in two classes. The first generation PIs include the linear α-ketoamide derivatives, boceprevir and telaprevir. They bind the catalytic site of the enzyme covalently in a reversible reaction. Boceprevir and telaprevir are considered the first wave of the first-generation PIs. These two PIs are the first DAAs to have completed phase III clinical trials for treatment of HCV genotype 1 and to have received FDA approval. Second-wave PIs are mostly linear and macrocyclic noncovalent inhibitors of the NS3/4A enzyme. Both waves are highly potent inhibitors of the NS3/4A enzyme. The advantages of second wave PIs over first wave PIs are their convenience and improved side effect profile. Unfortunately, they share the same basic resistance mutations that are generated by the first wave of PIs. The truly second-generation PIs are the two drugs MK-5172 and the ACH-2684. They do not share the same resistance mutations and are pangenotypic. There are currently two first-generation, second-wave PIs that recently initiated phase III of clinical development: TMC435 and BI-201335.

TMC435

In phase I studies, TMC435 was generally safe and well tolerated. It showed potent anti-HCV activity. After 5 days of TMC-435 at a dose of 200 mg once daily, HCV RNA decreased by a median of 3.9 log10 IU/mL in HCV genotype 1-infected patients who failed prior interferon-based therapy.[16] The phase IIb PILLAR study is ongoing and week 24 results have recently been presented.[17] PILLAR is investigating the use of once-daily TMC435 at two different dosages (75 mg vs 150 mg) for 12 versus 24 weeks in combination with pegIFN/RBV for 24 vs 48 weeks (vs placebo/pegIFN/RBV for 48 weeks), in 386 patients with HCV genotype 1 naïve to HCV treatment. Patients with HCV RNA less than 25 IU/mL from week 4 to week 20 were eligible for RGT and stopped treatment at week 24. Of the patients receiving TMC435, 83% achieved eRVR and 94 to 97% achieved undetectable HCV RNA at week 24 of treatment compared with a high 82% in the pegIFN/RBV control group. Of the 83% of patients who achieved eRVR and stopped therapy at week 24, 88 to 97% achieved SVR12 (undetectable HCV RNA 12 weeks after the end of treatment). Discontinuation of TMC435 or placebo occurred in 7.1% of patients receiving TMC435/pegIFN/RBV versus 7.8% of patients receiving placebo/pegIFN/RBV. The most common adverse events occurred in a similar proportion of patients receiving or not receiving TMC435. TMC435 at the 150 mg once-daily dose was associated with mild and reversible increases in direct and indirect bilirubin. Elevation in bilirubin is thought to occur through inhibition of the two transporters: organic anion transporting polypeptide 1B1 (OATP1B1) and multidrug resistance-associated protein 2 (MRP2). OATP1B1 is responsible for bilirubin uptake into hepatocytes (influx) and MRP2 is responsible for efflux into bile. No inhibition of bilirubin conjugation has been observed.[18]

The ASPIRE study is the ongoing phase IIb study in prior partial responders (≥2 log10 drop in HCV RNA at week 12 but detectable HCV RNA at week 24), prior null responders (<2 log10 drop in HCV RNA at week 12 of treatment) and prior relapsers (undetectable HCV RNA at the end of treatment, but detectable HCV RNA within 24 weeks of end of treatment) to interferon-based therapy. Patients received TMC435 at doses of 100 mg versus 150 mg once daily in combination with pegIFN/RBV for 12, 24, or 48 weeks. In all seven arms of the trial, patients received pegIFN/RBV to complete 48 weeks of treatment. There was no RGT. The week 24 interim analysis showed that 92 to 96% of prior relapsers who received TMC435 had undetectable HCV RNA at week 24 compared with 83% of patients in the control group. Of the prior partial responders receiving TMC435, 83 to 89% had undetectable HCV RNA at week 24 versus 20% of the control group. Of the prior null responders, 70 to 87% had undetectable HCV RNA at week 24 versus 45% of the control group (higher than expected). The prior null responders typically have the lowest response rates to retreatment. The end of treatment and SVR data are eagerly awaited.

In summary, TMC435 is a highly potent once-daily dosing PI. Duration of treatment can be shortened to 24 weeks for the majority of patients; viral breakthroughs are low when used in combination with pegIFN and RBV. The 150 mg once-daily dose is being used in phase III trials in both patients who are naïve to HCV treatment and patients who previously relapsed to an interferon-based therapy. Patients will receive once-daily 150 mg of TMC435 during 12 weeks in combination with pegIFN/RBV for a 24 versus 48 weeks. A trial for HIV-infected patients has started enrollment in the second half of 2011.

BI 201335

BI201335 is a HCV NS3 PI given once daily currently in phase III. The phase IIb SILEN-C1 trial was conducted in patients with HCV genotype 1 naïve to HCV treatment to evaluate safety and efficacy of BI 201335 given once daily at a dose of 120 mg or 240 mg for 24 weeks in combination with pegIFN and RBV for 24 vs 48 weeks.[14] A lead-in of pegIFN and RBV for 3 days was also evaluated in 2 of the 4 arms (with 120 mg and 240 mg once daily). In the two arms using BI 201335 at a dose of 240 mg (with and without a lead-in), patients achieving eRVR were rerandomized to either stop treatment at week 24 or continue with pegIFN/RBV for a total of 48 weeks. Patients receiving 240 mg once daily without a lead-in achieved the highest eRVR rate of 87% and were thus eligible for shortened treatment duration. As expected with this high eRVR rate, this arm also had the highest SVR rate of 83% versus 73% of patients receiving 240 mg with a lead-in and 56% of patients in the pegIFN/RBV control group. Prolonging treatment to 48 weeks in those patients achieving eRVR did not result in higher SVR rates. Of those who completed 24 weeks, 93% achieved SVR versus 90% of those who completed 48 weeks. Viral breakthroughs occurred in 2.8 to 5.8% of patients receiving BI 201335 with the highest rate in those of the 120 mg daily with lead-in arm.

The phase IIb SILEN-C2 trial evaluated BI 201335 for 24 weeks in combination with pegIFN/RBV for 24 versus 48 weeks, with or without a 3-day lead-in of pegIFN/RBV in previous partial and null responders infected with HCV genotype 1.[19] The 240 mg once-daily dose (with and without a lead-in) was compared with 240 mg twice daily with a lead-in. Patients of the 240 mg once-daily group with lead-in achieving eRVR were rerandomized to stopping therapy or continuing 48 weeks with pegIFN/RBV. Similar to the SILEN-C1 trial, the lead-in did not appear to be useful. The 240 mg once-daily dosing without a lead-in led to the highest SVR rates. Overall, eRVR was achieved by 45% of patients and SVR was achieved by 27 to 41% of patients. The lowest SVR rate was observed in the 240 mg once daily with the lead-in arm, the one group that used RGT for those achieving eRVR. In comparison to the good results observed with 24 weeks of treatment in the naïve patients achieving eRVR in the SILEN-C1 trial,[14] prior partial and null responders achieving eRVR in SILEN-C2 achieved lower SVR rates when stopped at week 24. Only 40% of patients achieved SVR when stopped at week 24 compared with 72% of those who completed 48 weeks of treatment. The additional 24 weeks of peg/RBV greatly impacted the relapse rate. Sixty percent of those who stopped at week 24 relapsed compared with 21% of those who completed 48 weeks of treatment. Viral breakthroughs occurred predominantly on BI 201335 compared with peg/RBV (17–28% vs 5–7%). Several adverse events were reported in a higher proportion of patients receiving BI 201335 compared with those on placebo and were dose-dependent. Jaundice, skin manifestations including rash, photosensitivity reactions, pruritus and dry skin, and gastrointestinal side effects, mostly nausea, vomiting, and diarrhea were reported in the BI 201335 arms in a proportion exceeding 10% of the placebo/peg/RBV group. Jaundice was secondary to predominantly indirect or unconjugated hyperbilirubinemia. This was dose-dependent, rapidly reversible in all cases at cessation of BI 201335, and not associated with liver injury. The mechanism of action is inhibition of hepatic uptake of uridine diphosphate glucuronosyltransferase 1 family polypeptide A1 (UGT1A1).[20]

ACH-0141625 (ACH-1625)

ACH-1625 is an inhibitor of the HCV NS3 protease. ACH-1625 exhibits rapid and selective distribution to the liver and has high liver/plasma ratios. In phase Ib, 5 days of ACH-1625 monotherapy at doses ranging from 200 to 600 mg twice daily or 400 to 600 mg once daily led to mean maximal reductions in HCV RNA ranging from 3.1 log10 to 4.25 log10.[21]

This PI is currently in phase IIa of clinical development to evaluate its safety, tolerability, and antiviral activity in combination with pegIFN and RBV in patients with HCV genotype 1 naïve to treatment. This study has two segments. Segment 1 compares three different dosages of ACH-1625, 200 mg, 400 mg, and 800 mg once daily with placebo in combination with pegIFN/RBV for 28 days followed by pegIFN/RBV for a total duration of 48 weeks in 64 patients with HCV genotype 1. Segment 2 compares the same three dosing regimens to placebo for 12 weeks followed by 36 weeks of pegIFN/RBV. Week 4 results of Segment 1 showed achievement of rapid virologic response (RVR) in 74 to 81% of patients compared with 20% of patients receiving placebo/pegIFN/RBV. Reductions in HCV RNA on ACH-1625 ranged from 4.63 log10 to 4.96 log10 IU/mL after 4 weeks of triple therapy compared with 2.25 log10 IU/mL with placebo/pegIFN/RBV. It is worth noting that the majority of the patients enrolled were carriers of the unfavorable IL28B CT or TT genotypes and infected with HCV genotype 1a. The safety profile was comparable between all groups. No viral breakthroughs were observed during the first 4 weeks.

Danoprevir (RG7227/ITMN-191)

Danoprevir is a potent macrocyclic inhibitor of the HCV NS3/4A serine protease. In phase 1b studies in treatment naïve patients with HCV genotype 1, administration of danoprevir for 14 days was associated with a maximal median reduction of HCV RNA of 3.8 log10 in monotherapy and 5.7 log10 IU/mL in combination therapy with pegIFN and RBV.[22] In subsequent studies, danoprevir was boosted by ritonavir, a strong inhibitor of the CYP3A4 enzyme. A phase 1b study evaluated multiple ascending doses of ritonavir-boosted danoprevir in combination with pegIFN/RBV in 30 patients with HCV genotype 1 naïve to treatment.[23] More patients using boosted danoprevir (72%, 18/25 and 100%, 8/8 in the group receiving danoprevir 200 mg/ritonavir 100 mg twice daily) achieved undetectable HCV RNA (<15 IU/mL) at day 15 compared with patients who had previously received high-dose unboosted danoprevir (14%, 1/7) or placebo (20%, 1/5). This boosting allowed the use of a significantly lower dose of danoprevir, resulting in lower area under the curve (AUC) and maximum concentration (Cmax) of danoprevir. This reduced systemic exposure can improve the safety profile and reduce the probability of grade 4 ALT elevations, which had been seen with unboosted danoprevir at a dose of 900 mg twice daily.[24] Danoprevir/ritonavir is now being evaluated in several phase II clinical trials. A randomized, open-label study is evaluating SVR of danoprevir/ritonavir in combination with pegIFN/RBV in treatment of naïve patients with HCV genotype 1. Week 12 results of a substudy of 24 prior null responders treated with open-label danoprevir/ritonavir 100 mg/100 mg twice daily with pegIFN and RBV were recently presented.[25] Patients received 12 weeks of triple therapy after which they continued on pegIFN/RBV for a total of 48 weeks. At week 12, results showed a significant disparity between patients with HCV genotype 1a versus 1b. Fifty percent (50%) of patients with HCV genotype 1a achieved EVR versus 88% of those with HCV genotype 1b. Four of the eight patients with HCV genotype 1a experienced viral breakthrough with selection of the R155K mutation compared with 6% of patients with HCV genotype 1b.

A randomized open-label phase II study is evaluating SVR with danoprevir/ritonavir and RBV in combination with mericitabine (RG7128), a polymerase inhibitor, and/or pegIFN in patients with HCV genotype 1 who failed previous standard therapies. In this study, the six study arms contain RBV, but two of the six study arms are pegIFN-free.

A second phase II study, INFORM-SVR, is recruiting patients to evaluate the combination of danoprevir/ritonavir plus mericitabine with and without RBV in patients with HCV genotype 1. This is a pegIFN-free trial. In two arms, interferon-naïve patients will receive danoprevir 100 mg/ritonavir 100 mg twice daily with mericitabine 1000 mg twice daily with or without RBV for 12 weeks or 24 weeks. The third arm will enroll interferon-unable/intolerant patients who will receive an open-label combination of danoprevir/ritonavir/mericitabine plus RBV for 24 weeks. The combination of danoprevir/ritonavir with mericitabine looks promising and results of these phase II trials are awaited.

BMS-650032

One of the most important results, if not the most important, in the study of DAAs in the year 2011 was the result of the phase IIa study evaluating quadruple therapy with the PI BMS-650032 (600 mg twice daily) and BMS-790052 (an HCV NS5A replication complex inhibitor; 60 mg once daily) with and without pegIFN/RBV for 24 weeks in patients with HCV genotype 1 who were prior null responders to IFN-based therapy.[26] Prior null responders are typically the most difficult-to-retreat patient population. In this study four (36%) of the 11 null responders who received BMS-650032 and BMS-790052 alone for 24 weeks achieved SVR. This result is proof of the concept that HCV can be cured without pegIFN/RBV. Of the 11 patients in this arm, six had a viral breakthrough and resistant variants to both drugs were detected.[27] In four of these six, HCV RNA became undetectable when pegIFN/RBV was added at the time of viral breakthrough. All 10 patients who received the quadruple therapy were cured. There was 100% SVR12 and 90% SVR24 (one patient had SVR12, detectable HCV RNA 6 months posttreatment and undetectable HCV RNA when retested later on). These two DAAs are currently being evaluated in a phase IIb study in combination with pegIFN lambda (BMS-914143) with and without ribavirin for 24 weeks in patients with chronic HCV genotype 1 naïve to treatment. This study also compares the use of a single DAA (either BMS-650032 or BMS-790052) with RBV and either pegIFN-lambda or pegIFN-alfa. It will be very interesting to learn the role of RBV when these two DAAs are combined with pegIFN.

GS-9451 and GS-9256

GS-9451 is a potent macrocyclic HCV NS3 PI that achieved a median maximal change in HCV RNA of 3.6 log10 IU/mL (range, -4.7 log10 to -3.1 log10 IU/mL) following 3-day monotherapy in treatment-naïve patients with HCV genotype 1 infection during phase I.[28] It is currently being evaluated in phase II studies in combination with other DAAs. A phase IIb study with RGT will evaluate the efficacy and safety of 16 and 24 weeks of a four-drug regimen with GS-9451 and tegobuvir (a nonnucleoside HCV polymerase inhibitor) and 24 weeks of a three-drug regimen of GS-9451 without tegobuvir, all with pegIFN and RBV. Other phase II studies evaluating different DAA combinations that include the NS5A inhibitor GS-5885 are ongoing.

GS-9451 has additive to synergistic antiviral activity when combined with pegIFN, RBV, NS5A inhibitors, or polymerase inhibitors. Although a PI, GS-9451 retains activity against V36M and T54S, two NS3 mutations. However, R155K, A156T, and D168V are cross-resistant to GS-9451. The NS3 resistance mutations selected during treatment with GS-9451 are fully susceptible to other HCV inhibitor classes.[29] This supports its use in combination with other DAAs of the company's pipeline. A new study evaluating a four all-oral drug regimen is currently recruiting patients. In this study, GS-9451 is administered with GS-5885 (a NS5A inhibitor given at two different dosages), tegobuvir, and RBV for 12 or 24 weeks in patients with chronic HCV genotype 1 infection. This type of combination could completely revolutionize HCV treatment if found potent and well tolerated.

GS-9256 is also a potent PI that was being evaluated until recently. Preliminary results of the phase II study evaluating GS-9256 in combination with tegobuvir ± RBV and ± pegIFN for 28 days have been presented.[28] With the three oral drugs, 38% achieved RVR, 100% then achieved complete early virologic response (cEVR; undetectable HCV RNA at week 12) and maintained undetectability at week 24. With four drugs, 100% achieved RVR and were still undetectable at week 24. Without RBV and pegIFN, GS-9256 and tegobuvir led to RVR in only 7% of patients (1/15). Of these 15 patients, 12 achieved cEVR following the addition of pegIFN/RBV. All combinations were well tolerated. It was decided that GS-9256 would not be further developed, in part due to its higher potential to inhibit the transport and metabolism of bilirubin compared with GS-9451.[30]

Nucleoside and Nucleotide NS5B Polymerase Inhibitors

The nucleoside and nucleotide analog inhibitors of the HCV polymerase target the catalytic site of the enzyme. When they incorporate in the RNA chain in lieu of the natural substrate, they cause RNA chain termination. Nucleoside analogs must be phosphorylated three times by cellular kinases to become active as the triphosphate form. Nucleotide analogs are already in the active form. Because the NS5B target is highly conserved between HCV genotypes, polymerase inhibitors usually have pangenotypic activity (Fig. 1).

756591-fig1

Figure 1. Characteristics of the five classes of direct-acting antivirals (DAAs). *Varies with the generation. **Palm II are effective against multiple genotypes. (DAA, direct acting antiviral; NS3/4A, nonstructural 3/4A protein; PI, protease inhibitor; NS5A, nonstructural 5A protein; NS5B, nonstructural 5B protein; Nuc, nucleoside.)

PSI-352938 (PSI-938)

PSI-938 is a purine (guanosine) nucleotide analog polymerase inhibitor of HCV. In earlier phases of development, PSI-938 was shown to have pangenotypic coverage, high liver to plasma ratios, residual activity against S282T variants (substitution selected by and associated with resistance to the 2'-methyl nucleosides), and low risk of drug-drug interactions. The 14-day results of a phase II study, the NUCLEAR study, were recently presented.[31] The NUCLEAR study compared different combinations of once daily PSI-938 plus PSI-7977 (a second polymerase inhibitor) to PSI-938 monotherapy for 14 days in treatment naïve patients with HCV genotype 1. It is the first to evaluate the combination of two nucleotide analogs for the treatment of HCV infection. Of the 24 patients who received combination treatment, 22 (92%) achieved HCV RNA <15 IU after 14 days of treatment. The two drugs are known to have complementary resistant profiles and not surprisingly, no viral breakthroughs were observed. Treatment was well tolerated. An interferon-free combination trial of PSI-938 and PSI-7977, the QUANTUM trial, has been initiated. PSI-938 was granted the fast track designation by the FDA for treatment of chronic HCV infection in August 2011.

PSI-7977

PSI-7977 is a pyrimidine (uridine) nucleotide analog active against all HCV genotypes. The dramatic results of the phase 2b study PROTON assessing safety and efficacy of PSI-7977 in combination with pegIFN/RBV against HCV genotypes 2 and 3 were presented earlier in 2011.[32] PROTON enrolled 25 treatment-naïve patients. One patient was lost to follow-up early in the study. Among the 24 patients who completed 12 weeks of triple therapy, 24 (100%) achieved SVR. These results suggest that therapy can be significantly shortened in patients infected with HCV genotypes 2 and 3 without compromising the chances of response. A phase II study in patients with HCV genotype 2 and 3 is ongoing to explore the use of PSI-7977 in monotherapy for 12 weeks versus PSI-7977 in combination with peg/RBV for 8 weeks.

Nonnucleoside NS5B Polymerase Inhibitors

Whereas the nucleoside inhibitors bind to the polymerase's active site, the nonnucleoside inhibitors bind to allosteric sites of the enzyme. This induces conformational changes that downregulate the polymerase's activity. Different binding sites disposed in a right hand motif with the thumb (thumb 1 and thumb 2), finger and palm (palm 1 and palm 2) domains are potential targets of nonnucleoside inhibitors. As a result of different target sites, mechanism of inhibition, and potency differences, nonnucleoside inhibitors have a low genetic barrier to resistance compared with nucleoside/nucleotide analogs (Fig. 1).[33]

SETROBUVIR (ANA598)

Setrobuvir (ANA598) is a potent nonnucleoside inhibitor and the most advanced in development. In a phase II combination study with pegIFN and RBV, 72% of patients achieved undetectable HCV RNA at week 8.[34] It is currently in a phase IIb study for the treatment of chronic HCV infection. In this ongoing study, 133 patients naïve to HCV treatment and 141 previously treated patients (n = 133) have been enrolled to receive setrobuvir 200 mg twice daily in combination with pegIFN/RBV. Patients naïve to HCV treatment with undetectable HCV RNA at week 8 and at subsequent visits will complete treatment at week 28 (RGT). Previously treated patients will receive 48 weeks of treatment. Future trials combining ANA598 with DAAs of different classes will likely offer the best SVR results.

Nonstructural Protein 5A (NS5A) Replication Complex Inhibitors

Inhibitors of NS5A block viral production at an early stage of assembly. The exact mechanism of action of the NS5A protein is unknown.[35] Without having an enzymatic function, this multifunctional protein is essential for replication and assembly of HCV and has no human homologs.[36,37]

DACLATASVIR (BMS-790052)

BMS-790052 is the first NS5A inhibitor with proof-of-concept in the clinic. The results of the first placebo-controlled, multiple ascending-dose clinical study evaluate its antiviral activity, resistance profile, pharmacokinetics, safety, and tolerability in 30 patients with chronic HCV infection infected with HCV genotype 1 were recently published.[38] Its pharmacokinetic profile supports once-daily dosing and the drug was well tolerated. Patients received BMS-790052 for 14 days. The mean maximum decline from baseline in HCV RNA ranged from 2.8 to 4.1 log10 IU/mL. Most patients experienced viral rebound during the first 7 days of BMS-790052 monotherapy. Viral breakthroughs were associated with mutations that had been previously found in the NS5A at baseline and at the time of resistance development.[39,40]

Cyclophilin Inhibitors

Cyclophilin inhibitors are derived from cyclosporine A, but lack calcineurin-binding properties and thus do not exhibit immunosuppressive effects.[41,42] Alisporivir (Debio 025) is the first-in-class cyclophilin inhibitor that recently initiated a phase III trial. It binds to cyclophilin A, an essential cofactor for HCV replication and shows additive antiviral effect with pegIFN in patients with genotype 1 and 4 HCV.[41] Cyclophilin inhibitors are sometimes referred to as host-targeted agents, but can also be part of the DAAs because they are known to interact with the NS5A protein.

In a phase II study of patients with HCV genotype 1, 2, 3, and 4 naïve to HCV treatment, alisporivir doses of 200, 600, and 1,000 mg/day in combination with pegIFN for 4 weeks were compared with monotherapy with alisporivir 1,000 mg/day or pegIFN.[42] In patients with genotypes 1 and 4, the 600- and 1,000-mg combination treatments reduced HCV RNA by up to 4.61 ( ± 1.88) log10 IU/ml and 4.75 (±2.19) log10 IU/mL at week 4, respectively. In patients with genotypes 2 and 3, HCV RNA levels were reduced by -5.91 (±1.11) log10 IU/mL and -5.89 (±0.43) log10 IU/mL at week 4, respectively, with the same treatment regimens. Alisporivir 1000 mg/day was associated with a higher incidence of isolated hyperbilirubinemia. SVR results of the phase II ESSENTIAL study were recently presented.[43] Alisporivir (600 mg twice daily during one week followed by once-daily dosing) with pegIFN/RBV led to SVR in 76% of patients taking the triple therapy for 48 weeks compared with 55% of the control group (P = .008). Triple therapy with alisporivir for 24 weeks was as effective as pegIFN/RBV dual therapy for 48 weeks with 53% SVR compared with 55%, respectively. In the RGT arm in which patients could stop triple therapy at week 24 if they achieved RVR, the SVR rate was 69%. Alisporivir demonstrates a high barrier to resistance and interestingly, the resistance mutation identified with its use (D320E) is mainly located in the NS5A domain II. Recent findings indicate that alisporivir inhibits hepatitis C virus replication by preventing a cyclophilin A induced cis-trans isomerization in domain II of NS5A.[44] Metabolism is through cytochrome P450 3A4, which can compromise its ability to be given concomitantly with substrates, inhibitors, or inducers of this cytochrome. Cyclophilin inhibitors could be part of a potent DAA combination in patients not taking concomitant P450 3A4 medications.

Conclusion

After many years of little or no progress in the development of HCV DAAs, 2011 was a watershed year for several reasons. The most clinically significant development was the approval of boceprevir and telaprevir for the treatment of HCV genotype 1. That will revolutionize the treatment of HCV in the clinic and change the landscape of HCV treatment forever because of the dramatically increased SVR demonstrated by both drugs. The Berlin EASL meeting in March of 2011 showcased some equally dramatic and positive results of drugs in development. Among many huge advances in the field, we saw the first 100% SVR for pegIFN/RBV plus PSI-7977 for HCV genotypes 2 and 3, with a shortened course of treatment. The most revolutionary results were revealed by the combination of the PI BMS-650032 and the NS5A inhibitor BMS-790052. In previous null responders to interferon treated with quadruple therapy consisting of a PI, a NS5A inhibitor, pegIFN and RBV, 100% SVR was achieved. This alone would merit a special mention, but the truly groundbreaking results were in the other arm of the study, which combined only the PI and the NS5A compound without pegIFN/RBV. In that arm, an SVR of 36% was achieved demonstrating for first time ever, an interferon-free, RBV-free cure of HCV.

Not only did we have the first FDA, European Medicines Agency (EMEA), and Canadian approvals for the PIs telaprevir and boceprevir in 2011, but we saw the proof of principle that the Holy Grail of HCV therapy is achievable; SVR without interferon. There are dozens of new drugs in clinical development now and many will fall by the wayside, but there are clearly enough that will be approved to reassure us that the future is very bright indeed for DAA treatment of HCV.

References

  1. Kieffer TL, Kwong AD, Picchio GR. Viral resistance to specifically targeted antiviral therapies for hepatitis C (STAT-Cs). J Antimicrob Chemother 2010;65(2):202–212
  2. Moradpour D, Penin F, Rice CM. Replication of hepatitis C virus. Nat Rev Microbiol 2007;5(6):453–463
  3. Pawlotsky JM, Chevaliez S, McHutchison JG. The hepatitis C virus life cycle as a target for new antiviral therapies. Gastroenterology 2007;132(5):1979–1998
  4. Ogata N, Alter HJ, Miller RH, Purcell RH. Nucleotide sequence and mutation rate of the H strain of hepatitis C virus. Proc Natl Acad Sci U S A 1991;88(8):3392–3396
  5. Bartels DJ, Zhou Y, Zhang EZ, et al. Natural prevalence of hepatitis C virus variants with decreased sensitivity to NS3.4A protease inhibitors in treatment-naive subjects. J Infect Dis 2008;198(6):800–807
  6. Pawlotsky JM. Hepatitis C virus genetic variability: pathogenic and clinical implications. Clin Liver Dis 2003;7(1):45–66
  7. Susser S, Welsch C, Wang Y, et al. Characterization of resistance to the protease inhibitor boceprevir in hepatitis C virus-infected patients. Hepatology 2009;50(6):1709–1718
  8. Sarrazin C, Kieffer TL, Bartels D, et al. Dynamic hepatitis C virus genotypic and phenotypic changes in patients treated with the protease inhibitor telaprevir. Gastroenterology 2007;132(5):1767–1777
  9. Wagner F, Thompson R, Kantaridis C, et al. Antiviral activity of the hepatitis C virus polymerase inhibitor filibuvir in genotype 1-infected patients. Hepatology 2011;54(1):50–59
  10. McCown MF, Rajyaguru S, Kular S, Cammack N, Nájera I. GT-1a or GT-1b subtype-specific resistance profiles for hepatitis C virus inhibitors telaprevir and HCV-796. Antimicrob Agents Chemother 2009;53(5):2129–2132
  11. Lee SS, Ferenci P. Optimizing outcomes in patients with hepatitis C virus genotype 1 or 4. Antivir Ther 2008;13(Suppl 1):9–16
  12. Jacobson IM, McHutchison JG, Dusheiko G, et al; ADVANCE Study Team. Telaprevir for previously untreated chronic hepatitis C virus infection. N Engl J Med 2011;364(25):2405–2416
  13. Poordad F, McCone JJr, ,Bacon BR, et al; SPRINT-2 Investigators. Boceprevir for untreated chronic HCV genotype 1 infection. N Engl J Med 2011;364(13):1195–1206
  14. Sulkowski MS, Ceasu E, Asselah T, et al. SILEN-C1: sustained virologic response (SVR) and safety of BI 201335 combined with peginterferon alfa-2a and ribavirin (P/R) in treatment-naive patients with chronic genotype 1 HCV. J Hepatol 2011;54(Suppl 1):S27
  15. Zeuzem S, Andreone P, Pol S, et al; REALIZE Study Team. Telaprevir for retreatment of HCV infection. N Engl J Med 2011;364(25):2417–2428
  16. Lin TI, Lenz O, Fanning G, et al. In vitro activity and preclinical profile of TMC435350, a potent hepatitis C virus protease inhibitor. Antimicrob Agents Chemother 2009;53(4):1377–1385
  17. Fried MW, Buti M, Dore GJ, et al. Efficacy and safety of TMC435 in combination with peginterferon alfa-2a and ribavirin in treatment-naive genotype 1 HCV patients: 24 week interim results from the PILLAR study. Hepatology 2010;52(Suppl 1):107A
  18. Huisman MT, Snoeys J, Monbaliu J, et al. In vitro studies investigating the mechanisms of interaction between TMC435 and hepatic transporters. Hepatology 2010;52(Suppl 1):461A
  19. Sulkowski MS, Bourliere M, Bronowicki JP, et al. SILEN-C2: sustained virologic response (SVR) and safety of BI201335 combined with peginterferon alfa-2a and ribavirin (P/R) in chronic HCV genotype-1 patients with non-response to P/R. J Hepatol 2011;24(Suppl 1):S30
  20. Sane R, Podila L, Mathur A, et al. Mechanisms of isolated unconjugated hyperbilirubinemia induced by the HCV NS3/4A protease inhibitor BI201335. J Hepatol 2011;54(Suppl 1):S488
  21. Detishin V, Haazen R, Hooijmaijers R, et al. Final results of the pharmacokinetics, efficacy, safety/tolerability of 400 and 600 mg once-daily dosing of ACH-1625 (HCV NS3 protease inhibitor) in HCV genotype 1. J Hepatol 2011;54(Suppl 1):S186–S187
  22. Forestier N, Larrey D, Marcellin P, et al. Antiviral activity of danoprevir (ITMN-191/RG7227) in combination with pegylated interferon α-2a and ribavirin in patients with hepatitis C. J Infect Dis 2011;204(4):601–608
  23. Gane EJ, Rouzier R, Stedman C, et al. Antiviral activity, safety, and pharmacokinetics of danoprevir/ritonavir plus PEG-IFN a-2a/RBV in hepatitis C patients. J Hepatol 2011;55(5):972–979
  24. Terrault N, Cooper C, Balart LA, et al. Phase II randomized, partially blind, parallel-group study of oral danoprevir (RG7227) with PegIFN alfa-2a (PEGASYS) plus ribavirin (COPEGUS) in treatment-naive genotype 1 patients with CHC: results of planned week 12 interim analysis of the ATLAS study. Hepatology 2010;52(Suppl 1):73A
  25. Rouzier R, Larrey D, Gane EJ, et al. Danoprevir plus low-dose ritonavir (DNV/R) in combination with peginterferon alfa-2a (40KD) plus ribavirin (PEGIFN-2a/RBV) in previous null responders. J Hepatol 2011;54(Suppl 1):S28
  26. Lok AS, Gardiner D, Lawitz E, et al. Quadruple therapy with BMS-790052, BMS-650032 and Peg-IFN/RBV for 24 weeks results in 100% SVR12 in HCV genotype 1 null responders. J Hepatol 2011;54(Suppl 1):S536
  27. Mcphee F, Hernandez D, Yu F, et al. Charcterization of virologic escape in HCV genotype 1 null responders receiving a combination of the NS3 protease inhibitor BMS-650032 and NS5A inhibitor BMS-790052. J Hepatol 2011;54(Suppl 1):S28–S29
  28. Foster GR, Buggisch P, Marcellin P, et al. Four-week treatment with GS-9256 and tegobuvir (GS-9190) ± RBV ± PEG, results in enhanced viral suppression of follow-up PEG/RBV therapy, in genotype 1a/1b HCV patients. J Hepatol 2011;54(Suppl 1):S172
  29. Wong KA, Bae A, Ku K, et al. Genotypic and phenotypic characterization of HCV resistance from a multiple dose clinical trial of GS-9451, a novel NS3 protease inhibitor. J Hepatol 2011;54(Suppl 1):S493
  30. Tong L, Mwangi J, Roy A, et al. In vitro studies on the potential for the hepatitis C virus protease inhibitors GS-9256 and GS-9451 to affect bilirubin elimination. J Hepatol 2011;54(Suppl 1):S487
  31. Lawitz E, Rodriguez-Torres M, Denning J, et al. Once daily dual-nucleotide combination of PSI-938 and PSI-7977 provides 94% HCV RNA <LOD at day 14: first purine/pyrimidine clinical combination cata (The NUCLEAR Study). J Hepatol 2011;54(Suppl 1):S543
  32. Lalezari J, Lawitz E, Rodriguez-Torres M, et al. Once daily PSI-7977 plus PEGIFN/RBV in a phase 2b trial: rapid virologic suppression in treatment-naïve patients with GT2/GT3. J Hepatol 2011;54(Suppl 1):S28
  33. McCown MF, Rajyaguru S, Le Pogam S, et al. The hepatitis C virus replicon presents a higher barrier to resistance to nucleoside analogs than to nonnucleoside polymerase or protease inhibitors. Antimicrob Agents Chemother 2008;52(5):1604–1612
  34. Lawitz E, Rodriquez-Torres M, Rustgi VK, et al. Safety and antiviral activity of ANA598 in combination with pegylated interferon α2A plus ribavirin in treatment-naïve genotype 1 chronic HCV patients. J Hepatol 2010;52(Suppl 1):S467
  35. Gao M, Nettles RE, Belema M, et al. Chemical genetics strategy identifies an HCV NS5A inhibitor with a potent clinical effect. Nature 2010;465(7294):96–100
  36. Tellinghuisen TL, Foss KL, Treadaway J. Regulation of hepatitis C virion production via phosphorylation of the NS5A protein. PLoS Pathog 2008;4(3):e1000032
  37. Qiu D, Lemm JA, O'Boyle DR II, , et al. The effects of NS5A inhibitors on NS5A phosphorylation, polyprotein processing and localization. J Gen Virol 2011;92(Pt 11):2502–2511
  38. Nettles RE, Gao M, Bifano M, et al. Multiple ascending dose study of BMS-790052, an NS5Areplication complex inhibitor, in patients infected with hepatitis C virus genotype 1. Hepatology 2011Epub ahead of print
  39. Fridell RA, Wang C, Sun JH, et al. Genotypic and phenotypic analysis of variants resistant to HCV NS5A replication complex inhibitor BMS-790052: in vitro and in vivo correlations. Hepatology 2011Epub ahead of print
  40. Fridell RA, Qiu D, Wang C, Valera L, Gao M. Resistance analysis of the hepatitis C virus NS5A inhibitor BMS-790052 in an in vitro replicon system. Antimicrob Agents Chemother 2010;54(9):3641–3650
  41. Crabbé R, Vuagniaux G, Dumont JM, Nicolas-Métral V, Marfurt J, Novaroli L. An evaluation of the cyclophilin inhibitor Debio 025 and its potential as a treatment for chronic hepatitis C. Expert Opin Investig Drugs 2009;18(2):211–220
  42. Flisiak R, Feinman SV, Jablkowski M, et al. The cyclophilin inhibitor Debio 025 combined with PEG IFNalpha2a significantly reduces viral load in treatment-naïve hepatitis C patients. Hepatology 2009;49(5):1460–1468
  43. Flisiak R, Pawlotsky J, Crabbé R, et al. Once daily alisporivir (Deb025) plus PEGIFNalfa2a/ribavirin results in superior sustained virologic response (SVR24) in chronic hepatitis C genotype 1 treatment naïve patients. J Hepatol 2011;54(Suppl 1):S2–S2
  44. Coelmont L, Hanoulle X, Chatterji U, et al. DEB025 (Alisporivir) inhibits hepatitis C virus replication by preventing a cyclophilin A induced cis-trans isomerisation in domain II of NS5A. PLoS ONE 2010;5(10):e13687

Source