June 10, 2013

BioLineRx Enters into Collaboration to Develop and Commercialize Hepatitis C Drug with CTTQ, Leading Chinese Pharma Company for Liver Disease Therapeutics

Published: June 10, 2013

- BL-8030 is a pre-clinical, second-generation NS3 protease inhibitor -- CTTQ receives development and commercialization rights in China and Hong Kong -

JERUSALEM — BioLineRx (NASDAQ: BLRX) (TASE: BLRX), a biopharmaceutical development company, announced today that it has signed an out-licensing agreement with Jiangsu Chia-tai Tianqing Pharmaceutical Co., Ltd. (CTTQ), the leading Chinese pharmaceutical company in the liver disease therapeutic area, for the development and commercialization of BL-8030, an orally available treatment for the Hepatitis C virus (HCV).

Under the terms of the agreement, BioLineRx will grant CTTQ exclusive rights to develop, manufacture and commercialize BL-8030 in China and Hong Kong. CTTQ will pay BioLineRx an upfront license fee, plus future development, regulatory and commercialization milestones, for a total potential deal value of approximately $30 million. In addition, BioLineRx has the right to receive high single-digit royalties on future sales of the drug. BioLineRx will retain the right to develop and commercialize BL-8030 in other parts of the world. CTTQ will adhere to FDA and EMA guidelines in pre-clinical development and manufacturing of BL-8030. BioLineRx will have access to all development and regulatory data generated by CTTQ, as well as the right to use this data for commercialization and regulatory purposes in all areas of the world outside of China and Hong Kong.

“We look forward to developing and commercializing BL-8030 with CTTQ, the leading pharmaceutical company in China in the field of liver diseases,” said Kinneret Savitsky, Ph.D., Chief Executive Officer of BioLineRx. "We are proud that since in-licensing this promising pre-clinical asset just over one year ago, we have found a strong partner for the further development of BL-8030 in China, which is a significant market in the HCV field. We believe that given CTTQ's extensive experience in the liver disease area, it will swiftly advance the development of BL-8030 at the highest global standards. In parallel to collaborating with CTTQ to advance the drug, we intend to continue discussions with relevant partners for this project in other parts of the world.”

"We are excited to include BL-8030 as a new asset in our pipeline," said Mr. Jian Sun Emba, President of CTTQ. "Unfortunately, the prevalence of HCV is relatively significant in China, with reports of 3.2% of the population (amounting to approximately 43 million individuals) suffering from this chronic and debilitating disease. Thus there is a clear and urgent need to develop new, safe and effective treatments for HCV patients in China. After conducting a thorough due diligence process, we sincerely believe that BL-8030, even though still in pre-clinical development, has the potential to become an important addition to HCV combination therapies."

Professor Philippe Halfon, world-renowned scientist for his work on HIV, HPV (human papilloma virus causing cervical cancer) and Hepatitis, and a co-inventor of BL-8030, said, "BL-8030 has shown promising results in pre-clinical studies, and may become an important part of combination therapies for HCV. Current treatments are only partially effective and adverse effects are common, so there is a clear need for new drugs that will be both safe and effective."

About BL-8030

BL-8030, an orally available treatment for Hepatitis C, is a potent and selective second generation NS3 protease inhibitor. The NS3 protease is essential for replication of the Hepatitis C virus and is an important target for HCV therapies. BL-8030 has been shown to have excellent antiviral activity, in the low nanomolar range, against a wide range of HCV genotypes. Pre-clinical studies have demonstrated an improved resistance profile against common protease inhibitor mutants, resulting in a lower probability that the virus will develop resistance to treatment. In addition, BL-8030 has demonstrated a good safety profile in pre-clinical studies, exhibiting specificity only to the viral protease and lack of activity against a relevant panel of human proteases, as well as a clean profile versus human liver enzymes, which is expected to lead to less drug-drug interactions. PK studies in animals indicated the BL-8030 has good oral bioavailability, suggesting the potential for once-daily dosing in the clinic.

In February 2012, BioLineRx signed a worldwide, exclusive license agreement with Genoscience and RFS Pharma, LLC to develop and commercialize BL-8030. BL-8030 was invented by Professor Philippe Halfon and his team at Genoscience, and co-developed with scientists at RFS Pharma, LLC. Prof. Halfon, Co-Founder and President of Genoscience, is a specialist in molecular virology and infectious diseases, especially HIV, HPV and Hepatitis. In addition he is the founder of several biotechnology companies focusing on antiviral drug discovery and development, including ACTgene, Alphabio and Genoscience. RFS Pharma was founded in 2004 by Professor Raymond Schinazi; he currently serves as the Frances Winship Walters Professor of Pediatrics at Emory University. He is also a principal founder of Pharmasset Inc., Idenix Inc. and Triangle Pharmaceuticals.

About Hepatitis C

Hepatitis C is a blood borne infection of the liver caused by the Hepatitis C virus which becomes chronic in about 85% of cases. According to the World Health Organization, up to 170 million people worldwide are chronically infected with HCV. In addition, HCV infection is the leading cause of liver transplantation and is a risk factor for liver cancer. The Hepatitis C market is growing rapidly and is forecasted to reach $16 billion in 2015 in the seven major markets (US, France, Germany, Italy, Spain, UK and Japan).

About CTTQ

Jiangsu Chia-tai Tianqing Pharmaceutical Co., Ltd. (CTTQ), headquartered in Nanjing and Lianyungang, Jiangsu Province, China, is a large pharmaceutical manufacturer, integrating research, production and sales. The company is one of the top 50 companies in China’s pharmaceutical industry. CTTQ’s products are in a wide array of therapeutic areas, including hepatitis, cancer, cardio-vascular, anti-virus, digestion, respiratory and diabetes, with a particular emphasis on liver diseases, where it is the leading Chinese company in that field. CTTQ is a subsidiary of Sino Biopharmaceutical Ltd., a publicly traded company on the Hong Kong Stock Exchange.

About BioLineRx

BioLineRx is a publicly-traded biopharmaceutical development company. BioLineRx is dedicated to building a portfolio of products for unmet medical needs or with advantages over currently available therapies. BioLineRx’s current portfolio consists of seven clinical stage candidates: BL-1040, for prevention of pathological cardiac remodeling following a myocardial infarction, which has been out-licensed to Ikaria Inc., is currently undergoing a pivotal CE-Mark registration trial; BL-5010 for non-surgical removal of skin lesions has completed a Phase 1/2 study; BL-7040 for treating inflammatory bowel disease (IBD) has successfully completed a Phase 2a trial; BL-8040 for treating acute myeloid leukemia (AML) and other hematological cancers has commenced a Phase 2 study; BL-1021 for neuropathic pain is in Phase 1 development; BL-8020 for hepatitis C (HCV) has commenced a Phase 1/2 study; and BL-1020 for schizophrenia. In addition, BioLineRx has five products in various pre-clinical development stages for a variety of indications, including central nervous system diseases, infectious diseases, cardiovascular and autoimmune diseases.

BioLineRx’s business model is based on acquiring molecules mainly from biotechnological incubators and academic institutions. The Company performs feasibility assessment studies and development through pre-clinical and clinical stages, with partial funding from the Israeli Government’s Office of the Chief Scientist (OCS). The final stage includes partnering with medium and large pharmaceutical companies for advanced clinical development and commercialization. For more information on BioLineRx, please visit www.biolinerx.com, the content of which does not form a part of this press release.

Various statements in this release concerning BioLineRx’s future expectations, including specifically those related to the development and commercialization of BL-8030, constitute “forward-looking statements” within the meaning of the Private Securities Litigation Reform Act of 1995. These statements include words such as “may,” “expects,” “anticipates,” “believes,” and “intends,” and describe opinions about future events. These forward-looking statements involve known and unknown risks and uncertainties that may cause the actual results, performance or achievements of BioLineRx to be materially different from any future results, performance or achievements expressed or implied by such forward-looking statements. Some of these risks are: changes in relationships with collaborators; the impact of competitive products and technological changes; risks relating to the development of new products; and the ability to implement technological improvements. These and other factors are more fully discussed in the “Risk Factors” section of BioLineRx’s most recent annual report on Form 20-F filed with the Securities and Exchange Commission on March 12, 2013. In addition, any forward-looking statements represent BioLineRx’s views only as of the date of this release and should not be relied upon as representing its views as of any subsequent date. BioLineRx does not assume any obligation to update any forward-looking statements unless required by law.

Source

Sorafenib: from literature to clinical practice

Ann Oncol (2013) 24 (suppl 2): ii30-ii37. doi: 10.1093/annonc/mdt055 This article appears in: Current issues in the management of hepatocellular carcinoma

V. Di Marco1,*, F. De Vita2, J. Koskinas3, D. Semela4, P. Toniutto5 and C. Verslype6

+ Author Affiliations

  1. 1Sezione di Gastroenterologia & Epatologia, Dipartimento Biomedico di Medicina Interna e Specialistica (Di.Bi.M.I.S.), University of Palermo, Palermo
  2. 2Oncologia Medica, Seconda Università di Napoli, Naples, Italy
  3. 3Department of Medicine, Medical School of Athens, Hippokration General Hospital, Athens, Greece
  4. 4Division of Gastroenterology and Hepatology, Cantonal Hospital St. Gallen, St. Gallen, Switzerland
  5. 5Medical Liver Transplant Unit, Department of Medical Sciences Clinical and Experimental, University of Udine, Udine, Italy
  6. 6Hepatology, University Hospital Gasthuisberg, Leuven, Belgium
  7. ↵*Correspondence to: Prof. Vito Di Marco, Sezione di Gastroenterologia & Epatologia, Dipartimento Biomedico di Medicina Interna e Specialistica (Di.Bi.M.I.S.), University of Palermo, Piazza delle Cliniche 2, 90127 Palermo, Italy. Tel: +39-091-6552106; Fax: +39-091-6552156; E-mail: vito.dimarco@unipa.it

Abstract

Sorafenib is considered the standard systemic therapy for hepatocellular carcinoma (HCC), in patients with well-preserved liver function (Child-Pugh A class) and advanced-stage HCC (BCLC-C) or in patients with HCC progressing after locoregional therapies, with a high grade of recommendation. The approval of sorafenib for this indication was grounded on the efficacy and the safety results reported by two international randomized, controlled trials, the SHARP and the Asia-Pacific studies. In addition, the efficacy and the safety of sorafenib in clinical practice are addressed by several field-practice experiences, including the multinational GIDEON study and the SOFIA study. Finally, further research on sorafenib is ongoing to optimize the use of this molecule. This review aims to provide an overview of the most relevant clinical data on the efficacy and the safety of sorafenib in patients with HCC.

Key words adverse events, clinical practice, observational studies, randomized clinical trials, sorafenib
introduction

Hepatocellular carcinoma (HCC) represents a global health problem and the incidence of this cancer in patients with cirrhosis is still increasing in several countries. The prognosis and the treatment options for HCC are generally related to the tumor stage at presentation. Surgical resection, transplantation and percutaneous ablation offer a high probability of complete response in patients with early HCC. In asymptomatic patients with multifocal HCC without vascular invasion or extrahepatic spread, chemoembolization can provide survival benefit.

Sorafenib, an oral multikinase inhibitor with activity against Raf-1, B-Raf, VEGFR2, PDGFR and c-Kit receptors, has a potent antiangiogenic and proapoptotic activity and therefore presents a marked antitumoral effect [1].

The improvement of survival in patients treated with sorafenib is supported by the highest level of evidence, and according to the recent guidelines by the European Association for the Study of Liver (EASL) and by the European Society for Molecular Oncology (ESMO)/European Society of Digestive Oncology (ESDO), sorafenib is considered the standard systemic therapy for HCC, in patients with well-preserved liver function (Child-Pugh A class) and advanced-stage HCC (BCLC-C) or in patients with HCC progressing after locoregional therapies, with a high grade of recommendation (Figure 1) [2,3].

F1_medium

Figure 1. Representation of the EASL recommendations for treatment according to levels of evidence. Reproduced with permission from European Association for the Study of the Liver, European Organisation for Research and Treatment of Cancer [2].

Sorafenib was approved for the treatment of patients with advanced HCC on the basis of the efficacy and the safety results reported by two international randomized, controlled trials (RCTs), the SHARP (Sorafenib HCC Assessment Randomized Protocol) and the Asia-Pacific trials [4,5]. In addition, the efficacy and the safety of sorafenib in clinical practice are addressed by several field-practice experiences, including the multinational GIDEON study and the SOFIA study [6,7]. Finally, further research on sorafenib is ongoing to optimize the use of this molecule, and particularly, the efficacy of sorafenib in patients with Child-Pugh B cirrhosis, the possibility of modifying the dosing regimen and the potential existence of laboratory and/or genetic biomarkers of response are currently being explored.

This review aims to provide an overview of the most relevant clinical data on the efficacy and the safety of sorafenib in patients with HCC.

randomized, controlled trials

efficacy

The SHARP trial, conducted in Western countries, was a multicenter, phase III, double-blind, placebo-controlled study, in which 602 HCC patients (95% with Child-Pugh A cirrhosis and 82% with BCLC-C) who had not received any previous systemic treatment were assigned to receive sorafenib 400 mg bis in die (bid) or placebo [4]. The primary outcomes of the trial were overall survival (OS) of patients and the time to symptomatic progression, whereas the secondary outcomes included the time to radiologic progression (TTP) and safety. The study was stopped at the second planned interim analysis, due to a significantly shorter survival in the placebo arm. In detail, the median OS was 10.7 months in the sorafenib group versus 7.9 months in the placebo group [hazard ratio (HR): 0.69; 95% CI: 0.55–0.87; P < 0.001]. Although there was no difference in the median time to symptomatic progression, a significant advantage for sorafenib over placebo was reported for TTP (5.5 versus 2.8 months; P < 0.001).

The second trial with a similar design was conducted in the Asia-Pacific region, where chronic infection by hepatitis B virus (HBV) represents the more common etiological factor of chronic liver disease [5]. In total, 226 patients with HCC were randomized to receive sorafenib 400 mg bid or placebo with a 2:1 ratio (150 and 76 patients, respectively). The wide majority of patients were classified as Child-Pugh A (97%) and BCLC-C (95%). The efficacy of sorafenib was overall similar to that reported in the SHARP trial. The median OS was 6.5 months in the sorafenib group, compared with 4.2 months in the placebo group, with an HR similar to that observed in the SHARP trial (HR: 0.68; 95% CI: 0.50–0.93; P = 0.014), whereas the median TTP was 2.8 months in the sorafenib group compared with 1.4 months in the placebo group (P = 0.0005).

It must be observed that the two trials have enrolled different populations: patients included in the SHARP trial were mostly of Caucasian ethnicity and had a high prevalence of hepatitis C virus infection; conversely, patients observed in the Asia-Pacific trial were more largely infected by HBV and presented a more advanced stage of HCC and a worse liver function. These differences can explain the difference in OS observed between the two trials; however, the HR for survival, which can be regarded to as a measure of sorafenib efficacy, was similar (0.69 and 0.68, respectively).

safety

In both the SHARP and the Asia-Pacific trials, sorafenib was generally well tolerated, but, like other drugs of the same class, it caused a range of adverse events (AEs). In the SHARP trial, the incidence of serious AEs was 52 and 54% in treated and placebo groups, respectively [4]. However, grade 3 drug-related AEs were more common in the sorafenib group and included diarrhea (8%), hand–foot skin reaction (HFSR) (8%), hypertension (2%) and abdominal pain (2%). The rate of patients who discontinued treatment was similar in the two groups (38 and 37%, respectively), but treatment was permanently discontinued due to toxicity in 11% of sorafenib-treated patients versus 5% of placebo patients. In the Asia-Pacific trial, the most frequent grade 3/4 drug-related AEs in the sorafenib group were HFSR (10.7%), diarrhea (6.0%) and fatigue (3.4%) [5]. The most common AEs resulting in dose reductions were HFSR (11.4%) and diarrhea (7.4%), but these AEs were overall manageable and rarely led to discontinuation of treatment.

clinical practice studies

RCTs provide the highest level of evidence for the rigorous design, the application of strict selection criteria for the inclusion of patients, and the precise evaluation of the efficacy and the safety in a well-defined population. However, patients enrolled in RCTs often do not closely represent the clinical practice, due to the necessary absence of potential confounding factors like concomitant diseases or other treatments [7,8]. Observational studies can complement findings from RCTs, as they assess treatment effectiveness in patients encountered in day-to-day clinical practice [8]. Therefore, results from well-designed observational studies can expand upon the outcomes of RCTs, thanks to the observation of the large cohort of patients who present co-morbidities and receive concomitant medications. Furthermore, observational studies can identify clinically important differences among therapeutic options and provide data on drug efficacy and safety over a longer-term follow-up than RCTs.

At present, the results of two real clinical experiences conducted on sorafenib are available: the GIDEON study (Global Investigation of therapeutic DEcisions in hepatocellular carcinoma and Of its treatment with sorafeNib), conducted on a very large population of HCC patients in more than 40 countries [6], and the SOFIA (SOraFenib Italian Assessment) study, conducted in Italy [7]. These two studies reported the clinical outcomes of patients on treatments and, particularly, addressed the management of sorafenib-related AEs in daily clinical practice.

the GIDEON study

The GIDEON study, still ongoing, is a global phase IV, international, prospective, open-label, multicentre, non-interventional post-marketing study of patients with advanced-stage HCC receiving sorafenib under real-life conditions [6]. A very large cohort of 3275 patients have been recruited from Europe, Latin America, the USA and the Asia-Pacific regions. The main goal of the study was to evaluate the safety and efficacy of sorafenib in different patient subgroups, especially in subjects with Child-Pugh B cirrhosis, where data were limited. Additional aims of this study were to compile a large database and to analyze potential local, regional and global differences in baseline characteristics, disease etiology, treatment, practice patterns and treatment outcomes. The study completion is expected by 2013.

The second preplanned interim analysis available has been presented at the Annual Congress of the American Association for the Study of Liver Diseases (AASLD) in November 2011 [9]. The interim analysis reported the efficacy and safety data of sorafenib in clinical practice in two subgroups of patients: a group who started the treatment with the standard dose of 800 mg/day and a group who started the treatment with 400 mg/day or other doses.

In total, 1571 patients had valid data for the safety evaluation and 1612 patients for the efficacy evaluation. At baseline, 61% of patients had a Child-Pugh A and 23% a Child-Pugh B cirrhosis, 54% of patients had a BCLC-C and 19% a BCLC-B, 40% of patients had a performance status (PS) 0 and 43% a PS 1 and 55% of patients received a previous locoregional treatment. In most cases (75%), patients initiated sorafenib at the recommended dose of 800 mg/day. The remaining patients received 400 mg/day (22%) or other dosages (3%). The two groups were comparable for the Child-Pugh score, BCLC stage, PS and rate of patients who received a previous surgery or locoregional treatment.

The interim analysis showed a trend toward more evident benefits for sorafenib at the recommended dose, when compared with the lower dose of 400 mg/day. In particular, patients who initiated sorafenib at the dose of 800 mg/day tended to stop treatment later than patients who started sorafenib with a dose of 400 mg/day (12.3 versus 9.7 weeks) and present a longer OS (9.3 versus 7.1 months) and TTP (4.5 versus 3.6 months) [9].

The most commonly reported AEs in both dose groups were diarrhea, HFSR and fatigue, and these AEs were in most cases mild (grade 1/2). No significant differences in the type and the incidence of AEs between the recommended dose group and the 400 mg/day dose group were reported [9]. This analysis suggests that initiating sorafenib treatment at the full recommended dose of 800 mg/day may be associated with some advantages in terms of duration of therapy, OS and TTP versus a 400 mg/day starting dose, without any relevant worsening of the safety profile of the molecule [9].

the SOFIA study

The SOFIA study was a smaller multicenter, investigator-driven, observational, non-interventional study conducted in six referral Italian centers with the aim to assess sorafenib safety in clinical practice and to evaluate treatment efficacy in terms of OS, early radiologic response and TTP [7]. In total, 296 consecutive patients (88% Child-Pugh A) with advanced-stage HCC (75%) or intermediate-stage HCC and/or not eligible to or who failed ablative therapies (25%) were enrolled. At the initiation of therapy, sorafenib was administered at dose of 800 mg/day in all patients and treatment was down-dosed or interrupted according to the drug label. Grade 3/4 AEs, deterioration of liver function and radiologic or symptomatic progression of HCC were criteria for dose modification or interruption.

The median duration of treatment was 3.8 months, 90 patients (30%) were treated for more than 6 months and 41 patients (14%) were treated for more than 12 months.

The overall incidence of AEs was 91%, and 45% of them were of grade 3/4. Fatigue (25%), HFSR (9%), arterial hypertension (7%), weight loss (6%) and diarrhea (6%) were the most frequent severe AEs.

Treatment was down-dosed in 161 (54%) patients (in 133 because of AEs and in 28 because of liver function worsening) and was permanently discontinued in 233 (79%) patients (40% for AEs and 60% for severe liver function deterioration or HCC progression).

Regarding the effectiveness of sorafenib, the SOFIA study reported a median OS of 10.5 months, a finding consistent with the survival observed in patients treated with sorafenib [3, 6]. The OS reported in the 74 BCLC-B patients was longer than that observed in the 222 BCLC-C patients (20.6 versus 8.4 months; P < 0.0001). OS was 21.6 months in the 77 patients treated for more than 70% of the time with a half dose versus 9.6 months in the 219 patients treated for more than 70% of the time with a full dose (P = 0.0006).

The results reported by the SOFIA study, although retrieved in a smaller population respect the global GIDEON study, confirm the safety and effectiveness of sorafenib in a real-life scenario, even with a reduced dose. The effectiveness of half-dose sorafenib might have some implications for clinical practice, especially for a tailored therapy in patients who do not tolerate full-dose treatment. However, the authors of the SOFIA study pointed out the existence of two main caveats for this study, namely the post hoc nature of the analysis of the effectiveness of full- versus half-dose sorafenib and the lack of stratification before treatment of survival predictors.

management of AEs in clinical practice

Sorafenib appeared well-tolerated in both the GIDEON and the SOFIA studies [6, 7]; however, in both real-life studies, a number of AEs were reported. The underlying liver disease and, in particular, its complications can negatively affect the tolerability and the efficacy of sorafenib in HCC patients.

The most frequent sorafenib-associated AEs are dermatological lesions, cancer-related fatigue and diarrhea. Conversely, treatment-related liver AEs are overall less frequently reported. Grade 3/4 liver dysfunction has been reported in the same percentage (3%) of patients assuming sorafenib or placebo in the supplementary appendices of the SHARP trial [4] and in 1% of patients taking sorafenib in the GIDEON study [10].

dermatological lesions

Dermatological lesions, mainly represented by HFSR, are one of the most frequent AEs associated with multi-kinase inhibitors and represent a major cause of dose reductions and/or treatment interruptions. In addition, they determine relevant physical and psychological distress to patients. The early detection of symptoms is crucial and, when possible, preventive measures should be taken in patients with high risk of developing HFSR. Although not tested in clinical trials, some preventive measures are believed to reduce pain, risk of infection and patient discomfort and to avoid the dose reduction or discontinuation of sorafenib (Table 1) [11]. Once established, HFSR can be relieved by symptomatic treatment (Table 1) [11]. As shown in the SHARP study and according to clinical experience, treatment of HFSR may require sorafenib dose reduction or interruption according to the severity of the skin lesions (Table 2) (http://www.accessdata.fda.gov/drugsatfda_docs/label/2011/021923s012lbl

Table 1. Techniques identified from the literature for preventing and managing HFSR (reproduced from Edmonds et al. [11], with permission)

  • Prophylactic management
  • Advise patients to have a manicure and pedicure before and during treatment
  • Stress the importance of identifying and reporting skin reactions
  • Advise patients on the frequent prophylactic use of over-the-counter skin emollients
  • Avoid constrictive footwear and excessive friction
  • Wear thick cotton gloves/socks and shoes with padded insoles
  • Symptomatic management
  • Treatment with topical urea singly or plus tazarotene/fluorouracil results in ≥2 grade improvement in the majority of patients
  • Avoid hot water
  • Use thick, intense moisturizing products and anti-itch products (containing 1% dimethicone, 0.1% camphor). Apply creams at least five times a day and any time after hands or feet get wet
  • Dose interruptions at grade 3/4 may be necessary
  • During treatment advise patients to wear comfortable shoes, use shock absorbers for pressure points and relieve pressure on the affected parts
  • Advise patients to avoid excessive sport (e.g. avoid pressure and friction to the affected areas)
  • Advise patients to take cooling hand or foot baths
  • Advise patients to wear two pairs of cotton socks, a thick padded pair as the inner layer and a thinner pair as the outer layer and wear soft shoes and padded insoles
  • Advise patients to wear gloves at night after applying urea- and/or salicylate-containing creams
  • Use non-fragranced products and shower gels instead of soaps
  • Light/topical analgesics may be prescribed for pain relief

Table 2. Dose modifications for skin toxicity (available at http://www.accessdata.fda.gov/drugsatfda_docs/label/2011/021923s012lbl.pdf).

Skin toxicity grade Occurrence Suggested dose modification
Grade 1: Numbness, dysesthesia, paresthesia, tingling, painless swelling, erythema or discomfort of the hands or feet which does not disrupt the patient's normal activities Any occurrence Continue treatment with NEXAVAR and consider topical therapy for symptomatic relief
Grade 2: Painful erythema and swelling of the hands or feet and/or discomfort affecting the patient's normal activities First occurrence Continue treatment with NEXAVAR and consider topical therapy for symptomatic relief.
If no improvement within 7 days, see below
No improvement within 7 days or second or third occurrence Interrupt NEXAVAR treatment until toxicity resolves to grade 0–1
When resuming treatment, decrease NEXAVAR dose by one dose level (400 mg daily or 400 mg every other day)
Fourth occurrence Discontinue NEXAVAR treatment
Grade 3: Moist desquamation, ulceration, blistering or severe pain of the hands or feet or severe discomfort that causes the patient to be unable to work or perform activities of daily living First or second occurrence Interrupt NEXAVAR treatment until toxicity resolves to grade 0–1
When resuming treatment, decrease NEXAVAR dose by one dose level (400 mg daily or 400 mg every other day)
Third occurrence Discontinue NEXAVAR treatment
cancer-related fatigue

Cancer-related fatigue is a multifactorial condition that affects cancer patients before the beginning of therapy, increases during therapy and can persist thereafter. In patients with HCC, the fatigue can be related to liver cirrhosis and cancer. Moreover, treatment-related fatigue may require dose modifications or treatment interruptions. However, the management strategies for preventing or reducing the severity of targeted therapy-related fatigue described in literature were experience-based rather than evidence-based.

Some of the recommendations for managing fatigue are based on ruling out or treating hypothyroidism, anemia, depression and malnutrition. In addition to a possible benefit for treatment-related fatigue, prevention of malnutrition is particularly important in cirrhotic patients with HCC during sorafenib treatment, since reducing the risk of hypoalbuminaemia and muscle catabolism prevents the appearance of ascites and encephalopathy. Treatment-free intervals and dose reductions may be considered in case of grade 3/4 fatigue.

diarrhea

It is important to educate patients on the occurrence and presentation of diarrhea during sorafenib therapy, since an early recognition of this AE may prevent severe diarrhea and its complications.

Sorafenib-induced diarrhea is usually treated with loperamide, based on experience and analogy with chemotherapy-induced diarrhea rather than on clinical studies. In addition to general measures to improve diarrhea such as a low-fiber diet and increased liquid assumption, in cirrhotic patients, lactulose should be stopped, if taken. Dehydration and electrolyte disturbances must be rapidly corrected to avoid the appearance of ascites, renal insufficiency and encephalopathy in cirrhotic patients. For grade 2–4 diarrhea, treatment-free intervals and/or dose reductions may be necessary [4].

sorafenib in patients with Child-Pugh B cirrhosis

It is widely accepted that the natural history of HCC is markedly related to liver function, with a median survival of untreated HCC ∼2.5 times lower in patients with Child-Pugh B cirrhosis versus those with Child-Pugh A cirrhosis [12]. Moreover, liver function may alter the safety of systemic treatments, thereby diminishing the clinical benefit of treated cirrhotic patients [13].

In the SHARP and the Asia-Pacific trials, more than 95% of patients were classified as having Child-Pugh A cirrhosis [4, 5] and the potential benefits of sorafenib in Child-Pugh B patients could not be investigated in those trials. On these bases, a deeper evaluation of the clinical outcomes of Child-Pugh B patients with advanced HCC treated with sorafenib has been advocated [14,15].

Four main studies reported data on patients with Child-Pugh B cirrhosis [12, 16–19].

Hollebecque et al. [13] reported the results of a prospective experience on sorafenib efficacy in 120 patients with advanced HCC and 20 of them had Child-Pugh B cirrhosis. The OS in the cohort was 11.1 months with a significantly longer median survival in Child-Pugh A patients than Child-Pugh B patients (13 versus 4.5 months, P = 0.0008). However, statistical analysis did not disclose any correlation among Child-Pugh class and TTP, frequency of AEs and discontinuation of sorafenib. The authors suggested that the shorter OS in Child-Pugh B patients could be attributed, at least in part, to poorer liver function.

Similar results were reported by Kim et al. [16] in an Asian cohort of 225 patients with HCC evaluated according to Child-Pugh score (68 with Child-Pugh B). The disease control rate was higher in patients with Child-Pugh A than Child-Pugh B cirrhosis, but did not differ among patients with Child-Pugh score B7 and those with Child-Pugh score B8 or B9. No differences in the rate of grade 3/4 AEs were reported among patients with different Child-Pugh classes. The authors concluded that patients with Child-Pugh score B7 can be included in future clinical trials, in order to collect further and robust evidence on the treatment with sorafenib in this group of patients. Similar figures on the tolerability were observed by Ozenne et al. [17] in a small cohort of 50 patients with HCC that included 17 patients with a Child-Pugh B cirrhosis.

In the second interim analysis of the GIDEON study, 368 (23%) of 1571 analyzed patients were classified in Child-Pugh B class and 35 patients (2%) in Child-Pugh C class [18]. Overall, sorafenib demonstrated a comparable safety profile in Child-Pugh A and Child-Pugh B patients (Table 3), with the exception of a greater percentage of Child-Pugh B patients who discontinued sorafenib for AEs (38 versus 24%) or who experienced severe AEs (15 versus 8%). In addition, on-treatment deaths were more frequent in Child-Pugh B patients (34 versus 16%), but this finding is likely to be related to severity of liver disease in Child-Pugh B patients.

Table 3. Overview of treatment-emergent safety data by Child-Pugh status in the second interim analysis of the GIDEON study [16]a, reproduced with permission

% of n
Totalb (n = 1571) Child-Pugh A (<7) (n = 957) Child-Pugh B (7–9) (n = 367) Child-Pugh C (>9) (n = 35)
AEs (all grades) 83 82 89 86
Drug-related AEs (all grades) 64 67 63 46
AEs (grade 3/4) 30 29 31 34
Drug-related AEs (grade 3/4) 23 24 22 23
SAEsb 37 29 56 63
Drug-related SAEsc 9 8 15 6
AEs resulting in permanent discontinuation of sorafenibd 28 24 38 51
Deathse 22 16 34 37

aData at study entry.

bChild-Pugh status missing or not evaluable for 56 patients.

cA SAE is defined as any AE occurring at any dose that results in any of the following outcomes: death, life-threatening, hospitalization or prolongation of existing hospitalization, persistent or significant disability/incapacity, congenital anomaly/birth defect and medically important event.

dAny AE.

eTreatment-emergent deaths occurring up to 30 days after last sorafenib dose.

AEs, adverse events; SAEs, serious adverse events.

Pressiani et al. [19] have reported the clinical outcomes obtained in a population of 300 consecutive patients with either Child-Pugh A or Child-Pugh B treated with sorafenib. For patients with Child-Pugh A versus B status, progression free survival was 4.3 versus 2.1 months, TTP was 4.2 versus 3.8 months and OS was 10.0 versus 3. 8 months, and the AE profile was similar in the two groups: these findings suggest that patients with Child-Pugh B liver function can tolerate treatment and may still benefit from sorafenib [19].

As a whole, data collected on the safety of sorafenib in Child-Pugh B patients seem to suggest the potential feasibility of this treatment in this population, taken into account that poorer clinical outcomes are to be expected due to worse liver function. However, more robust studies are necessary before confirm or discard the use of sorafenib in this subset of patients.

dose escalation/reduction with sorafenib

The potential efficacy of sorafenib dose escalation has been reported by the research group of Santoro [20]. In this phase II, randomized trial, 101 patients (selected from the previously described population of 300 patients [19]) with progression of HCC after sorafenib treatment at standard dose (400 mg bid) were assigned to increased-dose sorafenib (600 mg bid) plus best supportive care or to best supportive care alone. Overall, increased-dose sorafenib showed a trend toward an improved progression-free survival (HR: 0.67, 95% CI: 0.43–1.06, P = 0.089), TTP (HR: 0.59, 95% CI: 0.33–1.05, P = 0.070) and OS (HR: 0.71; 95% CI: 0.47–1.08, P = 0.107) versus best supportive care alone, although the results did not reach statistical significance. No differences in the safety profile and in the incidence of AEs were reported between the two arms. According to these results, the authors suggested that increased or standard dose of sorafenib beyond progression should be tested in larger phase II–III trials.

In another preliminary experience on 42 HCC patients, conducted in a clinical-practice setting, Sacco et al. [21] have applied a ‘rump-up’ dosing strategy, which consisted in the administration of sorafenib at a starting dose of 400 mg/day; in the absence of toxicity, this dosage was gradually increased to 800 mg/day after 3 weeks. Despite the number of patients treated with this strategy was limited (n = 13), the clinical outcomes observed following the rump-up administration of sorafenib were comparable with those reported in the overall population, and no grade 3/4 AEs were observed in the rump-up group.

search for biomarkers of response

Biomarkers able to predict patient prognosis or response to therapy may represent a major advance toward a more personalized, tailored treatment in cancer patients [22]. However, HCC is a highly heterogeneous disease and the identification of biomarkers is complex and has been poorly explored so far [22]. The recent EASL-EORTC Clinical Practice Guidelines pointed out that further research in this field is necessary [2].

Llovet et al. [23] have recently reported the results of the analysis on 10 plasma biomarkers potentially implicated in the pathogenesis of HCC and in the response to sorafenib treatment conducted in 491 patients at baseline and in 305 after 12 weeks of treatment in the SHARP trial. The results documented a significant correlation between two angiogenesis biomarkers, Ang2 and VEGF, and survival. In fact, the median survival of patients assigned to sorafenib with low- and high-baseline Ang2 concentrations was 14.1 and 6.3 months, respectively, and the median survival of patients with low- and high-baseline VEGF concentrations was 10.6 and 6.2 months, respectively. None of the plasma biomarkers tested reached statistical significance in predicting response to sorafenib, although a trend toward an enhanced survival benefit from sorafenib was observed in patients with high s-c-KIT or low hepatocyte growth factor concentrations at baseline.

The lack of significant predictors of response to sorafenib was confirmed in another subanalysis of the SHARP trial published by Raoul et al. [24]. In this post hoc analysis, 602 patients were grouped by baseline concentrations of alanine aminotransferase/aspartate aminotransferase, α-fetoprotein (AFP) and bilirubin. Overall, all these markers were associated with a shorter OS in both the sorafenib and the placebo arm, and no differences in the safety profiles were observed among patients with normal versus elevated concentrations of any of these biomarkers. These findings suggest that sorafenib is safe and effective regardless of baseline alanine aminotransferase/aspartate aminotransferase, AFP or bilirubin concentrations. A similar subset analysis of the Asia-Pacific trial reached the same result [25].

Personeni et al. [26] have investigated the prognostic usefulness of a serum AFP response, defined as a >20% decrease in AFP during 8 weeks of treatment with sorafenib and compared it with the RECIST criteria. In total, 32 of 85 patients (37.6%) were classified as AFP responders, whereas 58 of 82 patients (70.7%) achieved disease control according to the RECIST criteria. Statistical analysis showed that only AFP response (HR = 0.52; P = 0.009) and Cancer of the Liver Italian Program dichotomized stage (HR = 0.42; P = 0.002) are prognostic factors of survival. According to these findings, authors concluded that the assessment of AFP response may be considered as an alternative to RECIST to monitor sorafenib activity in HCC [26].

conclusions

Sorafenib was the first agent that demonstrated a benefit on survival of patients with advanced HCC and is currently the standard treatment of this disease.

Despite the robustness of the results collected in randomized clinical trials, which represent the basis for the evaluation of efficacy and safety for each new drug, the importance of observational studies and clinical practice experience is increasing in the current scientific debate. In fact, observational studies offer a chance to unravel the safety and toxicity of a given drug in clinical practice and are able to expand upon the findings of phase III trials.

The main clinical practice studies conducted so far, namely the GIDEON and SOFIA studies, confirm the benefit of sorafenib on OS, which was previously observed in RCTs. The safety profile of sorafenib was similar, although a slightly higher rate of AEs and need for dose reduction was reported when compared with the landmark phase III trials. However, this finding may be attributed, at least in part, to the presence of multiple concomitant conditions in patients included in the observational experiences. In addition, a proper management of sorafenib-associated AEs reduces the risk of dose reductions and/or treatment interruptions, thus optimizing the clinical benefits associated with this molecule.

The results of the global GIDEON study, albeit still preliminary, suggest that whenever possible, full dose of sorafenib should be maintained. However, if severe AEs occur, dose could be reduced without decreasing effectiveness, as documented in the SOFIA study. It will be of great interest to identify the clinical, laboratory and genetic characteristics of these patients.

New indications and treatment modalities of sorafenib are being explored by current research. In particular, the effectiveness and safety of this molecule in Child-Pugh B patients deserve, in our opinion, further investigations. The results collected show poorer outcomes in patients with Child-Pugh B cirrhosis treated with sorafenib, when compared with patients with Child-Pugh A cirrhosis. However, this finding can be likely attributed to a more severe liver dysfunction and more compromised conditions of these patients and not to an effect of the drug itself. Noteworthy, available evidence is consistent in showing that the safety profile of sorafenib is comparable in Child-Pugh A and Child-Pugh B patients. An alternative treatment approach could be the administration of increased-dose sorafenib in patients with HCC progression, but this therapeutic scheme has been investigated only in one trial, and therefore, we believe that additional research on its efficacy and safety is advisable.

Lastly, the results of subset analyses of the registrative trials consistently show that the efficacy and safety of sorafenib are maintained irrespective of several biochemical parameters observed at baseline. This result supports the use of sorafenib in different classes of liver disease severity. However, we think that, in the future, the identification of biomarkers predicting prognosis of HCC and/or response to sorafenib or other treatments for this condition may facilitate a more personalized treatment of oncological patients. Further investigation on the potential use of sorafenib in the adjuvant setting is ongoing (the STORM study; NCT00692770), and it will provide new information on the use of sorafenib after surgical resection or local ablation.

funding

Editorial assistance was provided by Luca Giacomelli, PhD, on behalf of inScience Communication, Springer Healthcare; this assistance was funded by Bayer Italy.

disclosure

CV has received research funding from Bayer. Other authors declare no conflict of interest directly relevant to this paper.

references

Source

June 9, 2013

A Risk for Hepatocellular Carcinoma Persists Long-term After Sustained Virologic Response in Patients With Hepatitis C-Associated Liver Cirrhosis

Provided by NATAP

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"To conclude, we found a reduced but persistent long-term risk of developing HCC after achievement of SVR in patients with HCV-related cirrhosis. This risk persisted at least 8 years after SVR had been achieved in some patients. This indicates that continued surveillance for HCC should be maintained during prolonged time periods.....The duration needed for long-term surveillance for HCC after SVR requires further studies"......from jules: it is well considered that if a patient has cirrhosis & then achieves SVR they should receive followup forever every 6 months with an MRI

Clinical Infectious Diseases Advance Access published May 14, 2013

Soo Aleman,1,2 Nogol Rahbin,1 Ola Weiland,2 Loa Davidsdottir,1 Magnus Hedenstierna,2 Nina Rose,1 Hans Verbaan,4 Per Stal,1 Tony Carlsson,2 Hans Norrgren,5 Anders Ekbom,3 Fredrik Granath,3 and Rolf Hultcrantz1

Departments of 1Gastroenterology and Hepatology, 2Infectious Diseases, and 3Clinical Epidemiology, Karolinska Institutet/Karolinska University Hospital, Stockholm; and Departments of 4Medicine and 5Infectious Diseases, Skane University Hospital, Lund, Sweden

Abstract

Background. The long-term effect of sustained virologic response (SVR) to antiviral therapy on the risk of developing hepatocellular carcinoma (HCC), liver complications, liver-related death, and overall death in hepatitis C virus (HCV)-infected patients with liver cirrhosis is not fully known.

Methods. These risks were evaluated during long-term follow-up in 351 patients with HCV-related cirrhosis. One hundred ten patients with SVR, 193 with non-SVR, and 48 who were untreated were included in a multicenter cohort that was initiated in 2001 and prospectively followed up for a mean of 5.3 (SD, 2.8) years. Complementary follow-up data from national registries were used to minimize the loss of patients during follow-up.

Results. Six patients with SVR developed HCC at 0.04, 0.64, 2.4, 7.4, 7.4, and 7.6 years, respectively, after achieving SVR. The incidences of HCC, any liver complication, liver-related death, and overall death per 100 person-years were significantly lower in SVR time with 1.0, 0.9, 0.7, and 1.9, compared to 2.3, 3.2, 3.0, and 4.1 in non-SVR and 4.0, 4.9, 4.5, and 5.1 in untreated time. The long-term consequences did not decline significantly after >3 years versus during the first 3 years of follow-up.

Conclusions. The risk for HCC, liver decompensation, and death in patients with liver cirrhosis related to HCV was markedly reduced after SVR, but a long-term risk of developing HCC remains for up to 8 years. Cirrhotic patients with HCV who achieve SVR should therefore maintain long-term surveillance for HCC. Future studies aimed to better identify those with remaining long-term risk for HCC are needed.

Hepatitis C virus (HCV) infection is a major cause of cirrhosis and hepatocellular carcinoma (HCC) worldwide. Patients with liver cirrhosis have a higher risk of developing HCC than patients with less advanced fibrosis [1]. Hence, in cirrhotic patients, surveillance for HCC every 6 months by ultrasound is recommended [2].

Since the introduction of standard-of-care therapy with pegylated interferon (peg-IFN) and ribavirin (RBV), the rate of sustained virologic response (SVR) increased compared to earlier treatments and has further improved with the use of first-generation protease inhibitors [3-7]. Studies analyzing the impact of SVR on the risk for developing HCC, liver complications, and liver-related death in cirrhotic patients have included small numbers of patients, and many have been retrospective in design [8-13]. Furthermore, many patients have been lost during follow-up and the follow-up time has often been short. Hence, the remaining long-term risk to develop late complications needs to be better defined in patients with HCV-associated liver cirrhosis after SVR. This will have an impact on the need for HCC surveillance after SVR has been achieved.

The aim of this study was to prospectively evaluate the long-term effect of antiviral therapy on the risk of developing HCC, liver complications, and liver-related death in a cohort of 351 HCV patients with liver cirrhosis. To minimize the loss of patients during follow-up, complementary data from the national registries were used.

PATIENTS AND METHODS

Patients

Members of the Swedish Hepatitis Group were invited to participate in this multicenter study on HCV patients with liver cirrhosis designed to evaluate the risk of developing HCC, liver-related complications, and death. Patients with a diagnosis of HCV-associated liver cirrhosis, without known HCC at the time of diagnosis, were included in the Registry of Hepatitis C Cirrhosis. Patients with a diagnosis of HCC within 6 months after diagnosis of cirrhosis and those with a liver transplant were excluded. In total, 506 patients were consecutively included in the cohort during January 2001-July 2009 from 6 university hospitals in Sweden, with participating departments of gastroenterology and hepatology and infectious diseases at Karolinska University Hospital, Malmo University Hospital, Lund University Hospital, Sahlgrenska University Hospital, and Uppsala University Hospital.

Questionnaires at the time of diagnosis of cirrhosis and at follow-up were collected. The medical history, physical examination, biochemical tests, and virologic data were stored in a central database at the Department of Gastroenterology and Hepatology, Karolinska University Hospital, Stockholm.

All patients were anti-HCV and HCV RNA positive. The cirrhosis diagnosis was based on liver biopsies from 1984 to 2009 (n = 364 [72%]) or a clinical evaluation including biochemical parameters, clinical signs of portal hypertension, and/or radiologic findings consistent with cirrhosis. One hundred eighty-three (38%) patients were diagnosed with cirrhosis prior to 2001.

In total, 351 patients were selected from the Registry of Hepatitis C Cirrhosis for this study. The inclusion criteria were Child-Pugh class A cirrhosis without prior decompensation, defined as a history of ascites, variceal bleeding, and hepatic encephalopathy, at inclusion and no other concomitant liver diseases. Patients who lacked a Child-Pugh classification at the time of inclusion (n = 6), had coinfection with hepatitis B (n = 6) or human immunodeficiency virus (n = 5), had hemochromatosis (n = 4) or autoimmune hepatitis (n = 5), or had a Child-Pugh classification of B (n = 81) or C (n = 26) were excluded, as were Child-Pugh class A patients who had a prior history of decompensation at inclusion (n = 22). The baseline characteristics of the 351 compensated Child-Pugh class A included patients are shown in Table 1. The regional ethics committees in all participating centers approved the study.

Treatment

In Sweden, combination therapy with peg-IFN and RBV was introduced in 2000-2001. Most of our patients treated during the follow-up period thus received peg-IFN alfa-2a or 2b plus RBV according to Swedish consensus [14]. One hundred twenty-three (35%) had previously received antiviral therapy, of whom 23 (7%) had achieved SVR before their inclusion in the study. Prior treatment experience could consist of only IFN injections 3 times per week (n = 35), IFN in combination with RBV (n = 57), or experience of both therapies (n = 31).

SVR was defined as undetectable HCV RNA at end of treatment and follow-up 6 months after treatment end. The clinical routine was to also test HCV RNA at 12-18 months after end of therapy. No patient was HCV RNA positive at this time point.

Among 351 patients in this cohort, 110 (31%) patients achieved SVR, 193 (55%) were treated but failed to achieve SVR ("non-SVR"), and 48 patients remained untreated.

Quantitative and qualitative HCV RNA tests were performed with commercial assays, available at the respective hospital. At Karolinska University Hospital, HCV RNA was assessed with the Amplicor HCV test (Roche Diagnostics, Mannheim, Germany, sensitivity of 50 IU/mL) before 2000; with the Quantiplex HCV-RNA 2.0 test (Bayer Diagnostics, Emeryville, California, lower limit 0.2 mEq/mL) from 2000 to 2001; with the Quantiplex HCV RNA version 3.0 between 2001 and 2006; and with the Roche Ampliprep/Cobas TaqMan test (detection limit 15 IU/mL) after 2006.

Diagnosis of HCC, Follow-up, and Endpoints of the Study

The diagnosis of HCC was confirmed on the basis of a verified focal liver lesion by imaging techniques in accordance with the American Association for the Study of Liver Diseases and European Association for the Study of the Liver guidelines [2, 15].

The 351 patients were followed up with the start date set as the date of cirrhosis diagnosis, or at the start of this cohort on 1 January 2001, whichever occurred latest. Follow-time at risk was divided into 3 categories: non-SVR, SVR, and untreated person-time. The patients contributed to follow-up time in untreated until the first treatment. Depending on the treatment response, the patients were then contributing to either follow-up time in non-SVR or SVR person-time instead. Because patients could receive >1 treatment during the follow-up period, patients could contribute to different time categories.

The occurrence of death, liver transplant, or the end of the study period (31 July 2009) was set as the endpoint. Liver transplant was considered to be a liver-related death. All endpoint data were obtained from the detailed questionnaires and patient journals and supplemented with information from the registries, described below.

Twenty-four (7%) patients were no longer being followed up at the participating hospital at the end of the follow-up period. For these patients, complementary data on HCC, hospitalizations due to liver-related causes, or death, were retrieved from registries concerning follow-up information. Three (0.8%) patients had moved abroad during the follow-up period and were censored at their last clinical visit.

National Registries

All Swedish residents are assigned a 10-digit personal identification number that is used in all contacts with the healthcare system. To obtain complete information concerning patients no longer being followed up at participating hospitals, we sent the personal identification numbers of our patients to the National Board of Health and Welfare and received data about cancer, date, and cause of death and diagnosis at the time of hospitalization from the Cancer, Causes of Death, and National Patient (Inpatient Registry) Registries, respectively.

Reporting all newly diagnosed malignant tumors to the Cancer Registry is mandatory for both clinicians and pathologists, and >95% of all detected tumors have been reported [16]. The Swedish Registry of Causes of Death contains information on virtually all deceased persons in the country (≥99.5% since 1997), including the date and cause of death. The Swedish National Patient (Inpatient Registry) contains information about all residents who are hospitalized. The completeness of the registry since 1987 is estimated to be 98%-99%.

Statistical Analyses

Continuous variables are presented as mean (SD) or median (range) and categorical variables as frequencies (percentages). Student t test and χ2 test were used. The effect of age (50-59 vs <50 years or >60 vs <50 years), sex, alcohol consumption (<50 or >50 g/day), diabetes, and genotype (genotype 1 vs non-genotype 1) on incidence of HCC or any complication (HCC and liver complications) was tested by Cox regression.

The incidence of HCC, liver-related complications, and disease-free survival in relation to SVR status was estimated as the number of events occurring during non-SVR or untreated time, and SVR time divided by the corresponding person-time at risk in the groups. The effect of SVR was analyzed by Cox regression. The time scale used was calendar time since 1 January 2001 and SVR was considered as a time-dependent covariate. Models were also tested with adjustment for alcohol consumption, age, sex, and diabetes. Results are presented as hazard ratios (HRs) together with 95% confidence intervals, estimated using the profile likelihood method. Survival curves with respect to SVR status were estimated from the cumulative hazard functions for SVR, non-SVR, and untreated follow-up time obtained from the Cox regression models, and significant differences were assessed by testing HR = 1 using Wald tests. The effects of SVR were also analyzed comparing the risks <3 years and >3 years after SVR. All tests were 2-sided and a P value of <.05 was considered statistically significant. Data analysis was performed with SAS 9.2 software (SAS Institute, Cary, North Carolina).

RESULTS

A total of 351 patients with HCV-associated liver cirrhosis were enrolled and followed up for up to 8.6 years (mean, 5.3 [SD, 2.8] years), consisting of 110 patients with SVR and 193 patients with non-SVR and 48 untreated patients.

Incidence of HCC

Six (5%) of the 110 patients with SVR developed HCC during follow-up (after mean 5.4 [SD, 2.6] years of follow-up), corresponding to an incidence of 1.0 per 100 person-years (PY; Table 2). HCC was diagnosed in 2 patients within 1 year after SVR (0.5 and 7.7 months), and the other 4 at 2.4, 7.4, 7.4, and 7.6 years after achieving SVR. HCV RNA was tested at the diagnosis of HCC in 4 of these patients, and they were all negative. None had varices at the time of SVR or developed any other liver complications during follow-up. Among the 6 patients with HCC who had achieved SVR, 5 were male, 3 had diabetes mellitus, and 1 had history of alcohol abuse. Two patients had genotype 1a and 2 had non-genotype 1 (genotype 2 or 3a); the genotype was missing in the remaining 2 patients. One patient underwent liver transplant due to his HCC.

The incidence rate for HCC was significantly higher in non-SVR and untreated person-time with 2.3 and 4.0 per 100 PY, respectively (P = .04 and P = .03, respectively).

Only age and sex were found to be baseline factors significantly affecting the incidence of HCC (age 50-59 vs <50 years: HR, 2.45 [95% confidence interval {CI}, 1.16-5.61], P = .02; age >60 vs <50 years: HR, 3.32 [95% CI, 1.48-7.90], P = .004; male vs female: HR, 2.09 [95% CI, 1.06-4.62], P = .047). For any complication (HCC and liver complication), none of the tested baseline factors were found to significantly affecting the outcome.

Liver-Related Complications

In patients with SVR, 4 (3.6%) developed ascites, 1 (0.9%) hepatic encephalopathy, and none variceal bleeding during follow-up. Ascites was diagnosed 2, 13, 13, and 48 months after SVR had been achieved. None of these patients developed HCC, 3 were males, and none had excessive alcohol consumption or had diabetes mellitus. Two, however, had esophageal varices at the time of inclusion. One patient developed liver encephalopathy 4.1 years after SVR had been achieved.

The risk of developing any liver-related complication was significantly lower in SVR than non-SVR person-time (P = .002) and highest in untreated person-time (P = .04).

The Figure 1 shows the cumulative risk of any complication (HCC and any liver complication). The incidence rate for SVR, non-SVR, and untreated person-time was 1.9, 5.1, and 7.5 per 100 PY, respectively. The risk for any liver complication was significantly lower in SVR person-time and higher in untreated person-time, compared to the risk in non-SVR person-time (P < .0001 and P = .04, respectively).

Liver-Related and Overall Deaths

Eleven (10%) patients with SVR died during follow-up, 4 (3.6%) of liver-related causes with HCC. The causes of death for the other 7 patients were lung cancer (n = 1), pulmonary embolism (n = 1), pneumonia (n = 1), pancreatitis (n = 1), pancreatic cancer (n = 2) and, in 1, unknown. One (0.9%) patient underwent liver transplant due to HCC. Fifty-two (22%) of 241 patients lacking SVR (non-SVR and untreated) died of liver-related causes and 15 (6%) patients of other causes. Liver transplant was performed in 23 patients (10%).

The incidence rate for liver-related death was 0.7 per 100 PY in SVR patients (Table 2), which was significantly lower compared to non-SVR (3.0 per 100 PY; P = .001) or untreated (4.5 per 100 PY; P = .02) patients.

Significantly lower incidence rate for overall death was seen in SVR with 1.9 per 100 PY, compared to 4.1 per 100 PY in non-SVR person-time (P = .003). Thirty-six percent of overall deaths were due to liver-related causes in patients with SVR, whereas the majority of overall deaths (78%) consisted of liver-related causes in patients with non-SVR.

The risks for HCC, any complication, liver-related death, overall death, or any of the mentioned events were analyzed <3 years and compared to those occurring >3 years after SVR had been achieved. The cutoff time point of 3 years was chosen due to the fact that this time point made the distribution of any events similar in the 2 time periods. None of the events were significantly reduced after 3 years of SVR. A trend was noted for a decreased risk of any event, but was not statistically significant (P = .05).

The difference of risk between SVR and non-SVR/untreated person-time in outcomes remained similar when adjusted for alcohol consumption, age, sex, and diabetes mellitus (data not shown).

DISCUSSION

In this study, a total of 351 HCV-infected patients with compensated Child-Pugh class A liver cirrhosis were followed during long-term. This made it possible to evaluate the impact that SVR had on the risk to develop HCC, liver-related complications, and death. This prospectively followed cohort is to our knowledge the largest of cirrhotic HCV-infected patients with or without SVR so far studied. We found that SVR reduced the incidence of these outcomes but that the risk to develop HCC remained during prolonged time after SVR had been achieved, but on a lower level. This highlights the fact that surveillance for HCC needs to be continued during long-term, also in patients who achieve SVR. This is further strengthened by the fact that all patients who died from liver-related causes after having achieved SVR had developed HCC. On the other hand, surveillance with ultrasound is thought to be costly for society and time consuming for the individual. The duration needed for long-term surveillance for HCC after SVR requires further studies.

SVR in cirrhotic patients has generally been 10%-15% lower than in noncirrhotic patients in the pivotal clinical trials and even lower in an everyday clinical setting [17]. Pivotal treatment studies with peg-IFN in combination with RBV have often included patients with advanced fibrosis (F3) and analyzed them together with cirrhotic patients (F4). The risk of liver complications and HCC may differ in these 2 groups, and cirrhotic patients more often fail to achieve SVR than F3 patients [18]. Previous studies on the impact of SVR have often suffered from a retrospective design, included relatively few cirrhotic patients with SVR and suffered from short follow-up periods and/or significant loss of patients during follow-up [8-10, 12, 13]. The effect that SVR has on HCC has therefore yielded diverging results on the reduction of the risk of developing HCC [4-8, 15]. Two studies have shown no significant reduction to develop HCC after SVR [7, 8]. In one prospective study, including both F3 and F4 patients with a mean follow-up time of 3.5 years, the HCC incidence was significantly higher in patients lacking SVR (5.9/100 PY) than in patients with SVR (1.2/100 PY) [12]. We found that the risk of HCC was 1.0 per 100 PY in SVR patients. The risk for HCC was higher in untreated compared to non-SVR time, indicating a beneficial effect despite lack of SVR.

The time point when a new HCC was detected was within 1 year after SVR in 2 of 6 patients, possibly implicating that the cancer was already present but undetected before SVR was reached. In 3 patients, the HCC was detected late, 7 years after SVR. Hence, the risk of developing HCC can persist long-term after SVR. When analyzing the risk for HCC over time after SVR, the risk for HCC was numerically lower >3 years after SVR compared to <3 years after SVR was achieved. This difference, however, was not statistically significant. The lack of significance could have been caused by the low number of events after achievement of SVR, rendering this analysis a low statistical power.

A significantly lower incidence of liver-related complications and liver-related deaths after SVR has been noted in several studies [8-10, 12, 18-21], similar to our study. In meta-analyses with pooled data from both Asian and Western European studies, a reduced risk of HCC, liver-related morbidity, and mortality has been seen in patients with SVR [22, 23]. The risk for overall death was also significantly reduced in patients with SVR in our study, with the majority of deaths non-liver related.

In our study, no patient who achieved SVR developed variceal bleeding. This is in accordance with a prospective study including 34 cirrhotic patients with SVR followed over 12 years, in which none developed de novo esophageal varices during follow-up [11]. Endoscopic surveillance in cirrhotic patients who have achieved SVR is probably not necessary.

A common problem in follow-up studies is the frequent loss of patients during follow-up [12, 18]. In the present study, dropouts were very few (0.8%). This was achieved by using the Swedish registries to clarify the outcome in patients lost from the routine follow-up.

In this study, we do not have sequential measurement of liver fibrosis after achievement of SVR. The importance of fibrosis regression with vanishing cirrhosis seen in the HCV-related cirrhosis after SVR noted in earlier studies could thus not be assessed in our study [24], and the correlation between remaining fibrosis and long-term risk for HCC could not be analyzed.

To conclude, we found a reduced but persistent long-term risk of developing HCC after achievement of SVR in patients with HCV-related cirrhosis. This risk persisted at least 8 years after SVR had been achieved in some patients. This indicates that continued surveillance for HCC should be maintained during prolonged time periods.

Source

Sustained Virologic Response for Patients With Hepatitis C-Related Cirrhosis: A Major Milestone, but Not Quite a Cure - Commentary

Provided by NATAP

Clinical Infectious Diseases Advance Access published May 14, 2013

Oscar Cruz Pereira and Jordan J. Feld
Toronto Western Hospital, University Health Network, Sandra Rotman Centre for Global Health, University of Toronto, Ontario, Canada

"Multiple studies have shown that fibrosis, and even cirrhosis, may regress after SVR. Perhaps an assessment of fibrosis after SVR would allow for better risk stratification....larger studies similar to this effort will be useful to identify high-risk patients who require ongoing HCC screening"

"Although this study focused on the risk of HCC, Hultcrantz et al also found that SVR reduced liver-related complications, liver-related mortality, and all-cause mortality. Combining these data with those from the study by van der Meer et al, as well as other published series, there is now solid evidence that SVR changes the natural history of the disease. SVR can no longer be considered a surrogate endpoint as it truly does indicate a very good long-term prognosis. However, as Hultcrantz and colleagues point out, SVR indicates viral eradication but is not a cure of liver disease. At least for now, even if they achieve SVR, patients with cirrhosis need to keep on screening"

"Hultcrantz and colleagues found that patients who were treated but did not achieve SVR had better outcomes than patients who received no treatment, again raising the question of whether unsuccessful treatment is better than no treatment. Although the rate of HCC was much higher in the untreated population than in those who were treated but did not achieve SVR, it is important to note that this was not a randomized study. Treatment was offered at the discretion of the treating physicians. It is likely that untreated patients had more advanced disease or other comorbidities that influenced both their risk of HCC and the decision to withhold therapy. Notably, they were older and a higher percentage was male and had diabetes, all risk factors for HCC development. Multiple studies have addressed the question of long-term suppressive therapy with discouraging results. Although the HALT-C trial did show a lower incidence of HCC in patients randomized to long-term low-dose peginterferon, the difference only emerged after 5-7 years of follow-up [11]. Given the rapid improvements in HCV therapy, long-term suppressive therapy with interferon to prevent HCC is not a realistic strategy."

Liver cancer is the second most common cause of cancer death worldwide, and the sixth most common in developed countries [1]. Depending on the prevalence of hepatitis C in a region, it can account for 13%-66% of cases of hepatocellular carcinoma (HCC) [2]. HCC occurs almost exclusively in patients with cirrhosis [3]; however, other factors such as the etiology of cirrhosis also play a role. For instance, the risk of HCC in patients with cirrhosis and chronic hepatitis B is 3%-8% per year, but in autoimmune hepatitis the risk is only 1.1% per year or lower [3, 4]. Thus, one would expect that curing hepatitis C might modify the risk of developing HCC.

In this issue of Clinical Infectious Diseases, Hultcrantz and colleagues report on the long-term follow-up of 351 Swedish patients with hepatitis C virus (HCV)-related Child-Pugh class A cirrhosis. All but 48 patients received interferon-based therapy, of whom 110 successfully achieved sustained virologic response (SVR) and were compared to the 193 who did not clear the virus. The authors were able to prospectively collect data during an 8-year study period, even for the 7% who were lost to clinical follow-up. This was thanks to the national registries in Sweden that capture >95% of all cases of cancer and record the cause of >99.5% of all deaths. The incidence of HCC was significantly reduced in patients who achieved SVR (1.0 per 100 person-years [PY]) compared to those who failed treatment (2.3 per 100 PY) or those who were never treated (4.0 per 100 PY). In addition, they found that patients who achieved SVR had fewer liver-related complications, liver-related deaths, and overall deaths (0.9, 0.7, and 1.9 per 100 PY, respectively) than non-SVR (3.2, 3.0, and 4.1 per 100 PY, respectively) or untreated patients (4.9, 4.5, and 5.1 per 100 PY, respectively). They were unable to identify any clear risk factors for the development of HCC or other complications after SVR. Notably, the incidence of HCC was similar in the first 3 years and the subsequent 3 years after viral clearance.

These important data add to the accumulating evidence regarding the significance of SVR. Recently, van der Meer and colleagues reported the results of an international, multicenter, long-term follow-up study of 530 patients with chronic hepatitis C and advanced fibrosis treated with interferon-based regimens [5]. During a median follow-up of 8.4 years, patients who achieved SVR had a lower incidence of HCC (0.55 vs 1.01 per 100 PY), liver failure (0.31 vs 3.62 per 100 PY), liver-related mortality (0.23 vs 3.20 per 100 PY) and, most importantly, all-cause mortality (1.01 vs 2.93 per 100 PY) than patients who did not achieve SVR [5]. The van der Meer study also included patients with only bridging fibrosis. Both studies found that patients who achieved SVR had better outcomes, but they both clearly documented that some patients were still at risk of developing HCC, with an incidence of approximately 0.5%-1% per year.

This raises a challenging issue for clinicians. These findings suggest that we may still need to screen for HCC in patients with cirrhosis even after achieving SVR. However, the reported rates are below the threshold of 1.5% per year for screening to be cost effective [6]. The current American Association for the Study of Liver Diseases (AASLD) guidelines recommend screening all patients with cirrhosis [3] based on a randomized controlled trial showing that surveillance reduced mortality by 37% in Chinese patients with cirrhosis due to hepatitis B [7], and a cost-benefit analysis showing that ultrasound was cost-effective in a mixed population of patients with cirrhosis [8]. Notably, however, although the HALT-C (Hepatitis C Antiviral Long-term Treatment Against Cirrhosis) trial showed that patients with bridging fibrosis had a 0.82% per year risk of developing HCC [9], the AASLD guidelines do not recommend screening such patients because the incidence is below the threshold of 1.5% per year [3]. Thus, although SVR did not eliminate the increased risk of HCC, it may have reduced it to a level at which routine screening of every individual may not be cost effective.

Multiple studies have shown that fibrosis, and even cirrhosis, may regress after SVR. Perhaps an assessment of fibrosis after SVR would allow for better risk stratification. Unfortunately, in the Hultcrantz et al study, fibrosis was not assessed after achieving SVR. However, in a recent long-term follow-up study from the clinical center at the National Institutes of Health, investigators estimated liver fibrosis using transient elastography (TE) in 69 patients who had achieved SVR between 1986 and 2003 [10] and were followed for a mean of 7.5 years. Of those with cirrhosis on biopsy prior to treatment, 14% had TE scores of <7.0 kPa (no significant fibrosis) in their most recent follow-up visit, suggesting that they had significant regression of fibrosis. Notably, a small number of patients (2%) appeared to have progressive disease, with mild fibrosis before treatment and high TE scores (>13.8 kPa) at last follow-up [10]. Although these patients likely had another cause for disease progression, this highlights that fibrosis improvement is not universal. Interestingly, although the distribution of fibrosis scores did not appreciably change after SVR, almost all patients had improvement in parameters of liver synthetic function and portal hypertension, such as bilirubin level and platelet count [10]. The event rate was too low (1 HCC) to determine if fibrosis regression by TE or other parameters would be helpful for risk stratification, but larger studies similar to this effort will be useful to identify high-risk patients who require ongoing HCC screening. This will likely require a collaborative effort from multiple centers to accumulate enough patients who develop HCC after SVR to identify factors and allow for risk stratification. In addition to the degree of regression of fibrosis, factors to look at may include degree of steatosis, comorbidities, and patient demographics as well as time since SVR, even though this did not appear helpful in the Hultcrantz study.

Hultcrantz and colleagues found that patients who were treated but did not achieve SVR had better outcomes than patients who received no treatment, again raising the question of whether unsuccessful treatment is better than no treatment. Although the rate of HCC was much higher in the untreated population than in those who were treated but did not achieve SVR, it is important to note that this was not a randomized study. Treatment was offered at the discretion of the treating physicians. It is likely that untreated patients had more advanced disease or other comorbidities that influenced both their risk of HCC and the decision to withhold therapy. Notably, they were older and a higher percentage was male and had diabetes, all risk factors for HCC development. Multiple studies have addressed the question of long-term suppressive therapy with discouraging results. Although the HALT-C trial did show a lower incidence of HCC in patients randomized to long-term low-dose peginterferon, the difference only emerged after 5-7 years of follow-up [11]. Given the rapid improvements in HCV therapy, long-term suppressive therapy with interferon to prevent HCC is not a realistic strategy.

Although this study focused on the risk of HCC, Hultcrantz et al also found that SVR reduced liver-related complications, liver-related mortality, and all-cause mortality. Combining these data with those from the study by van der Meer et al, as well as other published series, there is now solid evidence that SVR changes the natural history of the disease. SVR can no longer be considered a surrogate endpoint as it truly does indicate a very good long-term prognosis. However, as Hultcrantz and colleagues point out, SVR indicates viral eradication but is not a cure of liver disease. At least for now, even if they achieve SVR, patients with cirrhosis need to keep on screening.

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