Showing posts with label Viral Load. Show all posts
Showing posts with label Viral Load. Show all posts

January 1, 2014

Antiviral treatment of hepatitis C virus infection and factors affecting efficacy

World J Gastroenterol. 2013 December 21; 19(47): 8963-8973.

Published online 2013 December 21. doi: 10.3748/wjg.v19.i47.8963.

Copyright ©2013 Baishideng Publishing Group Co., Limited. All rights reserved.

Yan Zhu and Song Chen.

Yan Zhu, Song Chen, Institute of Infectious Diseases, Southwest Hospital, the Third Military Medical University, Chongqing 400038, China

Author contributions: Chen S designed and acquired the data for this manuscript; and Zhu Y wrote the paper.

Correspondence to: Dr. Song Chen, Institute of Infectious Diseases, Southwest Hospital, the Third Military Medical University, Shapingba District, Chongqing 400038, China. cs196@medmail.com.cn

Telephone: +86-23-68754858 Fax: +86-23-68754858

Received September 28, 2013; Revised November 7, 2013; Accepted November 18, 2013;

Abstract

Hepatitis C virus (HCV) infection is the leading cause of chronic liver-related diseases, including cirrhosis, liver failure, and hepatocellular carcinoma. Currently, no effective vaccine is available for HCV infection. Polyethylene glycol interferon-α (PegIFN-α) in combination with ribavirin (RBV) is the standard of care (SOC) for chronic hepatitis C. However, the efficacy of PegIFN-α and RBV combination therapy is less than 50% for genotype 1 HCV, which is the dominant virus in humans. In addition, IFN and RBV have several severe side effects. Therefore, strategies to improve sustained virological response (SVR) rates have been an important focus for clinical physicians. The serine protease inhibitors telaprevir and boceprevir were approved by the United States Food and Drug Administration in 2011. The addition of HCV protease inhibitors to the SOC has significantly improved the efficacy of treatments for HCV infection. Several direct-acting antiviral drugs currently in late-stage clinical trials, both with and without peg-IFN and RBV, have several advantages over the previous SOC, including higher specificity and efficacy, fewer side effects, and the ability to be administered orally, and might be optimal regimens in the future. Factors affecting the efficacy of anti-HCV treatments based on IFN-α include the HCV genotype, baseline viral load, virological response during treatment, host IL28B gene polymorphisms and hepatic steatosis. However, determining the effect of the above factors on DAA therapy is necessary. In this review, we summarize the development of anti-HCV agents and assess the main factors affecting the efficacy of antiviral treatments.

Keywords: Hepatitis C virus, Treatment, Interferon, Protease inhibitors, IL28B protein, Polymorphisms, Viral load, Genotype, Hepatic steatosis

Core tip: Understanding the effectiveness and affecting factors of antiviral regimens are critical for making informed treatment decisions for hepatitis C virus (HCV) infection. In this review, we have summarized the history of anti-HCV agents from interferon to the direct-acting antiviral drugs (DAAs) without polyethylene glycol interferon-α therapies and the affecting factors of antiviral treatment, focusing on investigating the optimal combination of antiviral therapies to achieve higher efficacy and better medication compliance. Although the efficacy of DAAs is significantly improved, many unmet needs and questions remain, such as avoidance of cross-resistance, the remaining high incidence of side effects, the role of IL28B status as well as the management of patients who do not respond to therapy.

INTRODUCTION

Hepatitis C virus (HCV) infection, a worldwide public health problem affecting 170 million patients, is likely the cause of chronic hepatitis, liver cirrhosis, liver failure, and hepatocellular carcinoma[1]. Of the patients with chronic HCV infection, 40%-75% still exhibit extrahepatic manifestations including metabolic, hematological, vascular and rheumatological diseases[2-5]. Until recently, however, there have been no effective vaccines available. In the early 2000s, polyethylene glycol interferon-α (PegIFN-α) combined with ribavirin (RBV) became the standard of care (SOC) regimen for HCV, which showed a SVR that was mainly associated with its genotype. For example, patients with genotype 1 achieved a sustained virological response (SVR) of less than 50%. Additionally, this treatment regimen has several side effects, including granulocytopenia, anemia, and depression, and it is associated with a long treatment duration and increased cost. In 2011, the first direct-acting antiviral drugs (DAAs), telaprevir and boceprevir, were approved by the United States Food and Drug Administration (FDA). Combined with PegIFN-α and RBV, these DAAs resulted in a higher SVR rate in patients with HCV genotype 1. Thus, this treatment regimen became the SOC regimen for such patients. Soon afterward, other DAAs in the pre-clinical or pilot phase also achieved good treatment results. Current studies are focusing on investigating the optimal combination of antiviral therapies to achieve higher efficacy, shorter treatment duration, more simple administration, and better medication compliance. In response to an approved DAA, an evaluation of multiple factors (HCV genotype, baseline viral load, virological response during the treatment, and IL28B gene polymorphisms) affecting anti-HCV treatment therapy based on IFN is necessary.

ADVANCES IN ANTIVIRAL TREATMENT

Interferon

PegIFN-α: When administered as a once-a-week injection, PegIFN-α increased the SVR rate and compliance in patients by delaying renal clearance to extend the in vivo half-life by cross-linking polyethylene glycol and interferon-α. Currently, treatment combining PegIFN-α and RBV is still the most widely used SOC regimen.

Many clinical studies have compared the SVR rates in patients receiving different PegIFN-α (e.g., IFN-α-2a and IFN-α-2b), dosages, and treatment durations. The results suggested that the patients given a standard dose (180 μg) of PegIFN-α-2a had higher SVR rates than those given a weight-based dose (1.5 μg/kg) of PegIFN-α-2b[6-8]. The IDEAL study, which included 3070 patients with hepatitis C, showed that the SVR rate in patients with HCV genotype 1 infection given different doses of PegIFN-α-2b (1.0 or 1.5 μg/kg) was not different from that in patients given PegIFN-α-2a (180 μg)[9]. In patients with HCV genotype 2/3 infections, those given a standard dose of PegIFN-α-2b (1.5 μg/kg) had a higher SVR rate than those given a low dose[10-12]. Meanwhile, the SVR rates in patients receiving a high dose of RBV (1000-1400 mg/d) were higher than those in patients receiving a low dose (800 mg/d) of the PegIFN-α-related treatments[13,14]. The difference was especially obvious in the patients with a genotype 1 infection. Some studies investigated the antiviral therapy administered to patients with a genotype 2/3 infection. Although the overall SVR rate decreased after shortening the duration, a 12- or 16-wk treatment period was recommended for patients who achieved rapid virological responses (RVR)[10,15,16].

The IDEAL study results showed that regardless of which PegIFN-α was chosen to treat hepatitis C, the type and frequency of the adverse responses appeared similar (serious adverse responses, approximately 4%; headaches, 46%; myalgia, 40%; neutropenia, 5%; hemoglobin less than 86 g/L, approximately 3%), with a higher incidence of depression but lower incidence of skin rash associated with PegIFN-α-2b compared with PegIFN-α-2a[9].

Human serum albumin IFN-α fusion: Albinterferon is a genetic fusion protein used for the treatment of chronic hepatitis C (CHC), which takes advantage of the long half-life of human albumin to provide a new treatment approach that enables albinterferon administration at 2- or 4-wk intervals in individuals with CHC. Studies have demonstrated that the SVR rate resulting from the combined treatment of albinterferon and RBV was equivalent to that resulting from the SOC treatments, and the incidence rates of adverse drug reactions were also similar[17,18]. However, albinterferon is associated with the risk of reduced lung function, particularly in patients being treated for more than 6 wk[19].

PegIFN-λ-1a: IFN-λ is a class III interferon and has completely different receptors from those of IFN-alpha in vivo. Its receptors are mainly distributed in the liver, which means that the extrahepatic adverse reaction from IFN-λ is significantly reduced compared with that from IFN-α. In recent years, PegIFN-λ-1 has been confirmed to have anti-HCV activity and mild adverse reactions[20]. One clinical trial assessed the efficacy and safety of PegIFN-λ-1a plus RBV compared to the SOC for the treatment of naive patients with HCV genotypes 2/3. The results showed that the curative effects of the two treatments were similar but that the viral load in the PegIFN-λ-1a group decreased faster and that the adverse reactions were significantly reduced[21].

DAAs

NS3 protease inhibitors: The unique structure and function of NS3 protease in the HCV life cycle makes it a new target for anti-HCV drug development. In addition to cleaving the polyprotein and generating the NS3, NS4A, NS4B, NS5A, and NS5B proteins, NS3 protease acts as an antagonist of the host innate immune system by cleaving signaling molecules that mediate a cellular antiviral response and resulting in the suppression of interferon production. The two NS3 protease inhibitors discussed herein are telaprevir and boceprevir.

Telaprevir, as the first approved DAA, has a recommended dose of 750 mg tid, combined with PegIFN-α and RBV treatment (triple therapy), for a duration of 48 wk for naive or previous treatment failure HCV genotype 1 patients. The disadvantage of this medication is the need to ingest it with greasy food, which may cause an incredible weight increase during treatment. Six randomized clinical trials assessed the efficacy of the triple therapy compared with the SOC in naive HCV genotype 1 patients[22-27]. All patients were treated with telaprevir, PegIFN-α, and RBV for 8 or 12 wk, followed by the combined therapy of PegIFN-α and RBV. The results showed that the telaprevir triple therapy for 24 wk yielded a higher SVR rate than the SOC[22,24-26]. Even when the duration was shortened to 12 wk, the SVR rates were equivalent to those of the SOC[24], but prolonged duration did not improve its efficacy for those who achieved rapid virological response (RVR) and early virological response (EVR)[26,27]. The administration frequency of telaprevir (750 mg tid or 1125 mg bid) and PegIFN type (α-2b or α-2a) in patients with RVR and EVR had no effect on the SVR rate[23]. Among the previous treatment failure patients, the telaprevir triple therapy group had a higher SVR rate than that of the SOC group, but the overall effect was poor, especially for non-responders, with an SVR rate of 29%-33%[28]. Common adverse reactions to telaprevir include anemia, rash, nausea, hemorrhoids and itching. Because telaprevir treatment can lead to resistant mutants over the short term, the long-term use of the drug should be limited. Drug resistant mutants have been found to exhibit the following changes: V36A/M, T54A/S, R155K/T, and A156S/T.

Boceprevir is another NS3 protease inhibitor approved at the same time as telaprevir. The recommended dose of boceprevir is 800 mg tid, combined with PegIFN-α and RBV therapy, for a duration of 48 wk for naive or previous treatment failure HCV genotype 1 patients. Unlike telaprevir, boceprevir is started at week 4 of treatment, following a 4-wk lead-in period of treatment with peg-IFN and RBV, and RBV is required to enhance the efficacy of boceprevir[29]. Studies showed that the boceprevir triple regimen among naive patients for 48 wk increased the SVR rate associated with the SOC treatment to 16%-37%[30,31], whereas the SVR rates in the previous treatment failure patients were significantly higher (59%-66% vs21%)[32]. Boceprevir-related adverse effects include fatigue, anemia, nausea, headache, dry mouth, granulocyte decreases, taste disorders, and thrombocytopenia. The long-term use of this drug can also lead to resistance mutations, including V36A/M, T54A/S, V55A, R155K/T and A156/S/T/V.

Simeprevir is a second-generation NS3 protease inhibitor and a competitive reversible macrocyclic, non-covalent inhibitor of NS3/4A protease[33]. Phase II clinical trials compared the efficacy of simeprevir, PegIFN-α and RBV with the SOC treatment for naive or previous treatment failure HCV genotype 1 patients. Among the naive patients, those treated with the triple therapy with different doses of simeprevir (75 or 150 mg) once a day (qd) for 12 or 24 wk and then with PegIFN-α and RBV, for a total treatment course of 24 or 48 wk, obtained a higher SVR ratio compared with that of patients treated with the SOC (74.7%-86.1% vs 64.9%). In addition, for the majority of patients, the duration can be shortened to 24 wk[34]. The phase IIb ASPIRE study demonstrated that simeprevir is a highly potent, efficacious, and well-tolerated once-daily PI for the majority of prior null or partial responders and relapsers compared to IFN-based therapy. Simeprevir has entered a phase III clinical study. The most common adverse reactions are nausea, fatigue and hyperbilirubinemia, which are generally mild and reversible. The resistance mutations include Q8K and R155K.

Faldaprevir is a second-generation HCV NS3/4A protease inhibitor. Phase II clinical trials have compared the efficacy of the SOC with that of the combined treatment with faldaprevir, PegIFN-α, and RBV in treatment-naive or treatment-experienced patients with chronic hepatitis C genotype 1 infection. The SVR rate in the treatment-naive patients who underwent 24-wk triple therapy including faldaprevir 240 mg qd with no lead-in was the highest, at up to 84%, whereas the group receiving the same drug dose with lead-in during the early phase of treatment or receiving a half dose of faldaprevir had a 72% SVR; in contrast, the other group (SOC regimen) had a SVR of only 56%[35]. Similar results were obtained for the treatment-experienced patients. The group receiving triple therapy with faldaprevir 240 mg qd for 48 wk with no lead-in had the highest SVR rate (50% in prior partial responders and 35% in prior null responders); the SVR rate in the lead-in treatment group that received the same dose was the lowest[36]. The adverse responses of faldaprevir include jaundice, skin changes (e.g., rash), photosensitivity, pruritus, nausea, vomiting, diarrhea, and drying. The incidence of side effects is associated with the dosage. To date, the resistance mutations R155K and D168V/E have been observed.

Danoprevir is another second-generation NS3 protease inhibitor used for the treatment in naive or experienced HCV genotype 1 patients, and it is expected to eliminate the use of IFN-based drugs. One clinical trial compared the efficacy of the SOC with that of the combined treatment with danoprevir, PegIFN-α and RBV in treatment-naive patients with HCV genotype 1 infection[37]. The SVR rate in the group given danoprevir 600 mg q12h was the highest at up to 85%, whereas the group receiving the SOC had a SVR rate of 42%. Even when the duration among patients given danoprevir who had an extended rapid virological response (eRVR4-20: HCV RNA < 15 IU/mL during weeks 4-20) was shortened to 24 wk, 96% had an SVR. The INFORM-1 study evaluated the combination of danoprevir and mericitabine. Combination therapy was administered for up to 2 wk, resulting in a reduction in viral load and undetectable HCV RNA levels at the end of dosing in 63% of treatment-naive patients[38]. Relevant evidence indicates that ritonavir can inhibit the metabolism of danoprevir in vivo, reduce the side effects, and improve the SVR rate, providing the possibility for IFN-free combination therapy. The INFORM-SVR study provided SVR data for the combination of mericitabine and danoprevir/ritonavir with or without RBV for 12-24 wk. SVR rates in HCV genotype 1a and genotype 1b patients were 26% and 71% in treatment arms including RBV, respectively, but significantly lower SVR rates were found in all RBV-free treatment groups[39]. The adverse reactions of danoprevir mainly include anemia, neutropenia, and rash. The resistance mutations R155K and D168T/E have been observed.

ABT-450 is a potent, specific protease inhibitor of HCV NS3. Ritonavir is used to increase the plasma concentration of ABT-450, prolong its half-life, and reduce the risk of drug resistance, enabling an ABT-450 dose regimen of once daily[40,41]. Fifty HCV genotype 1 patients including naive, prior partial or null responders participated in an open-label, multiple-center phase II ABT-450 clinical trial. In the application of the combined treatment of ABT-333 [non-nucleoside inhibitors (NNI)], RBV, and ritonavir, the curative effects of different doses of ABT-450 over 12 wk were assessed. The results suggested that the SVR rates were higher than 90% in treatment-naive patients and 47% in prior partial or null responders[40]. The common adverse responses of ABT-450 include fatigue, pain, hyperbilirubinemia, and vomiting.

There are many other NS3 protease inhibitors in clinical studies, such as asunaprevir (BMS 650032), vaniprevir (MK-7009), narlaprevir (SCH 900518), VX 985, and MK-5172. Some of these NS3 protease inhibitors are expected to be approved for anti-HCV therapy in the near future.

NS5A inhibitors: NS5A is an essential viral component of the membrane-associated HCV replication complex and plays an important role in the formation of HCV infectious particles. Daclatasvir (BMS) 790052 was the first-in-class NS5A-specific targeted molecular inhibitor to be developed. Preclinical studies have shown that this NS5A inhibitor has broad genotype antiviral activity, but the associated mechanism is unclear. A phase IIa study compared the efficacy of the combination of daclatasvir and asunaprevir (two-drug treatment) with or without the addition of PegIFN-α and RBV for the treatment of HCV genotype 1 prior null responders over a 24-wk duration. The results showed that the sustained virological response at post-treatment week 14 (SVR24) of the two-drug treatment was 36% and that the sustained virological response at post-treatment week 12 (SVR12) and SVR24 of the four-drug treatment were 100% and 90%, respectively[42]. High virological response rates were obtained in 90 treatment-naive patients administered the combination of daclatasvir with sofosbuvir, with or without RBV, for 24 wk. In HCV genotype 1 patients, RVR and SVR rates were 100% and 100%, while in HCV genotype 2 and genotype 3 patients they were 100% and 91%, respectively[43]. However, it is notable that all failures were relapses after therapy. Analyses of resistance in vivo and in vitro showed mutations in the amino acid residues L31V/M and Y93H/N.

Several other NS5A inhibitors have also entered clinical trials, including ABT-267, ledipasvir (GS-5885), ACH-2928, and IDX791. Some of these inhibitors may be approved to become anti-HCV drugs.

NS5B polymerase inhibitors: NS5B is an RNA-dependent RNA polymerase (RdRp) in the HCV replication complex that catalyzes the synthesis of positive- and negative-stranded viral RNAs. Because mammals lack RdRp, new drugs to act as HCV NS5B polymerase inhibitors will be highly specific. NS5B enzyme activity can be inhibited by two different types of compounds: nucleoside/nucleotide derivative inhibitors (NIs) and NNIs. NIs can competitively bind to RdRp active sites, whereas NNIs target allosteric enzyme binding sites. Therefore, because both classes of drugs affect RdRp at different sites, cross-resistance is not easily produced.

NIs can simulate natural polymerase nucleotide substrates and act as a terminator that can be incorporated into RNA. The highly conserved HCV RdRp activation center showed that NIs have a similar efficacy on different HCV genotypes, as well as a high barrier to and low incidence of resistance genes.

Sofosbuvir can be used for the treatment of non-genotype 1 HCV infection[44,45]. A randomized, double-blind phase II clinical trial showed that treatment with sofosbuvir, PegIFN-α, and RBV for 12 wk, followed by subsequent treatment with PegIFN-α and RBV for 12 or 36 wk, resulted in a SVR12 rate of 90% in HCV genotype 1 patients, which was similar to that in genotype 2/3 patients (92%)[44]. Another clinical trial showed that the 12-wk treatment of HCV genotype 1 naive patients with sofosbuvir, PegIFN-α and RBV was safe and effective. In addition, extended duration did not improve the efficacy, although these results need to be further confirmed by phase III clinical trials[45]. It is notable that no viral breakthrough or resistance development during therapy has been described. Because of the absence of cross-resistance with the other DAAs, including NS5A inhibitors, sofosbuvir can be used for salvage therapy.

Mericitabine is a nucleoside analog polymerase inhibitor of HCV. Phase II clinical study data showed that the treatment with mericitabine combined with PegIFN-α and RBV was safe and well tolerated. In the triple regimen for 24 wk, the SVR rate in HCV genotype 1/4 treatment-naive patients was higher than the SOC group[46]. The phase II MATTERHORN study showed that for genotype 1a/1b prior null and partial responders after the combined treatment with ritonavir, danoprevir, mericitabine, PegIFN-α and RBV, the sustained virological response at post-treatment week 4 (SVR4) reached 83% and 100%, respectively. Currently, resistance mutants have not been found.

The design of NNIs involves targeting one of at least five non-contiguous sites of RdRp allosteric enzymes, resulting in conformational changes that inhibit the enzyme activity, which have limitations on the genotype compared with NIs. A low genetic barrier may soon induce virus mutations. In phase I and II clinical studies, the results showed that BI 207127 and VX-222, regardless of whether they were combined with PegIFN-α treatment, can both improve the genotype 1 HCV infection RVR or EVR rate and demonstrate good tolerance. However, reducing the treatment with PegIFN-α resulted in a relatively high proportion of virological breakthroughs[47-49].

Cyclosporine - a cyclophilin inhibitor: Cyclophilins are a family of cell isomerases, including cyclophilins A, B, and C. The importance of human cyclophilins in HCV replication was confirmed by the anti-HCV activity of cyclosporine A. The mechanism of action of cyclosporine A involves NS5A and/or NS5B. Alisporivir (Debio-025) is a derivative of cyclosporine A, which removed the immunosuppressive activity but retained the potent antiviral activity against a wide range of HCV genotypes. All cyclophilin inhibitors have a high barrier to resistance. In vitro studies have shown a lack of significant cross-resistance with NS3/4A or other protease inhibitors. Moreover, there is an additive effect when cyclophilin inhibitors are combined with PEGIFN-α. Thus, in addition to having the advantage of once-daily administration, these agents are promising host-directed antivirals[50,51].

Supplementation therapy: In vitro, vitamin B12 acts as a natural inhibitor of HCV replication. A study assessed the effect of vitamin B12 on the virological response in antiviral therapy-naive patients with chronic HCV infection. The SVR rate was significantly higher in the SOC plus B12 group than in the SOC group[52]. At present, it is also believed that vitamin D has an anti-HCV activity in vitro that is mediated through its active metabolite, calcitriol[53]. The SVR of treatment-naive patients with chronic HCV genotype 1 or 2/3 infection is significantly improved by adding vitamin D to conventional PegIFN-α and ribavirin therapy[54,55]. However, given the very small number of available studies, additional studies are needed to assess potential differences in the associations between vitamin B12/vitamin D and SVR for HCV.

The hematologic adverse events of PegIFN-α combined with RBV therapy include anemia, thrombocytopenia, and leukopenia, which most frequently lead to drug discontinuation or dose modifications. L-Carnitine is a necessary nutrient factor in energy production and has been proposed as a potential adjuvant treatment to improve anemia, thrombocytopenia, and leukopenia. A study comparing the PEGIFN-α plus RBV plus an L-carnitine group versus the PEGIFN-α plus RBV group observed a significant improvement in SVR for 50% vs 25% of patients[56]. This finding suggests that L-carnitine supplementation may be useful in patients treated for HCV. Other supplementations including erythropoietin, zinc and probiotics have been assessed in clinical studies, but the effects of those on SVR are still not clear.

FACTORS AFFECTING THE EFFICACY OF HCV ANTIVIRAL THERAPY

The main factors influencing the efficacy of HCV antiviral treatments are divided into two categories: viral and host-related. The viral category includes the HCV genotype, baseline viral load, and virological response during treatment, and the host category includes age, gender, race, drinking habits, obesity, degree of liver fibrosis, and IL28B gene polymorphisms. In particular, IL28B gene polymorphisms are associated with the SVR. With approved DAAs on the market, more clinical treatment choices have been provided. The efficient and reliable prediction of the efficacy is essential to create individual antivirus solutions, improve the efficacy, reduce the side effects, and lower the treatment cost.

Viral factors

HCV genotype: Genotype plays an important role in predicting the response to the SOC treatments and determining the appropriate antiviral treatment. The response of patients with HCV genotype 1/4/5/6 infection is worse than that of patients with genotype 2/3 infection. DAAs are mainly used for the treatment of HCV genotype 1 infection. Although the effects of partial drugs on non-type 1 infection have been evaluated, there have been no sufficient data to clarify the relationship between the genotype and the effect of DAAs. Short-term data from a study on sofosbuvir indicated that the treatment with sofosbuvir combined with the SOC regimen resulted in a SVR12 of 91% in genotype 1 treatment-naive patients and 92% in patients with genotype 2/3. Another study showed that sofosbuvir combined with RBV resulted in a SVR rate of 84% in genotype 1 treatment-naive patients and 100% in patients with genotype 2/3[57]. Whether the HCV genotype affects the efficacy of DAA treatment remains to be confirmed by further studies.

Baseline viral load: Many studies have demonstrated that, regardless of the HCV genotype, a low baseline viral load (before treatment, HCV RNA < 600000-800000 IU/mL) was an independent predictive factor of the SVR[14,58,59]. In this range, the impact of the changes in the HCV RNA concentration on the SVR was not linear; when the HCV RNA was lower than 400000 IU/mL, an increase in the amount of virus decreases the SVR rate. However, an HCV RNA concentration higher than 400000 IU/mL results in a relatively stable SVR rate[51,60]. In 2011, the European guidelines for the prevention and treatment of hepatitis C suggested that if the baseline viral load was less than 400000-800000 IU/mL, the course of treatment for genotype 1/4 naive patients who received RVR can be shortened to 24 wk and that for patients with genotype 2/3 may be shortened to 12-16 wk[52,61].

Virological response during treatment: Using different patterns of response such as RVR, EVR, and delayed virological response (DVR: not having achieved RVR and EVR but testing negative for HCV RNA before the 24th wk) to predict the efficacy, determine the duration, and tailor the program can maximize benefits, rationalize the course of treatment, and minimize the recurrence rate. In the 2011 European guidelines[61] for the prevention and treatment of hepatitis C, the following adjustments are made. For the genotype 1/4 patients, if the baseline viral load was low before treatment and RVR was acquired after treatment, the duration could be reduced to 24 wk. If the patient acquired DVR, the duration should be prolonged to 72 wk to reduce the recurrence rate. For the genotype 2/3 patients, if the baseline viral load was low and RVR was acquired, the duration could be shortened to 12-16 wk. For patients who did not acquire RVR and EVR or only acquired DVR or exhibit combined effects from other factors (such as obesity and insulin resistance), as long as the viral load was undetectable at the 24th wk, the duration could be extended to 48 or 72 wk. Regardless of the genotype, if the viral load decreased to less than 21og IU/mL at the 12th wk and HCV RNA can still be detected at the 24th wk, the treatment could be discontinued. RGT principles are also applied to NS3 protease inhibitors. For HCV genotype 1 naive patients, using telaprevir or boceprevir combined with SOC and having acquired RVR and EVR, shortening the duration can be considered, but for patients with liver cirrhosis, a recommended treatment for 48 wk would be appropriate. The simeprevir results show that, according to the RGT principle, the treatment duration in HCV genotype 1 naive patients can be shortened to 24 wk, but further research is needed to confirm this recommendation[34]. The existing faldaprevir data show that extending the duration from 24 wk to 48 wk did not increase the SVR rate in HCV genotype 1 naive patients who achieved RVR and EVR, but for the previous treatment failure patients, a 48-wk course should be considered[35,36].

Host factors

Polymorphisms of the IL28B gene: In 2009, three genome-wide association studies (GWAS) found that single nucleotide polymorphisms (SNPs) in the IL-28B gene, located on chromosome 19, are associated with hepatitis C treatment efficacy[62-64]. In patients with HCV type 1 infection, Ge et al[62] found that rs12979860 (3 kilobases upstream of the IL28B gene encoding the type III interferon IFN-l3) showed a strong correlation with the treatment response. The SVR rate of SOC in CHC patients carrying the CC genotype was 2-3 times higher than that in patients not carrying the genotype. A Japanese study showed that rs8099917 was correlated with the HCV treatment response and was one of the most important predictors of non-response after the logistic regression analysis[65]. The frequency difference in different populations with the rs12979860 CC genotype is very large, with East Asians having the highest frequency of the CC genotype[62], followed by Europeans, and with Africans having the lowest frequency[63]. In a multivariate regression model, the IL28B polymorphism was the best predictor of treatment response, being better than the ethnic background, baseline viral load, degree of liver fibrosis, fasting glucose level, BMI, and other predictors[66]. Halfon et al[67] analyzed the predictive values of rs12979860 and rs8099917 in 198 patients with HCV genotype 1 with respect to their response to treatment and showed that rs12979860 seemed to be sufficient for clinical decisions. EASL guidelines showed that IL28B polymorphisms can be used to predict treatment response but have a low predictive value[61]. In contrast, AASLD argues that for determining the treatment regimen (SOC regimen combined with or without DAA), the IL28B polymorphism is a very strong predictor[68].

The predictive value of IL28B polymorphisms is not only limited to SOC regimen but has also been demonstrated in a study from Japan in patients receiving triple therapy with telaprevir. The study showed that rs12979860 and rs8099917 were associated with SVR, and the univariate and multivariate analyses confirmed that rs8099917 can be used as an independent predictor of the SVR[69]. Similar results were also found in other studies on the SOC treatments combined with DAAs[70-73]. An IFN-free study of mericitabine as a monotherapy or in combination with danoprevir showed that the rs12979860 CC genotype was related to faster and earlier viral decline[74].

Thus, the IL28B gene has a better predictive value with respect to not only the SOC but also DAAs. However, further research is still needed to confirm these observations.

Hepatic steatosis and other negative predictors: The value of steatosis as a negative predictor of response to anti-HCV therapy was confirmed in two large clinical trials. In one study, 574 HCV patients treated with the SOC were evaluated, and the results showed that the presence of steatosis reduces the likelihood of achieving EVR and SVR in genotype-1 infected patients[75]. In another study, 231 HCV patients treated with the SOC were evaluated[76]. The results showed that steatosis negatively affected SVR in HCV genotype non-3-infected patients. In the last year, new data showing that steatosis is also an independent predictor of relapse in genotype 3 have been published[77]. Steatosis has been associated with significantly higher rates of relapse, irrespective of viral load, in patients infected with HCV genotype 3 who had a rapid virological response (RVR)[78]. Several studies[59,78]. have shown that RVR consistently remains an important determinant of SVR in patients with HCV genotype 2 or 3. Recent studies have confirmed that RVR is a good indicator for SVR in genotype 2, but not in genotype 3, in which steatosis is a predictor of relapse. This suggests that the underlying pathogenic mechanisms of steatosis differ between genotype 3 and other genotypes and may influence response to IFN-based therapy. These data suggest that new therapeutic strategies are necessary for this subgroup of HCV genotype 3[59,78].

Other adverse predictive factors affecting the efficacy of HCV treatment include liver cirrhosis[79], age ≥ 40 years old[80], insulin resistance[81,82] and metabolic syndrome[83,84]. In patients with these factors, either the treatment duration may need to be extended or the dose may need to be increased.

CONCLUSION

PEGIFN-α combined with RBV is currently the most classic and widely used standard treatment; however, its limited efficacy and significant side effects, as well as the absence of an HCV vaccine, promoted the development of new drugs. In recent years, the development of HCV antiviral drugs has progressed. Two HCV NS3 protease inhibitors, telaprevir and boceprevir, were approved by the United States FDA in 2011, and their combined treatment with the SOC not only significantly improved the SVR rate in HCV naive patients but also showed good efficacy in patients with previous treatment failure. Many other HCV NS3 protease inhibitors, NS5A inhibitors, and NS5B RdRp inhibitors are in the final stage of clinical trials and are likely to soon be approved as anti-HCV drugs. DAAs have shown a trend toward a gradual replacement of the SOC scheme. Although the efficacy of DAAs is significantly improved, the incidence of treatment-related side effects appears to be high, and because of the direct-acting antiviral effect, resistance mutations appear to be more likely to appear. Therefore, the implementation of personalized treatment approaches is very important. The application of many HCV antiviral drugs provides clinicians with more effective treatment choices for CHC. Host genetic factors guide individualized treatment strategies and aid in determining the best treatment plan for each patient. Polymorphisms in the IL28B gene have been used in clinical practice to help determine anti-HCV treatment strategies. Genetic markers need further verification, which can be performed in the preclinical testing stage. At the same time, accurately predicting the success of treatment and the progression of the disease will enhance the treatment compliance of patients, which will aid in maximizing the treatment effect.

Although DAAs show good potential, it is difficult to completely overcome the associated drug toxicity and occurrence of drug resistance; thus, not all patients can be cured by antiviral therapy. Therefore, determining how to prevent infection with HCV is an important research direction. Over the years, HCV vaccine development strategies are mostly based on the viral genome, unable to overcome HCV high variability, and starting from the human genome to explore other ways to prevent HCV infection may open up a new era in infection prevention

Footnotes

P- Reviewers: Narciso-Schiavon JL, Lonardo A, Malaguarnera MA S- Editor: Cui XM L- Editor: Wang TQ E- Editor: Wang CH

References

1.Shepard CW, Finelli L, Alter MJ. Global epidemiology of hepatitis C virus infection. Lancet Infect Dis. 2005;5:558-567. [PubMed] [DOI]

2.Bugianesi E, Salamone F, Negro F. The interaction of metabolic factors with HCV infection: does it matter?. J Hepatol. 2012;56 Suppl 1:S56-S65. [PubMed] [DOI]

3.Peveling-Oberhag J, Arcaini L, Hansmann ML, Zeuzem S. Hepatitis C-associated B-cell non-Hodgkin lymphomas. Epidemiology, molecular signature and clinical management. J Hepatol. 2013;59:169-177.[PubMed] [DOI]

4.Gembitskiĭ EV, Glazunov AV, Zhiliaev EV, Proskurina TV. Extrahepatic syndromes (vascular manifestations) in patients HCV infection. Klin Med (Mosk). 1995;73:51-53. [PubMed]

5.Buskila D. Hepatitis C-associated rheumatic disorders. Rheum Dis Clin North Am. 2009;35:111-123.[PubMed] [DOI]

6.Ascione A, De Luca M, Tartaglione MT, Lampasi F, Di Costanzo GG, Lanza AG, Picciotto FP, Marino-Marsilia G, Fontanella L, Leandro G. Peginterferon alfa-2a plus ribavirin is more effective than peginterferon alfa-2b plus ribavirin for treating chronic hepatitis C virus infection. Gastroenterology. 2010;138:116-122. [PubMed] [DOI]

7.Kamal SM, Ahmed A, Mahmoud S, Nabegh L, El Gohary I, Obadan I, Hafez T, Ghoraba D, Aziz AA, Metaoei M. Enhanced efficacy of pegylated interferon alpha-2a over pegylated interferon and ribavirin in chronic hepatitis C genotype 4A randomized trial and quality of life analysis. Liver Int. 2011;31:401-411. [PubMed] [DOI]

8.Rumi MG, Aghemo A, Prati GM, D’Ambrosio R, Donato MF, Soffredini R, Del Ninno E, Russo A, Colombo M. Randomized study of peginterferon-alpha2a plus ribavirin vs peginterferon-alpha2b plus ribavirin in chronic hepatitis C. Gastroenterology. 2010;138:108-115. [PubMed] [DOI]

9.McHutchison JG, Lawitz EJ, Shiffman ML, Muir AJ, Galler GW, McCone J, Nyberg LM, Lee WM, Ghalib RH, Schiff ER. Peginterferon alfa-2b or alfa-2a with ribavirin for treatment of hepatitis C infection. N Engl J Med. 2009;361:580-593. [PubMed] [DOI]

10.Manns M, Zeuzem S, Sood A, Lurie Y, Cornberg M, Klinker H, Buggisch P, Rössle M, Hinrichsen H, Merican I. Reduced dose and duration of peginterferon alfa-2b and weight-based ribavirin in patients with genotype 2 and 3 chronic hepatitis C. J Hepatol. 2011;55:554-563. [PubMed] [DOI]

11.Krawitt EL, Gordon SR, Grace ND, Ashikaga T, Ray MA, Palmer M, Yarze JC, Moskowitz S. A study of low dose peginterferon alpha-2b with ribavirin for the initial treatment of chronic hepatitis C. Am J Gastroenterol. 2006;101:1268-1273. [PubMed] [DOI]

12.Sood A, Midha V, Hissar S, Kumar M, Suneetha PV, Bansal M, Sood N, Sakhuja P, Sarin SK. Comparison of low-dose pegylated interferon versus standard high-dose pegylated interferon in combination with ribavirin in patients with chronic hepatitis C with genotype 3: an Indian experience. J Gastroenterol Hepatol. 2008;23:203-207. [PubMed] [DOI]

13.Hadziyannis SJ, Sette H, Morgan TR, Balan V, Diago M, Marcellin P, Ramadori G, Bodenheimer H, Bernstein D, Rizzetto M. Peginterferon-alpha2a and ribavirin combination therapy in chronic hepatitis C: a randomized study of treatment duration and ribavirin dose. Ann Intern Med. 2004;140:346-355. [PubMed] [DOI]

14.Jacobson IM, Brown RS, Freilich B, Afdhal N, Kwo PY, Santoro J, Becker S, Wakil AE, Pound D, Godofsky E. Peginterferon alfa-2b and weight-based or flat-dose ribavirin in chronic hepatitis C patients: a randomized trial. Hepatology. 2007;46:971-981. [PubMed] [DOI]

15.Lagging M, Langeland N, Pedersen C, Färkkilä M, Buhl MR, Mørch K, Dhillon AP, Alsiö A, Hellstrand K, Westin J. Randomized comparison of 12 or 24 weeks of peginterferon alpha-2a and ribavirin in chronic hepatitis C virus genotype 2/3 infection. Hepatology. 2008;47:1837-1845. [PubMed] [DOI]

16.von Wagner M, Huber M, Berg T, Hinrichsen H, Rasenack J, Heintges T, Bergk A, Bernsmeier C, Häussinger D, Herrmann E. Peginterferon-alpha-2a (40KD) and ribavirin for 16 or 24 weeks in patients with genotype 2 or 3 chronic hepatitis C. Gastroenterology. 2005;129:522-527. [PubMed] [DOI]

17.Nelson DR, Benhamou Y, Chuang WL, Lawitz EJ, Rodriguez-Torres M, Flisiak R, Rasenack JW, Kryczka W, Lee CM, Bain VG. Albinterferon Alfa-2b was not inferior to pegylated interferon-α in a randomized trial of patients with chronic hepatitis C virus genotype 2 or 3. Gastroenterology. 2010;139:1267-1276. [PubMed] [DOI]

18.Zeuzem S, Sulkowski MS, Lawitz EJ, Rustgi VK, Rodriguez-Torres M, Bacon BR, Grigorescu M, Tice AD, Lurie Y, Cianciara J. Albinterferon Alfa-2b was not inferior to pegylated interferon-α in a randomized trial of patients with chronic hepatitis C virus genotype 1. Gastroenterology. 2010;139:1257-1266. [PubMed] [DOI]

19.Foster GR, Zeuzem S, Pianko S, Sarin SK, Piratvisuth T, Shah S, Andreone P, Sood A, Chuang WL, Lee CM. Decline in pulmonary function during chronic hepatitis C virus therapy with modified interferon alfa and ribavirin. J Viral Hepat. 2013;20:e115-e123. [PubMed] [DOI]

20.Muir AJ, Shiffman ML, Zaman A, Yoffe B, de la Torre A, Flamm S, Gordon SC, Marotta P, Vierling JM, Lopez-Talavera JC. Phase 1b study of pegylated interferon lambda 1 with or without ribavirin in patients with chronic genotype 1 hepatitis C virus infection. Hepatology. 2010;52:822-832. [PubMed] [DOI]

21.Zeuzem S, Arora S, Bacon B, Box T, Charlton M, Diago M, Dieterich D, Mur RE, Everson G, Fallon M. Peginterferon Lambda-1a (Lambda) Compared to Peginterferon Alfa-2a (Alfa) in Treatment-Naive Patients with HCV Genotypes (G) 2 or 3: First Svr24 Results from Emerge Phase IIb. J Hepatol. 2012;56:S5-S6. [DOI]

22.Jacobson IM, McHutchison JG, Dusheiko G, Di Bisceglie AM, Reddy KR, Bzowej NH, Marcellin P, Muir AJ, Ferenci P, Flisiak R. Telaprevir for previously untreated chronic hepatitis C virus infection. N Engl J Med. 2011;364:2405-2416. [PubMed] [DOI]

23.Marcellin P, Forns X, Goeser T, Ferenci P, Nevens F, Carosi G, Drenth JP, Serfaty L, De Backer K, Van Heeswijk R. Telaprevir is effective given every 8 or 12 hours with ribavirin and peginterferon alfa-2a or -2b to patients with chronic hepatitis C. Gastroenterology. 2011;140:459-468.e1; quiz e14. [PubMed] [DOI]

24.Hézode C, Forestier N, Dusheiko G, Ferenci P, Pol S, Goeser T, Bronowicki JP, Bourlière M, Gharakhanian S, Bengtsson L. Telaprevir and peginterferon with or without ribavirin for chronic HCV infection. N Engl J Med. 2009;360:1839-1850. [PubMed] [DOI]

25.Kumada H, Toyota J, Okanoue T, Chayama K, Tsubouchi H, Hayashi N. Telaprevir with peginterferon and ribavirin for treatment-naive patients chronically infected with HCV of genotype 1 in Japan. J Hepatol. 2012;56:78-84. [PubMed] [DOI]

26.McHutchison JG, Everson GT, Gordon SC, Jacobson IM, Sulkowski M, Kauffman R, McNair L, Alam J, Muir AJ. Telaprevir with peginterferon and ribavirin for chronic HCV genotype 1 infection. N Engl J Med. 2009;360:1827-1838. [PubMed] [DOI]

27.Sherman KE, Flamm SL, Afdhal NH, Nelson DR, Sulkowski MS, Everson GT, Fried MW, Adler M, Reesink HW, Martin M. Response-guided telaprevir combination treatment for hepatitis C virus infection. N Engl J Med. 2011;365:1014-1024. [PubMed] [DOI]

28.Zeuzem S, Andreone P, Pol S, Lawitz E, Diago M, Roberts S, Focaccia R, Younossi Z, Foster GR, Horban A. Telaprevir for retreatment of HCV infection. N Engl J Med. 2011;364:2417-2428. [PubMed] [DOI]

29.Schiff E, Poordad E, Jacobson I, Flamm S, Bacon B, Lawitz E, Gordon S, McHutchison J, Ghalib R, Poynard T. Boceprevir (B) combination therapy in null responders (NR): Response dependent on interferon responsiveness. J Hepatol. 2008;48:S46. [DOI]

30.Kwo PY, Lawitz EJ, McCone J, Schiff ER, Vierling JM, Pound D, Davis MN, Galati JS, Gordon SC, Ravendhran N. Efficacy of boceprevir, an NS3 protease inhibitor, in combination with peginterferon alfa-2b and ribavirin in treatment-naive patients with genotype 1 hepatitis C infection (SPRINT-1): an open-label, randomised, multicentre phase 2 trial. Lancet. 2010;376:705-716. [PubMed] [DOI]

31.Poordad F, McCone J, Bacon BR, Bruno S, Manns MP, Sulkowski MS, Jacobson IM, Reddy KR, Goodman ZD, Boparai N. Boceprevir for untreated chronic HCV genotype 1 infection. N Engl J Med. 2011;364:1195-1206.[PubMed] [DOI]

32.Bacon BR, Gordon SC, Lawitz E, Marcellin P, Vierling JM, Zeuzem S, Poordad F, Goodman ZD, Sings HL, Boparai N. Boceprevir for previously treated chronic HCV genotype 1 infection. N Engl J Med. 2011;364:1207-1217. [PubMed] [DOI]

33.Cummings MD, Lindberg J, Lin TI, de Kock H, Lenz O, Lilja E, Felländer S, Baraznenok V, Nyström S, Nilsson M. Induced-fit binding of the macrocyclic noncovalent inhibitor TMC435 to its HCV NS3/NS4A protease target. Angew Chem Int Ed Engl. 2010;49:1652-1655. [PubMed] [DOI]

34.Fried MW, Buti M, Dore GJ, Flisiak R, Ferenci P, Jacobson I, Marcellin P, Manns M, Nikitin I, Poordad F. Once-daily simeprevir (TMC435) with pegylated interferon and ribavirin in treatment-naïve genotype 1 hepatitis C: The randomized PILLAR study. Hepatology. 2013;58:1918-1929. [PubMed] [DOI]

35.Sulkowski MS, Asselah T, Lalezari J, Ferenci P, Fainboim H, Leggett B, Bessone F, Mauss S, Heo J, Datsenko Y. Faldaprevir combined with pegylated interferon alfa-2a and ribavirin in treatment-naïve patients with chronic genotype 1 HCV: SILEN-C1 trial. Hepatology. 2013;57:2143-2154. [PubMed] [DOI]

36.Sulkowski MS, Bourlière M, Bronowicki JP, Asselah T, Pawlotsky JM, Shafran SD, Pol S, Mauss S, Larrey D, Datsenko Y. Faldaprevir combined with peginterferon alfa-2a and ribavirin in chronic hepatitis C virus genotype-1 patients with prior nonresponse: SILEN-C2 trial. Hepatology. 2013;57:2155-2163. [PubMed] [DOI]

37.Marcellin P, Cooper C, Balart L, Larrey D, Box T, Yoshida E, Lawitz E, Buggisch P, Ferenci P, Weltman M. Randomized controlled trial of danoprevir plus peginterferon alfa-2a and ribavirin in treatment-naïve patients with hepatitis C virus genotype 1 infection. Gastroenterology. 2013;145:790-800.e3. [PubMed] [DOI]

38.Gane EJ, Roberts SK, Stedman CA, Angus PW, Ritchie B, Elston R, Ipe D, Morcos PN, Baher L, Najera I. Oral combination therapy with a nucleoside polymerase inhibitor (RG7128) and danoprevir for chronic hepatitis C genotype 1 infection (INFORM-1): a randomised, double-blind, placebo-controlled, dose-escalation trial. Lancet. 2010;376:1467-1475. [PubMed] [DOI]

39.Gane EJ, Pockros P, Zeuzem S, Marcellin P, Shikhman A, Bernaards C, Yetzer ES, Shulman N, Tong X, Najera I. Interferon-Free Treatment with a Combination of Mericitabine and Danoprevir/R with or without Ribavirin in Treatment-Naive Hcv Genotype 1-Infected Patients. J Hepatol. 2012;56:S555-S556. [DOI]

40.Poordad F, Lawitz E, Kowdley KV, Cohen DE, Podsadecki T, Siggelkow S, Heckaman M, Larsen L, Menon R, Koev G. Exploratory study of oral combination antiviral therapy for hepatitis C. N Engl J Med. 2013;368:45-53.[PubMed] [DOI]

41.Hill A, van der Lugt J, Sawyer W, Boffito M. How much ritonavir is needed to boost protease inhibitors? Systematic review of 17 dose-ranging pharmacokinetic trials. AIDS. 2009;23:2237-2245. [PubMed] [DOI]

42.Lok AS, Gardiner DF, Lawitz E, Martorell C, Everson GT, Ghalib R, Reindollar R, Rustgi V, McPhee F, Wind-Rotolo M. Preliminary study of two antiviral agents for hepatitis C genotype 1. N Engl J Med. 2012;366:216-224.[PubMed] [DOI]

43.Sulkowski M, Gardiner D, Lawitz E, Hinestrosa F, Nelson D, Thuluvath P, Rodriguez-Torres M, Lok A, Schwartz H, Reddy KR. Potent Viral Suppression with All-Oral Combination of Daclatasvir (Ns5a Inhibitor) and Gs-7977 (Ns5b Inhibitor), /- Ribavirin, in Treatment-Naive Patients with Chronic Hcv Gt1, 2, or 3. J Hepatol. 2012;56:S560-S560. [DOI]

44.Lawitz E, Lalezari JP, Hassanein T, Kowdley KV, Poordad FF, Sheikh AM, Afdhal NH, Bernstein DE, Dejesus E, Freilich B. Sofosbuvir in combination with peginterferon alfa-2a and ribavirin for non-cirrhotic, treatment-naive patients with genotypes 1, 2, and 3 hepatitis C infection: a randomised, double-blind, phase 2 trial. Lancet Infect Dis. 2013;13:401-408. [PubMed] [DOI]

45.Kowdley KV, Lawitz E, Crespo I, Hassanein T, Davis MN, DeMicco M, Bernstein DE, Afdhal N, Vierling JM, Gordon SC. Sofosbuvir with pegylated interferon alfa-2a and ribavirin for treatment-naive patients with hepatitis C genotype-1 infection (ATOMIC): an open-label, randomised, multicentre phase 2 trial. Lancet. 2013;381:2100-2107. [PubMed] [DOI]

46.Pockros PJ, Jensen D, Tsai N, Taylor R, Ramji A, Cooper C, Dickson R, Tice A, Kulkarni R, Vierling JM. JUMP-C: a randomized trial of mericitabine plus pegylated interferon alpha-2a/ribavirin for 24 weeks in treatment-naïve HCV genotype 1/4 patients. Hepatology. 2013;58:514-523. [PubMed] [DOI]

47.Zeuzem S, Asselah T, Angus P, Zarski JP, Larrey D, Müllhaupt B, Gane E, Schuchmann M, Lohse AW, Pol S. Faldaprevir (BI 201335), BI 207127 and ribavirin oral therapy for treatment-naive HCV genotype 1: SOUND-C1 final results. Antivir Ther. 2013;:Epub ahead of print. [PubMed] [DOI]

48.Larrey D, Lohse AW, de Ledinghen V, Trepo C, Gerlach T, Zarski JP, Tran A, Mathurin P, Thimme R, Arastéh K. Rapid and strong antiviral activity of the non-nucleosidic NS5B polymerase inhibitor BI 207127 in combination with peginterferon alfa 2a and ribavirin. J Hepatol. 2012;57:39-46. [PubMed] [DOI]

49.Jacobson IM, Sulkowski MS, Gane EJ, Koziel MJ, De Souza C, Kieffer TL, Penney MS, Zhang EZ, George S, Kauffman RS. VX-222, Telaprevir and Ribavirin in Treatment-Naive Patients with Genotype 1 Chronic Hepatitis C: Results of the ZENITH Study Interferon-Free Regimen. Hepatology. 2012;56:308a.

50.Hopkins S, Gallay P. Cyclophilin inhibitors: an emerging class of therapeutics for the treatment of chronic hepatitis C infection. Viruses. 2012;4:2558-2577. [PubMed] [DOI]

51.Hopkins S, Bobardt M, Chatterji U, Garcia-Rivera JA, Lim P, Gallay PA. The cyclophilin inhibitor SCY-635 disrupts hepatitis C virus NS5A-cyclophilin A complexes. Antimicrob Agents Chemother. 2012;56:3888-3897.[PubMed] [DOI]

52.Rocco A, Compare D, Coccoli P, Esposito C, Di Spirito A, Barbato A, Strazzullo P, Nardone G. Vitamin B12 supplementation improves rates of sustained viral response in patients chronically infected with hepatitis C virus. Gut. 2013;62:766-773. [PubMed] [DOI]

53.Gal-Tanamy M, Bachmetov L, Ravid A, Koren R, Erman A, Tur-Kaspa R, Zemel R. Vitamin D: an innate antiviral agent suppressing hepatitis C virus in human hepatocytes. Hepatology. 2011;54:1570-1579. [PubMed] [DOI]

54.Abu-Mouch S, Fireman Z, Jarchovsky J, Zeina AR, Assy N. Vitamin D supplementation improves sustained virologic response in chronic hepatitis C (genotype 1)-naïve patients. World J Gastroenterol. 2011;17:5184-5190.[PubMed] [DOI]

55.Nimer A, Mouch A. Vitamin D improves viral response in hepatitis C genotype 2-3 naïve patients. World J Gastroenterol. 2012;18:800-805. [PubMed] [DOI]

56.Malaguarnera M, Vacante M, Giordano M, Motta M, Bertino G, Pennisi M, Neri S, Malaguarnera M, Li Volti G, Galvano F. L-carnitine supplementation improves hematological pattern in patients affected by HCV treated with Peg interferon-α 2b plus ribavirin. World J Gastroenterol. 2011;17:4414-4420. [PubMed] [DOI]

57.Gane EJ, Stedman CA, Hyland RH, Ding X, Svarovskaia E, Symonds WT, Hindes RG, Berrey MM. Nucleotide polymerase inhibitor sofosbuvir plus ribavirin for hepatitis C. N Engl J Med. 2013;368:34-44. [PubMed] [DOI]

58.Zeuzem S, Buti M, Ferenci P, Sperl J, Horsmans Y, Cianciara J, Ibranyi E, Weiland O, Noviello S, Brass C. Efficacy of 24 weeks treatment with peginterferon alfa-2b plus ribavirin in patients with chronic hepatitis C infected with genotype 1 and low pretreatment viremia. J Hepatol. 2006;44:97-103. [PubMed] [DOI]

59.Shiffman ML, Suter F, Bacon BR, Nelson D, Harley H, Solá R, Shafran SD, Barange K, Lin A, Soman A. Peginterferon alfa-2a and ribavirin for 16 or 24 weeks in HCV genotype 2 or 3. N Engl J Med. 2007;357:124-134.[PubMed] [DOI]

60.Zeuzem S, Fried MW, Reddy KR, Marcellin P, Diago M, Craxi A, Pockros P, Rizzetto M, Berstein D, Shiffman ML. Improving the clinical relevance of pretreatment viral load as a predictor of sustained virological response (SVR) in patients infected with hepatitis C genotype 1 treated with peginterferon alfa-2a (40KD) (PEGASYS (R)) plus ribavirin (COPEGUS (R)). Hepatology. 2006;44:267a-268a.

61.EASL Clinical Practice Guidelines: management of hepatitis C virus infection.J Hepatol. 2011;55:245-264.[PubMed] [DOI]

62.Ge D, Fellay J, Thompson AJ, Simon JS, Shianna KV, Urban TJ, Heinzen EL, Qiu P, Bertelsen AH, Muir AJ. Genetic variation in IL28B predicts hepatitis C treatment-induced viral clearance. Nature. 2009;461:399-401.[PubMed] [DOI]

63.Thomas DL, Thio CL, Martin MP, Qi Y, Ge D, O’Huigin C, Kidd J, Kidd K, Khakoo SI, Alexander G. Genetic variation in IL28B and spontaneous clearance of hepatitis C virus. Nature. 2009;461:798-801. [PubMed] [DOI]

64.Suppiah V, Moldovan M, Ahlenstiel G, Berg T, Weltman M, Abate ML, Bassendine M, Spengler U, Dore GJ, Powell E. IL28B is associated with response to chronic hepatitis C interferon-alpha and ribavirin therapy. Nat Genet. 2009;41:1100-1104. [PubMed] [DOI]

65.Tanaka Y, Nishida N, Sugiyama M, Kurosaki M, Matsuura K, Sakamoto N, Nakagawa M, Korenaga M, Hino K, Hige S. Genome-wide association of IL28B with response to pegylated interferon-alpha and ribavirin therapy for chronic hepatitis C. Nat Genet. 2009;41:1105-1109. [PubMed] [DOI]

66.Thompson AJ, Muir AJ, Sulkowski MS, Ge D, Fellay J, Shianna KV, Urban T, Afdhal NH, Jacobson IM, Esteban R. Interleukin-28B polymorphism improves viral kinetics and is the strongest pretreatment predictor of sustained virologic response in genotype 1 hepatitis C virus. Gastroenterology. 2010;139:120-129.e18. [PubMed] [DOI]

67.Halfon P, Bourliere M, Ouzan D, Maor Y, Renou C, Wartelle C, Pénaranda G, Tran A, Botta D, Oules V. A single IL28B genotype SNP rs12979860 determination predicts treatment response in patients with chronic hepatitis C Genotype 1 virus. Eur J Gastroenterol Hepatol. 2011;23:931-935. [PubMed] [DOI]

68.Ghany MG, Nelson DR, Strader DB, Thomas DL, Seeff LB. An update on treatment of genotype 1 chronic hepatitis C virus infection: 2011 practice guideline by the American Association for the Study of Liver Diseases. Hepatology. 2011;54:1433-1444. [PubMed] [DOI]

69.Akuta N, Suzuki F, Hirakawa M, Kawamura Y, Yatsuji H, Sezaki H, Suzuki Y, Hosaka T, Kobayashi M, Kobayashi M. Amino acid substitution in hepatitis C virus core region and genetic variation near the interleukin 28B gene predict viral response to telaprevir with peginterferon and ribavirin. Hepatology. 2010;52:421-429.[PubMed] [DOI]

70.Poordad F, Bronowicki JP, Gordon SC, Zeuzem S, Jacobson IM, Sulkowski MS, Poynard T, Morgan TR, Burroughs M, Sniukiene V. Il28b Polymorphism Predicts Virologic Response in Patients with Hepatitis C Genotype 1 Treated with Boceprevir (Boc) Combination Therapy. J Hepatol. 2011;54:S6.

71.Bronowicki JP, Hezode C, Bengtsson L, Pol S, Bourliere M, Serfaty L, de Ledinghen V, Tran A, Benhamou Y, Grange JD. 100% Svr in Il28b Cc Patients Treated with 12 Weeks of Telaprevir, Peginterferon and Ribavirin in the Prove2 Trial. J Hepatol. 2012;56:S430-S431.

72.Sulkowski MS, Ceasu E, Asselah T, Caruntu FA, Lalezari J, Ferenci P, Streinu-Cercel A, Fainboim H, Tanno H, Preotescu L. Silen-C1: Sustained Virologic Response (Svr) and Safety of Bi201335 Combined with Peginterferon Alfa-2a and Ribavirin (P/R) in Treatment-Naive Patients with Chronic Genotype 1 Hcv Infection. J Hepatol. 2011;54:S27.

73.Penney MS, De Souza C, Seepersaud S, Alves K, Koziel MJ, Kauffman RS, Di Bisceglie AM, Botfield MC, Grp ZS. All IL28b Genotypes Have High Svr Rates in Patients Treated with Vx-222 in Combination with Telaprevir/Peginterferon/Ribavirin in the Zenith Study. J Hepatol. 2012;56:S476-S477.

74.Chu TW, Kulkarni R, Gane EJ, Roberts SK, Stedman C, Angus PW, Ritchie B, Lu XY, Ipe D, Lopatin U. Effect of IL28B genotype on early viral kinetics during interferon-free treatment of patients with chronic hepatitis C. Gastroenterology. 2012;142:790-795. [PubMed] [DOI]

75.Patton HM, Patel K, Behling C, Bylund D, Blatt LM, Vallée M, Heaton S, Conrad A, Pockros PJ, McHutchison JG. The impact of steatosis on disease progression and early and sustained treatment response in chronic hepatitis C patients. J Hepatol. 2004;40:484-490. [PubMed] [DOI]

76.Westin J, Lagging M, Dhillon AP, Norkrans G, Romero AI, Pawlotsky JM, Zeuzem S, Schalm SW, Verheij-Hart E, Negro F. Impact of hepatic steatosis on viral kinetics and treatment outcome during antiviral treatment of chronic HCV infection. J Viral Hepat. 2007;14:29-35. [PubMed] [DOI]

77.Shah SR, Patel K, Marcellin P, Foster GR, Manns M, Kottilil S, Healey L, Pulkstenis E, Subramanian GM, McHutchison JG. Steatosis is an independent predictor of relapse following rapid virologic response in patients with HCV genotype 3. Clin Gastroenterol Hepatol. 2011;9:688-693. [PubMed] [DOI]

78.Restivo L, Zampino R, Guerrera B, Ruggiero L, Adinolfi LE. Steatosis is the predictor of relapse in HCV genotype 3- but not 2-infected patients treated with 12 weeks of pegylated interferon-α-2a plus ribavirin and RVR. J Viral Hepat. 2012;19:346-352. [PubMed] [DOI]

79.Zeuzem S. Heterogeneous virologic response rates to interferon-based therapy in patients with chronic hepatitis C: who responds less well?. Ann Intern Med. 2004;140:370-381. [PubMed]

80.Mauss S, Hueppe D, John C, Goelz J, Heyne R, Moeller B, Link R, Teuber G, Herrmann A, Spelter M. Estimating the likelihood of sustained virological response in chronic hepatitis C therapy. J Viral Hepat. 2011;18:e81-e90.[PubMed] [DOI]

81.Conjeevaram HS, Kleiner DE, Everhart JE, Hoofnagle JH, Zacks S, Afdhal NH, Wahed AS; Virahep-C Study Group.Race, insulin resistance and hepatic steatosis in chronic hepatitis C. Hepatology. 2007;45:80-87.[PubMed] [DOI]

82.Tarantino G, Conca P, Sorrentino P, Ariello M. Metabolic factors involved in the therapeutic response of patients with hepatitis C virus-related chronic hepatitis. J Gastroenterol Hepatol. 2006;21:1266-1268.[PubMed] [DOI]

83.Shirakawa H, Matsumoto A, Joshita S, Komatsu M, Tanaka N, Umemura T, Ichijo T, Yoshizawa K, Kiyosawa K, Tanaka E; Nagano Interferon Treatment Research Group.Pretreatment prediction of virological response to peginterferon plus ribavirin therapy in chronic hepatitis C patients using viral and host factors. Hepatology. 2008;48:1753-1760. [PubMed] [DOI]

84.Hanouneh IA, Feldstein AE, Lopez R, Yerian L, Pillai A, Zein CO, Zein NN. Clinical significance of metabolic syndrome in the setting of chronic hepatitis C virus infection. Clin Gastroenterol Hepatol. 2008;6:584-589.[PubMed] [DOI]

Source

November 25, 2013

HCV Viral Load at Baseline Sets Need for Protease Inhibitors

Published: Nov 25, 2013

By Cole Petrochko, Staff Writer, MedPage Today

Reviewed by F. Perry Wilson, MD, MSCE; Instructor of Medicine, Perelman School of Medicine at the University of Pennsylvania

Action Points

  • Note that this randomized trial suggests that, among a carefully selected group of patients with mild hepatitis C who respond well to interferon and ribavirin, the addition of a protease inhibitor may be unnecessary.
  • Be aware that, while this regimen may be cost-saving, it is not necessarily symptom-sparing, as interferon is the major cause of adverse symptomatology during treatment.

Hepatitis C genotype I patients with low viral load and sustained virologic response may be able to cut protease inhibitors from therapy, researchers found.

Among a cohort of treatment-naive, noncirrhosis hepatitis C patients with low viral load at baseline, those who achieved an undetectable viral load after 4 weeks of peginterferon alfa-2b and ribavirin had no significant differences in sustained viral load when continued on double-drug therapy versus triple-drug therapy that included a protease inhibitor, according to Brian Pearlman, MD, of the Center for Hepatitis C at the Atlanta Medical Center in Georgia, and Carole Ehleben, EdD, also of Atlanta Medical Center.

These similarities remained regardless of viral subtype -- genotypes 1a or 1b -- or interleukin 28b genotypes, as well as ethnicity (black versus white), they wrote online in the journal Hepatology.

Recent clinical trial data demonstrated the "near perfect cure rates" of a four-drug hepatitis C virus (HCV) treatment as part of the SAPPHIRE-1 study. Other all-oral treatments containing two- and three-drug combinations have also shown to be well tolerated and safe, with cure rates of 89% or greater.

The authors noted that the current standard of therapy for treatment-naive HCV genotype I patients is a triple therapy of peginterferon, ribavirin, and a protease inhibitor. They studied whether the inclusion of a protease inhibitor in such patients who achieve rapid virologic response after 4 weeks of peginterferon and ribavirin therapy was necessary. The study population included 233 patients with low HCV viral load at baseline who did not have cirrhosis.

Baseline characteristics the researchers recorded included age, sex, body mass index, fasting glucose, 25-hydroxyvitamin D levels, ethnicity, histological results of pretreatment liver biopsy, and quantitative HCV viral load. Patients were stratified by HCV genotype and interleukin-28b genotype.

Roughly half of the sample (48%) achieved rapid virologic response to the 4-week regimen, and these participants were randomized to either two- or three-drug therapy, with the three-drug group receiving 24 weeks of treatment and the two-drug group receiving 20 weeks of treatment.

At baseline and at monthly follow-up, researchers recorded participant's physical characteristics, weight, Beck's Depression Inventory, blood count and differential, hepatic profile, thyroid stimulating hormone, electrolytes, serum creatinine, serum uric acid, and serum beta-human chorionic gonadotropin testing.

In addition to virologic response, adverse event profiles were not significantly different between two- and three-drug groups, nor were dose reductions and discontinuation.

"Baseline patient ethnicity, viral subtype, and interleukin-28b genotype did not seem to impact sustained virologic response rates ultimately, regardless of therapy used," they concluded, adding that these findings amplify "the point that on-treatment predictors of therapy success trump pretreatment expectations."

They also noted that protease inhibitors "are costly, and are not yet available in many countries that lack the monetary resources to cover them," and that these findings may present a significant cost savings in at least those HCV patients with a low viral load.

They cautioned that their research was limited to patients who had a low viral load at baseline, and these results may not generalize to patients with a high viral load at baseline. In addition, the study was performed in a single center and had no formal statistical hypothesis testing.

Pearlman declared support from Merck.

Primary source: Hepatology
Source reference: Pearlman BI, Ehleben C "Hepatitis C genotype 1 virus with low viral load and rapid virologic response to peginterferon/ribavirin obviates a protease inhibitor"Hepatology 2013; DOI: 10.1002/hep.26777.

Source

September 6, 2013

RVR, baseline characteristics identify patients who will benefit from dual HCV therapy

Provided by Healio

Andriulli A. J Hepatol. 2013;doi:10.1016/j.jhep.2013.07.040.

September 3, 2013

A model incorporating IL28B genotype, fibrosis stage, viral load and rapid virologic response was predictive of benefit from dual therapy among patients with chronic hepatitis C in a recent study.

In a retrospective analysis, researchers evaluated 1,045 treatment-naïve Caucasian patients with chronic HCV genotype 1 treated with pegylated interferon and ribavirin according to two models: The first incorporated only baseline variables associated with sustained virologic response at 24 weeks post-treatment (SVR), with the second model also included rapid virologic response at 4 weeks of therapy (RVR).

SVR occurred in 39.6% of participants, while RVR occurred in 24.4% of cases. Patients who achieved RVR also achieved SVR in 80% of cases, while SVR without RVR occurred in 26.6% of participants.

During analysis using the baseline predictor-only model, factors associated with SVR via multivariate analysis included IL28B CC genotype (OR=5.082, 3.637-7.101), viral load below 400,000 IU/mL (OR=2.907, 2.111-4.004), fibrosis of stage 2 or lower (OR=1.631, 1.122-2.372) and diabetes (OR=0.528, 0.286-0.972). Analysis according to the second strategy also indicated that RVR was significantly associated with SVR (OR=6.273, 4.274-9.208), along with CC genotype (OR=3.306, 2.301-4.751), low viral load (OR=2.175, 1.542-3.07) and fibrosis stage 0-2 (OR=1.506, 1.012-2.242), along with RVR (OR=6.273, 4.274-9.208) (95% CI for all).

According to the first model, SVR probability ranged from 42.4% to 83.3% based on which predictors are present in the patient, with 83.3% probability observed among participants with CC genotype, early-stage fibrosis and low viral loads. According to the second model, patients who achieved RVR had a 100% chance of also achieving SVR if both CC genotype and low viral load were present, regardless of fibrosis stage, and approximately 80% probability with one predictor. Using this model, 19.1% of patients at week 4 had an 80% chance of achieving SVR.

“Until peginterferon and ribavirin constitute the backbone [of] new, triple therapies, we have to consider that conventional dual therapies are still effective and less expensive than triple therapies,” researcher Angelo Andriulli, MD, chief of the gastroenterology division at Csa Sollievo Sofferenza Hospital in San Giovanni Rotondo, Italy, told Healio.com. “The crucial point is to select patients most suitable to benefit from conventional dual therapies. … While the evaluation of baseline features may help to select the subset of patients with a high likelihood of viral clearance after therapy, attainment of viral clearance by the initial month of therapy is the strongest predictor of response.”

Disclosure: The researchers report no relevant financial disclosures.

Source

April 13, 2013

Hepatitis C Viral Load Fluctuates Without Treatment

Megan Brooks

Apr 04, 2013

Fluctuations in circulating hepatitis C virus RNA could be "clinically meaningful" in a substantial number of patients with chronic infection, and could influence the best time to prescribe antiviral therapy.

"Decisions based on early viral kinetics, such as early stopping rules, may require the testing of baseline specimens collected closest to treatment initiation," said researcher Vincent Soriano, MD, from Hospital Carlos III in Madrid, Spain.

He presented study results at the International Conference on Viral Hepatitis 2013 in New York City, which was sponsored by the International Association of Providers of AIDS Care and the Icahn School of Medicine at Mount Sinai.

Dr. Soriano and his team conducted a retrospective review of longitudinal plasma hepatitis C RNA determinations in 818 consecutive untreated patients with chronic virus seen at a clinic in Madrid. For comparison, the researchers used longitudinal plasma human immunodeficiency virus (HIV) RNA measurements from 333 untreated HIV patients followed at the same clinic.

They analyzed 3169 hepatitis C RNA values obtained over 66.2 months and 1998 HIV RNA values obtained over 27.3 months.

Overall, a variation in viral RNA greater than 0.5-log IU/mL occurred more often in hepatitis C specimens than in HIV specimens (44% vs 23%; P < .001). The same was true for variations greater than 1.0-log IU/mL (15% vs 4%; P < .001).

On multivariate analysis, predictors of viral variations greater than 0.5-log IU/mL were lower hepatitis C RNA levels (odds ratio [OR], 0.35; 95% confidence interval [CI], 0.26 - 0.47; P = .001), HIV coinfection (OR, 2.57; 95% CI, 1.56 - 2.68; P < .001), and IL28B-CC alleles (OR, 1.87; 95% CI, 1.28 - 2.74; P = .001).

This study "confirms something that many people knew, that fluctuations in hepatitis C RNA levels are greater and more variable than those of HIV," conference cochair Douglas Dieterich, MD, from the Icahn School of Medicine at Mount Sinai, told Medscape Medical News.

"Using response-guided therapy [RGT] with the new direct-acting antivirals has become the standard of care, and the baseline level of hepatitis C RNA is a very important component of RGT," Dr. Dieterich added. "The timing of treatment to maximize hepatitis C RNA may be a new way to increase treatment success."

Dr. Soriano reports relationships with Boehringer Ingelheim Pharmaceuticals, Gilead Sciences, Janssen Pharmaceuticals, Merck & Co, and AbbVie. Dr. Dieterich reports relationships with Boehringer Ingelheim, Bristol-Myers Squibb, Gilead Sciences, Genentech, and Novartis Pharmaceuticals.

International Conference on Viral Hepatitis (ICVH) 2013: Oral Abstract 10. Presented March 25, 2013.

Source

September 10, 2012

Hepatitis C High Viral Load Patients May Benefit From Telaprevir

Telaprevir

Posted in: Medical News by Elvis Augustin on September 8th, 2012

Researchers found that telaprevir in combination with peginterferon and ribavirin help patients with hepatitis C. Telaprevir is a virostatic drug that inhibits viral replication.

Hepatitis C can lead to liver failure and even hepatocellular cancer. C virus infection can be transmitted through blood transfusions, sexual intercourse, needle pricks, organ transplants, body piercing, etc.. In the first phase C virus infection is asymptomatic, but gradually nonspecific symptoms such as fatigue occur. There are cases in which C virus infection is manifested by acute symptoms such as nausea, joint pain, muscle pain, etc.. Sometimes jaundice occurs. Some of those infected with the virus C eliminate the infection, some are healthy carriers and some become chronic carriers. Of the latter, about 30% develop cirrhosis and hepatocellular cancer. Cirrhosis brings some complications such as portal hypertension and esophageal varices. The main risk is rupture of esophageal varices with the appearance of upper gastrointestinal bleeding . In addition to this complication, which can be fatal sometimes, there are also other consequences such as bruising, bleeding, endocrine disorders, portal encephalopathy etc. The only way to prevent virus C infection is to increase hygiene measures and halt the transmission because there is no vaccine against C available yet.

Studies by researchers at the Institute for Quality and Efficiency in Health Care (IQWiG) wanted to show what is the effectiveness of telaprevir when treatming viral hepatitis C. They compared the effects of several groups of patients treated with standard therapy (peginterferon and ribavirin) or with triple therapy, ie peginterferon, ribavirin and telaprevir. The results were different depending on the group of patients and depending on outcome (mortality, morbidity, etc.). Telaprevir efficacy studies were performed on several groups of patients. The studies were conducted in patients with high viral load, patients who already had cirrhosis or not. The findings were different for different groups of patients. For example, it was found that telaprevir has an added benefit to the patients with high viral load, but without cirrhosis. Also, the researchers also found that telaprevir bring added benefice in patients without cirrhosis and in non-responders cirrhosis patients.

However, in patients without cirrhosis it was found that telaprevir has no benefit and can even cause some side effects, such as rash and anemia. It should be noted however that these adverse effects were considered as not serious and were not a restriction for patients with high viral load. In addition, for patients without cirrhosis and low viral load, triple therapy had no benefit compared with standard therapy (peginterferon and ribavirin).

Source

March 17, 2012

Prediction of response to pegylated interferon plus ribavirin in HIV/hepatitis C virus (HCV)-coinfected patients using HCV genotype, IL28B variations, and HCV-RNA load

Journal of Hepatology
Volume 56, Issue 4 , Pages 788-794, April 2012

Karin Neukam, Angela Camacho, Antonio Caruz, Norma Rallón, Almudena Torres-Cornejo,Jürgen K. Rockstroh, Juan Macías, Antonio Rivero, José M. Benito, Luis F. López-Cortés,Jacob Nattermann Jesús, Gómez-Mateos Vicente Soriano, Juan A. Pineda

Received 8 August 2011; received in revised form 2 November 2011; accepted 17 November 2011. published online 14 December 2011.

Abstract

Background & Aims

This study aimed at developing a predictive algorithm based on interleukin 28B (IL28B) genotype, hepatitis C virus (HCV) genotype, and plasma HCV-RNA load, which could accurately allow us to define the probability of response to pegylated interferon (Peg-IFN) plus ribavirin (RBV) therapy in HIV/HCV-coinfected patients.

Methods

Five hundred and twenty-one treatment-naive HIV-infected patients, who initiated HCV therapy with Peg-IFN/RBV, were analysed in an on-treatment basis. Patients were categorized as unlikely responders, uncertain responders, and anticipated responders (<20%, 20–60%, and >60% probability to achieve SVR, respectively).

Results

HCV genotype, baseline HCV-RNA load, and IL28B genotype were confirmed as independent predictors of SVR in a logistic regression analysis. A stepwise algorithm based on these three variables was created based on 321 patients and evaluated in the remaining 200 patients. Unlikely responders included patients with genotype 1 or 4, HCV-RNA load greater than or equal to 600,000 IU/ml, and rs12979860 non-CC (rate of SVR: 17.3%). Anticipated responders were those with HCV genotype 2–3, patients harboring HCV genotype 4 and IL28B CC, as well as those who simultaneously bore HCV genotype 1, HCV-RNA load <600,000 IU/ml, and IL28B CC (rate of SVR 74.1%, 77.8%, and 64.4%, respectively). The area under the receiver operating characteristic curve of the model was 0.77 (0.733–0.814).

Conclusions

The combined use of IL28B genotype, HCV genotype, and HCV-RNA load enables to easily identify patients with a high and very low likelihood of SVR. HCV therapy could be deferred in the latter patients, until more effective options are available, at least if they do not show advanced liver fibrosis.

Source

June 29, 2011

Viral Load Tied to Vertical Transmission of Hepatitis C

Download the PDF here

Genetic variation in IL28B with respect to vertical transmission of hepatitis C virus and spontaneous clearance in HCV infected children

"In view of the data presented, we believe it is necessary to make a clear distinction between the risk factors of HCV-VT and of chronic infection. We confirm that viral load and HIV co-infection are the only risk factors involved in HCV-VT. On the other hand, the viral genotype non-1 and the infant's IL28B CC Rs12979860 polymorphism are associated with HCV spontaneous clearance. Our data are the first to account for HCV virus clearance and may provide important information about protective immunity to HCV."

Last Updated: May 23, 2011.

Hepatology

Accepted Article (Accepted, unedited articles published online for future issues)

High maternal viral load is associated with vertical transmission of hepatitis C virus, but polymorphisms in interleukin 28B are not, according to a study published online March 16 in Hepatology.

MONDAY, May 23 (HealthDay News) -- High maternal viral load is associated with vertical transmission of hepatitis C virus (HCV-VT), but polymorphisms in interleukin 28B (IL28B) are not, according to a study published online March 16 in Hepatology.

Angeles Ruiz-Extremera, M.D., from San Cecilio University Hospital in Granada, Spain, and colleagues assessed the role of a single nucleotide polymorphism on IL28B in HCV-VT and the spontaneous clearance of HCV among infected infants. Mothers recruited for the study included 112 who were HCV-RNA positive/HIV negative and 33 HCV-RNA negative/HCV-antibody positive with 142 and 43 children, respectively. Children underwent testing for HCV-RNA at birth and regularly until the age of 6 years. Single nucleotide polymorphism at IL28B was determined in mothers and children. The occurrence of HCV-VT was assumed when children presented HCV-RNA positive in two subsequent blood samples.

The investigators found that 61 percent of the 31 mothers with the CC polymorphism and 82 percent of the 68 mothers with non-CC polymorphism were HCV-RNA positive. Among infants born to HCV-RNA positive mothers, 20 percent acquired HCV infection, but only 9 percent were chronically infected. No HCV-VT was seen in HCV-RNA negative women, and the rate was increased in mothers with higher HCV viremia. Neither maternal nor child IL28B status was correlated with increased risk of HCV-VT. Genotype non-1 and genotype CC of the IL28B were the factors influencing viral clearance among the infected children. Child CC polymorphism was the sole predictor of HCV clearance in HCV genotype-1.

"High maternal viral load is the only predictive factor of HCV-VT. IL28B plays no role in HCV-VT," the authors write.

Abstract

The vertical transmission of Hepatitis C Virus (HCV-VT) is a major route of HCV infection in children, but the risk factors remain incompletely understood. This study analyses the role of IL28B in HCV-VT and in the spontaneous clearance of HCV among infected infants. Between 1991 and 2009, 145 mothers were recruited to this study: 100 were HCV-RNA+ve/HIV-ve, with 128 children, and 33 were HCV-RNA-ve/HCV antibody+ve, with 43 children. The infants were tested for HCV-RNA at birth and at regular intervals until the age of 6 years. IL28B (single nucleotide polymorphism rs12979860) was determined in the mothers and children. HCV-VT was assumed when children presented HCV-RNA+ve in two subsequent blood samples. HCV-VT infected infants were categorized as: (A) transient viremia with posterior HCV-RNA-ve and without serum-conversion; (B) persistent infection with serum-conversion. Of the 31 mothers with CC polymorphism, 19(61%) were HCV-RNA+ve whereas among the 68 mothers with non-CC polymorphism, 56(82%) were HCV-RNA+ve. 26 of 128(20%) infants born to the HCV-RNA+ve mothers acquired HCV infection, but only 9(7%) were chronically infected. The rate of HCV-VT was higher among the mothers with higher HCV viremia. No HCV-VT was detected in the HCV-RNA-ve women. Neither the mothers' nor the children's IL-28 status was associated with an increased risk of HCV-VT. The factors influencing viral clearance among the infected children were genotype non-1 and genotype CC of the IL28B. In logistic regression, child CC polymorphism was the only predictor of HCV-clearance in HCV genotype-1.

CONCLUSIONS:

High maternal viral load is the only predictive factor of HCV-VT. IL28B plays no role in HCV-VT, but IL28B CC child polymorphism is associated independently with the spontaneous clearance of HCV genotype-1 among infected children. (HEPATOLOGY 2011.)

Discussion

Vertical transmission of Hepatitis C Virus represents the mayor cause of paediatric HCV infection today, and in industrialized countries it is the most common cause of chronic liver disease in children. About 10-15% of those who are chronically infected might develop cirrhosis and eventually hepatocellular carcinoma (16, 17). HCV prevalence in pregnant women is similar to that of the general population and in general, most HCV-infected pregnant women do not have obstetric complications. At present, there are no antiviral treatment recommendations for HCV-infected women during pregnancy, or guidelines for the prevention of vertical transmission (18). Although persistent transmission of HCV from infected mothers to their infants is reported in 4-8% of cases (chronic HCV children), transient HCV perinatal infection also occurs, with a prevalence of about 14-17% (19, 20). Moreover, the maternal-infant transmission of HCV is more frequent than is generally reported, taking into account that spontaneous HCV-RNA clearance among children is more common than among adults and that in many studies the follow up of infants is incomplete; moreover, in many cases only limited data, corresponding to the first years of life, are presented (21). IFNα is currently the approved drug for hepatitis C treatment for the paediatric population. Combination therapy with IFNα or pegylated IFNα plus ribavirin has recently been approved by the US FDA-EMEA for children older than 3 years with chronic HCV infection, and clinical trials are in progress (3, 22). Although most children are asymptomatic and the associated liver damage appears to be less severe in children than in adults, they have a significantly poorer health status than community controls (23), which suggests there is a need for the services currently available for adult HCV patients to be extended to support the families of children with HCV.

Conflicting data have been reported regarding the possible role of the level of maternal HCV viremia. Some studies have shown that a high concentration of serum HCV-RNA is associated with a higher risk of transmission, although no specific cut-off value predicting or excluding transmission has been defined (11). However, other studies have found no such association, with a considerable overlap in concentrations of HCV-RNA between transmitting and non-transmitting mothers (1, 24). Moreover, maternal co-infection with HCV and human immunodeficiency virus (HIV) is associated with high maternal HCV-RNA and with a higher risk of transmission (18, 25). In the present study, we found that both the HCV-RNA concentration (over 600,000 UI/mL) and maternal co-infection with HIV were associated with a higher risk of HCV-VT. The infected infants were not HCV-RNA positive at birth but all became so within 2-4 months. These data indicate that HCV maternal-foetal transmission did not occur during gestation and, therefore, that the infants were infected during the birth. Most of the infected children were asymptomatic despite high levels of alanine transaminase, compatible with acute hepatitis. The infants that cleared the HCV virus recovered normal alanine aminotransferase levels. With respect to the type of birth, there was no significant decrease in HCV-VT among the mothers who gave birth by caesarean section versus those who did not. The data on the effect of caesarean section on the risk of HCV perinatal transmission are heterogeneous and high-quality studies of this question have not been reported. A recent meta-analysis including 8 studies and 641 mother-infant pairs suggests that caesarean section does not decrease perinatal HCV transmission from HCV-RNA+ve/HIV-ve mothers to infants (8). No relationship between HCV-VT and the maternal HCV genotype has been found. On the other hand, when we studied spontaneous clearance (children with transient viremia) vs chronic infection in infected infants, the HCV viral genotype was associated with a higher risk of chronic infection. Thus, the rate of HCV chronicity was higher for infants with viral genotype 1 than for those with genotype non-1, a finding that is in accordance with the results of Bortolotti et al. (6). The role of viral genotype and its association with HCV spontaneous clearance and chronic infection should be explored further.

The HCV-VT risk factors that have been most intensively studied, to date, are viral factors, maternal characteristics and birth mode. However, immunogenetic influence has been poorly investigated and mainly confined to HLA-class II serological polymorphisms, because of their central role in the adaptive response. Nevertheless, it has been suggested that the role of the immune defence system, as well as the relevance of the genetic background, could better explain the pathogenesis of HCV infection, and these factors have been examined (10, 11). In adult patients, genetic variations in the interleukin 28B (IL28B) gene, an innate cytokine, have been associated with the response to interferon-alpha/ribavirin therapy and spontaneous clearance in HCV genotype 1 (26-28). For this reason, we evaluated the role of IL28B polymorphism in HCV genotype 1 vertical transmission, transient viremia and chronic infection in infants. This is the first study that attempts to describe both HCV-VT and the spontaneous clearance of HCV, taking into account the influence of IL28B polymorphism in mothers and children. The data obtained indicate that the IL28B genotype of mothers and children does not influence HCV-VT. Nevertheless, in the chronic infection study, 83% of the infants with the CC genotype exhibited spontaneous clearance (transient viremia) versus only 22% of the children with a non- CC genotype. On the other hand, the maternal IL28B genotype did not influence HCV chronic infection. Multivariate analysis identified the infant's Rs12979860 CC IL28B genotype as the only factor independently associated with the spontaneous clearance of HCV. To the best of our knowledge, the present study is the first one to identify IL28B Rs12979860 polymorphism as a predictor of HCV spontaneous clearance in infants infected with HCV genotype 1 by vertical transmission. More information is now needed to understand the mechanisms that underlie this association, as well as the clinical impact of IL28B polymorphisms on HCV infection.

The multivariate analysis performed clearly shows the distinction between the risk factors in HCV-VT and in chronic infection. In HCV-VT, a high HCV viral load was independently associated with HCV-VT, thus confirming the bivariate analysis and the data previously published, by ourselves and by others. These data suggest that the maternal characteristics are more important in HCV-VT than are those of the infants. However, in the chronic HCV infection study, the multivariate analysis showed that the only factor independently associated with HCV clearance was the infants' IL28B genotype, which confirmed our hypothesis that in infected infants, the host's immunogenic influence is crucial to the HCV viral response.

Finally, all retrospective analyses have inherent limitations, but we have tried to minimize their effects. The standard method of HCV determination changed during the patient inclusion period but this factor was controlled by using the same PCR technique on all the patients studied, using a stored blood sample. Furthermore, the standard care of HIV and HCV patients also changed during the patient inclusion period; however, in this study the risk factors among the HIV negative mothers (Study Cohort) were identified. According to standard protocols for VHC pregnant women, no VHC treatment should be applied during the pregnancy, and thus the changes in standard care for HCV patients do not affect our study. In view of the data presented, we believe it is necessary to make a clear distinction between the risk factors of HCV-VT and of chronic infection. We confirm that viral load and HIV co-infection are the only risk factors involved in HCV-VT. On the other hand, the viral genotype non-1 and the infant's IL28B CC Rs12979860 polymorphism are associated with HCV spontaneous clearance. Our data are the first to account for HCV virus clearance and may provide important information about protective immunity to HCV.

Source