Showing posts with label Acute HCV. Show all posts
Showing posts with label Acute HCV. Show all posts

January 6, 2014

Telaprevir in the Treatment of Acute Hepatitis C Virus Infection in HIV-Infected Men

Clin Infect Dis. 2014 Jan 2. [Epub ahead of print]

Fierer DS, Dieterich DT, Mullen MP, Branch AD, Uriel AJ, Carriero DC, van Seggelen WO, Hijdra RM, Cassagnol DG; and the New York Acute Hepatitis CSurveillance Network.

Abstract

Background. There is an international epidemic of hepatitis C virus (HCV) infection among human immunodeficiency virus (HIV)-infected men who have sex with men. Sustained virologic response (SVR) rates with pegylated interferon and ribavirin treatment are higher in these men during acute HCV than during chronic HCV, but treatment is still lengthy and SVR rates are suboptimal. Methods. We performed a pilot study of combination therapy with telaprevir, pegylated interferon, and ribavirin in acute genotype 1 HCV infection in HIV-infected men. Men who were treated prior to the availability of, or ineligible for, telaprevir were the comparator group. The primary endpoint was SVR12, defined as an HCV viral load <5 IU/mL at least 12 weeks after completing treatment. Results. In the telaprevir group, 84% (16/19) of men achieved SVR12 vs 63% (30/48) in the comparator group. Among men with SVR, median time to undetectable viral load was week 2 in the telaprevir group vs week 4 in the comparator group, and 94% vs 53% had undetectable viral loads at week 4. Most patients (81%) who achieved SVR in the telaprevir group received ≤12 weeks of treatment and there were no relapses after treatment. The overall safety profile was similar to that known for telaprevir-based regimens. Conclusions. Incorporating telaprevir into treatment of acute genotype 1 HCV in HIV-infected men halved the treatment duration and increased the SVR rate. Larger studies should be done to confirm these findings. Clinicians should be alert to detect acute HCV infection of HIV-infected men to take advantage of this effective therapy and decrease further transmission in this epidemic.

KEYWORDS: HIV infection, acute HCV, men who have sex with men, telaprevir, treatment

PMID: 24336914 [PubMed - as supplied by publisher]

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December 19, 2013

Telaprevir in the Treatment of Acute Hepatitis C Virus Infection in HIV-Infected Men

Clin Infect Dis. 2013 Dec 13. [Epub ahead of print]

Fierer DS, Dieterich DT, Mullen MP, Branch AD, Uriel AJ, Carriero DC, van Seggelen WO, Hijdra RM, Cassagnol DG; for the New York Acute Hepatitis C Surveillance Network.

Abstract

Background. There is an international epidemic of hepatitis C virus (HCV) infection among human immunodeficiency virus (HIV)-infected men who have sex with men. Sustained virologic response (SVR) rates with pegylated interferon and ribavirin treatment are higher in these men during acute HCV than during chronic HCV, but treatment is still lengthy and SVR rates are suboptimal. Methods. We performed a pilot study of combination therapy with telaprevir, pegylated interferon, and ribavirin in acute genotype 1 HCV infection in HIV-infected men. Men who were treated prior to the availability of, or ineligible for, telaprevir were the comparator group. The primary endpoint was SVR12, defined as an HCV RNA level <5IU/mL at least 12 weeks after completing treatment. Results. In the telaprevir group, 84% (16/19) achieved SVR 12 versus 63% (30/48) in the comparator group. Among men with SVR, median time to undetectable viral load was week 2 in the telaprevir group vs week 4 in the comparator group, and 94% vs 53% had undetectable viral loads at week 4. Most patients (81%) who achieved SVR in the telaprevir group received ≤12 weeks of treatment and there were no relapses after treatment. The overall safety profile was similar to that known for telaprevir-based regimens. Conclusions. Incorporating telaprevir into treatment of acute genotype 1 HCV in HIV-infected men halved the treatment duration and increased the SVR rate. Larger studies should be done to confirm these findings. Clinicians should be alert to detect acute HCV infection of HIV-infected men to take advantage of this effective therapy and decrease further transmission in this epidemic.

PMID: 24336914 [PubMed - as supplied by publisher]

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September 12, 2013

Women have higher rate of spontaneous clearance of hepatitis C virus

Provided by MedicalXpress

September 12, 2013

A study of patients infected with acute hepatitis C virus (HCV) infection found that women had higher rates of spontaneous viral clearance—undetectable levels of the virus without initiating drug therapy. Findings published in Hepatology, a journal of the American Association for the Study of Liver Diseases, indicate that the gene IL28B (rs12979860) and HCV genotype 1 are also independent predictors of spontaneous HCV clearance.

In 2011, there were 1,229 cases of acute HCV reported to the Centers for Disease Control and Infection (CDC), which represents a 44% increase over 2010. Medical evidence indicates that 25% of those with acute HCV spontaneously clear their infection. Previous prospective studies link female sex, immune responses, neutralizing antibodies and genetics to viral clearance.

"Knowledge of acute HCV clearance is limited given that patients are typically asymptomatic during the initial stages of infection and at-risk populations, such as people who inject drugs, are often marginalized," explains lead author Dr. Jason Grebely at The Kirby Institute, University of New South Wales in Australia. "Our research aims to advance understanding of time to and predictors of HCV clearance to improve early therapeutic intervention options."

Researchers used data from the InC3 Study—a collaboration of nine prospective studies from Australia, Canada, the Netherlands, and the U.S. funded by the National Institutes of Health and led by Professor Kimberly Page from the University of California San Francisco—which included participants with HCV and human immunodeficiency virus (HIV) who were recruited between 1985 and 2010. The present study included 632 individuals diagnosed with acute HCV with 35% of the group being female and 82% Caucasian. Roughly 96% of participants had injected drugs, 47% were infected with HCV genotype 1 and 5% were co-infected with HIV.

Results show that 173 of the 632 participants had spontaneously cleared the virus during follow-up. At one year post-infection, 25% had HCV clearance. The average time to clearance among those who cleared HCV was 16.5 weeks, with 34%, 67% and 83% demonstrating clearance at 3, 6 and 12 months, respectively.

"Our findings indicate that females, those with the IL28B gene, and those with HCV genotype 1 are independent predictors of spontaneous clearance of acute HCV," concludes Prof. Kimberly Page. "Further research is necessary to understand the effect of sex in controlling HCV infection."

Explore further: Only half newly reported HCV cases receiving follow-up test

More information: "The Effects of Female Sex, Viral Genotype and Il28b Genotype on Spontaneous Clearance of Acute Hepatitis C Virus Infection." Jason Grebely, Kimberly Page, Rachel Sacks-Davis, Maarten Schim van der Loeff, Thomas M. Rice, Julie Bruneau, Meghan D. Morris, Behzad Hajarizadeh, Janaki Amin, Andrea L. Cox, Arthur Y. Kim, Barbara H. McGovern, Janke Schinkel, Jacob George, Naglaa H. Shoukry, Georg M. Lauer, Lisa Maher, Andrew R. Lloyd, Margaret Hellard, Gregory J. Dore and Maria Prins on behalf of the InC3 Study Group. Hepatology; ( DOI: 10.1002/hep.26639 ); Published Online: August 2, 2013.

Journal reference: Hepatology

Provided by Wiley

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August 11, 2013

The effects of female sex, viral genotype, and IL28B genotype on spontaneous clearance of acute hepatitis C Virus infection

Hepatology

Accepted Article (Accepted, unedited articles published online and citable. The final edited and typeset version of record will appear in future.)

Viral Hepatitis

Jason Grebely1,*, Kimberly Page2, Rachel Sacks-Davis3,4, Maarten Schim van der Loeff5,6, Thomas M. Rice2, Julie Bruneau7, Meghan D. Morris2, Behzad Hajarizadeh1, Janaki Amin1, Andrea L. Cox8, Arthur Y. Kim9, Barbara H. McGovern10,11, Janke Schinkel12, Jacob George13, Naglaa H. Shoukry7, Georg M. Lauer9, Lisa Maher1, Andrew R. Lloyd14, Margaret Hellard3,4, Gregory J. Dore1, Maria Prins5,6, the InC3 Study Group

DOI: 10.1002/hep.26639

© 2013 by the American Association for the Study of Liver Diseases

Publication History

Accepted manuscript online: 2 AUG 2013 05:29AM EST, Manuscript Accepted: 16 JUL 2013, Manuscript Revised: 23 MAY 2013, Manuscript Received: 19 APR 2013

Abstract

Keywords: injection drug use; hepatitis C virus; HIV; incident infection; longitudinal studies

Although 20%-40% of persons with acute hepatitis C virus (HCV) infection demonstrate spontaneous clearance, the time course and factors associated with clearance remain poorly understood. We investigated the time to spontaneous clearance and predictors among participants with acute HCV using Cox's proportional hazards analyses. Data for this analysis were drawn from an international collaboration of nine prospective cohorts evaluating outcomes after acute HCV infection. Among 632 participants with acute HCV, 35% were female, 82% were Caucasian, 49% had interleukin-28 (IL28)B CC genotype (rs12979860), 96% had injected drugs ever, 47% were infected with HCV genotype 1, and 5% had human immunodeficiency virus (HIV) coinfection. Twenty-eight percent were HCV antibody negative/RNA positive at the time of acute HCV detection (early acute HCV). During follow-up, spontaneous clearance occurred in 173 of 632, and at 1 year after infection, 25% (95% confidence interval [CI]: 21, 29) had cleared virus. Among those with clearance, the median time to clearance was 16.5 weeks (IQR: 10.5, 33.4), with 34%, 67%, and 83% demonstrating clearance at 3, 6, and 12 months. Adjusting for age, factors independently associated with time to spontaneous clearance included female sex (adjusted hazards ratio [AHR]: 2.16; 95% CI: 1.48, 3.18), IL28B CC genotype (versus CT/TT; AHR, 2.26; 95% CI: 1.52, 3.34), and HCV genotype 1 (versus non-genotype 1; AHR: 1.56; 95% CI: 1.06, 2.30). The effect of IL28B genotype and HCV genotype on spontaneous clearance was greater among females, compared to males. Conclusions: Female sex, favorable IL28B genotype, and HCV genotype 1 are independent predictors of spontaneous clearance. Further research is required to elucidate the observed sex-based differences in HCV control. (Hepatology 2013;)

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May 24, 2013

Delayed versus immediate treatment for patients with acute hepatitis C: a randomised controlled non-inferiority trial

The Lancet Infectious Diseases, Volume 13, Issue 6, Pages 497 - 506, June 2013

doi:10.1016/S1473-3099(13)70059-8 Cite or Link Using DOI

This article can be found in the following collections: Global Health; Public Health; Nutrition & Metabolism (Undernutrition); Paediatrics (Paediatrics-other)

Published Online: 22 March 2013

Katja Deterding MD a b, Norbert Grüner MD a e, Peter Buggisch MD a g, Johannes Wiegand MD a f, Prof Peter R Galle MD a h, Prof Ulrich Spengler MD a i, Holger Hinrichsen MD a j, Prof Thomas Berg MD a f k, Andrej Potthoff MD a b, Prof Nisar Malek MD a l, Anika Großhennig PhD c, Prof Armin Koch PhD c, Prof Helmut Diepolder MD a e, Stefan Lüth MD a g, Sandra Feyerabend MD a, Prof Maria Christina Jung MD a e, Magdalena Rogalska-Taranta PhD a d, Verena Schlaphoff PhD a d, Markus Cornberg MD a b, Prof Michael P Manns MD a b , Prof Heiner Wedemeyer MD a b , for The Hep-Net Acute HCV-III Study Group

Summary

Background

Early treatment of acute hepatitis C virus (HCV) infection with interferon alfa monotherapy is very effective, with cure rates of greater than 85%. However, spontaneous clearance of HCV occurs in 10—50% of cases. We aimed to assess an alternative treatment strategy of delayed antiviral therapy in patients who do not eliminate the virus spontaneously compared with immediate treatment.

Methods

In our open-label phase 3 non-inferiority trial, we enrolled adults (≥18 years) with acute hepatitis C but no HIV or hepatitis B co-infection at 72 centres in Germany. We randomly allocated patients with symptomatic acute hepatitis C (1:1) to receive immediate pegylated interferon alfa-2b treatment for 24 weeks or delayed treatment with pegylated interferon alfa-2b plus ribavirin (for 24 weeks) starting 12 weeks after randomisation if HCV RNA remained positive. We used a computer-generated randomisation sequence and block sizes of eight, stratified by bilirubin concentration. We assigned all asymptomatic patients to immediate treatment with pegylated interferon alfa-2b for 24 weeks. The primary endpoint was sustained HCV RNA negativity in all randomly allocated participants who completed screening (intention-to-treat analysis), with a non-inferiority margin of 10%. For the primary analysis, we calculated the virological response of patients in the immediate and delayed treatment groups and an absolute risk difference stratified by bilirubin status. The trial was stopped early on advice from the study advisory committee because of slow recruitment of participants. This study is registered, number ISRCTN88729946.

Findings

Between April, 2004, and February, 2010, we recruited 107 symptomatic and 25 asymptomatic patients. 37 (67%) of 55 symptomatic patients randomly allocated to receive immediate treatment and 28 (54%) of 52 symptomatic patients randomly allocated to receive delayed treatment had a sustained virological response (difference 13·7%, 95% CI −4·6 to 32·0; p=0·071). 18 (72%) of 25 asymptomatic patients had a sustained virological response. 22 (42%) of 52 symptomatic patients allocated to receive delayed treatment did not complete follow-up compared with 20 (25%) of 80 symptomatic or asymptomatic patients assigned immediate treatment (p=0·037). 11 symptomatic patients (21%) assigned delayed treatment had spontaneous HCV clearance. 14 patients who received delayed pegylated interferon alfa-2b plus ribavirin treatment and completed follow-up achieved sustained virological response.

Interpretation

Delayed treatment is effective although not of equal efficacy to immediate treatment; coupled with the rate of spontaneous clearance it can reduce unnecessary treatment in closely monitored populations. Immediate treatment seems preferable in populations where loss to follow-up is great.

Funding

German Network of Competence on Viral Hepatitis (HepNet, funded by the German Federal Ministry of Education and Research, grants 01KI0102, 01KI0401, and 01KI0601), MSD, Schering-Plough.

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April 29, 2012

Immediate versus delayed treatment in patients with acute hepatitis C based on IL28B polymorphism: a model-based analysis

J Hepatol. 2012 Apr 17. [Epub ahead of print]

Deuffic-Burban S, Castel H, Wiegand J, Manns MP, Wedemeyer H, Mathurin P, Yazdanpanah Y.

Inserm ATIP-AVENIR "Modélisation, aide à la décision et coût-efficacité en maladies infectieuses", Lille/Paris, France; EA2694, Université Lille Nord de France, Lille, France.

Abstract
BACKGROUND AND AIMS:

Timing of treatment initiation in acute hepatitis C (AHC) patients is unclear. Spontaneous viral clearance argues for a "watch-and-wait" strategy. However, early initiation of treatment could increase the sustained virological response (SVR) rate. We compared 3 different HCV treatment initiation strategies in patients with AHC according to presence of clinical symptoms and IL28B polymorphism: (1) within 2 months after transmission (immediate initiation), (2) at 3 months (early initiation); (3) at 4/5 months (delayed initiation).

METHODS:

We calculated spontaneous HCV clearance probability based on symptomatic (sAHC) and asymptomatic (aAHC) nature of disease and C/C or non-C/C genotype. We used different SVR probabilities according to delay between transmission and treatment. We estimated the probability of developing chronic hepatitis C (CHC).

RESULTS:

The probability of developing CHC was lower for immediate treatment initiation (7.1% in C/C and 7.3% in non-C/C patients with sAHC; 6.6% in C/C and 7.1% in non-C/C patients with aAHC) than for delayed initiation (13.5% in C/C and 18.0% in non-C/C patients with sAHC; 14.6% in C/C and v in non-C/C patients with aAHC) regardless of the presence of symptoms or IL28B genotype.

CONCLUSIONS:

In patients such as health care workers in whom HCV is detected <2 months following transmission, treatment should be immediately initiated regardless of clinical symptoms and IL28B polymorphism. In those in whom HCV is detected >2 months after transmission, treatment 4/5 months after may be preferable because of a higher rate of spontaneous HCV clearance after 2 months and poor HCV treatment efficacy's differential between months 3 and 4/5.

Copyright © 2012. Published by Elsevier B.V.

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April 1, 2012

Hepatitis C virus-specific cellular immune responses in individuals with no evidence of infection

Published on: 2012-03-28

The detection of hepatitis C virus (HCV)-specific T cell responses in HCV-uninfected, presumably unexposed, subjects could be due to an underestimation of the frequency of spontaneously resolving infections, as most acute HCV infections are clinically silent. To address this hypothesis, HCV-specific cellular immune responses were characterized, in individuals negative for an HCV PCR assay and humoral response, with (n=32) or without (n=33) risk of exposure to HCV.

Uninfected volunteers (n=20) with a chronically HCV-infected partner were included as positive controls for potential exposure to HCV and HCV infection, respectively. HCV-specific T cell responses in freshly isolated peripheral blood mononuclear cells were studied ex vivo by ELISPOT and CFSE-based proliferation assays using panels of HCV Core and NS3-derived peptides.

A pool of unrelated peptides was used as a negative control, and a peptide mix of human cytomegalovirus, Epstein-Bar virus and Influenza virus as a positive control. Overall, 20% of presumably HCV-uninfected subject tested had detectable T-cell responses to the virus, a rate much higher than previous estimates of HCV prevalence in developed countries.

This result would be consistent with unapparent primary HCV infections that either cleared spontaneously or remained undetected by conventional serological assays.

Author: Yves RiviereThomas MontangeGenevieve JanvierCaroline MarnataLudovic DurrieuMarie-Laure ChaixMaria IsaguliantsOdile LaunayJean-Louis BressonStanislas Pol

Credits/Source: Virology Journal 2012, 9:76

January 10, 2012

Alarming Incidence of Hepatitis C Virus Re-Infection After Treatment of Sexually Acquired Acute Hepatitis C Virus Infection in HIV-Infected MSM

Provided by The Body

From U.S. Centers for Disease Control and Prevention

January 9, 2012

The seroprevalence of sexually transmitted HCV among men who have sex with men in Amsterdam is stabilizing, recent data show. Little is known, however, about the incidence of HCV re-infection in MSM who have cleared HCV. In the current study, the team assessed the incidence of HCV re-infection in HIV-positive MSM who were HCV RNA-negative following HCV treatment of acute primary infection.

The subjects of the Amsterdam-based study were HIV-infected MSM attending two large outpatient clinics; the men were previously diagnosed with a sexually transmitted acute HCV infection and tested HCV RNA-negative at the conclusion of treatment. "We defined HCV re-infection as detectable HCV RNA in individuals with an undetectable HCV RNA at the end of treatment accompanied by a switch in HCV genotype or clade," the authors wrote. Re-infection incidence was calculated using person-time methods.

Included in the analysis were 56 persons who became HCV RNA-negative during primary acute HCV treatment. Five of these cases relapsed and were not analyzed; 11 participants were re-infected. HCV re-infection incidence in this group was 15.2 per 100 person-years (95 percent confidence interval 8.0-26.5). Cumulative incidence within two years was 33 percent.

"An alarmingly high incidence of HCV re-infection was found in this group," the authors concluded. "This high re-infection rate indicates that current prevention measures should be discussed, frequent HCV RNA testing should be continued after successful treatment and, in case of possible relapse, clade typing should be performed to exclude re-infection."

Adapted from:
AIDS
11.13.2011; Vol. 25; No. 17: P. F21-F27; Femke A.E. Lambers; and others

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December 14, 2011

Alarming Incidence of Hepatitis C Virus Re-infection After Treatment of Sexually Acquired Acute Hepatitis C Virus Infection in HIV-infected MSM

Femke A.E. Lambers; Maria Prins; Xiomara Thomas; Richard Molenkamp; David Kwa; Kees Brinkman; Jan T.M. van der Meer; Janke Schinkel

Posted: 12/13/2011; AIDS. 2011;25(17):F21-F27. © 2011 Lippincott Williams & Wilkins

Abstract and Introduction

Abstract

Background: Recent data indicate that seroprevalence of sexually transmitted hepatitis C virus (HCV) infection among MSM is stabilizing in Amsterdam. However, little is known about the incidence of HCV re-infection in MSM who have cleared their HCV infection. We, therefore, studied the incidence of re-infection in HIV-infected MSM who were HCV RNA-negative following HCV treatment of acute primary infection.
Methods: Our study population comprised HIV-infected MSM at two large HIV outpatient clinics in Amsterdam, who were previously diagnosed with a sexually transmitted acute HCV infection and tested HCV RNA-negative at the end of treatment. We defined HCV re-infection as detectable HCV RNA in individuals with an undetectable HCV RNA at the end of treatment accompanied by a switch in HCV genotype or clade. Person–time methods were used to calculate the incidence of re-infection.
Results: Fifty-six persons who became HCV RNA-negative during primary acute HCV treatment were included. Five of the 56 cases relapsed and were not analysed. Eleven persons were re-infected. The incidence of HCV re-infection in this group was 15.2 per 100 person-years (95% confidence interval 8.0–26.5). The cumulative incidence was 33% within 2 years.
Discussion: An alarmingly high incidence of HCV re-infection was found in this group. This high re-infection rate indicates that current prevention measures should be discussed, frequent HCV RNA testing should be continued after successful treatment and, in case of possible relapse, clade typing should be performed to exclude re-infection.

Introduction

In the last decade, the sudden increase in incidence of acute hepatitis C virus infection (HCV) among HIV-infected MSM in Europe, Australia and the United States has led to a substantial number of studies on this new public health problem. It has become clear that transmission takes place in specific clusters of HIV-infected MSM engaging in high-risk sexual behaviour.[1–3] Subsequently, targeted prevention messages have been developed, focusing on sexual risk behaviour, recreational drug use and regular testing for HCV. Furthermore, treatment of HCV co-infection in this population has proven to be very successful in the acute phase, and recommendations on treatment have been published.[4,5]

The response to this epidemic has clearly been extensive, and a recent study in Amsterdam has suggested that the prevalence of new primary HCV infections may no longer be increasing (A.T. Urbanus et al., presented at AIDS Conference 2010, abstract WEPDC 104). The question remains, however, whether prevention messaging and early testing and treatment also prevents HCV re-infection in MSM co-infected with HCV and HIV who have cleared their infection.

HCV re-infection occurs frequently among IDUs who continue high-risk behaviour.[6] Incidence rates of re-infection vary depending on population, definition of re-infection and methods and frequency of testing.[6–10] Reports on HCV re-infection by sexual transmission among MSM have been published only rarely[11,12] (H.-J. Stellbrink et al., presented at CROI 2011, poster 645; presented at International Congress on Drug Therapy in HIV Infection 2010, poster 200; and J. Sasadeusz et al., presented at EASL 2011, poster presentation), and no specific incidence rates have been presented yet.

Therefore, the objective of the current study was to examine the incidence of HCV re-infection among HIV-infected MSM attending two HIV outpatient clinics in Amsterdam, who were HCV RNA-negative at the end of treatment for their initial acute HCV infection.

Methods
Study Population

We included 56 HIV-infected MSM at the HIV outpatient clinics of two major hospitals in Amsterdam, who had been previously diagnosed with and treated for an acute HCV infection between 2003 and 2011; none had detectable HCV RNA at the end of their HCV treatment. All patients had been treated with weekly injections of peg-interferon and daily doses of ribavirin, the majority for a duration of 24 weeks.[13] In the majority of the cases, no HCV parental transmission routes were identified by clinical history and sexual transmission was the most likely mode of transmission.

Data Collection

Sociodemographic, clinical and virological data, such as age, use of HAART, CD4 cell counts, HIV RNA levels, levels of alanine aminotransferase (ALT) and genotype of primary HCV infection were collected from medical files. A subset of the MSM at risk of re-infection (n = 21) was included in a prospective study of acute infection with HCV in MSM (MSM Observational Study of Acute Infection with hepatitis C, MOSAIC study). For these patients, additional data on risk behaviour are presented. Data collection exists of an extensive self-administered questionnaire regarding classic risk factors for HCV transmission, such as IDU and sexual risk behaviour, collected at baseline and follow-up visits.

Virological Testing

All plasma samples available after the end of treatment were tested for HCV RNA with the Siemens VERSANT transcription-mediated amplification (TMA) assay which has a detection limit of 5 IU/ml. Genotyping of the first TMA-positive sample after the end of treatment was performed by amplifying and sequencing a 389 base pair fragment of NS5B, as described by Murphy et al.[14] If the genotype was similar to that in the treated primary infection, a 573 base pair fragment of E2 including the hypervariable 1 region (HVR1) was amplified and sequenced directly to identify clade shifts and differentiate between relapse or re-infection.

Definition of Re-infection and Relapse

Re-infection was defined as having detectable HCV RNA following an undetectable level at the end of treatment, with demonstration of the presence of a different genotype compared with primary infection or, if genotype was similar, a different clade compared with primary infection, as indicated by phylogenetic analysis of the E2/HVR1 region. If in the phylogenetic pretreatment and posttreatment sequences from the same viral subtype (e.g. 1a) large genetic distances were present, as indicated by distinct clustering, this was defined as a clade switch and, therefore, as a re-infection with the same viral subtype. Relapse was defined as a positive HCV TMA after a negative HCV TMA at the end of treatment and no genotype or clade switch compared with the primary infection.

Phylogenetic Analysis

Sequences were aligned using Clustal X version 2.[15] Phylogenetic trees were inferred using maximum-likelihood methods, using a Generalized Time Reversible Model with a gamma distribution of mutations (GTR + Γ) as implemented in MEGA software package version 5.[16] Bootstrap values were determined from 500 bootstrap resamplings of the original.

Statistical Analysis

The incidence rate of re-infection was estimated by dividing the number of re-infections by the total duration of follow-up. The individuals who had relapses were excluded from this calculation. The cumulative incidence was estimated by Kaplan–Meier methods.

In case of re-infection, follow-up time was calculated as the time between the end of treatment and the date of re-infection; the latter was estimated by taking the midpoint between the last negative HCV RNA test and first positive HCV RNA test. If no re-infection occurred, the censor date for follow-up was the date of the last HCV RNA test.

We compared sociodemographic, clinical, virological and behavioural characteristics, including peak ALT levels during follow-up between patients with and without re-infection. Risk behaviour was compared between MSM with and without re-infection for whom risk questionnaires were available. Differences between the two groups were tested with the χ2-test or Fisher's exact test for categorical variables and Student's t-test or Mann–Whitney U-test for continuous variables. Analyses were performed using SPSS (version 17.0; SPSS Inc., Chicago, Illinois, USA). The incidence rate and its confidence interval (CI) were calculated with OpenEpi[17] and are given per 100 person-years.

Results

In total, follow-up was obtained for 56 HIV-infected MSM treated for acute HCV infection who were HCV RNA-negative at the end of treatment. Patients were treated between 2003 and 2011. Patient and virological characteristics are shown in Table 1.

Five of the 56 experienced relapse, as evidenced by sequencing of the E2/HVR1 region, and were excluded from the incidence calculations.

According to our definition, 11 of the remaining 51 persons became re-infected. The total follow-up time for the 51 persons was 72.2 years [median 1.3 years, interquartile range (IQR) 0.5–1.6]. The incidence of HCV re-infection was 15.2 per 100 person-years (95% CI 8.0–26.5). Among the 11 individuals with a re-infection, the median time until re-infection was 8.4 months (IQR 3.6–19.2). The majority of re-infected patients switched from genotype 4 to 1.

Three persons became re-infected with the same genotype (clade switch). Figure 1 shows the phylogenetic tree of pretreatment and posttreatment E2-HVR1 sequences of these patients together with pretreatment and posttreatment sequences of relapse patients. Pretreatment and posttreatment sequences from patients O1, O2, O3, P06 and P44 clearly cluster together and they were, therefore, classified as 'true' relapsers, corresponding with the clinical observation of RNA rebound at the first time point available after treatment withdrawal. In contrast, pretreatment and posttreatment sequences from patients P01, P31 and P48 do not cluster and they were, therefore, considered re-infections. Although patients P01 and P31 became HCV RNA-positive again within 6 months after the end of treatment, the first sample taken at 4 weeks was negative, supporting our phylogenetic evidence of re-infection.

753341-fig1

Figure 1.

Phylogenetic tree of relapsers and patients with a re-infections with the same genotype.Phylogenetic tree of sequences before and after treatment from relapsers and patients with a re-infection with the same genotype. Relapsers are presented by filled symbols and re-infections are presented by open symbols. Each patient is presented by a unique symbol. The numbers in the labels indicate sampling dates. Note: re-infections with a different genotype are not presented in this tree.

The cumulative incidence of re-infection is demonstrated in Fig. 2; after 2 years, the cumulative incidence of re-infection was 33% (95% CI 16–50).

753341-fig2

Figure 2.

Cumulative incidence of hepatitis C virus (HCV) re-infection after In order to examine whether ALT levels are useful for indicating a new infection, we compared peak ALT levels during follow-up in patients with and without re-infection. The peak ALT levels were in general low (with a maximum of 160 U/l), although the median ALT peak during follow-up was higher in individuals with a re-infection than in those without a re-infection (P = 0.01). Interestingly, in four cases with a re-infection, no increased ALT levels were observed, whereas in individuals without evidence of re-infection, ALT levels were elevated frequently (Fig. 3).successful treatment of primary HCV infection.

In order to examine whether ALT levels are useful for indicating a new infection, we compared peak ALT levels during follow-up in patients with and without re-infection. The peak ALT levels were in general low (with a maximum of 160 U/l), although the median ALT peak during follow-up was higher in individuals with a re-infection than in those without a re-infection (P = 0.01). Interestingly, in four cases with a re-infection, no increased ALT levels were observed, whereas in individuals without evidence of re-infection, ALT levels were elevated frequently (Fig. 3).

753341-fig3

Figure 3.

Peak alanine aminotransferase levels during follow-up.Peak alanine aminotransferase (ALT) levels in units per litre during the observation period (end of treatment until last negative or first positive time point). The dotted line represents the maximum normal ALT value.

CD4 cell counts did not differ between patients with and without re-infection (Table 1). In addition, analysis of HIV load data from the eight of nine patients with a re-infection, who were on combination antiretroviral therapy (cART), showed that all patients had undetectable HIV loads around the time of HCV re-infection. From one re-infected patient on cART, no HIV load data were available.

Analysis of the 21 MSM with behavioural data revealed that re-infected MSM (n = 7) significantly more often reported noninjecting recreational drug use at inclusion than MSM without re-infection (n = 14) (P = 0.048). In this small study population, no statistically significant differences in sexual risk behaviour were found.

Of the 11 re-infected patients, four were treated for their re-infection; of those four, two achieved a sustained virologic response (SVR), one had a relapse, and one is still in follow-up for SVR time.

Discussion

With this study, we demonstrate an alarmingly high incidence rate of sexually transmitted HCV re-infection among HIV-infected MSM previously successfully treated for primary HCV infection.

Most importantly, these findings stress the importance of repeated risk counselling for HCV transmission which should be provided not only before and during treatment but also after its completion. MSM re-infected with HCV showed higher rates of noninjecting recreational drug use. Sexual risk behaviour, including recreational drug use during sex, was highly prevalent (data not shown). Unfortunately, because of our relatively small study population with behavioural data, we were not able to examine risk behaviour more precisely and longitudinally.

The high incidence rate in this study implies that ALT levels, which can be elevated during an acute HCV infection, should be measured regularly in this population. Because these levels are not always elevated during acute infection or might not coincide with the test moment, as shown in Fig. 3, subsequent HCV RNA testing, especially in cases of high-risk behaviour, should be performed regularly, as antibodies remain in general present after successful treatment.

Along with risk behaviour, the role of biological susceptibility to HCV re-infection, although still unclear, is an important consideration. Importantly, discussion is ongoing whether previous infection with HCV can generate partial protective immunity to re-infection or increase the chance of clearance of re-infection.

Several studies that compared incidence rates of primary infection and re-infection among IDUs have presented results that argue both for[8,18,19] and against[6,7,10] this phenomenon. Differences between these studies are probably due to variations in intervals of testing, age of the participants, frequency of ongoing drug use and adjustment for behaviour in the analyses. The higher incidence of re-infection in our study compared with the incidence of primary infection in Amsterdam[2,20] and elsewhere[3] indicates that, as expected, there is no complete protection. Yet, the finding that most re-infections in this study occurred with a different genotype compared with the primary infection suggests that genotype-specific immunity may develop in some individuals.

Additionally, underlying a persons' ability to develop protective immunity, genetic profiles may play a role in susceptibility to HCV re-infection. The association of genetic variations near the interleukin-28B (IL28B) region with spontaneous HCV clearance and treatment-induced clearance has been well described for HCV-mono-infected patients.[21–28] Similar results have been found regarding HCV treatment response in persons co-infected with HIV, although in this population the association is less clear for those treated during the acute infection.[29–34] The effect of IL28B polymorphisms on HCV re-infection has not been described. In accord with the effects in primary infection, one would expect the responder genotype to be at least more likely to allow clearance of re-infection than the nonresponder genotype. Whether initial partial protective immunity is also more established in individuals with a beneficial IL28B genotype remains undetermined.

Apart from HCV-specific immune responses, HIV co-infection may play an important role. The exact role of HIV co-infection in primary sexually transmitted HCV infection is not well known. CD4 cell depletion in the gut may diminish the immune response against HCV sexual transmission.[35] Nevertheless, CD4 cell counts did not differ between patients with and without re-infection, indicating that the level of immune suppression caused by HIV co-infection does not influence the risk of re-infection following successful HCV treatment.

The results of this study may lead to a change in the current definitions of HCV relapse and re-infection. When no further genotyping or sequencing is performed, a recurrent HCV viraemia within 6 months after a negative test at the end of the treatment is currently considered a relapse.[36] Our study demonstrates that early recurrence of HCV could well be a re-infection with another genotype or strain. This distinction has important clinical ramifications and should, therefore, be recognized by clinicians. The definition of relapse or re-infection, especially in population with a high incidence of infection, should, therefore, always be based on virological characteristics and not on a specific interval between the end of treatment and recurrence of HCV RNA in the serum.

Finally, from a clinical and cost-effective perspective, the results of this study will encourage discussion about the validity of repetitive HCV treatment in patients with numerous subsequent re-infections owing to continued risk behaviour.

Apart from small numbers, this study has other limitations. We have not studied the possible existence of HCV-mixed infections during primary infection. Therefore, we cannot entirely exclude the possibility that re-infections were previously existing infections that became detectable after a dominant strain had been cleared.[37] However, the fact that the median interval from the first HCV RNA-negative test to the first HCV RNA-positive test after treatment was 8 months, with several negative results in between, strongly suggests that all re-infections were recently transmitted infections.

Furthermore, as this was not a prospective study, time between tests was not similar for all patients, and a re-infection followed by a quick, spontaneous clearance might have been missed. Nevertheless, as the median time between tests was 3 months, we do not expect this to have significantly influenced the incidence rate.

In conclusion, a high incidence rate of HCV re-infection among HIV-infected MSM in Amsterdam was demonstrated in this study, emphasizing the need for more extensive risk behaviour counselling and secondary prevention by regular and frequent HCV testing in this population. Future research should focus on the reasons for continuing high-risk sexual behaviour in order to improve targeted prevention. In addition, research should try to elucidate the virological and host factors associated with re-infection and its outcome in HIV-infected individuals.

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