February 5, 2012

New treatment for liver cancer patients

Private hospital news : 5 February 2012

BMI The Alexandra Hospital is the first hospital in the North West to provide a new, non-surgical treatment for liver cancer.

The DEBIRI (Drug-Eluting Beads delivering Irinotecan) treatment is for patients suffering from both primary, where the disease originated in the liver or secondary liver cancer - where it travelled to the liver from another organ such as the bowel or breast.

The DEBIRI treatment is minimally invasive and treats patients who have inoperable tumours by shrinking them and making surgery possible.

The procedure involves inserting a catheter – a thin plastic tube - into an artery which supplies blood to the tumour. The tumour is then injected with fluid containing microscopic chemotherapy beads, which directly attack the cancer.

At the same time, the beads obstruct the tumour’s blood supply, depriving it of oxygen and nutrients which prohibit its growth. By injecting chemotherapy directly into the liver, many of the side effects can be decreased or avoided.

The DEBIRI treatment is carried out by a multi-disciplinary team at BMI The Alexandra Hospital, lead by Consultant Medical Oncologist Dr Greg Wilson, and Consultant Interventional Radiologist Dr Finn Farquharson.

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February 4, 2012

Twelve-Week Posttreatment Follow-Up to Predict Sustained Virologic Response for Recurrent Hepatitis C Infection in Liver Recipients

Transplantation. 2012 Jan 18. [Epub ahead of print]

Campos-Varela I, Castells L, Esteban JI, Bes M, Rodríguez-Frías F, Sapisochin G, Allende H, Charco R, Esteban R.

1Liver Unit, Department of Internal Medicine, Hospital Universitari Vall d'Hebron, Institut de Recerca (VHIR), Universitat Autònoma de Barcelona, Barcelona, Spain. 2Centro de Investigación Biomédica en Red de Enfermedades Hepáticas y Digestivas (CIBERehd), Instituto de Salud Carlos III, Madrid, Spain. 3Transfusion Safety Laboratory, Banc de Sang i Teixits (BST), Centro de Investigación Biomédica en Red de Enfermedades Hepáticas y Digestivas (CIBERehd), Instituto de Salud Carlos III, Madrid, Spain. 4Biochemistry Laboratory, Hospital Universitari Vall d'Hebron, Institut de Recerca (VHIR), Universitat Autònoma de Barcelona, Barcelona, Spain. 5Liver Transplant Unit, Department of HPB-Surgery and Transplant, Hospital Universitari Vall d'Hebron, Institut de Recerca (VHIR), Universitat Autònoma de Barcelona, Barcelona, Spain. 6Pathology Department, Hospital Universitari Vall d'Hebron, Institut de Recerca (VHIR), Universitat Autònoma de Barcelona, Barcelona, Spain.

Abstract
BACKGROUND: The current standard for determining sustained virologic response (SVR) in patients treated for hepatitis C virus (HCV) infection is undetectable serum HCV-RNA 24 weeks after treatment. This study evaluates the value of HCV-RNA determination at 12 weeks posttreatment (W+12) to predict SVR in liver transplant (LT) patients treated with pegylated interferon and ribavirin for recurrent HCV infection.

METHODS: This study, performed in 2001 to 2010, included HCV-LT patients with an end-of-treatment response (undetectable serum HCV-RNA) and HCV-RNA testing at 12 and 24 weeks posttreatment (W+12/W+24). HCV-RNA was detected with a qualitative polymerase chain reaction assay (detection limit 50 IU/mL) and, when positive, measured by quantitative PCR (detection limit 600 IU/mL) up to 2006. Since 2007, a real-time PCR-based test (detection limit 15 IU/mL) has been used. The positive predictive value (PPV) was defined as the probability that SVR would occur in patients with undetectable HCV-RNA at W+12 and W+24.

RESULTS: Of 162 patients treated during the study period, 57 (35%) had end-of-treatment response and were included. Of these, 45 (79%) had SVR and 12 (21%) had virologic relapse. At W+12, HCV-RNA was undetectable in 45 (79%) patients, all of whom had SVR, yielding a PPV for SVR at W+12 of 100% (95% confidence interval, 75.8%-100%).

CONCLUSIONS: Undetectable HCV-RNA at W+12 posttreatment has a high PPV for predicting SVR. HCV-RNA testing to assess SVR at this time point seems as valid as W+24 testing and could be considered for predicting SVR in HCV-LT patients receiving treatment with pegylated interferon and ribavirin.

Source

A Score Predicting Survival After Liver Retransplantation for Hepatitis C Virus Cirrhosis.

Transplantation. 2012 Jan 19. [Epub ahead of print]

Andres A, Gerstel E, Combescure C, Asthana S, Merani S, Majno P, Berney T, Morel P, Kneteman N, Mentha G, Toso C.

1Abdominal and Transplantation Surgery, Department of Surgery, University Hospital Geneva, Switzerland. 2Clinical Epidemiology, University Hospital Geneva, Switzerland and the Division of Internal Medicine, University Hospital Geneva, Switzerland. 3Division of Transplantation, Department of Surgery, University of Alberta, Edmonton, Alberta, Canada.

Abstract
BACKGROUND: Approximately one fourth of patients transplanted for hepatitis C virus (HCV)-induced liver failure progress to cirrhosis within 5 years, potentially requiring retransplantation. Although the relisting decision can be difficult in these patients, a score could help in selection of candidates with the best potential outcomes.

METHODS: A total of 1422 HCV-positive patients having undergone a retransplantation were included in this registry-based study. A multivariate Cox regression was performed, and an Akaike procedure was applied to design a score predicting survival after retransplantation and to allow an internal validation. Retained variables were donor age (DnAge), serum creatinine (Creat), International Normalized Ratio (INR), and serum albumin (Alb) at the second transplantation, recipient age (RecAge) at the first transplantation, and the interval between both transplantations (Int).

RESULTS: The score was designed as 0.23×DnAge+4.86×log Creat-2.45×log Int+2.69×INR+0.10×RecAge-3.27× Alb+40. The receiver operating characteristic area under curve was 0.643 at 3 years, and survivals were 71%, 56%, and 37% for scores <30, 30 to 40, and >40, respectively (log rank <0.0001).

CONCLUSIONS: Overall, the proposed score is specifically designed for HCV-positive patients, accurately predicts survival after a liver retransplantation, and is helpful in the selection of candidates with the best potential outcomes.

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Medivir/Tibotec HCV Drug Development

15-Nov-11

Phase II interferon free combination study with TMC435 and PSI-7977

This interferon free phase II combination study will commence shortly. It will evaluate TMC435 and PSI-7977 in combination with and without ribavirin for 12 and 24 weeks in genotype 1 patients who had a prior null response to Peg-IFN/RBV. The study design is now posted on www.clinicaltrials.gov.

TMC435HPC2002 - Phase II Trial of TMC435 in Combination With PSI-7977 in Prior G1 Null Responders to Peg-IFN/RBV, Hepatitis C-Infected Patients: 12 and 24 weeks, with & without rbv (4 arms), INF-free study

This study is currently recruiting participants.
Verified January 2012 by Tibotec Pharmaceuticals, Ireland

TMC435HPC2002 - Phase II Trial of TMC435 in Combination With PSI-7977 in Prior G1 Null Responders to Peg-IFN/RBV, Hepatitis C-Infected Patients

HCV polymerase collaboration

TMC649128 TMC649128, the first NS5B nucleoside polymerase inhibitor under the collaboration, entered into clinical development in Q1-2011. It was safe and well tolerated at all doses tested for up to 14 days. However the antiviral activity failed to meet the target product profile and therefore the clinical development has now been discontinued.

Nucleotide program

The focus of HCV polymerase collaboration is now on a liver targeted nucleotide polymerase inhibitor program. A clinical candidate has been selected and the project is now in preclinical development stage.

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World Cancer Day: The Five Deadly Types of the Non-Communicable Disease

By Bhaskar Prasad 

February 4, 2012 12:35 AM EST

The World Cancer Day is observed on Feb 4 in honor of the global fight against the non-communicable disease (NCD), which claimed more than 7.6 million lives in 2008 and the World Health Organization says the number is expected to rise above 11 million by 2030.

The data from the World Health Organization Global Status Report on NCDs demonstrate that almost 80 percent of these deaths occur in low and middle income countries and a quarter happen before the age of 60.

The main types of cancer are:

Lung Cancer (1.4 million deaths)

It is the deadliest type of cancer for both men and women. Each year, more people die of lung cancer than of breast, colon, and prostate cancers combined. Cigarette smoking is the leading cause of lung cancer. The more cigarettes you smoke per day and the earlier you started smoking, the greater your risk for lung cancer. There is no evidence that smoking low-tar cigarettes lowers the risk.

Stomach Cancer (740,000 deaths)

Several different types of cancer can affect the stomach. The most common type is called adenocarcinoma, which starts from one of the common cell types found in the lining of the stomach. The rate of most types of gastric adenocarcinoma in the U.S. has gone down over the years. Experts think the decrease may be because people are eating less salted, cured, and smoked foods.

Liver Cancer (700,000 deaths)

In most cases, the cause of liver cancer is cirrhosis, which is the end result of chronic liver damage caused by chronic liver diseases. Alcohol abuse is the most common cause of cirrhosis in the U.S.

Colorectal Cancer (610,000 deaths)

This type of the cancer starts in the large intestine (colon) or the rectum (end of the colon). Nearly all colorectal cancers begin as noncancerous (benign) polyps, which slowly develop into cancer.

Breast Cancer (460,000 deaths)

This type of cancer starts in the tissues of the breast. It can start in the tubes (ducts) that move milk from the breast to the nipple. It can also begin in the parts of the breast, called lobules that produce milk.

It is urgently needed to raise awareness and to bring the growing cancer crisis to the attention of the public, government leaders, and health policymakers.

Stand Up To Cancer and the Union for International Cancer Control (UICC) are launching a Facebook app that they hope will create a digital buzz that will reduce the spread of the disease. UICC notes that urgent action against cancer is vital because of its huge impact on human suffering.

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February 3, 2012

Sarcopenia Predictive of Mortality in Cirrhosis

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For patients with cirrhosis being evaluated for liver transplant, sarcopenia linked to mortality

Last Updated: February 03, 2012.

FRIDAY, Feb. 3 (HealthDay News) -- In patients with cirrhosis being evaluated for liver transplantation, sarcopenia is associated with increased mortality and significantly lower median survival time, according to research published in the February issue of Clinical Gastroenterology and Hepatology.

Aldo J. Montano-Loza, M.D., of the University of Alberta Hospital in Edmonton, Canada, and colleagues conducted a study involving 112 patients with cirrhosis (mean age, 54 years) to quantify the incidence of sarcopenia among patients with cirrhosis undergoing evaluation for liver transplantation. The association between sarcopenia and patient prognosis and mortality was evaluated.

The researchers found that 40 percent of patients with cirrhosis undergoing evaluation for liver transplantation had sarcopenia. Of the factors studied, only Child-Pugh score, Model for End-Stage Liver Disease (MELD) score, and sarcopenia were independently associated with increased mortality on multivariate analysis (hazard ratios, 1.85, 1.08, and 2.21, respectively). Patients with sarcopenia had a median survival time of 19 ± 6 months compared with 34 ± 11 months for those without sarcopenia. A low level of correlation was seen between the L3 skeletal muscle index and MELD and Child-Pugh scores (P = 0.5 and 0.1, respectively).

"Sarcopenia is a strong and independent predictor of mortality in cirrhosis," the authors write. "Sarcopenia does not correlate with degree of liver dysfunction evaluated with conventional scores (Child-Pugh and MELD)."

Abstract
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Editorial

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Alanine Aminotransferase Levels ID Liver Disease Risk

Liver_Location

ALT can be used to separate those infected with HCV RNA from those at low risk of liver disease

Last Updated: February 03, 2012.

FRIDAY, Feb. 3 (HealthDay News) -- Alanine aminotransferase (ALT) levels can be used to discriminate between individuals infected with hepatitis C virus (HCV) RNA and those at low risk for liver disease (negative HCV RNA and hepatitis B surface antigen, low alcohol consumption, no evidence of diabetes, and normal body mass index and waist circumference), according to a study published in the February issue of Hepatology.

Constance E. Ruhl, M.D., Ph.D., of Social and Scientific Systems Inc. in Silver Spring, Md., and James E. Everhart, M.D., M.P.H., of the National Institutes of Health in Bethesda, Md., evaluated the ability of serum ALT activity to differentiate between those with and without liver disease among participants in the 1999 to 2008 U.S. National Health and Nutrition Examination Survey. Serum ALT activity was measured in 18,518 participants; of these, there were 259 cases positive for HCV RNA and 3,747 at low risk for liver injury.

The researchers found that the maximum correct classification was achieved at ALT of 29 and 22 IU/L for men and women, respectively. The cut-off for 95 percent sensitivity was ALT of 24 IU/L for men and 18 IU/L for women, while the cut-off for 95 percent specificity was 44 and 32 IU/L for men and women, respectively. For men and women, the area under the curve was 0.929 and 0.915, respectively. Application of the cut-offs with the best correct classification would identify abnormal ALT in 36.4 percent of men and 28.3 percent of women.

"In the current study, the implications were demonstrated of the application of various cut-offs of ALT to the identification of an important liver disease, hepatitis C, and the proportion of the population that would be considered abnormal," the authors write. "Based on results from this national sample, a high proportion of the U.S. population would have elevated ALT at a level necessary to detect a high proportion of persons with HCV."

Abstract
Full Text (subscription or payment may be required)

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Roundwood Doctor Nicola leads Hepatitis C reseach

PIONEERING TEAM OF VIROLOGISTS BASED IN UNIVERSITY OF BIRMINGHAM

By MYLES BUCHANAN

Wednesday February 01 2012

A DOCTOR FROM Roundwood is leading pioneering research into Hepatitis C.

Dr. Nicola Fletcher is the head of a team of virologists from the University of Birmingham who found that the endothelial cells in the brain possess the four main protein receptors necessary for the blood-brain barrier to be targeted by HCV.

The findings, which are published in Research Highlights in the journal Nature Reviews Gastroenterology and Hepatology, show that cells other than liver hepatocytes can be vulnerable to HCV infection.

Hepatitis C virus (HCV) is an RNA virus of the Flaviviridae family that poses a global health problem. Infection leads to progressive liver disease and has been associated with a variety of extrahepatic syndromes, including central nervous system (CNS) abnormalities.

Working with the Manhattan Brain Bank in New York, USA, the researchers, led by Dr. Fletcher, of the University's School of Immunity and Infection, detected HCV genomic material in the brains of four out of ten infected patients who posthumously donated brain and liver tissue.

The team went on to demonstrate in laboratory tests that brain cells isolated from the blood-brain barrier could be infected with HCV.

' This is the first report that cells of the central nervous system support HCV replication,' says corresponding author Professor Jane Mckeating, chair of molecular virology at the University of Birmingham. ' These observations could have clinical implications providing a reservoir for the virus to persist during antiviral treatment'

Dr. Fletcher was educated in St David' Secondary School in Greystones, University of Limerick, and UCD where she completed her PHD before moving to the University of Birmingham to progress her research into the Hepatitis C virus.

Speaking about the findings, she says, ' The endothelial cells make up the security system of the brain, a kind of bouncer at the door that keeps out undesirable elements. If this barrier is compromised all kinds of substances can gain access to the brain, which may explain the fatigue and other symptoms reported by Hcv-infected patients.'

The current standard of care for treating Hcv-infected patients is only partially effective, she says, so there is a considerable drive to develop agents that target viral specific enzymes as alternative therapies. 'We anticipate that such agents will be less able to cross the bloodbrain barrier compared to existing drugs. We believe our data provides a detailed mechanistic view of how an infectious agent can target the brain.' Dr. Fletcher's other passion in life in the UK is her award-winning flock of pedigree Jacob Sheep appropriately called the 'Sugarloaf Jacob Flock' which she keeps at her home in Roundwood.

- MYLES BUCHANAN

Source

Gilead Gains on Positive Data From Experimental Hepatitis C Drug

By Ryan Flinn - Feb 2, 2012 8:24 PM ET

Gilead Sciences Inc. (GILD), the drugmaker that acquired Pharmasset Inc. last month for its experimental hepatitis C treatments, gained in extended trading after saying one of the therapies produced positive clinical trial results.

Patients with genotype 1 hepatitis C -- the most common inNorth America -- had no detectable signs of the virus after four weeks on the drug, PSI-7977, Norbert Bischofberger, Gilead’s chief scientific officer, said today on the Foster City, California-based company’s earnings call. An earlier study of the medicine, gained in the $10.8 billion Pharmasset purchase, cured all patients with genotype 2 and 3.

Drugmakers including Gilead, Merck & Co., Vertex Pharmaceuticals Inc. and Bristol-Myers Squibb Co. (BMY), are striving to develop a new class of oral cures for hepatitis C to replace older drugs that require injections. Bristol-Myers recently agreed to spend $2.5 billion to buy Inhibitex Inc. (INHX) for its experimental hepatitis C therapies.

“It looks like Gilead will race ahead and continue to lead because its drug 7977 continues to support potential 100 percent cure rates,” Michael Yee, an analyst with RBC Capital Markets in San Francisco, said in an interview. “The data disclosed in genotype 1, an important population for which there was no good data yet, continues to show they can support a multibillion-dollar drug franchise with 7977.”

The drug was tested in combination with ribavirin, a medication currently used in treating the disease. The therapy was given to patients who hadn’t taken other drugs and those whose illness wasn’t helped by other treatments.

The company will present further data on the clinical trial at an infectious diseases conference next month in Seattle.

Gilead rose as much as 6.4 percent to $52.45 after closing at $49.31 in New York trading.

To contact the reporter on this story: Ryan Flinn in San Francisco at rflinn@bloomberg.net

To contact the editor responsible for this story: Reg Gale at rgale5@bloomberg.net

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Idenix Announces Removal of the Partial Clinical Hold on HCV Nucleotide Inhibitor, IDX184

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CAMBRIDGE, Mass., Feb. 3, 2012 /PRNewswire/ -- Idenix Pharmaceuticals, Inc. (NASDAQ: IDIX), a biopharmaceutical company engaged in the discovery and development of drugs for the treatment of human viral diseases, today announced that it has received notification from the U.S. Food and Drug Administration (FDA) that the partial clinical hold on IDX184 has been removed and that the Company's 12-week phase IIb study evaluating IDX184 in combination with pegylated interferon and ribavirin (PegIFN/RBV) may continue. IDX184, the Company's lead product candidate for the treatment of hepatitis C virus (HCV) infection is a pan-genotypic oral nucleotide polymerase inhibitor, and has demonstrated a high barrier to resistance in vitro and potent antiviral activity in both preclinical and clinical studies. Recently announced interim phase IIb data demonstrated favorable antiviral activity and no serious adverse events.

"After review of the interim safety and antiviral activity results from the IDX184 phase IIb clinical trial, the FDA removed the partial clinical hold and has allowed us to continue enrollment of this study," Ron Renaud, President and Chief Executive Officer of Idenix, commented. "Importantly, this allows us to expand the phase IIb program and evaluate IDX184 in interferon-free combination regimens with other direct-acting antivirals. We are working toward beginning all-oral combination trials as quickly as possible."

About IDX184 Phase IIb Study

In July 2011, Idenix initiated enrollment of treatment-naive genotype 1 HCV-infected patients into a randomized, double-blind, parallel group phase IIb clinical trial of IDX184. The study features two treatment arms, either 50 mg or 100 mg of IDX184 administered once-daily for 12 weeks, each arm in combination with PegIFN/RBV. Study objectives include safety and tolerability, and antiviral activity endpoints. The FDA has agreed to truncate the study from 100 patients, as in the original protocol, to a total of 60 patients, and to expand the enrollment criteria.

About IDX184 Partial Clinical Hold

A clinical hold originally was issued in September 2010 as a result of three cases of elevated liver function tests observed during a drug-drug interaction study in healthy volunteers of the combination of IDX184 and IDX320, an investigational HCV protease inhibitor. Idenix reviewed available data and conducted additional preclinical studies. With the help of independent experts and an external safety committee, the Company concluded that the observed toxicity was likely caused by IDX320 and submitted all data to the FDA. At the beginning of 2011, the FDA removed a full clinical hold on IDX184, and the program was placed on partial clinical hold allowing the Company to initiate the 12-week phase IIb study for IDX184 in July 2011. In January 2012, Idenix submitted interim phase IIb data for the first 31 patients to the FDA, along with a recommendation from the independent Data Safety Monitoring Board to continue the study, and requested removal of the partial clinical hold on IDX184. The partial clinical hold has now been removed allowing the initiation of dosing of an additional 30 patients in the ongoing phase IIb clinical trial and the initiation of a broad phase IIb program with IDX184 in the coming months.

About IDX184

IDX184 is an unpartnered, novel, liver-targeted nucleotide prodrug of 2'-methyl guanosine, which includes Idenix's proprietary liver-targeting technology. This technology enables the delivery of nucleoside monophosphate to the liver, leading to the formation of high levels of nucleoside triphosphate, potentially maximizing drug efficacy and limiting systemic side effects with low, once-daily dosing.

About Idenix

Idenix Pharmaceuticals, Inc., headquartered in Cambridge, Massachusetts, is a biopharmaceutical company engaged in the discovery and development of drugs for the treatment of human viral diseases. Idenix's current focus is on the treatment of patients with hepatitis C infection. For further information about Idenix, please refer to www.idenix.com.

Forward-Looking Statements

This press release contains "forward-looking statements" for purposes of the safe harbor provisions of The Private Securities Litigation Reform Act of 1995, including but not limited to the statements regarding the Company's future business and financial performance. For this purpose, any statements contained herein that are not statements of historical fact may be deemed forward-looking statements. Without limiting the foregoing, the words "expect," "plans," "anticipates," "intends," "will," and similar expressions are also intended to identify forward-looking statements, as are expressed or implied statements with respect to the Company's potential pipeline candidates, including any expressed or implied statements regarding the efficacy and safety of IDX184 or any other drug candidate; the successful development of novel combinations of direct-acting antivirals for the treatment of hepatitis C; the likelihood and success of any future clinical trials involving our drug candidates; and expectations with respect to funding of operations and future cash balances. Actual results may differ materially from those indicated by such forward-looking statements as a result of risks and uncertainties, including but not limited to the following: there can be no guarantees that the Company will advance any clinical product candidate or other component of its potential pipeline to the clinic, to the regulatory process or to commercialization; management's expectations could be affected by unexpected regulatory actions or delays; uncertainties relating to, or unsuccessful results of, clinical trials, including additional data relating to the ongoing clinical trials evaluating its product candidates; the Company's ability to obtain additional funding required to conduct its research, development and commercialization activities; the Company's dependence on its collaboration with Novartis Pharma AG; changes in the Company's business plan or objectives; the ability of the Company to attract and retain qualified personnel; competition in general; and the Company's ability to obtain, maintain and enforce patent and other intellectual property protection for its product candidates and its discoveries. Such forward-looking statements involve known and unknown risks, uncertainties and other factors that may cause actual results to be materially different from any future results, performance or achievements expressed or implied by such statements. These and other risks which may impact management's expectations are described in greater detail under the heading "Risk Factors" in the Company's quarterly report on Form 10-Q for the quarter ended September 30, 2011, as filed with the Securities and Exchange Commission (SEC) and in any subsequent periodic or current report that the Company files with the SEC.

All forward-looking statements reflect the Company's estimates only as of the date of this release (unless another date is indicated) and should not be relied upon as reflecting the Company's views, expectations or beliefs at any date subsequent to the date of this release. While Idenix may elect to update these forward-looking statements at some point in the future, it specifically disclaims any obligation to do so, even if the Company's estimates change.

Idenix Pharmaceuticals Contacts:
Kelly Barry (617) 995-9033 (media)
Teri Dahlman (617) 995-9807 (investors)

SOURCE Idenix Pharmaceuticals, Inc.

RELATED LINKS
http://www.idenix.com

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New Study of Primary Liver Cancer Seeks to Enroll 400 French Patients

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PRESS RELEASE

Feb. 3, 2012, 2:00 a.m. EST

PARIS, February 3, 2012 /PRNewswire via COMTEX/ -- 'SARAH' - a French national collaborative randomized controlled trial of radioembolization with yttrium-90 resin microspheres versus sorafenib in advanced hepatocellular carcinoma is now open for recruitment

The start of SARAH, a new randomized controlled trial to directly compare the effectiveness of radioembolization with yttrium-90 resin microspheres (SIR-Spheres® microspheres; Sirtex Medical Limited, Australia) versus sorafenib (Nexavar®, Bayer HealthCare Pharmaceuticals, Germany), a systemic therapy that is the current standard of care for patients with non-surgical advanced hepatocellular carcinoma (HCC), was announced today by the principal investigator, Professor Valérie Vilgrain MD, PhD, Department of Radiology, Beaujon Hospital, Assistance Publique - Hôpitaux de Paris, Clichy and Université Paris Diderot, Sorbonne Paris Cité, France.

SARAH (SorAfenib versus Radioembolization in Advanced Hepatocellular carcinoma)is a Phase III multi-centre prospective randomized open-labelled trial, which aims to recruit 400 patients in France with advanced HCC (Barcelona Clinic Liver Cancer stage C) with or without portal vein thrombosis and no extrahepatic spread, who are ineligible for surgical resection, liver transplantation or radiofrequency ablation; or whose disease has progressed or recurred after previous therapies.[1]

The primary goal of the study will be to assess if radioembolization with yttrium-90 resin microspheres provides an increased survival benefit compared to sorafenib in patients with advanced HCC.

Professor Vilgrain said: "Around 20 specialist cancer centres throughout France will be involved in this trial. SIR-Spheres microspheres were selected for the test arm of this collaborative trial, which is being promoted by the 'Assistance Publique - Hôpitaux de Paris'."

In patients with advanced HCC, sorafenib is now the standard treatment. Its use is associated with an increased median overall survival (from 8 to 11 months in the SHARP trial) but 80% of patients also experience treatment-related adverse events.

Selective Internal Radiation Therapy (SIRT), also known as radioembolization, is a novel treatment for inoperable liver cancer that delivers high doses of radiation directly to the site of tumours. It is a minimally-invasive treatment, in which millions of radioactive SIR-Spheres microspheres (diameter between 20-60 microns) are infused via a catheter into the liver, where they selectively target liver tumours with a dose of internal radiation up to 40 times higher than conventional radiotherapy, while sparing healthy tissue. There is a growing interest in radioembolization using yttrium-90 resin microspheres in this patient population, based on a substantial number of open-label single-group studies as well as a large multi-centre European analysis[2] of the long-term outcomes related to survival and safety of radioembolization using SIR-Spheres microspheres in patients with inoperable HCC. In 13 open-label single-group studies totalizing 400 patients with advanced HCC, the combined estimation of the median overall survival after radioembolization with yttrium-90 microspheres was of 15 months (min-max:7 to 27 months).

SIR-Spheres microspheres are approved for use in Australia, the European Union (CE Mark), New Zealand, Switzerland, Turkey and several other countries including in Asia (e.g. India, Korean, Singapore and Hong Kong) for the treatment of unresectable liver tumours. SIR-Spheres microspheres are also indicated in the U.S. for the treatment of non-resectable metastatic liver tumours from primary colorectal cancer in combination with intra-hepatic artery chemotherapy using floxuridine.

Professor Vilgrain said that: "The SARAH trial is testing the hypothesis that radioembolization using yttrium-90 resin microspheres can increase the median overall survival with fewer side effects and/or a better quality of life in comparison with sorafenib. We hope that the results of this study will help improve the prognosis for these difficult to treat patients".

About Hepatocellular Carcinoma

Hepatocellular carcinoma (HCC) occurs in people whose livers have become severely damaged or cirrhotic, due to conditions such as hepatitis and alcoholism. It is one of the ten most-common cancers in the world, with nearly 750,000 cases diagnosed annually, and the third-leading cause of cancer deaths.[3] It occurs with greatest frequency in regions where viral hepatitis B or C aremost often diagnosed, such as in Asia Pacific and Southern Europe.

Hepatocellular cancer can be cured by surgery, either by resecting the diseased parts of the liver, or by transplantation with a liver from a healthy donor. These interventions, however, are inappropriate for the great majority of patients, whose survival may range from a few months to two or more years depending largely on the state of their liver at the time of their diagnosis and the extent of tumour invasion.

References:

SorAfenib versus Radioembolization in Advanced Hepatocellular carcinoma (SARAH): http://clinicaltrials.gov/ct2/show/NCT01482442.

Sangro B, Carpanese L, Cianni R et al on behalf of European Network on Radioembolization with yttrium-90 resin microspheres (ENRY). Survival after [90]Y resin microsphere radioembolization of hepatocellular carcinoma across BCLC stages: A European evaluation. Hepatology 2011; 54: 868-878.

GLOBOCAN. Liver Cancer Incidence and Mortality Worldwide in 2008. http://globocan.iarc.fr/factsheets/cancers/liver.asp accessed 28 June 2011.

SOURCE Sirtex Medical Limited

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February 2, 2012

HIV/AIDS prevention in Chicago brings testing to drugstores and barber shops

AIDS-DN

David Nelson/MEDILL

The AIDS Foundation of Chicago is working to bring testing to an array of sites.

by David B. Nelson
Feb 02, 2012

Medical researchers continue to hunt for a cure for what some might call the polio of our time: HIV/AIDS. But innovative testing and health programs to prevent HIV/AIDS are launching in Chicago and other cities.

“I think what all these initiatives are trying to do is normalize testing,” said Johnathon Briggs, vice president of communications at the AIDS Foundation of Chicago. “We’re focusing on non-traditional venues, places like clubs, businesses, barber shops, fairs,” he said.
The foundation organized testing events at three Walgreens in the Chicago area to coordinate with National HIV Testing Day on June 27th. The project will return this June and beyond.

“We didn’t expect that there’d be people who were already positive coming to us,” Briggs said. “These people knew they were HIV positive but wanted to finally get proper care." Briggs said foundation volunteers refer people all year long to healthcare specializing in HIV/AIDS treatment.

The AIDS Foundation is also arranging for testing at public aid sites, such a food stamp offices in the Chicago area.

In Washington, D.C. drivers waiting for services at the Department of Motor Vehicles can get an oral rapid test, which gives results within 20 minutes.

“We’re also equipped with trained HIV counselors in case a person is found to be infected,” said Michael Kharfen, bureau chief of community outreach at the D.C. department of health.
The testing, a public-private partnership between the department of health and the department of motor vehicles, has proven extremely successful.

“Our initial goal was to provide testing for up to 3,000 individuals,” Kharfen said, “or roughly 15 percent of individuals who visit our branch. In the first full year, we provided testing to over 5,000 people.”

“You can save other people's lives, but you can also save your own,” said Briggs.

People infected with HIV who don’t know they have the virus create a risk for doctors and the public as well as themselves, he said.
“They’ve never been tested because they’ve never perceived themselves at risk,” said Dr. Robert Hirschtick of Northwestern Memorial Hospital, a part-time specialist in HIV/AIDS. Hirschtick, who specializes in infectious disease, said, “When most people first get infected, they brush off the symptoms by saying they have the flu. These can be fatigue, fever, achiness, sore throat, and people think they just had a simple virus. They may not have those symptoms again for 10 years.”

The Chicago Department of Public Health also has begun a Get Tested Chicago program which promotes testing for not only HIV, but also various STIs (Sexually Transmitted Infections). The publicity blitz has hit the city in the form of public service announcements on both English and Spanish-speaking radio and television channels, as well as billboards on Clark Street and Diversey Avenue and 95th Street and Stony Island Avenue.

“Usually if you have on STI, it puts you at greater risk because of the sores associated with herpes, or the lesions with syphilis or gonorrhea,” said Briggs.

“Behaviorally, if you’re already having sexual activity that’s less than safe, you’re going to be exposed to multiple infections,” added Dr. Hirschtick. “But biologically you’re at risk without that natural protective barrier.”

An estimated 34 million people around the world currently live with HIV/AIDS, according to a study by AVERT, an international charity. In the same year, 2.7 million more people were infected, and 1.8 million lost their lives.

Despite these staggering numbers and with no real cure or vaccine in sight, activists remain optimistic.

“We’ve started to see that once people are infected, and know they are, they change their behavior,” said Briggs. “They want to make sure they don’t spread it to anyone else. And if they start early and adhere to a treatment regiment, they can reduce that spread. And this is a wonderful thing.”

Source

Stem Cells Could Advance Hepatitis Research

MIT-250

An image of hepatitis C Image Source: MIT

Drug Discovery & Development - February 02, 2012

Researchers from Massachusetts Institute of Technology (MIT), Rockefeller University, and the Medical College of Wisconsin have developed a way to establish a hepatitis infection in liver-like cells from induced pluripotent stem cells (iPSCs), enabling scientists to study how genetic differences produce varying responses in patients infected with hepatitis C.

Sangeeta Bhatia, a professor of health sciences, technology and electrical engineering, and computer science at MIT and Charles Rice, a professor of virology at Rockefeller University, reported that they could induce liver cells to grow outside the body by growing them on micropatterned plates that direct their organization. The liver cells can be infected with hepatitis C, but they cannot be used to proactively study the role of genetic variation in viral responses because they come from organs that have been donated for transplantation and represent only a small population.

To make cells with more genetic variation, Bhatia and Rice teamed up with Stephen Duncan, a professor of human and molecular genetics at the Medical College of Wisconsin who showed he could transform iPSCs into liver-like cells.

MIT postdoc Robert Schwartz and graduate student Kartik Trehan took the liver-like cells and infected them with hepatitis C. To confirm that infection had occurred, the researchers engineered the viruses to secrete a light-producing protein every time they went through their life cycle.

The researchers’ goal is to take cells from patients who had unusual reactions to hepatitis C infections, transform those cells into liver cells, and study their genetics to see why they responded the way they did. “Hepatitis C virus causes an unusually robust infection in some people, while others are very good at clearing it. It’s not yet known why those differences exist,” Bhatia says.

One potential explanation is genetic differences in the expression of immune molecules such as interleukin-28, a protein that has been shown to play a role in the response to the hepatitis infection. Other possible factors include cells’ expression of surface proteins that enable the virus to enter the cells, and cells’ susceptibility to having viruses take over their replication machinery, and other cellular structures.

The research was published in the Proceedings of the National Academy of Sciences.

Release Date: Feb. 1, 2012
Source: Massachusetts Institute of Technology

Source

UCLA researchers identify peptide that inhibits replication of hepatitis C virus

By Kim Irwin  February 02, 2012

Researchers from UCLA's Jonsson Comprehensive Cancer Center have identified a cell-permeable peptide that inhibits a hepatitis C virus protein and blocks the viral replication that can lead to liver cancer and cirrhosis.

The finding by Dr. Samuel French, a UCLA assistant professor of pathology and senior author of the research, builds on previous work by French's laboratory that identified two cellular proteins that are important factors in hepatitis C virus infection.

In that earlier research, French and his team set out to identify the cellular factors involved in hepatitis C replication. Using mass spectrometry, they found that heat-shock proteins (HSPs) 40 and 70 were important for viral infection. HSP 70 was previously known to be involved, but the study linked HSP 40 for the first time to hepatitis C infection. The researchers further showed that the natural compound quercetin, which inhibits the synthesis of these proteins, significantly inhibited viral infection in tissue culture.

In the current study, published Jan. 30 in the peer-reviewed journal Hepatology, French and his team demonstrated that the viral, non-structural protein 5A (NS5A) directly binds to HSP 70, and they mapped the site of the NS5A–HSP 70 complex on NS5A. While HSP 70 was previously shown to bind to NS5A in cells, a direct NS5A–HSP70 interaction and complex formation was established in this study. In an effort to stop this interaction, the researchers tested peptides that might inhibit HSP 70.

"This is important because we've developed a small peptide which binds to that site and blocks the interaction between the proteins that is important for viral replication," French said. "This is another, potentially highly efficacious way to block replication of hepatitis C."

An estimated 160 million people worldwide are infected with hepatitis C, and the conventional treatments — interferon and ribavirin — can have significant side effects. A new drug targeting cellular proteins rather than viral proteins would be a valuable addition to the treatment arsenal, French said.

"We were surprised that this peptide works this well," he said. "While its mechanism is different, the activity of this peptide is comparable to other newly developed antivirals."

The study, done in tissue culture, shows that the peptide gains entry into the cell easily and blocks the cascade of cellular events that allows the virus to replicate, French said. Blocking the HSP 70 protein rather than a viral protein also reduces the chance of patients with the hepatitis C virus developing resistance to the peptide.

"There's no direct pressure on the virus, so it is less likely to mutate and develop resistance," French said. "The goal is to achieve a sustained response, essentially a cure, meaning there is no more virus replication. There are a lot of drugs coming out now that are designed to stop hepatitis C replication, but resistance is still an issue. About 10 to 20 percent of patients on the new drugs become resistant. This new peptide may help combat resistance."

Going forward, French and his team are testing variants of the newly discovered peptide to see if they can develop one with an even higher affinity and can decrease the size of the peptide to improve cellular penetration and liver targeting. The new and improved peptides will be tested in animal models.

This peptide "may be a candidate for hepatitis C therapy," the study states. "Considering the potency of the peptide in suppressing viral translation levels, treatment with this peptide may significantly improve the efficacy of conventional treatments in patients who become resistant to conventional therapies."

The study was supported in part by the National Institutes of Health and by the California Center for Antiviral Drug Discovery at the University of California.

UCLA's Jonsson Comprehensive Cancer Center has more than 240 researchers and clinicians engaged in disease research, prevention, detection, control, treatment and education. One of the nation's largest comprehensive cancer centers, the Jonsson Center is dedicated to promoting research and translating basic science into leading-edge clinical studies. In July 2011, the center was named among the top 10 cancer centers nationwide by U.S. News & World Report, a ranking it has held for 11 of the last 12 years.

For more news, visit the UCLA Newsroom and follow us on Twitter.

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What is Killing People With Hepatitis C Virus Infection?

From Seminars in Liver Disease

JasonGrebely, B.Sc., Ph.D.; Gregory J.Dore, M.B.B.S., Ph.D., F.R.A.C.P., M.P.H.

Posted: 02/01/2012; Semin Liver Dis. 2011;31(4):331-339. © 2011 Thieme Medical Publishers

Abstract and Introduction
Abstract

The burden of hepatitis C virus (HCV)-related morbidity and mortality continues to rise. Progression to advanced liver disease among HCV-infected individuals generally requires decades, but we are entering an era where those infected with HCV in the 1970s and 1980s are at significant risk of mortality. Liver disease has overtaken drug-related harm as the major cause of mortality in HCV-infected individuals in many settings. Direct-acting antiviral therapies have provided renewed optimism, but HCV treatment uptake will need to increase markedly to reduce liver disease mortality. This review provides updated information on the natural history of HCV, disease-specific causes of mortality among people with HCV, estimates and projections of HCV-related disease burden and mortality and individual and population-level strategies to reduce mortality. The considerable variability in mortality rates within subpopulations of people with HCV will be outlined, such as in people who inject drugs and those with HIV co-infection.

Introduction

The next decade will be a crucial period in the public health response to hepatitis C virus (HCV) infection. The rapid development of direct-acting antiviral (DAA) therapy for chronic HCV infection has brought considerable optimism to the HCV sector,[1] with the realistic hope that therapeutic intervention will soon be more effective and offer shorter treatment duration. The initial phase of combination pegylated interferon (PEG-IFN), ribavirin, and one or more DAA agents will be associated with increased toxicity and complexity of therapeutic management,[1] but over the course of this decade, strategies including interferon-free regimens with enhanced tolerability, dosing schedules, and simplified monitoring protocols should emerge.

These therapeutic advances are urgently required, as a high HCV incidence 20 to 30 years ago is now reflected in a growing burden of advanced HCV-related liver disease.[2–8] Without effective therapeutic intervention, the projected liver disease burden will continue to rise in many countries,[9–14] for at least the next one to two decades, and beyond in those settings that have experienced ongoing high-level HCV transmission.

Despite the prospect of greatly improved therapies, the challenges ahead for HCV infection are considerable. HCV treatment uptake is very low in many countries[12,15,16] and within marginalized subpopulations in countries with higher treatment uptake.[16–20] The explanations for low uptake are multifactorial[21] and not the focus of this review, but interferon-related toxicity, lack of HCV treatment infrastructure, suboptimal government subsidization programs and medical insurance coverage, as well as competing patient health and social priorities are likely to remain as contributing factors in the near future.

An improved understanding of morbidity and mortality among people with HCV infection will guide clinical management and therapy decision-making, both at the individual patient and population strategic levels. This review will provide updated information on the natural history of HCV infection, disease-specific causes of mortality among people with HCV infection, estimates and projections of HCV-related disease burden and mortality, the potential impact of HCV treatment on disease burden, and individual and population-level strategies to reduce mortality. The considerable variability in mortality rates within subpopulations of people with HCV will be outlined, and a particular focus given to the issue of competing mortality risk among people who inject drugs and those with human immunodeficiency virus (HIV) co-infection.

Natural History of Chronic HCV Infection

An estimated 75% of people who acquire HCV infection progress to development of persistent of chronic HCV infection,[22] with associated risk of progressive liver disease, cirrhosis, liver failure, or hepatocellular carcinoma.[23] The remaining 25% of people achieve spontaneous HCV clearance;[22] however, these individuals may be reinfected in the setting of ongoing HCV exposure. Although many of those with reinfection undergo subsequent spontaneous viral clearance, others develop persistent infection.[24–30]

As reviewed elsewhere,[31] the risk of HCV-related liver disease morbidity and mortality depends on several factors: (1) the duration of HCV infection;[32–34] (2) the presence of cofactors for development of liver fibrosis (such as male gender,[35–37] ethnicity,[38,39] older age at infection,[37,40–42] heavy alcohol intake,[43–45] HIV[46–49] or chronic hepatitis B virus (HBV) co-infection,[50,51] diabetes,[52,53] obesity,[54,55] and hepatic steatosis[56,57]); (3) access to HCV therapy and a favorable treatment response;[58] and (4) competing mortality risk (such as HIV[7,49] and illicit drug-related overdose[2,6,7,8,49]). The generally slowly progressive nature of chronic HCV, with limited advanced liver disease in the initial 10 to 15 years of infection (even in those individuals with cofactors for fibrosis development), means that duration of HCV infection and its surrogate, age, are key determinants of mortality risk.[31] Thus, a 50-year-old individual with 30 years chronic HCV is likely to have a higher HCV-related mortality risk, even in the absence of liver disease cofactors, than a 30-year-old individual with 5 to 10 years infection and several cofactors. However, the 50-year-old individual with 30 years infection, with heavy alcohol intake, obesity, and regular cannabis smoking (recently shown to be a liver fibrosis cofactor[59]) will be at particularly high risk.

The risk of HCV-related cirrhosis based on duration of infection has recently been estimated through large systematic reviews of disease progression studies in HCV mono-infected and HIV/HCV co-infected populations (Fig. 1).[33,34] The exponential relationship between duration of infection and cirrhosis relates to the generally protracted disease course (few very fast progressors), the cumulative nature of cirrhosis prevalence (even linear rates of progression lead to a nonlinear/upward curve for cirrhosis), and the potential for more rapid fibrosis progression at older age.

756590-fig1

Figure 1. Risk of hepatitis C virus- (HCV-) related cirrhosis based on duration of infection as estimated through large systematic reviews of disease progression studies in HCV mono-infected and human immunodeficiency virus (HIV)/HCV co-infected populations.33,34

Without therapeutic intervention, an estimated 7 to 18% of HCV mono-infected individuals will develop cirrhosis over a 20-year infection period,[31,34] and be at considerable risk of HCC (1–6% per annum) or liver failure (2–3% per annum).[31] Thus, a significant minority of people with chronic HCV (possibly 10–20%) are likely to have shortened life expectancy through HCV-related mortality. A further large proportion will have HCV-related morbidity with reduced quality of life.[60]

Causes of Mortality Among People With HCV Infection

The distribution of causes of death within a population with a chronic disease will depend on several factors: (1) disease-specific natural history and mortality risk, (2) distribution of duration of chronic disease within the population, (3) access to effective therapeutic intervention that alters natural history, and (4) age distribution and competing mortality risk within the population.

The three major disease-specific groupings for mortality among people with HCV infection are drug-related, liver disease-related, and HIV-related. Drug-related mortality includes drug overdose and suicide. Liver disease-related mortality includes decompensated cirrhosis and HCC. The mortality distribution based on these major groupings in population-based HCV notification—death registry linkage studies in Australia (New South Wales),[8] Sweden,[6] Scotland[7] and Denmark[2] (Lars Omland, personal communication, August 11, 2011) is shown in Fig. 2. In these four countries, the proportion of liver disease-related deaths varied from 19 to 24%, and for drug-related from 18 to 27%. A high proportion of drug-related mortality is consistent with injection drug use (IDU) being the major mode of HCV acquisition in all four settings. The proportion of HIV-related deaths was highest in Scotland (7.9%)[7] where 4% of the HCV-notified population was HIV co-infected, and lowest in Australia (0.4%)[8] where only 0.5% was HIV co-infected. Settings in which the HIV co-infection rate is even higher than Scotland, such as in developed countries in North America and Europe, would be expected to have larger proportions of deaths related to HIV disease.

756590-fig2

Figure 2. Contribution of human immunodeficiency virus- (HIV-) related, liver-related, drug-related, and other cause-related mortality (percentage of total number of deaths) in large population-based studies of people diagnosed with HCV infection in Australia (New South Wales),8 Sweden,6 Scotland,7 and Denmark2 (Lars Omland, personal communication, August 11, 2011).

Temporal trends in mortality rates and distribution among people with HCV infection are clearly important to monitor. From 1992 to 2006 in New South Wales, Australia, there has been a steady increase in the number of people with HCV dying from liver-related causes (Scott Walter, personal communication, August 11, 2011) (Fig. 3). In contrast, the number of deaths from drug-related causes increased rapidly during the 1990s, but has declined since 1999 due to the well-documented heroin "drought" starting in late 1999 and its likely subsequent reductions in IDU. The number of liver disease-related deaths reflects the expanding pool of chronic HCV including larger numbers with prolonged duration of infection (aging cohort effect). From 1997 to 2006 the age-adjusted liver disease mortality rate was stable (around 15 deaths per 10,000 person years), indicating no impact of improved HCV therapy.[8] The lack of an effect of HCV treatment on individual risk of liver-disease mortality probably relates to the generally low-treatment uptake rate, suboptimal efficacy (particularly among those with advanced liver disease), and the relatively short period of follow-up since improvements.

756590-fig3

Figure 3. Total number of deaths due to liver-related, drug-related, and other causes in a large population-based study of people diagnosed with hepatitis C virus (HCV) infection in New South Wales, Australia, from 1992 to 2006 (Scott Walter, personal communication, August 11, 2011).

Consistent with increasing numbers of people with HCV dying from liver-related causes, the proportion of all liver disease deaths with underlying HCV is increasing in many settings, as demonstrated in a population-based study in Scotland.[4] The burden of HCV-related advanced liver disease is also seen in increasing numbers of HCV-related liver transplants in many countries.[16]

Mortality Among Injection Drug Users With HCV Infection

The prevalence of HCV among regular IDUs and people receiving opioid substitution therapy (OST) is 60 to 80%;[61] thus, mortality studies in these populations are likely to reflect mortality among IDUs with HCV infection. Overall, mortality rates in these two populations are 1 to 2 per 100 person years,[62,63] although there is evidence that OST reduces drug-related mortality.[64,65] A study among the OST population in Australia demonstrated a considerably higher drug-related mortality rate compared with liver-disease mortality, with the ratio varying from threefold when receiving OST to 18-fold when not receiving OST.[65] However, this study covered a period during the 1990s with very high rates of drug-related mortality. A more recent mortality linkage study in New South Wales that included people on OST in 1980 to 1984 has demonstrated increasing rates of liver disease mortality, which in recent years is the leading cause of death overtaking drug-related mortality.[66] This study is of great importance as it demonstrates the impact of liver disease on mortality within an aging cohort, particularly when rates of IDU decline.

In Canada, the Vancouver community-based CHASE cohort (81% and 42% have used illicit and injection drugs in the past 6 months; HCV prevalence is 64%) has also examined all-cause and liver-related mortality through data linkage to a death registry.[49] Between 2003 and 2007, the rate of mortality was 1.9 per 100 person-years, with causes of death being 7% liver-related, 20% drug-related, 21% HIV-related, and 52% other cause-related. All-cause mortality was associated with age >50 years and HIV infection. Further, those >50 years of age were at significant risk of liver-related mortality. Given that many communities of IDUs were infected with HCV in the 1970s and 1980s, there will inevitably be greater incidence of liver disease over the next decade.

The potential future burden of advanced liver disease within aging cohorts is also reflected in an autopsy study among individuals dying from opioid toxicity in New South Wales, Australia.[67] Among 841 deaths over a 5-year period (1998–2002), the HCV prevalence was 71% and cirrhosis was present in 7%.[67] However, in those aged >44 years at death (n = 75), cirrhosis prevalence was 25%.

Mortality in Other Populations With HCV Infection

Injection drug use has been the major mode of HCV acquisition in North America, Europe, and Australia. However, in other settings, HCV transmission has largely been through non-IDU modes and the contribution of drug-related mortality is therefore considerably reduced. Thus, the impact of HCV-related disease on mortality rates and distribution is more evident.

In one study from the United Kingdom, 924 individuals who had acquired HCV infection via blood transfusion were traced during a look-back program.[68] By the end of 2004, 28% had died (255 of 924), with 26% dying of liver-related causes. The risk of liver-related mortality in those with HCV infection was three times higher than the control group of anti-HCV negative transfusion recipients. In Taiwan, 23,785 persons (aged 30 to 65 years, HCV prevalence 4.5%) were recruited from seven townships between 1991 and 1992 and followed through 2004.[69,70] Among participants with HCV mono-infection (n = 1,040), 171 died by 2004; 28% of deaths were liver-related. After adjusting for gender, age, cigarette smoking, and alcohol consumption, those with HCV mono-infection were two times more likely to die of any cause and five times more likely to die of chronic liver disease and cirrhosis compared with those without HCV. These data suggest that HCV still leads to excess mortality when drug-related and HIV effects are removed.

Mortality in People With HIV/HCV Co-infection

As reviewed elsewhere,[71] co-infection with HIV decreases spontaneous clearance of HCV infection,[72] increases HCV RNA levels,[73] increases HCV-related liver disease progression,[46,74] and reduces response to IFN-based therapy.[75,76] Since the introduction of triple-combination antiretroviral therapy in the mid-1990s, overall mortality rates among HIV-infected populations have declined dramatically.[77] Further, the distribution of causes of death have altered considerably, with a declining proportion of acquired immunodeficiency syndrome- (AIDS-) related mortality and increasing proportions of cardiovascular and liver disease mortality.[78,79] The contribution of liver disease to mortality is particularly high in settings with a high HIV/HCV co-infection prevalence;[78] however, even in Australia where only 10 to 15% of people with HIV are HCV co-infected, liver disease contributes to 11% of deaths (Kathy Petoumenos, personal communication, August 12, 2011).

Within the HIV/HCV co-infected population, factors that influence rates and distribution of mortality are access to antiretroviral therapy, access to and effectiveness of HCV therapy, drug use, and age distribution.[71] In Australia, within the HIV/HCV co-infected population there is universal access to antiretroviral therapy and high levels of uptake, relatively limited regular ICU (the vast majority are men who have sex with men), and an aging population. Among HIV/HCV co-infected patients enrolled in the Australian HIV Observational Database (AHOD; n = 3,531), liver disease has been the underlying cause in 26% of deaths (14 of 55 deaths) as compared with only 9% of deaths (16 of 181) in those with HIV alone (Kathy Petoumenos, personal communication, August 12, 2011).

Further, although the lifespan of those with HIV infection has been improved through the availability of contemporary antiretroviral therapy, the lives of those with HCV/HIV co-infection remain much shorter.[71] In Denmark, one study compared the mortality rates of 3,990 HIV-infected persons and the general population.[80] The study demonstrated that although mortality has dropped significantly in HIV-infected persons (from a high of 124 per 1000 person years in the era preceding HIV antiviral therapy to 25 per 1000 person years in 2000–2005), the impact was less pronounced among those co-infected with HCV (57 per 1000 person-years in those with HCV/HIV vs 19 per 1000 person-years among those with HIV alone). In a large study of 23,441 HIV-infected persons (76,893 person-years of follow-up), the frequency of and risk factors associated with liver-related deaths were assessed (66% with HCV co-infection, 17% active HBV co-infection).[78] Among 1246 deaths (5.3%; 1.6 per 100 person-years), liver-related death was the most frequent cause of non-AIDS related death (14.5% were from liver-related causes). Predictors of liver-related deaths were latest CD4 cell count, older age, IDU, HCV infection, and active HBV infection. Given the underreporting of liver-related disease, the actual impact is probably even greater.[71]

The Potential Impact of Improving HCV Therapy on Mortality Rates

The burden of HCV-related advanced liver disease is projected to increase further in many countries.[9,10,11,12,13,14] A major public health issue is the potential impact of improving HCV therapy on these projected increases in mortality. In HIV, the availability of effective combination antiretroviral therapy from the mid-1990s dramatically reduced the overall mortality rate and altered the distribution of causes of death (increasing proportion of non-AIDS related deaths).[78–80] The lower overall disease-specific HCV mortality risk compared with HIV and more protracted disease progression (life expectancy for chronic HCV infection is on average reduced by several years rather than decades for HIV) mean that a more-effective and more broadly implemented therapeutic intervention will be unable to have the dramatic impact that was seen for antiretroviral therapy. However, there is considerable potential for improved HCV therapeutic intervention to alter expected HCV-related mortality, particularly when the temporal "ageing cohort" effect is most pronounced.

The recent introduction of DAA therapy in combination with PEG-IFN and ribavirin will enhance treatment response rates for those with chronic HCV genotype 1 infection and shorten duration of therapy for many patients.[1] However, low HCV treatment (PEG-IFN/ribavirin) uptake rates for those with chronic HCV genotype 2/3,[12,15–20] despite treatment success of 70 to 80% and shorter duration therapy (generally 24 weeks), suggest that initial DAA-based response rate improvements will have a modest impact at the population level. Recent evidence suggests that IFN-free combination DAA therapy with high rates of treatment response is feasible.[81] Improvements in DAA therapy tolerability and dosing schedules are highly likely given agents in phase II/III development.[1] Large population-level impacts on HCV-related liver disease mortality will likely require IFN-free combination therapy that is tolerable, has a favorable dosing schedule, and is effective over a relatively short duration. Such HCV therapeutic advances are within reach over the next decade.

How can we Currently Prevent People With Hcv Infection From Dying?

The availability of PEG-IFN/ribavirin-free regimens for the treatment of HCV infection are still 5 to 10 years away and other strategies will be required if we are to stem the projected rise in liver-disease burden.[9–14] Strategies that increase the proportion of individuals diagnosed, assessed, and treated for HCV infection with currently available treatment regimens are required.

Increasing the number diagnosed with HCV infection will be important as we move forward. In the United States, the true number of people infected with HCV is likely underestimated (5.2 million as compared with previous estimates of 3.3 million from household surveys), given that homeless people, prisoners, IDUs, and other marginalized populations at high-risk of HCV are often not included in national household surveys.[82] Strategies to enhance diagnosis of HCV may include the promotion of national HCV testing guidelines,[83] and enhanced education and training of general practitioners about HCV testing and diagnostic criteria to enhance diagnosis and referral. Further strategies include the provision of mentoring diagnosis programs among general practitioners with higher case loads of HCV-infected patients,[84] an improved awareness of programs offering comprehensive multidisciplinary HCV care (particularly for IDUs), and improved pathways for referral. Incorporation of HCV assessment and treatment services into drug and alcohol treatment settings is also required.

Enhancing the proportion assessed for HCV is crucial. Non-invasive tests of fibrosis (e.g., FibroScan and FibroTest) offer considerable opportunities for enhanced screening and assessment of liver disease. In a study at one hospital in France, a cohort of 1457 consecutive patients with chronic HCV were assessed for liver fibrosis by liver biopsy, FibroScan, FibroTest, aspartate aminotransferase to platelet ratio index (APRI), and FIB-4 score to evaluate all-cause and liver-related mortality during a 5-year follow-up period.[85] Survival was significantly decreased among patients diagnosed with severe fibrosis (regardless of the noninvasive method employed) and all noninvasive methods were able to predict shorter survival times, although FibroScan and FibroTest had higher predictive values. These tools will help physicians determine prognosis at earlier stages and therefore allow enhanced targeting of therapy to those with significant liver disease.

Strategies are needed to enhance HCV assessment and treatment in the community to reduce mortality among people with HCV. Barriers to expanding HCV treatment in the community are multifactorial and include issues of access to therapy and barriers at the level of the patient, practitioner, and system.[86] HCV-infected patients often have complex social, medical, and psychiatric comorbidities, complicating decisions around care. Currently, there is limited infrastructure for the provision of HCV assessment and treatment delivery beyond well-established, hospital-based liver clinics. However, successful strategies to improve engagement with HCV services and enhance HCV assessment have been explored.[21] One model to enhance access to HCV care for underserved populations focused on the integration of community-based health centers in New Mexico using state-of-the-art telehealth technology to provide training and support for primary care providers to deliver best-practice HCV care.[87] This model was effective, with similar responses to HCV treatment observed among community-based clinics as compared with a university-based hospital.[87] This approach represents a needed change from the conventional approaches in which specialized care and expertise are concentrated in academic medical centers in urban areas.

Lastly, given that 70 to 80% of current HCV infections occur among IDUs,[88] it is clear that strategies to reduce mortality among those living with HCV will require specific strategies for this marginalized group. There is now overwhelming evidence that the treatment of HCV infection in this population is safe and effective across multiple models of care.[89] As such, older IDUs in particular will be an important group to follow clinically (perhaps with noninvasive liver fibrosis screening) and perhaps offer intensified HCV assessment and treatment in an effort to reduce liver-related mortality.

Conclusion

Our understanding of morbidity and mortality among people with HCV infection has greatly improved over the past several decades. In large population-based studies, liver-related and drug-related causes of death account for approximately one-half of all deaths (one-quarter each) among people with HCV infection. Liver disease burden continues to rise in many countries,[9–14] particularly given the low HCV treatment uptake in many countries[12,15,16] and subpopulations.[16–20] Although novel HCV treatments (particularly PEG-IFN/ribavirin-free regimens) offer great hope for reducing the future mortality associated with HCV, combinations with improved tolerability and shorter duration are still 5 to 10 years away. Current efforts will need to focus on enhancing the diagnosis, assessment, and treatment of HCV-infected patients at greatest risk of liver disease progression to reduce mortality among those living with HCV infection.

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