Showing posts with label Response-guided Treatment. Show all posts
Showing posts with label Response-guided Treatment. Show all posts

February 15, 2014

DAUPHINE: a randomized phase II study of danoprevir/ritonavir plus peginterferon alpha-2a/ribavirin in HCV genotypes 1 or 4

Liver Int. 2014 Jan 19. doi: 10.1111/liv.12471. [Epub ahead of print]

Everson G, Cooper C, Hézode C, Shiffman ML, Yoshida E, Beltran-Jaramillo T, Andreone P, Bruno S, Ferenci P, Zeuzem S, Brunda M, Le Pogam S,Nájera I, Zhou J, Navarro MT, Voulgari A, Shulman NS, Yetzer ES.

Abstract

BACKGROUND & AIMS: Danoprevir is a hepatitis C virus (HCV) protease inhibitor with activity against genotypes (G)1/G4, which is maintained at lower doses by ritonavir-boosting. We report results of a large, randomized, active-controlled phase IIb study of ritonavir-boosted danoprevir (danoprevir/r) plus peginterferon alpha-2a/ribavirin (P/R) in treatment-naive patients with HCV G1/4 infection.

METHODS: Treatment-naive patients with HCV G1/4 infection were randomized to twice-daily danoprevir/r 200/100 mg (A, n = 92); 100/100 mg (B, n = 93); or 50/100 mg (C, n = 94) plus P/R for 24 weeks; twice-daily danoprevir/r 100/100 mg (D, n = 94) plus P/R for 12 or 24 weeks; or P/R alone (E, n = 44) for 48 weeks. Patients in the response-guided therapy arm (D) with an extended rapid virological response (eRVR2: HCV RNA <15 IU/ml during Weeks 2-10) stopped all therapy at Week 12; non-eRVR2 patients continued all treatment to Week 24. The primary efficacy endpoint was sustained the virological response (SVR24: HCV RNA <15 IU/ml after 24 weeks of untreated follow-up).

RESULTS: SVR24 rates in Arms A, B, C, D and E were 89.1%, 78.5%, 66.0%, 69.1% and 36.4%, respectively, in the overall population; 83.6%, 69.6%, 60.3%, 59.2% and 38.5% in G1a-infected patients, 96.6%, 93.1%, 73.1%, 78.4% and 28.6% in G1b-infected patients and 100%, 87.5%, 100%, 100% and 66.7% in G4-infected patients. Danoprevir/r plus P/R was generally well tolerated compared with P/R alone. There was a higher incidence of serious adverse events in danoprevir-treatment arms, but most were associated with P/R.

CONCLUSIONS: The combination of danoprevir/r plus P/R is efficacious in treatment-naïve patients with HCV genotype 1 or 4 infection.

© 2014 John Wiley & Sons A/S. Published by John Wiley & Sons Ltd.

KEYWORDS: danoprevir, hepatitis C virus, response-guided therapy, ritonavir-boosting, sustained virological response

PMID: 24517252 [PubMed - as supplied by publisher]

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November 17, 2013

A simple rule to personalize standard dual therapy across all genotypes in naive chronic hepatitis C patients: The TT4 randomized trial

Digestive and Liver Disease

Available online 13 November 2013

In Press, Corrected ProofNote to users

Liver, Pancreas and Biliary Tract

Simona FranciosoaCristiana Almerighia, Paolo Forteb, Franco BandieracLorenzo NosottidRaffaella Lionettie, Gloria Talianif, Maria Rosaria Pirasg, Maria Laura Pontig, Giustino Parrutih, Francesco Di Candiloi, Silvia Gentilea, Paola Piccoloa, Angela Salsoa, Francesca Riccobellia, Sara Renzib, Maria Antonella Longoe, Marzia Montalbanoe, Salvatore Zaruc, Elisa Biliottif, Francesco Di Masih, Francesco Santopaoloa, Mario Angelicoa

a Hepatology and Liver Transplantation Unit, Department of Experimental Medicine and Surgery, Tor Vergata University, Rome, Italy
b G. Careggi Hospital, University of Florence, Italy
c SS Annunziata Hospital, Sassari, Italy
d National Institute for Health Migration and Poverty (NIHMP), Rome, Italy
e National Institute of Infectious Diseases, L. Spallanzani Hospital, Rome, Italy
f Department of Infectious and Tropical Diseases, Sapienza University, Rome, Italy
g G. Brotzu Hospital, Cagliari, Italy
h Ospedale Civile, Pescara, Italy
i S.M. Misericordia Hospital, Perugia, Italy

Abstract

Background Rapid and early virological responses to peginterferon-alpha and ribavirin are predictive of sustained virological response (SVR) in hepatitis C virus (HCV) infection. We aimed at finding a simple rule to determine the shortest duration of dual therapy for all HCV genotypes, obtained by multiplying time to Initial Viral Response, IVR (first undetectable HCV-RNA) by 4 (Tailored Therapy-4, or TT4).

Method 267 naïve HCV-infected patients with compensated liver disease were randomized (2:1) to the TT4 (n = 180) or current standard-of-care (SoC, n = 87) and received peginterferon-alpha plus ribavirin. Patients with HCV-RNA decrease ≤2 log10 at week 12 or detectable HCV-RNA at week 24 discontinued treatment.

Results Both groups had comparable baseline characteristics, SVR rates were similar in the whole population (60.6% vs. 60.9%) and within each genotype subgroup (G1: 46.6% vs. 55.6%; G2: 90.2% vs. 94.4%; G3: 74.1% vs. 58.3%; G4: 45.8% vs. 33.3%). Relapse rate was higher in G1-TT4 than G1-SoC. Treatment duration in SVR patients was shorter in TT4 compared to SoC, both overall [25 ± 15 vs. 36 ± 12.1 weeks], and for subgroups: G1 [35.3 ± 16.7 vs. 47.3 ± 2.6 weeks], G2 [18.3 ± 7.5 vs. 24 ± 2.8 weeks], G3 [15.2 ± 8.7 vs. 22.8 ± 3 weeks] and G4 [26.9 ± 13 vs. 48 weeks].

Conclusions In HCV-naive patients, TT4-rule treatment yields similar SVR rates compared to SoC but with shorter treatment duration and remarkable cost reduction.

Keywords HCV treatment; Dual therapy; Pegylated interferon; Ribavirin; Rapid viral response; Response-guided therapy; Individualized therapy

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October 12, 2013

Overall safety profile of boceprevir plus peginterferon alfa-2b and ribavirin in patients with chronic hepatitis C genotype 1: a combined analysis of 3 phase 2/3 clinical trials

Liver International

Early View (Online Version of Record published before inclusion in an issue)

Viral Hepatitis

Michael P. Manns1,*, Jonathan McCone Jr.2, Mitchell N. Davis3, Lorenzo Rossaro4, Eugene Schiff5, Mitchel L. Shiffman6, Bruce Bacon7, Marc Bourliere8, Mark S. Sulkowski9, Savino Bruno10, Luis Balart11, Jean-Pierre Bronowicki12, Paul Kwo13, Fred Poordad14, Franco Felizarta15, K. Rajender Reddy16, Frans A. Helmond17, Heather L. Sings18, Lisa D. Pedicone19, Margaret Burroughs20, Clifford A. Brass19, Janice K. Albrecht19, John M. Vierling21

Article first published online: 9 OCT 2013

DOI: 10.1111/liv.12300

© 2013 John Wiley & Sons A/S. Published by John Wiley & Sons Ltd

Keywords: antiviral therapy; Victrelis

Abstract

Background & Aims

Triple therapy with peginterferon/ribavirin (PR) plus an NS3 protease inhibitor has emerged as the standard-of-care for patients with chronic hepatitis C genotype-1. We provide a detailed safety analysis comparing PR to boceprevir plus PR (BOC/PR) across three phase 2/3 studies.

Methods

SPRINT-1 was an open-label phase 2 study in 595 treatment-naive patients. In the two phase 3 studies, 1500 patients (1097 treatment-naive, SPRINT-2; 403 treatment-failure, RESPOND-2) were randomized to receive PR alone, or one of two regimens where BOC was added to PR after a 4-wk PR lead-in. In this analysis, the respective BOC/PR and PR arms were combined for all three trials. The benefit of shortened duration of treatment using response-guided therapy (RGT) was also explored in the SPRINT-2 trial.

Results

Only two adverse events, anaemia and dysgeusia, occurred 20% more often with the BOC-containing regimens compared with PR. Nausea, diarrhoea and neutropenia were the only other common events with an incidence of at least 5% greater when BOC was added to the PR backbone. The proportions of patients reporting serious adverse events (AE), life-threatening AEs, and study drug discontinuation because of an AE were similar in the PR and BOC/PR arms. In treatment-naive patients, RGT generally did not result in a lower frequency of common AEs; however, RGT led to decreased exposure to all 3 study drugs and to a decrease in the mean duration of several clinically relevant AEs such as anaemia, neutropenia, fatigue and depression, as well as earlier normalization of haemoglobin and neutrophil counts.

Conclusions

The safety profile of BOC combination therapy largely reflects the known profile of peginterferon and ribavirin, with incremental haematolgical effects and dysgeusia. Shorter treatment duration with RGT significantly reduced the duration of AEs.

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October 3, 2013

Hepatitis C genotype 6: A concise review and response-guided therapy proposal

World J Hepatol. 2013 September 27; 5(9): 496–504.

Published online 2013 September 27. doi:  10.4254/wjh.v5.i9.496

PMCID: PMC3782687

Chalermrat Bunchorntavakul, Disaya Chavalitdhamrong, and Tawesak Tanwandee

Abstract

Hepatitis C genotype 6 is endemic in Southeast Asia [prevalence varies between 10%-60% among all hepatitis C virus (HCV) infection], as well as also sporadically reported outside the area among immigrations. The diagnosis of HCV genotype can be inaccurate with earlier methods of genotyping due to identical 5’-UTR between genotype 6 and 1b, hence the newer genotyping methods with core sequencing are preferred. Risk factors and clinical course of HCV genotype 6 do not differ considerably from other genotypes. Treatment outcome of HCV genotype 6 with a combination of pegylated interferon and ribavirin is superior to genotype 1, and nearly comparable to genotype 3, with expected sustained virological response (SVR) rates of 60%-90%. Emerging data suggests that a shorter course 24-wk treatment is equally effective as a standard 48-wk treatment, particularly for those patients who attained undetectable HCV RNA at week 4 (RVR). In addition, baseline and on-treatment predictors of response used for other HCV genotypes appear effective with genotype 6. Although some pan-genotypic direct-acting antivirals have completed phase II/III studies (sofosbuvir and simeprevir) with clinical benefit demonstrated in small number of patients with genotype 6, broad availability of these agents in Southeast Asia may not be expected in the near future. While awaiting the newer therapy, response-guided therapy seems appropriate for patients with HCV genotype 6. Patients with RVR (representing > 70% of patients) are suitable for 24-wk treatment with expected SVR rates > 80%. Patients without RVR and/or those with poor response predictors may benefit from 48 wk of therapy, and a detectable HCV RNA at week 12 (with no early virological response) serves as a stopping rule. This treatment scheme is likely to have a major economic impact on HCV therapy, particularly in Southeast Asia, wherein treatment can be truncated securely in the majority of patients with HCV genotype 6.

Keywords: Hepatitis C, Genotype 6, Epidemiology, Southeast Asia, Treatment, Pegylated interferon, Ribavirin, Response-guided therapy

Core tip: Hepatitis C genotype 6 is endemic in Southeast Asia [prevalence varies between 10%-60% among all hepatitis C virus (HCV) infection], as well as also sporadically reported outside the area among immigrations. The diagnosis of HCV genotype can be inaccurate with earlier methods of genotyping due to identical 5’-UTR between genotype 6 and 1b, hence the newer genotyping methods with core sequencing are preferred. Risk factors and clinical course of HCV genotype 6 do not differ considerably from other genotypes. Treatment outcome of HCV genotype 6 with a combination of pegylated interferon and ribavirin is superior to genotype 1, and nearly comparable to genotype 3. Emerging data suggests that a shorter course 24-wk treatment is equally effective as a standard 48-wk treatment, particularly for those patients who attained undetectable HCV RNA at week 4.

INTRODUCTION

Chronic hepatitis C virus (HCV) infection is a worldwide health problem in that it has a global prevalence rate of approximately 3% and affects over 170 million individuals. It is a leading cause of chronic liver disease and hepatocellular carcinoma worldwide in both industrialized and developing countries[1]. However, geographic differences in the overall prevalence and distribution of HCV genotypes have been well recognized[1]. The majority (87%) of HCV-infected individuals are from Western Pacific countries (62.2 million), Southeast Asia (32.3 million), Africa (31.9 million), and Eastern Mediterranean countries (21.3 million)[2,3]. The prevalence of HCV infection is especially higher in Southeast Asia with an estimate prevalence of 2%-12% among general population in some countries[4], compared to the estimated prevalence of 1.6% in western countries such as the United States[5]. Hepatitis C genotypes 1, 2, and 3 are widely distributed globally and have been the focus of most experimental and clinical studies. Genotypes 4 and 5 are found mainly in the Africa and Middle East. Genotype 6 and its subtypes are found mainly in Southeast Asia[2-4,6]. In some countries in Southeast Asia, such as Thailand, Vietnam, and Myanmar, HCV genotype 6 is one of the most common genotype, detected in 10%-60% of all HCV patients[7-14]. In the past, HCV genotype 6 was believed to be confined to Southeast Asia, but in the changing era of increasing migration of populations, it has been recently reported in nearby areas of Asia, such as China, Taiwan, and Hong Kong (China)[6,15], and as far as western countries, such as United States, Canada[16], and Germany[15]. As globalization (e.g., immigration, travel, and cultural diversity) potentially impacts the epidemiology of HCV, the numbers of patients with HCV genotype 6 seen outside Southeast Asia is expected to increase.

Despite the significant burden of the disease, the creditable data regarding the epidemiology and treatment specifically for HCV genotype 6 are rather limited. This may be largely due to the fact that the majority of the HCV genotype 6-infected population is based in developing countries with limited research facilities and restricted access to publication. This review is aimed to summarize the current available data regarding the epidemiology and treatment of HCV genotype 6, as well as to propose a response-guided algorithm of treatment.

CLASSIFICATION AND DIAGNOSIS

Substantial genetic diversityled to the identification and classification of various genotypes and subtypes of the HCV among different geographical areas. Currently, 6 major genotypes and more than 80 subtypes have been identified from around the world; the previously reported HCV genotypes of 7, 8, and 9 that are endemic in Southeast Asia have been re-classified as subtypes of genotype 6[16,17]. Proper classification of HCV genotypes and subtypes is very important clinically and is dependent on nucleotide sequence disparity[6]. Though the ideal method to accurately identify HCV genotype is by directly sequencing of the entire genome, the current, commercially available methods typically use distinct motifs found within the HCV genome to either indirectly or directly genotype HCV, a more resourceful strategy[6]. Indirect method of HCV genotyping uses genotype-specific antibodies and competitive enzyme immunoassays (e.g., Murex HCV Serotyping Assays, Murex Diagnostics, Dartfort, United Kingdom)[6]. Direct methods of genotyping include direct sequence analysis of 5’-UTR only (e.g., TruGene HCV 5’NC, Visible Genetics, Toronto, Canada), restriction fragment length polymorphism analysis and reverse hybridization line probe assay for the 5’-UTR only (e.g., INNO-LiPA HCV I, Innogenetics, Zwijnaarde, Belgium) or both 5’-UTR and core regions (INNO-LiPA HCV II, Innogenetics, Ghent, Belgium)[6]. Selection of genotyping assay is crucial, especially for genotype 6 variants as genotype 6 shares identical 5′-UTR sequences with genotype 1b, thus making earlier genotyping methods based solely on 5′-UTR sequences alone unreliable and those tests with additional HCV core-sequencing preferable[6,18-21]. Among the newer genotyping methods, INNO-LiPA HCV II assay is one of the most widely used globally. It has been developed on INNO-LiPA HCV I platform with additional sequencing of core regions and demonstrated significant improvement in genotyping accuracy, particularly to differentiate between HCV genotype 1 and genotype 6 variants (about 100% success rate)[6,18-21].

EPIDEMIOLOGY OF HCV GENOTYPE 6

Epidemiologic studies regarding HCV genotype 6 from different parts of the world are summarized in Table ​Table1.1. In brief, HCV genotype 6 is particularly common in Southeast Asia (prevalence among all HCV infections are 9%-31% in Thailand[7-10], 21%-49% in Myanmar[11,12], 32%-46% in Vietnam[13,14], > 90% in Lao PDR[22], and 56% in Cambodia[23]), and is the most common HCV genotype is some of these countries. In addition, geographical differences of HCV prevalence in each individual country were observed in which genotype 6 appears to be more prevalent in the Northern areas of Thailand, Myanmar, and Vietnam, when compared with the central and southern regions[9,10,12-14]. It should be noted that the earlier reports of the prevalence of HCV genotype with previous version of HCV genotypic assays may have underestimated the prevalence of HCV genotype 6 (misclassified with genotype 1). Outside Southeast Asia, HCV genotype 6 is also observed in the nearby areas, particularly Hong Kong and the Southern parts of China[24-26]. Interestingly, HCV genotype 6 is somewhat uncommon in the many countries in Southeast Asia, such as Indonesia, Philippines, and Singapore, as well as in the surrounding countries, such as India, Pakistan, Taiwan, and South Korea[4,18]. Apart from the aforementioned areas, HCV genotype 6 encountered elsewhere (e.g., United States, Canada, and Germany) were mostly immigrants from Southeast Asia[15,16].

Table 1 Prevalence of hepatitis C virus genotype 6 in Asia

Country of origin Population Genotyping method Prevalence of HCV genotype 6 Author
Thailand n = 236; Blood donors throughout the country Reverse hybridization 18.0% Kanisanon et al[7]
n = 58; Volunteers from four hospitals located in the North, North-east, South and Center of the country Core sequencing 8.9% Sunanchaikarn et al[8]
n = 126; Blood donors in the Northern Thailand Core sequencing 31.0% Jutavigittum et al[9]
n = 375; Blood donors in the Central Thailand Core and NS5B sequencing 18.9% Akkarathamrongsin et al[10]
n = 40; Immigrant workers from Cambodia (n = 25) and Myanmar (n = 15) in Thailand Core and NS5B sequencing 56% among Cambodian workers and 26.7% among Myanmar workers Akkarathamrongsin et al[23]
Myanmar n = 110; Blood donors in Yangon and its suburbs NS5B sequencing 20.9% Shinji et al[11]
n = 145; Volunteers from four different border cities of Myanmar Core sequencing 49% (Genotype 6 was mostly found in the Northern cities) Lwin et al[12]
Vietnam n = 308; Patients from urban community-based GI practice in Southern Vietnam Core sequencing 31.5% Nguyen et al[13]
n = 135; Blood donors in Hanoi (Northern Vietnam Core (n = 70) and NS5B (n = 65) sequencing 45.9% Pham et al[14]
Lao PDRHong Kong n = 45; Blood donors in Lao PDR Core and NS5B sequencing 95.6% Hübschen et al[22]
n = 1055; 949 non-IVDU and 106 IVDU from all over Hong Kong Core sequencing 27.1% (23.6% among non-IVDU and 58.5% among IVDU) Zhou et al[26]
n = 212; Blood donors NA 27% Prescott et al[25]
China n = 148; Patients from nine regions in China Core and NS5B sequencing 13% (Genotype 6 was only observed in the South) Lu et al[24]
Source: Ref. [6], with permission. IVDU: Intravenous drug users; NA: Not available; HCV: Hepatitis C virus; GI: Gastrointestinal; PDR: People's Democratic Republic; NA: Not available.

Nowadays in the Western countries, HCV infections are primarily due to intravenous or nasal drug use and, to a lesser degree, to unsafe medical/surgical procedures, tattooing or acupuncture with unsafe materials, and male homosexual activity[27]. This contrasts with the principal routes of HCV transmission prior to 1990’s of blood transfusion and unsafe injection procedures. Despite conflicting published data, several studies have found that many Asian HCV patients have no identifiable risk factor (up to 50%) of HCV acquisition[27]. Intravenous or nasal drug use does not seem to be a major contributing factor to HCV infection. Therefore, inadequately sterilized medical equipment and cultural practices such as acupuncture or cosmetic tattooing are presumably implicated in the transmission of HCV a significant proportion of patients[18]. A cross-sectional study of 308 Southeast Asian Americans with HCV (41% with genotype 6) reported that risk factors for acquisition for HCV genotype 6 are similar to that of other genotypes, with 41% of patients who could not recall any specific exposure risk[28]. Nevertheless, higher prevalence of HCV genotype 6 has been described in some certain populations including intravenous drug users and patients with thalassemia major[10,26,29]. In Hong Kong, HCV genotype 6 was predominantly observed in 58.5%-62.5% among intravenous drug users and 50% among patients with thalassemia major[26,29]. Correspondingly, Seto et al[30] reported that statistically significant larger proportion of patients with HCV genotype 6 were infected through intravenous drug injections when compare to those with genotype 1 (28.2% vs 8.7%, respectively).

CLINICAL FEATURES

There is limited data that specifically addresses the clinical features and natural history of HCV genotype 6. A cross-sectional study performed in 308 Southeast Asians in California found no significant differences in the clinical and virological characteristics (e.g., age, risk factors of HCV acquisition, alcohol consumption, family history of liver disease, liver functions tests, white blood cell and platelet count, HCV RNA viral load, and liver histology) between HCV genotype 6 and other genotypes. Yet, several studies have suggested that Asian patients tend to be older, have lower body mass index (BMI), consume less alcohol and tobacco, and have more advanced liver histology at presentation than non-Asians[18,31]. Late presentation in Asian patients may be secondary to the lack of awareness of appropriate screening and the low proportion of patients presenting with identifiable risk factors[18].

Chronic HCV infection can be associated with various extrahepatic manifestations, including lymphoproliferative (e.g., mixed cryoglubulinemia and lymphoma) and immunological disorders of various organ systems[32]. The prevalence of lymphoproliferative disorders associated with HCV seems to be geographical heterogeneity[32,33]. Without clear reasons, it is more prevalent in Southern Europe (with an increased prevelence in patients infected with HCV genotype 2) than in Northern Europe, North America, and Asia[32,33]. To date, there have been no specific epidemiological and clinical data regarding extrahepatic manifestations of HCV genotype 6. From our experiences, clinically significant extrahepatic manifestations of HCV are rare in Thailand (especially when compared to the relatively high prevalence of HCV in this area).

TREATMENT

Treatment outcomes

A combination of pegylated interferon (PEG-IFN) and ribavirin (RBV) has been the standard treatment for patients with chronic HCV. These drugs are administered for either 48 wk (for HCV genotypes 1, 4, 5, and 6) or for 24 wk (for HCV genotypes 2 and 3), inducing sustained virologic response (SVR) rates of 40%-50% in those with genotype 1, and of > 70-80% in those with genotypes 2 and 3 infections[27,34]. It should be noted that HCV treatment outcome with PEG-IFN/RBV in Asians seems to be superior to that of non-Asian populations, and this may be due to several factors, such as favorable IL28B genotype, low body weight, and HCV genotype misclassification (6 to 1) [18]. More recently, the treatment durations can be modified according to the virological responses (response-guide therapy)[27], and in 2011, direct-acting antiviral (DAA)-based triple combination therapies (boceprevir or telaprevir plus PEG-IFN/RBV) have been approved and shown to improve virological outcomes in HCV genotype 1 patients, with an SVR of up to 65%-75% in treatment-naïve patients[35]. Once achieved, an SVR is associated with long-term clearance of HCV infection, which is regarded as a ‘‘cure,’’ as well as with significant improvement of morbidity and mortality of the patient[27,35]. Among several predictors of SVR to therapy, HCV genotype is considered one of the most robust independent predictors[27]. Compared to other genotypes, data regarding the treatment of HCV genotype 6 are scant and mostly generated retrospectively. The available studies suggest that SVR rates in patients infected with HCV genotype 6 (60%-90%) are superior to those in patients with genotype 1 and comparable to patients infected with genotypes 2 and 3[36-43] (Table ​(Table2).2). The question whether a high treatment response rates in HCV genotype 6 is due to viral factor itself or partialy due to host factor, especially favorable IL28B genotype among Asians, remains unclear.

Table 2 Treatment outcomes of hepatitis C virus genotype 6 (compared to other genotypes)

Ref. Design/treatment Genotype n SVR P value1
Dev et al[36] Retrospective IFN + RBV 52 wk 6 33 82.5% NR
1 17 61.9%
Hui et al[37] Prospective IFN + RBV 52 wk 6 16 62.5% 0.04
1 24 29.2%
Cheng et al[43] Retrospective PEG-IFN + RBV (duration not reported) 6 13 69.2% 0.026
1 61 32.8%
2 18 77.8%
Fung et al[38] Prospective PEG-IFN + RBV 52 wk 6 21 85.7% 0.019
1 21 52.4%
Nguyen et al[40] Retrospective PEG-IFN + RBV (48 wk for genotype 1 and 6; 24 wk for genotype 2/3) 6 34 74.0% 0.016
1 70 49.0%
2/3 63 75.0%
Seto et al[30] Retrospective IFN/PEG-IFN + RBV 52 wkIFN/PEG-IFN + RBV 52 wk 6 26 92.3% NR
1 21 42.9%
Tsang et al[41] Retrospective PEG-IFN + RBV 48 wk 6 70 75.7% NR
1 70 57.1%
Zhou et al[42] Retrospective PEG-IFN + RBV (48 wk for genotype 1b; 24 wk for genotype 2/3 and 6) 6 22 81.8% 0.068
1b 39 59.0%
2/3 42 83.3%
Tangkijvanich et al[48] Prospective PEG-IFN + RBV (RGT2 for genotype 6; 48 wk for genotype 1; 24 wk for genotype 3) 6 34 76.5% 0.309
1 16 62.5%
3 16 81.3%
1P value between genotype 6 vs genotype 1;
2Response-guided therapy (RGT) define as 24 wk for patients with rapid virological response and 48 wk for those without. PEG-IFN: Pegylated interferon; RBV: Ribavirin; SVR: Sustained virological response.

Treatment regimens

The optimal dose and treatment duration of HCV genotype 6 have not been well-established. Most of the earlier studies applied PEG-IFN for 48 wk duration with weight-based RBV dose for HCV genotype 6 reported conflicting results with studies comparing 48-wk vs 24-wk treatment duration (Table ​(Table3).3). In a retrospective cohort of Nguyen et al[44], SVR was significantly higher in patients treated for 48 wk than in those treated for 24 wk (75% vs 39%, respectively; P = 0.044). However, a randomized controlled study from Lam et al[45] (n = 60) found no significant difference in SVR rates in patients treated with PEG-IFN α-2a/RBV for 48 wk vs 24 wk (79% vs 70%, respectively; P = 0.45). Based on this conflicting evidence, differences in treatment duration recommended by the available guidelines are observed. The 2009 American Association of the Study of Liver Disease[34] and the 2012 Asian Pacific Association for the Study of the Liver[46]. Practice Guidelines have recommended 48 wk duration of treatment for patients with HCV genotype 6, as for those with genotype 1, whereas the 2011 European Association for the Study of the Liver Practice Guideline has suggested response-guided therapy for HCV genotype 6 with the same algorithm as genotype 2 and 3[27]. In 2012, the largest randomized controlled trial to date of patients with HCV genotype 6 (n = 105) has been published. This study found no statistically significant difference in SVR rates between the genotype 6 patients treated with 24 and 48 wk of PEG-IFN α-2a/RBV (60% vs 71%, P = 0.24 in the intention-to-treat analysis; 72% vs 79%, P = 0.46 in the per-protocol analysis)[47].

Table 3 Treatment outcomes of hepatitis C virus genotype 6 by the treatment duration

Ref. Design/treatment Duration (wk) n SVR P value
Nguyen et al[44] Retrospective 24 23 39% 0.044
PEG-IFN 2a/2b + WB-RBV 48 12 75%
Lam et al[45] Randomized (1:1) 24 27 70% 0.450
PEG-IFN 2a + WB-RBV 48 33 79%
Thu-Thuy et al[47] Randomized (1:2) 24 35 60% 0.240
PEG-IFN 2a + WB-RBV 48 70 71%
Tangkijvanich et al[48] Prospective 24 if RVR achieved 25 88% NR
PEG-IFN 2a + WB-RBV 48 if no RVR 9 44%
PEG-IFN: Pegylated interferon; RBV: Ribavirin; WB: Weight-based; SVR: Sustained virological response; RVR: Rapid virological response.

Predictors of treatment response and response-guided therapy

For HCV in general, the strongest predictors of SVR are genetic polymorphisms in IL28B, genotype, the stage of fibrosis, and undetectable HCV RNA at week 4 of treatment (defined as rapid virological response; RVR)[27]. Other predictors of response include host factors (e.g., age, BMI, insulin resistance, gender), baseline HCV RNA levels, co-infections, the dose and duration of therapy, virological responses during the treatment, and treatment adherence[27]. These predictors seem to be valuable for all HCV genotypes and may extrapolate to use for patients with HCV genotype 6 as well. With sparse available data, predictors of response in HCV genotype 6 have been observed among studies of HCV genotype 6 include younger age (< 40-50 years)[40,42], low BMI (< 25 kg/m2)[40], treatment adherence[40] and RVR[42,45]. Among these predictors and concordant with observations in other HCV genotypes, RVR was a strong independent predictor of SVR in HCV genotype 6, wherein the positive predictive value (PPV) in achieving SVR in patients with RVR has been 80%-90%[42,45,47,48]. In Thu thuy et al[47] study, RVR was common (in up to 80% of patients) with a high PPV (75%-86%) and negative predictive value (NPV) for the prediction of SVR (0%-8%), regardless of the treatment duration. Thus, none of the patients who did not have undetectable HCV RNA at week 12 of treatment (defined as early virological response; EVR) subsequently achieved SVR[47]. Thus, in those who completed treatment protocol, the importance of RVR in the prediction of SVR has been further substantiated; PPV for SVR was 96% with 48-wk treatment group, and was 91% with 24-wk treatment. In addition, a retrospective analysis by Zhou et al[42] demonstrated that the PPV and NPV of RVR and EVR in patients with HCV genotype 6 are comparable with those in patients with genotype 2/3 infection.

Taken together, it is likely that baseline response predictors together with on-treatment response-guide therapy (RGT) can be utilized for the treatment of HCV genotype 6 in order to optimize treatment outcomes as well as cost-effectiveness (Figure ​(Figure1).1). Based on available data, patients with RVR will benefit with 24 wk of therapy, particularly if they are young, with a BMI < 25 kg/m2, and have a low viral load, whereas patients with older age, non-CC IL28B genotypes, obesity, advanced fibrosis, and high viral loads, would benefit from 48 wk of therapy. The SVR rates among HCV genotype 6 patients with RVR are expected to be at > 80%[42,45,47], and possibly up to > 90% in those who adhere to therapy[47]. Alternatively, patients who do not achieve RVR are expected to have low rates of SVR (0%-30%)[45,47]. If treatment continues, HCV RNA should be checked again at week 12. If HCV RNA is detectable at week 12 then treatment should be discontinued, since SVR rates have shown to be near zero in non-EVR patients[42,45,47]. Correspondingly, a proof-of-concept study (n = 34) utilizing RGT for HCV genotype 6 patients with RVR has been firstly reported by Tangkijvanich et al[48]. In this study, 25 patients who achieved RVR were assigned to receive 24 wk treatment (RGT group) while the remaining 9 patients (no RVR) were assigned for standard 48 wk of PEG-IFN 2a/RBV therapy. SVR rates were significantly higher for RGT group when compared to 48-wk treatment group (88% vs 44%, respectively; P = 0.024)[48]. However, the precise role and protocol of RGT for HCV genotype 6 needs a larger prospective study to address.

WJH-5-496-g001

Figure 1 Response-guided therapy in patients with hepatitis C genotype 6. RVR: Rapid virological response; EVR: Early virological response; BMI: Body mass index; HCV: Hepatitis C virus; IL: Interleukin.

Treatment adverse events

As previously reported in HCV treatment trials, the common side effects of HCV genotype 6 are of general non-specific symptoms and anemia, which are mild and manageable by supportive measures[45,47]. Though the incidence and types of side effects caused by therapy with PEG-IFN/RBV seem to be similar among patients of different HCV genotypes, side effect profiles appear to differ among patients of different ethnicities[6]. Several studies have reported that psychiatric adverse events were less common and ribavirin-induced anemia was more common in Asians than either white or Hispanic patients, and that there were no significant difference between whites and Asians with respect to required ribavirin or PEG-IFN dose reductions[18]. Notably, the lower rates of psychiatric adverse events in Asians may be partly explained from the potential for underreporting psychiatric problems and/or depression in Asian populations due to associated sociocultural stigma[49,50], as well as from the absence of confounders such as alcohol use and drug abuse[51].

Roles of IL28B

Single nucleotide polymorphisms (SNPs) near the IL28B gene responsible for encoding IFN-gamma are strongly associated with spontaneous and treatment-induced clearance of HCV[52,53]. A genome-wide association study of more than 1600 patients infected with HCV genotype 1 found the rate of SVR following PEG-IFN/RBV treatment to be approximately 80%, 40%, and 25% in IL28B genotypes CC, CT, and TT, respectively[52]. Notably, the favorable C allele is frequently found up to 80% in Asians, which is more common than in Caucasians, Hispanics and African Americans, respectively[52,54]. This may be part of the reason that SVR rates for HCV genotype 1 among Asian patients are higher (expected 60%-70%) compared to non-Asian populations[18]. However, the role of IL28B for the prediction of HCV clearance in non-1 genotypes is less clear. Studies from HCV genotypes 2, 3, and 4 yielded somewhat conflicting results, though most studies failed to show a significant association of IL28B variations with SVR[53]. Nevertheless, a preliminary study in Chinese genotype 6 HCV patients (n = 24) has demonstrated a significant association between IL28B polymorphisms (SNPs rs12979860 and rs8099917) and SVR rates[55].

Roles of viral genome mutations

Studies from Japan and Hong Kong have identified assciations between genetic mutations around the interferon sensitivity-determined region (ISDR) of HCV genotype 1b and resistance to IFN-based treatment[56,57]. Accordingly, sequence diversity of HCV genotype 6a within the extended ISDR (covering 192 base-pairs upstream and 201 base-pairs downstream from the ISDR previously defined in genotype 1b) has shown correlation with antiviral treatment outcomes in a report from China[58]. However, it should be noted that this observation was not reproducible among HCV genotype 1b patients in Europe and United States[59,60], which may be partially explained by differences in genetic background, especially the IL28B genotypes.

Roles of DAA

At present, there has been no data on the efficacy of current, FDA-approved DAA, boceprevir and telaprevir, on HCV genotype 6. However, some investigational agents with pan-genotypic antiviral activities (e.g., new generation protease inhibitors, NS5B, and cyclophilin inhibitors) have been shown to suppress HCV replication in HCV genotype 6[61,62]. Recently, sofosbuvir[63] and simeprevir (TMC435)[64] have demonstrated clinical benefit in a small number of patients with HCV genotype 6 in the phase II/III studies. However, further studies with larger number of genotype 6 patients are needed in order to establish the regimens and clinical efficacy in this group of patient. While awaiting clinical trials specifically for genotype 6, one would speculate that the use, or off-label use, of pan-genotypic DAA, especially sofosbuvir and simeprevir, for HCV genotype 6 patients may be seen soon, particularly for those who failed standard treatment with PEG-IFN/RBV. It should also be noted that the availability of DAA is currently very limited in most countries in Southeast Asia due to socio-economic and other barriers.

CONCLUSION

Hepatitis C genotype 6 is endemic in Southeast Asia (prevalence varies between 10%-60% among all HCV infection), as well as also sporadically reported outside the area among immigrations. The diagnosis of HCV genotype can be inaccurate with earlier methods of genotyping due to identical 5’-UTR between genotype 6 and 1b, and the newer genotyping methods with core sequencing are preferable. Risk factors and clinical course of HCV genotype 6 do not considerably differ from the other genotypes. Treatment outcome of HCV genotype 6 with PEG-IFN/RBV is superior to genotype 1, and nearly comparable to genotype 3 (expected SVR rates of 60%-90%). Emerging data suggests that a shorter course 24-wk treatment may be effective as a standard 48-wktreatment, particularly in those patients who attained RVR. In addition, baseline and on-treatment predictors of response used for other HCV genotypes seem to be useful for genotype 6. Although some pan-genotypic direct acting antivirals have completed phase II/IIIstudies (sofosbuvir and simeprevir) with clinical benefit demonstrated in small number of patients with genotype 6, broad availability of these agents in Southeast Asia may not be expected in the near future. While awaiting the newer therapy, response-guided therapy seems to be appropriate for patients with HCV genotype 6. Patients with RVR (representing > 70% of patients) are suitable for 24 wk treatment with expected SVR rates > 80%. Patients without RVR and/or those with poor response predictors may benefit from 48 wk of therapy, and a detectable HCV RNA at week 12 (no EVR) can be served as stopping rule. This treatment scheme is likely to have a major economic impact on HCV therapy, particularly in Asia, wherein treatment can be truncated securely in the majority of patients with HCV genotype 6.

ACKNOWLEDGMENTS

The authors are thankful to Professor K Rajender Reddy at the University of Pennsylvania and the Thai Association of the Study of the Liver for supportive guidance.

Footnotes

P- Reviewers Antonelli A, Rostami-Nejad M, Takaki A, Xu R S- Editor Gou SX L- Editor A E- Editor Liu XM

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Source

August 21, 2013

Providing Timely and Appropriate Care for Chronic HCV Infection: Patient Readiness and Likelihood of Response CME

From Medscape Education Gastroenterology

Andrew J. Muir, MD

CME Released: 07/31/2013; Valid for credit through 07/31/2014

In May 2011, the US Food and Drug Administration (FDA) approved the use of direct-acting antiviral agents telaprevir and boceprevir for treatment of chronic hepatitis C (HCV) genotype 1 infection in combination with pegylated interferon (PEG-IFN) and ribavirin (RBV). This represented a new paradigm in the management of HCV. On May 29, 2013, Medscape spoke to Andrew J Muir, MD, Associate Professor of Medicine and Director of GI/Hepatology Research at Duke Clinical Research Institute in Durham, North Carolina, to discuss the current HCV treatment approaches and provide a case-based illustration of the decision whether a patient is a candidate for treatment with the current standard of care.

Medscape: To start, please briefly describe the current standard of care for HCV genotype 1 infection in the United States. According to the guidelines, what patients are considered appropriate candidates for treatment with the current standard of care?

Andrew J. Muir, MD: The current standard of care for treatment of chronic HCV genotype 1 infection in the United States is the combination of PEG-IFN-alfa, RBV, and one of the HCV NS3/4A protease inhibitors boceprevir or telaprevir.[1] In clinical studies, the addition of boceprevir or telaprevir to the previous standard of care for these patients (ie, PEG-IFN plus RBV) was associated with a significantly increased rate of sustained virologic response (SVR) in both treatment-naïve and previously treated patients.[2-5]

Medscape: How are patients evaluated with regard to their eligibility for HCV therapy?

Dr Muir: The key to treatment eligibility right now is a patient’s ability to tolerate PEG-IFN. Many of the adverse effects and risks associated with the currently available treatment are driven by PEG-IFN. For example, patients need to have no significant mental illness, including active depression, because it can be exacerbated by PEG-IFN.[6,7] Presence of other comorbidities -- such as advanced heart failure or lung disease -- should also be considered. Liver disease stage is important. In order to be eligible for treatment, patients should not have decompensated cirrhosis, and no complications of cirrhosis such as ascites, variceal bleeding, or hepatic encephalopathy. Finally, as there is a significant risk of anemia, thrombocytopenia, and neutropenia, it is important for patients to have appropriate blood counts prior to the start of treatment.

The guidelines recommend that treatment should be considered in all patients who qualify; we take that approach on a case-by-case basis to determine whether treatment is appropriate for an individual patient at this time. A number of the new HCV agents are expected to become available in the next few years, and we expect that there will be an IFN-free regimen available for HCV genotype 2 and 3 by late 2013, and hopefully for genotype 1 by 2015 or so. The question, then, is this: Should you treat the patient now, or wait until these new therapies are available?

I think that patients should weigh this decision and discuss it carefully with their provider. As we just discussed, the IFN adverse effects are real and significant, and it’s very reasonable for many of these patients to delay treatment for now. However, I do not think that providers should make that decision for their patients. We should tell them about the chances of cure and the risks associated with the current therapies. Patients with advanced fibrosis have the most concern about progression of their liver disease, and therefore might be more motivated to get treatment right away. These are also patients with a lower chance of cure and potentially at increased risk for adverse events, such as prior nonresponders and those with advanced liver disease. We need to work through that with them. Finally, some patients may be highly motivated to begin treatment right away because they want to be cured or for other reasons (eg, fear of losing health insurance coverage while they await newer therapies). Understanding the patients’ concerns and motivations helps guide our clinical decisions. On the other hand, we need to ensure that the patients understand what is involved in HCV treatment right now: length of time on treatment, regimen complexity, likelihood of treatment success, and so on.

Medscape: Please describe a case scenario in which the patient is a candidate for therapy with the current standard of care.

Dr Muir: I saw a patient recently for whom it was quite reasonable to consider moving forward with treatment (Table). This was a 30-year-old woman recently diagnosed with HCV genotype 1a infection, which is the most difficult-to-treat genotype, yet the most common in the United States. She was treatment-naïve, and had mild liver disease. Her laboratory test results were all within normal range, and her aspartate aminotransferase (AST) and alanine aminotransferase (ALT) levels were mildly elevated. Her HCV RNA was 1,100,000 IU/mL, which is a somewhat high viral load. Finally, her IL28B genotype, which is associated with treatment response, was CC. This is the most favorable IL28B haplotype in terms of likelihood of treatment response.

Table. A Patient With Recently Diagnosed Hepatitis C Infection Considering Therapy

30-year-old woman

HCV diagnosis in 2013

  • Genotype 1a
  • HCV RNA 1,100,000 IU/mL
  • Liver enzymes slightly elevated
  • Platelets, albumin, bilirubin, prothrombin within normal range
  • IL28B CC haplotype

Medscape: What makes this patient an appropriate candidate for treatment now?

Dr Muir: She was very motivated to initiate treatment right away because she wanted to put HCV infection behind her. Clinically, she has a number of favorable prognostic factors that would suggest she has a great chance to be cured: young age, female gender, and a favorable IL28B haplotype (IL28B CC).[8] Although she would also do well on therapies that are currently in development, she and similar patients also have good response rates to the first-generation protease inhibitors boceprevir and telaprevir. She may also be a candidate for a shortened treatment course, what is called a response-guided therapy approach (Figures 1 and 2).[9]

808485-fig1

Figure 1. Response-guided therapy algorithm for boceprevir. Adapted from Shiffman ML, et al. Liver Int. 2012;32:54-60. [9]

808485-fig2

Figure 2. Response-guided therapy algorithm for telaprevir. Adapted from Shiffman ML, et al. Liver Int. 2012;32:54-60.[9]

Medscape: What are some of the issues that you would want to discuss with this patient?

Dr Muir: First, I would want her to know the data, particularly as it relates to patients with her disease characteristics. We just talked about response-guided therapy. Could she be a candidate for an even shorter treatment course? In the PROVE-2 study of telaprevir given in combination with PEG-IFN and RBV, the overall SVR rates were only 60% in patients who received a total of 12 weeks of triple therapy.[10] This was a disappointing result and this treatment approach was discontinued moving forward. However, a retrospective subanalysis of 12 patients with IL28B CC genotype revealed that 100% of those patients achieved SVR with just 12 weeks of triple therapy.[11]

Subsequently, a randomized study called CONCISE was initiated to examine two durations of therapy with telaprevir, PEG-IFN, and RBV. In CONCISE, patients who had undetectable HCV RNA at week 4 of triple therapy were randomly assigned at 12 weeks to either stop all treatment (T12PR12 arm) or continue for 12 more weeks with PEG-IFN plus RBV only (T12PR24 arm).[12] At the European Association for the Study of the Liver (EASL) conference in 2013, interim results of CONCISE showed an SVR12 rate of 87% for patients in the T12PR12 arm compared with 97% in the T12PR24 arm,[12] which is encouraging. It should be noted that boceprevir is also administered in a response-guided approach. For treatment-naive patients whose HCV RNA is undetectable at weeks 8 and 24 of treatment, all treatment can be stopped at 28 weeks, whereas if HCV RNA is detectable at week 8 but undetectable at week 24 of treatment, the total duration of triple therapy with boceprevir, PEG-IFN, and RBV is 32 weeks, followed by 12 weeks of PEG-IFN plus RBV only for a 48-week total treatment course (Figure 1).[9]

Although 12 weeks of total therapy is not presently an FDA-approved approach, it does give some indication of these agents’ potency. Also, if a patient is having significant adverse effects after 12 weeks of therapy and is trying to decide whether it is worthwhile to continue, I think I am going to be much more comfortable if this patient stops treatment at week 12 provided he or she had undetectable HCV RNA at week 4. This is something we should discuss with our patients.

Medscape: The currently available therapies are fairly complex. What should providers keep in mind with regard to patients’ treatment readiness and willingness to adhere to a complex regimen?

Dr Muir: Yes, this is a challenging treatment course. We need to provide patients with much education upfront, and to support them as much as possible while on treatment. Administration schedules are different for the 3 regimen components. The IFN injection is given once a week; patients inject themselves at home on a day of the week that they choose. Ribavirin is dosed twice daily and boceprevir and telaprevir are dosed 3 times daily. Boceprevir should be taken with food, and telaprevir should be taken with food that includes 20 g of fat with each dose. Patients have to be very organized, not only to remember which medicine is taken at which time, but also to make sure that they’ve worked out their meals for the day. It takes planning.

A variety of strategies can be used to address treatment adherence. Patients can use pill boxes or set alarms or mobile phone reminders to help them remember, but all of these take some planning. This is why the patient needs to be motivated to receive therapy and to understand what impact treatment is going to have on his or her life. I think that it’s our job as providers to let them know what is involved and how to ensure the highest likelihood of success.

Patients also need to adhere to their scheduled appointments. Their lab values require close monitoring, especially in the first few weeks after treatment initiation, to ensure that they are tolerating the regimen. We sometimes have to make adjustments in the dose of RBV based on their blood counts.[13,14] Additionally, the patient’s HCV viral load has to be obtained at specific times in order to evaluate his or her candidacy for response-guided therapy, so appointments need to be scheduled and attended in the appropriate time frame.

Medscape: Do you evaluate the patient to assess whether he or she is at risk for treatment nonadherence before you recommend treatment?

Dr Muir: We try to address this issue with our patients in a couple of different ways. For instance, we look at the notes from the referring providers to see whether there have been any concerns raised about medication and/or visit adherence in the past. Have they had other medical conditions -- such as diabetes -- for which they didn’t take their medications regularly? We also need to see how the patients interact with us. At our clinic, we would never start treatment the first time we see a patient. We want to see that they keep their appointments and that they follow our advice as far as educating themselves about what they will need to do. We really like to see them have somebody else with them at teaching visits, for example, because there is much information to absorb. Do they comply with those recommendations so that we are doing all that we can to educate them and their support team as they get ready for this therapy? These are just some of the ways to address patient readiness to adhere to the treatment plan.

Medscape: Let’s return to the patient case you described earlier. What is her status at this point in time?

Dr Muir: The patient is currently on treatment and we are waiting to see how her HCV infection will respond.

Medscape: To conclude, what are some key messages that providers should take away with regard to selecting the appropriate patient to start HCV therapy at this time?

Dr Muir: Realistically, most patients are going to want to delay starting HCV therapy until the newer agents come along. However, I think it would be inappropriate to suggest that no one will be treated until IFN-free regimens are available. There will be some patients who will want to move forward with the current treatment options. Some of them will have advanced disease and are concerned about disease progression. Some may consider it the most appropriate time for them to move forward with treatment; they may have favorable prognostic characteristics to suggest a high probability of treatment success. Therefore, the decision to treat now or wait should be made by each patient with the help of his or her provider on an individual basis that takes all of these factors into account.

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