Showing posts with label Esophageal Varices. Show all posts
Showing posts with label Esophageal Varices. Show all posts

May 23, 2013

Spleen stiffness predicted risk for large, bleeding esophageal varices in cirrhotic patients

Provided by Healio

Sharma P. Am J Gastroenterol. 2013;doi:10.1038/ajg.2013.119.

May 23, 2013

Measuring spleen stiffness in patients with cirrhosis was an effective, noninvasive method of predicting and differentiating large and small esophageal varices and determining those at risk for bleeding, according to recent study results.

Using transient elastography (FibroScan), researchers measured spleen stiffness (SS) and liver stiffness (LS) in 200 consecutive patients with cirrhosis between September 2011 and March 2012. Other measurements conducted in some of the cohort included hepatic venous pressure gradient (HVPG), upper gastrointestinal endoscopy, LS-spleen diameter to platelet ratio score (LSPS) and platelet count to spleen diameter ratio (PSR).

Among 174 evaluable patients who met inclusion criteria and had valid LS and SS measurements, 124 (71%) had esophageal varices (EV). Seventy-eight patients had large EV (more than 5 mm); 46 had small varices (less than 5 mm). Patients with EV displayed a significant difference in median SS (54 kPa compared with 32 kPa), LS (51.4 kPa vs. 23.9 kPa), LSPS (6.1 vs. 2.5) and PSR (812 vs. 1,165) compared with patients without EV (P=.001 for all differences).

Although LS could not be used to differentiate between large and small varices (53 kPa vs. 45.3 kPa; P=.57), SS was greater and indicative of patients with large varices (56 kPa vs. 49 kPa; P=.001) compared with small varices. Patients who had variceal bleed (n=46) also had greater SS than nonbleeder (n=78) patients (58 kPa vs. 50.2 kPa; P=.001).

Among only patients who submitted to HVPG (n=52), a significant correlation was observed with SS (P=.001) and LSPS (P=.01), but not LS (P=.207).

“Given the need to screen patients with cirrhosis, noninvasive tests, such as SS, may help to identify patients at risk of having EVs, particularly large, and those at risk of bleeding,” the researchers concluded. “Spleen stiffness, along with liver stiffness measurement, could select patients with cirrhosis, who should undergo upper gastrointestinal endoscopy to decrease burden upon endoscopy units.”

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May 15, 2013

End-stage liver disease complications

Curr Opin Gastroenterol. 2013; 29(3):257-63 (ISSN: 1531-7056)

Rahimi RS; Rockey DC
aAnnette C. and Harold C. Simmons Transplant Institute, Baylor University Medical Center, Dallas, Texas bDepartment of Internal Medicine, Medical University of South Carolina, Charleston, South Carolina, USA.

PURPOSE OF REVIEW: Chronic liver disease causes significant morbidity and mortality because of any number of complications including hepatic encephalopathy, ascites, hepatorenal syndrome (HRS), and esophageal variceal hemorrhage (EVH).

RECENT FINDINGS: Predictors of response to lactulose, probiotics, and L-ornithine-L-aspartate therapy in minimal hepatic encephalopathy (MHE) have been reported. Although rifaximin was slightly more effective than lactulose in the maintenance of remission and decreased re-admission in patients with MHE, it was not as cost-effective as lactulose. Beta-blockade has been associated with paracentesis-induced circulatory dysfunction. Those who respond to nonselective beta-blockers have a predictable overall lower probability of developing ascites and HRS. Noradrenaline was as effective as terlipressin for the treatment of type 1 HRS and was less costly. Hemorrhagic ascites, defined as an ascitic fluid red blood cell (RBC) count of at least 10 000/μl, appeared to be a marker for poor outcome in patients with cirrhosis. In patients with acute EVH, band ligation, pharmacologic vasoconstrictors, and antibiotics are effective; notably, intravenous proton pump inhibitor therapy in lieu of vasoconstrictors achieved similar hemostatic effects with fewer side-effects.

SUMMARY: Refinement in the clinical management strategies for patients with cirrhosis and its complications appear to continue to contribute to improved patient outcomes.

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October 2, 2012

The Effectiveness of Current Acute Variceal Bleed Treatments in Unselected Cirrhotic Patients: Refining Short-Term Prognosis and Risk Factors

Subject Category: Liver

Am J Gastroenterol advance online publication 25 September 2012; doi: 10.1038/ajg.2012.313

Lucio Amitrano MD1, Maria Anna Guardascione MD1, Francesco Manguso MD1, Raffaele Bennato MD1, Antonio Bove MD1, Claudio DeNucci MD1, Giovanni Lombardi MD1, Rossana Martino MD1, Antonella Menchise MD1, Luigi Orsini MD1, Salvatore Picascia MD1 and Elisabetta Riccio MD1

1Gastroenterology Unit, AORN A. Cardarelli, Naples, Italy

Correspondence: Lucio Amitrano, Gastroenterology Unit, AORN A. Cardarelli, Via Morghen 92, Napoli 80129, Italy. E-mail: luamitra@tin.it

Received 29 January 2012; Accepted 10 August 2012
Advance online publication 25 September 2012

Abstract
OBJECTIVES:

The mortality from esophageal variceal hemorrhage in liver cirrhosis patients remains approximately 15–20%. Predictors of short-term outcomes, such as the hepatic venous pressure gradient, are often unavailable in the acute setting. Clinical variables seem to have a similar predictive performance, but some variables including active bleeding during endoscopy have not been reevaluated after the utilization of endoscopic banding as endoscopic procedure. In addition, patients with severe liver failure are often excluded from clinical trials. The aim of this study was to prospectively reevaluate the risk factors affecting a 5-day failure after acute variceal bleeding in unselected cirrhotic patients, managed with the current standard treatment using vasoactive drugs, band ligation, and antibiotics.

METHODS:

One hundred and eighty five patients with liver cirrhosis and variceal bleeding admitted from January 2010 to July 2011were evaluated.

RESULTS:

Hepatocellular carcinoma was present in 28.1% of cases and portal vein thrombosis (PVT) was present in 17.3% of cases. Band ligation was feasible in 92.4% of cases. Five-day failure occurred in 16.8% of cases; 12 patients (6.5%) experienced failure to control bleeding or early rebleeding, and 66.7% of patients died within 5 days. The overall 5-day mortality rate was 14.6%. By multivariate analysis, we determined that Child-Pugh class C, a white blood cell count over 10×109/l, and the presence of PVT were the only independent predictors of the 5-day failure.

CONCLUSIONS:

The prognosis of a consistent group of liver cirrhosis patients with variceal bleeding remains poor. The current treatment is highly effective in controlling variceal bleeding, but mortality is related mainly to the severity of liver failure.

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February 1, 2012

Less Terlipressin Effective in Variceal Bleeding

From Reuters Health Information

By David Douglas

NEW YORK (Reuters Health) Jan 30 - The usual three days of terlipressin treatment after ligation of bleeding esophageal varices could possibly be cut down to a single day, according to Pakistani researchers.

Overall, a 24-hour course of terlipressin was not inferior to 72 hours of treatment after endoscopic variceal band ligation (EVBL).

On the basis of this trial and a previous one, the researchers say they "may recommend shortening the duration of therapy in future guidelines."

However, Dr. Saeed S. Hamid added in an email to Reuters Health, until "others have had a chance to comment on it," he and his colleagues are not yet ready to suggest that the shorter course be the standard of care.

In a report online December 16th in the Journal of Hepatology, Dr. Hamid and colleagues note three to five days of vasoactive drugs are usually advised in addition to EVBL when varices bleed. However, the optimal duration in any given patient has not been established. Moreover, the team has found that particularly when the risk of rebleeding is low, 24 hours appears effective.

To investigate further, the researchers randomized 130 patients to receive terlipressin for 24 or 72 hours. Most patients were men and had hepatitis C virus infection. All had open-label terlipressin for the first 24 hours and then switched to active or dummy treatment.

Bleeding was controlled in everyone in the short-course group but there was one failure in the standard course group within 5 days. At 30 days, there was no difference in rebleeding rates, although the number in the control group was numerically lower: 3.1% and 1.5%.

At 30 days, there were 12 deaths from any cause (six in each group), and seven patients in each group reached the composite outcome of re-bleeding and/or death.

Overall, the short course was not inferior to longer term use.

If indeed the treatment could be safely shortened, Dr. Hamid said, there would be "significant cost implications, as well as perhaps implications on the safety of the drug without losing efficacy."

SOURCE: http://bit.ly/yYxQrf

J Hepatol 2011.

Source

November 22, 2011

Prediction of esophageal varices in hepatic cirrhosis by noninvasive markers.

Eur J Gastroenterol Hepatol. 2011 Sep;23(9):754-8.
 
 
Source
Department of Medicine, Division of Gastroenterology and Gastrointestinal Endoscopy, Federal University of São Paulo, São Paulo, Brazil.

Abstract

OBJECTIVE:
To determine whether Model for End-stage Liver Disease (MELD) Child-Turcotte-Pugh (CTP) classification, AST to platelet ratio index (APRI), and laboratory tests could predict the presence of esophageal varices (EV) or varices which need prophylactic therapy (medium or large size EV).

METHODS:
Three hundred patients with cirrhosis (193 men; mean age 53.1 years; majority with chronic C hepatitis) were prospectively analyzed. The presence of EV (any size and medium or large EV) was correlated with patients' characteristics (MELD, CTP classification, APRI, platelets count, and liver tests).

RESULTS:
One hundred and seventy-one patients (57%) had EV, of whom 35% (105) had varices which need prophylactic therapy (VPT). The distribution of EV according to CTP classification was as follows: A, 49%; B, 75.3% and C, 80%. Independent predictors of EV were: MELD higher than 8 (P=0.02); APRI higher than 1.64 (P=0.01); platelet count lower than 93,000/mm³ (P<0.01); aspartate aminotransferase higher than 1.34 × UNL (P=0.01), and total bilirubin higher than 1 mg/dl (P=0.04). MELD higher than 8 had the highest discriminative value for presence of EV (sensitivity=80.1%; specificity=51.2%; area under receiver operating characteristics=0.68). Factors independently associated with VPT were: thrombocytopenia (<92,000/mm³; P<0.01) and aspartate aminotransferase higher than 1.47 × UNL (P=0.03). Platelet count lower than 92,000/mm³ had sensitivity of 65.7%, specificity of 57.9%, and an area under receiver operating characteristics of 0.62 for the presence of VPT.

CONCLUSION:
High values on MELD are associated with EV and thrombocytopenia, with varices which need prophylactic therapy. As a result of their low sensitivity and specificity, it is suggested to maintain the recommendation of upper gastrointestinal endoscopy for all patients with cirhosis.

Source

November 6, 2010

Adding Probiotics to Propranolol Reduces HVPG in Patients With Cirrhosis With Large Varices: Presented at AASLD

By Cheryl Lathrop

BOSTON -- November 5, 2010 -- Adding the probiotic VSL#3 to propranolol reduced the hepatic venous pressure gradient (HVPG) in patients with cirrhosis with large varices, according to a study presented here at the 61st Annual Meeting of the American Association for the Study of Liver Diseases (AASLD).

"This novel therapy might provide alternative or adjunct therapy to beta-blockers in the management of patients with portal hypertension," said Nitin Gupta, MD, Department of Gastroenterology, G.B. Pant Hospital, New Delhi, India, on November 1.

For the study, the researchers randomised 87 patients with cirrhosis and portal hypertension with large oesophageal varices (nonbleeders) to receive either propranolol plus placebo (group 1; n = 30); propranolol plus norfloxacin (group 2; n = 27) or propranolol + VSL#3 (group 3; n = 30).

Of these, 75 patients underwent the follow-up hepatic vein pressure gradient (HVPG) measurement, and thus completed the study: group 1 (n = 26), group 2 (n = 24), and group 3 (n = 25).

Propranolol was titrated to achieve a heart rate of 55 bpm or a maximum of 320 mg/day. The researchers studied splanchnic haemodynamics before and after 2 months of either treatment.

The primary endpoint was the change in HVPG compared with baseline; the secondary end point was the number of adverse events with therapy.

Addition of VSL#3 to propranolol synergistically increased the degree of reduction of HVPG in patients with cirrhosis with large varices. Responders were 31% in group 1, 46% in group 2, and 60% in group 3 (P =.046). The fall (comparison of change) in HVPG was 2.1 mm Hg in group 1, 3.3 mm Hg in group 2, and 3.7 mm Hg in group 3.

VSL#3 was well tolerated without significant side effects. The number of patients with adverse events did not differ significantly between the groups.

[Presentation title: Addition of Probiotics to Propranolol Improves Response for Primary Prophylaxis of Variceal Bleeding in Patients With Cirrhosis and Large Esophageal Varices. Abstract 1556]

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August 8, 2010

Acute esophageal variceal bleeding: Current strategies and new perspectives

Management of acute variceal bleeding has greatly improved over recent years. Available data indicates that general management of the bleeding cirrhotic patient by an experienced multidisciplinary team plays a major role in the final outcome of this complication. It is currently recommended to combine pharmacological and endoscopic therapies for the initial treatment of the acute bleeding. Vasoactive drugs (preferable somatostatin or terlipressin) should be started as soon as a variceal bleeding is suspected (ideally during transfer to hospital) and maintained afterwards for 2-5 d. After stabilizing the patient with cautious fluid and blood support, an emergency diagnostic endoscopy should be done and, as soon as a skilled endoscopist is available, an endoscopic variceal treatment (ligation as first choice, sclerotherapy if endoscopic variceal ligation not feasible) should be performed. Antibiotic prophylaxis must be regarded as an integral part of the treatment of acute variceal bleeding and should be started at admission and maintained for at least 7 d. In case of failure to control the acute bleeding, rescue therapies should be immediately started. Shunt therapies (especially transjugular intrahepatic portosystemic shunt) are very effective at controlling treatment failures after an acute variceal bleeding. Therapeutic developments and increasing knowledge in the prognosis of this complication may allow optimization of the management strategy by adapting the different treatments to the expected risk of complications for each patient in the near future. Theoretically, this approach would allow the initiation of early aggressive treatments in high-risk patients and spare low-risk individuals unnecessary procedures. Current research efforts will hopefully clarify this hypothesis and help to further improve the outcomes of the severe complication of cirrhosis.

Augustin S, González A, Genescà J. Acute esophageal variceal bleeding: Current strategies and new perspectives. World J Hepatol 2010; 2(7): 261-274 Available from: URL: http://www.wjgnet.com/1948-5182/full/v2/i7/261.htm DOI: http://dx.doi.org/10.4254/wjh.v2.i7.261

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August 5, 2010

Compliance With Practice Guidelines and Risk of a First Esophageal Variceal Hemorrhage in Patients With Cirrhosis

Clinical Gastroenterology and Hepatology
Volume 8, Issue 8 , Pages 703-708, August 2010

Jayavani Moodley, Rocio Lopez, William Carey

published online 12 March 2010.

Abstract

Background & Aims

Esophageal variceal hemorrhage (EVH) is a serious complication of cirrhosis, with 20% mortality per episode. The 2007 American Association for the Study of Liver Disease and American College of Gastroenterology practice guidelines regarding esophageal varices in patients with cirrhosis recommend screening and intervention to prevent EVH. We assessed practice guideline compliance and its impact on the rate of first EVH.

Methods
An institutional review board-approved retrospective chart review was conducted on a random sample of adult patients newly evaluated for cirrhosis at the Cleveland Clinic from 2003 to 2006 (n = 179). Exclusion criteria were a previous diagnosis of esophageal varices or EVH and/or treatment with β-adrenergic antagonists. Patients were followed for 23 months (range, 9–38 months). Conformity with practice guidelines and subsequent bleeding rates were determined. Observed bleeding rates were compared to the North Italian Endoscopy Club (NIEC) model.

Results
Of the patients, 94% had a screening endoscopy, 80% within 6 months of the initial visit. Varices were present in 50% of the patients; 68% of all patients screened and 91% with large varices received a practice guideline-recommended treatment. Twelve patients (7%) had an episode of EVH; 82% of subjects without bleeding had their screening endoscopy within 6 months versus 50% of those with bleeding (P = .016). Actuarial likelihood of bleeding at 2 years was 13% versus 27% predicted by the NIEC model (P < .05).

Conclusion
Compliance with practice guideline recommendations is associated with reduction in first EVH in the first 2 years.

Keywords: Practice Guideline Compliance, Cirrhosis, Esophageal Varices, Hemorrhage

Abbreviations used in this paper: AASLD, American Association for the Study of Liver Disease, ACG, American College of Gastroenterology, BB, beta blocker, CPS, Child–Pugh Score, EGD, endoscopy, EV, esophageal varices, EVH, esophageal variceal hemorrhage, EVL, esophageal variceal ligations, IGV, isolated gastric varices, NIEC, North Italian Endoscopy Club, PG, practice guideline

Conflicts of interest The authors disclose no conflicts.

PII: S1542-3565(10)00228-4
doi:10.1016/j.cgh.2010.02.022
© 2010 AGA Institute. Published by Elsevier Inc. All rights reserved.

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July 7, 2010

Sustained virologic response prevents the development of esophageal varices in compensated, Child-Pugh class A hepatitis C virus-induced cirrhosis. A 12-year prospective follow-up study

Hepatology June 2010

"None of the SVR patients developed EV compared with 22 (31.8%) of the 69 untreated subjects (P < 0.0001) and 45 (39.1%) of the 115 non-SVR patients (P < 0.0001).....

in the long term, the achievement of SVR prevents the development of EV in patients with compensated HCV-induced cirrhosis. Therefore, in these patients, endoscopic surveillance can be safely delayed or avoided. Genotype 1b infection and MELD score identify the subset of patients at higher risk of EV development who need tailored endoscopic surveillance......even if there is growing evidence that antiviral treatment may reduce the rate of complications related to portal hypertension when leading to SVR, no study has evaluated whether viral eradication could prevent EV development in the long term......A major finding of our study - and one of great importance in clinical practice - is that the achievement of SVR abolishes the development of EV in the long term. The reliability of our result is guaranteed by the ample length of observation among this group of patients (median follow-up after initiation of antiviral therapy being 12 years)."

Savino Bruno 1 *, Andrea Crosignani 2, Corinna Facciotto 1, Sonia Rossi 1, Luigi Roffi 3, Alessandro Redaelli 4, Roberto de Franchis 5 6, Piero Luigi Almasio 7, Patrick Maisonneuve 8 1Department of Internal Medicine, A.O. Fatebenefratelli e Oftalmico, Milan, Italy 2Department of Internal Medicine, A.O. S. Paolo 3A.O. Sondrio, Italy 4Endoscopy Unit, A.O. S. Gerardo, Monza, Italy 5Gastroenterology and Gastrointestinal Endoscopy Unit, Ospedale Policlinico, Milan, Italy 6Department of Medical Sciences, University of Milan, Milan, Italy 7Gastroenterology and Hepatology Unit, University of Palermo, Palermo, Italy 8Division of Epidemiology and Biostatistics, European Institute of Oncology, Milan, Italy

Abstract

The incidence of de novo development of esophageal varices (EV) in patients with compensated liver cirrhosis has been determined by few studies in the short term and never in the long term. The aims of the present study were to determine the incidence and the risk factors associated with the development of EV and to assess whether antiviral treatment and achievement of sustained virologic response (SVR) may prevent de novo EV development in patients with HCV-induced cirrhosis. We studied 218 patients with compensated EV-free, HCV-induced cirrhosis consecutively enrolled between 1989 and 1992 at three referral centers in Milan, Italy. Endoscopic surveillance was performed at 3-year intervals according to international guidelines. SVR was defined as undetectable serum HCV-RNA 24 weeks after treatment discontinuation. During a median follow-up of 11.4 years, 149/218 (68%) patients received antiviral treatment and 34 (22.8%) achieved SVR. None of the SVR patients developed EV compared with 22 (31.8%) of the 69 untreated subjects (P < 0.0001) and 45 (39.1%) of the 115 non-SVR patients (P < 0.0001). On multivariate analysis, HCV genotype 1b (hazard ratio [HR] 2.40; 95% confidence interval [CI] 1.17-4.90) and baseline model for end-stage liver disease (MELD) score (HR 1.20; 95% CI 1.07-1.35 for 1 point increase) were independent predictors of EV. Conclusion: In the long term, the achievement of SVR prevents the development of EV in patients with compensated HCV-induced cirrhosis. Therefore, in these patients, endoscopic surveillance can be safely delayed or avoided. Genotype 1b infection and MELD score identify the subset of patients at higher risk of EV development who need tailored endoscopic surveillance.

The natural history of patients with compensated liver cirrhosis, induced by hepatitis C virus (HCV) is now well characterized.[1-5] However, even if it is well established that the onset of esophageal varices (EV) marks a crucial turning point in the outcome of the disease,[6] only one study has assessed the incidence of de novo development of EV prospectively over a short period. However, this study combined patients with alcoholic, HCV-related, hepatitis B virus-related and cryptogenic cirrhosis.[7] In addition, the effect of antiviral therapy and the achievement of sustained virologic response (SVR) on EV development has never been evaluated. Finally, apart from the level of the hepatic vein pressure gradient (HVPG), which has recently been shown to be associated with the risk of EV development,[7] no other reliable predictor of EV has been described.

The availability of a large prospective cohort study[5] that included consecutive patients with compensated HCV-induced cirrhosis followed for up to 18 years allowed us to evaluate the incidence of, the risk factors associated with, and the impact of antiviral treatment, including the effect of SVR, on de novo development of EV in the long term.

Abbreviations

CI, confidence interval; EGD, esophago-gastro-duodenoscopy; EV, esophageal varices; HCC, hepatocellular carcinoma; HCV, hepatitis C virus; HR, hazard ratio; HVPG, hepatic vein pressure gradient; IFN, interferon; MELD, model for end-stage liver disease; SVR, sustained virologic response.

Discussion

In recent years, several studies have described disease outcomes in patients with compensated HCV-induced cirrhosis.[1-5] However, although these investigations provide relevant information, none of them report data about the de novo development of EV. In addition, even if there is growing evidence that antiviral treatment may reduce the rate of complications related to portal hypertension when leading to SVR, no study has evaluated whether viral eradication could prevent EV development in the long term.

The present investigation, which fulfills the quality criteria requirements for both observational[20] and subgroup analysis studies,[8] provides several important data. First, it provides an accurate estimate of the 10-year cumulative incidence of EV in this population of patients. Our figures are lower than those recently reported by Groszmann et al.[7] in a 5-year follow-up study. This discrepancy could be easily explained by the different characteristics of patients included in the two studies. In the latter study, more than one third of subjects had nonviral cirrhosis (predominantly alcohol-related), 12% had more advanced disease (Child-Pugh score B), all patients with hepatitis B virus-induced disease did not assume antiviral therapy, and the timing of endoscopic surveillance between studies was different (every 3 years, as suggested by the international guidelines in clinical practice, instead of annually). Moreover, a high proportion of the patients included in the study by Groszmann et al. had a high HVPG (63% had at least 10 mm Hg, with a median of 11 mm Hg). By contrast, the majority of our patients had the diagnosis of cirrhosis made by liver biopsy at the time of enrollment (i.e. at an early, less severe stage of the disease). On the other hand, it is well-established that the stage of compensated cirrhosis is extremely heterogeneous because it includes patients with different but still unrevealed clinical conditions. Moreover, approximately 20% of our patients did not agree to fulfill the planned schedule of endoscopic surveillance and this fact might have led to underestimation of the rate of EV detection.

A major finding of our study - and one of great importance in clinical practice - is that the achievement of SVR abolishes the development of EV in the long term. The reliability of our result is guaranteed by the ample length of observation among this group of patients (median follow-up after initiation of antiviral therapy being 12 years).

The biological plausibility of our result was supported by the finding that HVPG decreased over the years in the four SVR patients who agreed to undergo this procedure and, in all of them, the HVPG values reached the threshold level (<10 mm Hg), which has been reported to be protective for EV development (data not shown). These data are also supported by other studies in which the achievement of virological response following antiviral therapy was associated with a significant decrease of HVPG values,[21][22] fibrosis regression,[23][24] and reduction of portal hypertension-related complications in patients with similar clinical characteristics.[25][26]

This study failed to identify a reliable predictor associated with high risk for early EV development. This was due to the low incidence of events in the first 3 years of follow-up. However, we found that a higher MELD score at entry and HCV genotype 1b infection are independent predictors of EV development in the long-term. Whereas the higher risk of EV in patients infected with genotype 1b could be attributable to the low rate of SVR in these patients, the statistically significant association in multivariate analysis suggests that genotype 1b may induce a faster progression of portal hypertension as suggested by a recent meta-analysis.[27]

Together with an HVPG value 10 reported by Groszmann et al.,[7] HCV genotype and MELD score may be easily used to identify subjects in whom more frequent, tailored EGD surveillance is warranted.

Another finding emerging from this study is that the risk of EV development increases once HCC has occurred. This result reveals a limitation in our study, however, because frequency of EGD surveillance was performed at 3-year intervals, whereas ultrasound screening for HCC was performed every 6 months. Therefore, we cannot exclude that some patients had developed EV before the emergence of HCC and that the observed rates of EV after the diagnosis of HCC have been overestimated.

In conclusion, the 10-year cumulative incidence of de novo EV in EV-free patients with compensated Child-Pugh class A HCV-induced cirrhosis is fairly low. Despite the presence of established cirrhosis, achievement of SVR after antiviral therapy prevents the development of EV in the long-term. In routine clinical practice, serial surveillance by EGD can be safely delayed or avoided in SVR patients, sparing significant amount of useless invasive and costly procedures. It is conceivable that, as a result of new promising therapies,[28] the rate of SVR in patients with chronic hepatitis C will further increase and the burden of portal hypertension-induced complications will decrease over time. Finally, the evidence that genotype 1b infection and higher MELD score increases the risk of EV indicates that tailored, more frequent endoscopic surveillance in this subset of patients may be warranted.

Results

Among the 352 patients included in the original study,[5] 26 did not agree to undergo EGD at the time of enrollment, and 54 had EV at baseline. In the remaining 272 patients free of varices at baseline, 54 (19.9%) did not adhere to the endoscopic surveillance program and were thus excluded from the present study (Fig. 1). The baseline characteristics of the 218 patients included in the study, stratified according to antiviral treatment and response to therapy, are shown in Table 1.

One hundred sixty-three patients (74.8%) had a diagnosis of cirrhosis obtained by way of liver biopsy at the time of inclusion in the study. Half of them were males (50.9%), the majority infected with HCV genotype 1b (61.5%). Approximately one quarter of patients admitted an excess of alcohol consumption during their life. Treated patients were significantly younger, were less likely to be past heavy alcohol drinkers, and had a lower MELD score compared with untreated ones. Among treated patients, only HCV genotype and baseline alpha-fetoprotein serum levels were associated with SVR (Table 1).

Cumulative Incidence of EV.

During a median follow-up of 11.4 years, de novo EV were detected in 67 patients, at the same frequency in untreated 22/69 (31.8%) and treated 45/115 (31.8%) patients. Overall, eight patients developed EV during the first 3 years of follow-up. At the time of detection, the size of EV was small (F1) in 51 (76.1%) patients, medium (F2) in eight (11.9%) patients, and large (F3) in eight (11.9%) patients. Only one of the eight patients with F2 varices but five of the eight patients with F3 varices bled at the time of recognition. The median time between enrollment and detection of F3 varices was 8 years (range, 3-17).

By contrast, no single EV was detected among the 34 patients who achieved SVR (P < 0.0001 versus both untreated and non-SVR patients). Of interest, the median duration of follow-up from enrollment to last EGD was 7.5 years for untreated patients, 10.7 years for non-SVR patients, and 15.9 years for SVR patients (P < 0.0001). Among treated patients, the median duration between initiation of antiviral therapy and last EGD was 8.8 years for non-SVR patients and 12.0 years for SVR patients (P = 0.006). The cumulative incidence of EV among treated patients according to response to therapy is shown in Fig. 2.

During follow-up, 16 of the patients who had developed EV subsequently bled at the same rate in untreated and non-SVR treated subjects (Fig. 1)

. Figure 3 provides information on the number of patients, person-years of observations events and the 10-year cumulative incidence of EV in the whole series of patients and stratified according to HCV genotype and MELD score.

Incidence of EV and HCC Development.

During follow-up, 66 patients developed HCC, seven of whom had achieved an SVR (Fig. 1). HCC was diagnosed as a single nodule (<2 cm) in 60% of the cases, and 76% of the patients fulfilled the Milan criteria.[19] In 57 cases (86%), patients were free of varices at the last EGD performed before tumor diagnosis. Following HCC diagnosis, EV were detected in 16 patients (in 12 cases within 3 years of tumor occurrence).

Predictors of EV Development.

On univariate analysis, HCV genotype 1b (hazard ratio [HR] 2.38; 95% confidence interval [CI] 1.23-4.59), history of heavy alcohol consumption (HR 2.00; 95% CI 1.16-3.43), elevated serum creatinine (HR 2.41; 95% CI 1.03-5.66), higher MELD score (HR for 1 point increase 1.21; 95% CI 1.08-1.35), alpha-fetoprotein serum leveln >/= 10 hg/mL (HR 1.99; 95% CI 1.20-3.29) and occurrence of HCC (HR 2.65; 95% CI 1.45-4.86) were associated with development of de novo EV (Table 2). We found no association with platelets, albumin, international normalized ratio, or bilirubin levels at baseline.

On multivariate analysis, HCV genotype 1b and baseline MELD score remained independent predictors of EV (Table 2). When intercurrent events were included in the multivariate model, antiviral treatment in absence of SVR did not show any protective effect on EV development (HR 1.02; 95% CI 0.60-1.72). By contrast, HCC occurrence was associated with an HR of 2.87 (95% CI 1.46-5.64) on the development of EV (Table 2). This latter result was not confirmed when the analysis was restricted to the subset of treated patients (Table 3).

When we limited the analysis to F2 or F3 varices (n = 17), a history of heavy alcohol consumption (HR 5.79; 95% CI 1.99-16.8), higher MELD score (HR for 1 point increase 1.27; 95% CI 1.01-1.58), alpha-fetoprotein serum level >/= 10 hg/mL (HR 2.92; 95% CI 1.09-7.87), and occurrence of HCC (HR 4.32; 95% CI 1.41-13.2) were associated with development of medium or large varices in univariate analysis, whereas MELD score and development of HCC remained independent predictors of EV on multivariate analysis (data not shown).

Patients and Methods

The present study is a subgroup analysis based on data obtained from a large-scale prospective study aimed at evaluating the long-term outcome of patients with compensated HCV-induced cirrhosis, which has been described elsewhere.[5] Briefly, from January 1989 to December 1992, all consecutive patients with compensated Child-Pugh class A cirrhosis who presented at three referral centers in the Milan area (Northern Italy) and tested positive for serum anti-HCV were enrolled. The present study followed the guidelines for subgroup analyses[8] and included only subjects who had agreed to undergo upper endoscopy at the time of enrollment (±6 months) and were found to be EV-free.

The Ethics Committees of all participating centers approved the design of the study.

Patients.

The study includes Child-Pugh class A patients with HCV-related cirrhosis <70 years of age. Patients with bridging fibrosis were excluded. The diagnosis of cirrhosis was based on liver biopsy or on clinical criteria.[9] Patients with concurrent hepatitis B or human immunodeficiency virus infection, and patients who were not willing to attend regular follow-up endoscopy were excluded. Patients with previous episodes of decompensation or with hepatocellular carcinoma (HCC) within 6 months from enrollment were also excluded. Anti-HCV was assessed by first- and second-generation enzyme-linked immunosorbent assay. HCV genotype was determined on frozen sera by nested reverse-transcription polymerase chain reaction of HCV core sequences using type-specific primers[10] and confirmed on fresh sera by INNO-LiPA (HCVII, Innogenetics, Ghent, Belgium). Information on alcohol intake (>60 g/day for women, >80 g/day for men, for at least 5 years) was obtained during baseline interview and confirmed by relatives.

All patients underwent a 3-month run-in period, and a database including demographic, clinical, laboratory, and endoscopic examinations obtained at entry was set up. Endoscopic procedures for EV assessment were performed in each center by three skilled endoscopists. The size of EV was determined at medium insufflation and classified according to North Italian Endoscopic Club score.[11] Child-Pugh score was assessed according to current criteria,[12] whereas the MELD score[13] was retrospectively calculated using the information collected at baseline. international normalized ratio was calculated by conversion of prothrombin time or activity at baseline.

Follow-up.

All patients had a regular follow-up that included clinical, laboratory, and abdominal ultrasound surveillance every 6 months. Examination of the upper gastrointestinal tract was planned at 3-year intervals both for treated and untreated patients, as recommended by international guidelines.[14] Esophago-gastro-duodenoscopy (EGD) was also performed at the initiation of antiviral treatment or when clinically required. Additional EGD surveillance after the diagnosis of HCC was not scheduled, unless patients were eligible for surgical resection. At the time of EV detection, beta-blockers were prescribed to patients with medium or large (F2 or F3) varices, while no prophylaxis was scheduled for those with small (F1) varices.

In order to assess the effect of SVR on portal hypertension progression, the measurement of HVPG was also offered to patients who achieved SVR and agreed to perform this procedure. The first HVPG measurement (Time 0) was made 12 months following discontinuation of antiviral treatment and repeated every 3 years (at the same time as EGD). HVPG was measured according to established recommendations.[15]

Up to 2001, the diagnosis of HCC detected during follow-up was based on histological assessment obtained by fine needle liver biopsy whenever a focal liver lesion was detected on ultrasound examination.[16][17] After 2001, diagnoses were made according to Barcelona Conference criteria.[18]

Treatment of HCV Infection.

Recombinant interferon (IFN)- monotherapy or combination with both IFN and ribavirin were offered over time. IFN monotherapy, at the dose of 3 MIU three times a week, was administered, regardless of HCV genotype, for at least 6 months and for an additional 6-month period in patients who achieved a complete biochemical response. Combination therapy with IFN or pegylated IFN and ribavirin was administered in agreement with international guidelines. SVR was defined as undetectable serum HCV-RNA (<50 IU/mL) 6 months after stopping therapy.

Statistical Analysis.

Continuous variables were compared using the Mann-Whitney test. Fisher's exact test and the Mantel-Haenszel chi-square test for trend were used to assess differences in the baseline characteristics between patients who did and did not receive antiviral treatment and between treated patients who did or did not achieve an SVR. Time-to-event was calculated from the date of enrollment to the date of first detection of EV or to the date of last EGD, or death. The cumulative incidence of EV during follow-up was plotted using the Kaplan-Meier method, and the log-rank test was used to assess difference between strata. When specified, observation time was censored at the time of SVR. All patients were included and the time of observation of SVR subjects was censored when successful antiviral treatment was initiated. This choice was justified by the fact that SVR patients were still HCV-RNA-positive in the same way as untreated and non-SVR treated patients until they started antiviral treatment. Univariate and multivariate Cox proportional hazards regression models were used to identify factors associated with EV development. Intercurrent events such as initiation of antiviral therapy, SVR achievement, or HCC occurrence were set as time-dependent covariables. Analyses were performed with SAS version 8.2 (Cary, NC). All statistical tests were two-sided, and P < 0.05 was considered significant.
 
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Also See
Sustained Response to Antiviral Therapy Prevents Esophageal Varices in Hepatitis C Patients with Cirrhosis
 
SVR Prevents Esophageal Varices in Patients with Cirrhosis

SVR Prevents Esophageal Varices in Patients with Cirrhosis

"data suggest that those with chronic HCV and advanced fibrosis who achieve SVR have reduced clinical outcomes, including variceal bleeding.[9] However, the impact of SVR on the de novo development of varices was not specifically assessed in these analyses and remains unknown......In this issue of HEPATOLOGY, Bruno et al. addressed the impact of SVR on the development of esophageal varices in a subgroup analysis of a large prospective database of subjects with compensated HCV-induced cirrhosis.[17] In this study, consecutive HCV-positive subjects seen between January 1989 and December 1992 with compensated, Child A cirrhosis were screened for varices......Bruno and colleagues concluded that SVR prevents the development of varices and that endoscopic surveillance can be delayed or avoided in these patients.......because beta-blockers used to reduce HVPG do not seem to affect the rate of development of varices,[5] the current study is the first to demonstrate a pharmacologic treatment to reduce (or in this case, eliminate) the development of varices.......Finally, they suggest that a more tailored approach based on HCV genotype, MELD score, and HCC would help indentify those patients without SVR who are at higher risk for developing varices and who would benefit from surveillance endoscopy........Importantly, none of the 34 who achieved SVR developed varices; however, 66 patients developed HCC, including seven who had SVR. Multivariate analysis identified HCV genotype 1b, baseline model for end-stage liver disease (MELD) score, and HCC as independent predictors of the development of varices in nonresponders and those who did not undergo HCV therapy."

Editorial

Long-term effects of sustained virologic response on the development of esophageal varices in compensated cirrhosis: Is the bang worth the buck?

Hepatology June 2010

Richard K. Sterling, M.D., M.Sc. Division of Gastroenterology, Hepatology, and Nutrition, Virginia Commonwealth University Health System, Richmond, VA email: Richard K. Sterling (rksterli@vcu.edu)

The natural history of compensated cirrhosis in those with chronic hepatitis C virus (HCV) has been well described. In the landmark study by Fattovich et al. of 384 compensated subjects, the 5-year risk of hepatocellular carcinoma (HCC) was 7% and the risk of hepatic decompensation was 18%.[1] Of the 355 patients who remained tumor-free, 65 (18%) developed at least one episode of ascites (8.7%), jaundice (1%), hepatic encephalopathy (1.5%), or variceal bleeding (4%), and the mean time to decompensation was 37 months (range, 3-137). In a more recent study, 131 of 352 (37%) subjects with compensated HCV-induced cirrhosis who were followed for a median of 14.4 years developed decompensation.[2] Of the 77 (59%) subjects who were without HCC, 66 (86%) developed ascites, 22 (28%) developed portal hypertensive bleeding, and 21 (27%) developed hepatic encephalopathy. Importantly, those with varices had twice the rate of decompensation compared to those without varices (65% versus 33%). Therefore, development of portal hypertension seems to be an important predictor of decompensation and increased mortality.[3]

Abbreviations:

HCC, hepatocellular carcinoma; HCV, hepatitis C virus; HVPG, hepatic venous pressure gradient; SVR, sustained virologic response.

The development of varices is one of the hallmarks of significant portal hypertension and the incidence of new varices in those with cirrhosis is <5%/year.[4] In those without varices, the development of varices is related to the severity of underlying liver disease and the presence of increased hepatic venous pressure gradient (HVPG) of more than 10 mm Hg. In the study by Groszmann et al. which examined use of beta-blockers to prevent esophageal varices in patients with stable cirrhosis (62% with HCV) without esophageal varices at baseline, the rate of developing varices was similar between those subjects randomized to Timolol and placebo (42 of 108, 39% versus 41 of 105, 40%) during a mean follow-up of 55 months.[5] Although the majority of varices were small, a few patients in each group developed large varices and subsequently bled. However, varices developed less frequently in those with a baseline HVPG < 10 mm Hg and in those who had less than 10% decrease in HVPG at 1 year.

The potential benefit to HCV therapy, in addition to sustained virologic response (SVR), is improvement in outcomes. Because many treated individuals who achieve SVR do not have significant fibrosis, this benefit may not be realized for several years, if not decades. However, although those with advanced fibrosis have poorer response to current therapy,[6] they also have the most to gain. In support of this, studies have shown that those with advanced cirrhosis who achieve SVR have fewer clinical outcomes including liver failure, variceal bleeding, and HCC[2][7-9] (Table 1).

Table 1. Benefits of Virologic Response on Outcomes in Patients with HCV and Advanced Fibrosis

HALT-C, Hepatitis C Antiviral Long-Term Treatment Against Cirrhosis; HCC, hepatocellular carcinoma; HVPG, hepatic venous pressure gradient; SVR, sustained virologic response; stage 3 or advanced fibrosis = bridging fibrosis and stage 4 = cirrhosis.

The mechanism associated with improved outcomes is presumed to be mainly from reduction in hepatic fibrosis. Poynard and colleagues pooled data on 3010 HCV treatment-na•ve patients from four large clinical trials with pretreatment and posttreatment biopsies. They observed significant improvements in both inflammation and fibrosis in those with SVR (25% improved while 7% worsened) compared to those with nonresponse (17% improved while 21% worsened).[10] Importantly, they found reversal of cirrhosis in 75 of 153 (49%) patients. Similar improvements in histology with SVR have been reported by others as well.[11][12]

In addition to improvements in fibrosis, antiviral therapy may also directly affect HVPG. Rincon et al. studied 20 compensated patients with advanced fibrosis, by using liver biopsy and hepatic pressure measurements before and immediately after therapy with pegylated interferon and ribavirin.[13] They found that all but one patient had a significant decrease in HVPG from baseline following antiviral therapy and that those with SVR had a greater reduction than those with nonresponse. The benefits of reductions in HVPG with SVR were confirmed by Roberts et al. in 47 patients with cirrhosis.[14] Although the Hepatitis C Antiviral Long-Term Treatment Against Cirrhosis (HALT-C) trial did not show overall benefit of maintenance interferon,[15] improved clinical outcomes were observed in those with significant viral suppression without SVR.[16] Taken collectively, these data suggest that those with chronic HCV and advanced fibrosis who achieve SVR have reduced clinical outcomes, including variceal bleeding.[9] However, the impact of SVR on the de novo development of varices was not specifically assessed in these analyses and remains unknown.

In this issue of HEPATOLOGY, Bruno et al. addressed the impact of SVR on the development of esophageal varices in a subgroup analysis of a large prospective database of subjects with compensated HCV-induced cirrhosis.[17] In this study, consecutive HCV-positive subjects seen between January 1989 and December 1992 with compensated, Child A cirrhosis were screened for varices. Those with hepatitis B, human immunodeficiency virus, prior history of decompensation, or HCC within 6 months were excluded. Among the 352 patients screened, 218 who were free of varices at baseline and agreed to have follow-up endoscopy were included in the analysis. All 218 subjects had regular follow-up with surveillance ultrasound for HCC every 6 months and endoscopy every 3 years to identify de novo varices. Patients received HCV therapy as determined by current practice at that time, and SVR was defined as negative HCV RNA at 6 months after stopping therapy. The primary endpoints were development of de novo varices or HCC. Of the 218 patients, 149 (68%) received HCV therapy and 23% had SVR. During the median follow-up of 11.4 years, de novo varices developed in 67 patients and was similar in untreated (22 of 69, 32%) and treated (45 of 115, 32%) patients. The distribution of varices were small (F1, 76%) while 12% each had moderate (F2) or large (F3) varices. The median time between enrollment and detection of F3 varices (5 of 8 that bled) was 8 years (range, 3-17). Importantly, none of the 34 who achieved SVR developed varices; however, 66 patients developed HCC, including seven who had SVR. Multivariate analysis identified HCV genotype 1b, baseline model for end-stage liver disease (MELD) score, and HCC as independent predictors of the development of varices in nonresponders and those who did not undergo HCV therapy. There was no association observed with platelet count, albumin, international normalized ratio, or bilirubin with de novo varices.

Bruno and colleagues concluded that SVR prevents the development of varices and that endoscopic surveillance can be delayed or avoided in these patients. Finally, they suggest that a more tailored approach based on HCV genotype, MELD score, and HCC would help indentify those patients without SVR who are at higher risk for developing varices and who would benefit from surveillance endoscopy.

As with any long-term study, there are several caveats. Although they included patients from three centers, their results may not be generalizable to all patients with HCV-induced cirrhosis. Second, because not all patients screened were included and follow-up was not complete in all patients, there may have been a type 1 error. Also, we were not told of concurrent medications that might affect portal pressures and the development of varices. Nevertheless, this is the largest study with the longest follow-up to date that addresses the impact of SVR on the development of esophageal varices.

If these results are confirmed, there are several important implications for future management of cirrhosis in those who achieve SVR. First, this study highlights that those with SVR can still develop HCC and that all subjects with cirrhosis should continue periodic surveillance for HCC according to accepted guidelines.[18] Second, because those with SVR do not develop varices, it may not be necessary to expose these patients to the expense and risks of repeated endoscopies. Third, because beta-blockers used to reduce HVPG do not seem to affect the rate of development of varices,[5] the current study is the first to demonstrate a pharmacologic treatment to reduce (or in this case, eliminate) the development of varices. However, before we get too excited, we must remember that current treatment to achieve SVR in those with cirrhosis is difficult and there are often increased side effects, more cytopenias, and lower response rates than those without cirrhosis.[6][19][20] Therefore, given the cost, both in dollars and resources, the increased side effects, and decreased response rates of HCV therapy, it remains to be determined if the bang is worth the buck in this select group of patients.

Also See
Sustained Response to Antiviral Therapy Prevents Esophageal Varices in Hepatitis C Patients with Cirrhosis
 
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Sustained Response to Antiviral Therapy Prevents Esophageal Varices in Hepatitis C Patients with Cirrhosis

SUMMARY: Chronic hepatitis C patients with liver cirrhosis who achieve sustained virological response (SVR) to interferon-based therapy are less likely to develop new varices, or swollen veins in the esophagus, according to an Italian study published in the June 2010 issue of Hepatology.

Over years or decades, people with chronic hepatitis C can develop advanced liver disease including cirrhosis and liver cancer. Cirrhosis is characterized by blockage of the flow of blood through the heavily scarred liver, leading to symptoms such as bleeding varicose veins in the stomach and esophagus, abdominal fluid accumulation, and cognitive impairment due to hepatic encephalopathy.

A new study adds to the evidence showing that sustained response to interferon-based antiviral therapy can improve liver health and prevent development or worsening of cirrhosis and its associated conditions, in this case esophageal varices. None of the 34 participants (out of an initial group of more than 200) who were treated for hepatitis C and achieved SVR developed new varices, compared with 32% of untreated patients and 39% of those who underwent treatment but did not achieve sustained response.

Esophageal varices are enlarged veins in the lower esophagus.
They're often due to obstructed blood flow through the portal vein,
which carries blood from the intestine and spleen to the liver.

The following is the text of a media advisory from Wiley-Blackwell, publisher of Hepatology, describing the study and it's findings.

Antiviral Therapy Impacts Esophageal Varices in HCV-Induced Cirrhosis

Study Shows Sustained Virologic Response Prevents EV

Italian researchers have discovered that antiviral treatment and sustained virologic response (SVR) prevents esophageal varices in patients with compensated hepatitis C (HCV)-induced cirrhosis, indicating that endoscopic surveillance can be safely delayed or avoided in these patients. Full findings are published in the June issue of Hepatology, a journal of the American Association for the Study of Liver Diseases (AASLD).

According to the National Digestive Diseases Information Clearinghouse (NDDIC), an estimated 4.1 million Americans have antibody to HCV (anti-HCV), indicating ongoing or previous infection with the virus. Researchers estimate that at least 20% of patients with chronic HCV develop cirrhosis. Progression of cirrhosis leads to portal hypertension, which can result in esophageal varices (EV) and other complications.

EVs are abnormally enlarged veins in the esophagus that occur when portal hypertension obstructs normal blood flow to the liver, causing blood to back up into the esophageal vessels. Esophageal varices can rupture which can be life-threatening. The onset of EV marks a crucial turning point in the outcome of cirrhosis. The research team led by Savino Burno, MD, set out to determine whether antiviral treatment resulting in SVR could prevent this condition.

The study, spanning from January 1989 to December 1992, evaluated 218 patients less than 70 years of age with compensated Child-Pugh class A cirrhosis who presented at three referral centers in Milan and tested positive for serum anti-HCV. Only subjects who agreed to undergo upper endoscopy at the time of enrolment and who were found to be EV-free were included. All 218 subjects had regular follow up with surveillance ultrasound for hepatocellular carcinoma (HCC) every six months and endoscopy every three years to identify de novo varices.

The standard antiviral regimens of recombinant alpha IFN monotherapy or combination with both IFN and ribavirin were administered, regardless HCV genotype, for at least six months and for an additional six-month period in patients who achieved a complete biochemical response. Combination therapy with IFN or pegylated IFN and ribavirin was administered in agreement with guidelines. SVR was defined as undetectable serum HCV RNA (< 50 IU/mL) six months after stopping therapy.

The primary endpoints were development of de novo varies or HCC. Of the 218 patients, 149 (68%) received HCV therapy and 34 (23%) achieved SVR and no EVs. During the follow-up of median 11.4 years, de novo EVs were detected equally among untreated and treated patients who did not achieve SVR. Sixty-seven patients, 7 of whom achieved SVR, developed HCC.

"Our study provides an accurate estimate of the 10-year cumulative incidence of EV in this population of patients," stated Dr. Bruno. "A major finding of our study, of great importance in clinical practice, is that the achievement of SVR abolishes the development of EV in the long-term. The reliability of our result is guaranteed by the ample length of observation among this group of patients. In routine clinical practice, serial surveillance by EGD can be safely delayed or avoided in SVR patients, sparing a significant amount of useless invasive and costly procedures."

The Milan study is the largest study with the longest follow-up to date that addresses the impact of SVR on the development of esophageal varices. In his editorial also published in Hepatology this month, Dr. Richard Sterling concurs, "If these results are confirmed, it may not be necessary to subject patients with HCV-induced cirrhosis to the expense and risks of repeated endoscopies." He further points out that the current study is the first to demonstrate a pharmacologic treatment to reduce (or in this case, eliminate) the development of varices. However, Dr. Sterling cautions, "Before we get too excited, we must remember that current treatment to achieve SVR in those with cirrhosis is difficult and there are often increased side effects, more cytopenias, and lower response rates than those without cirrhosis. Therefore, given the cost, both in dollars and resources, the increased side effects, and decreased response rates of HCV therapy, it remains to be determined if the "bang is worth the buck" in this select group of patients."

Investigator affiliations: Department of Internal Medicine, A.O. Fatebenefratelli e Oftalmico, Milan, Italy; Department of Internal Medicine, A.O. S. Paolo, Italy; A.O. Sondrio, Italy; Endoscopy Unit, A.O. S. Gerardo, Monza, Italy; Gastroenterology and Gastrointestinal Endoscopy Unit, Ospedale Policlinico, Milan, Italy; Department of Medical Sciences, University of Milan, Milan, Italy; Gastroenterology and Hepatology Unit, University of Palermo, Palermo, Italy; Division of Epidemiology and Biostatistics, European Institute of Oncology, Milan, Italy.

7/6/10

References

S Bruno, A Crosignani, C Facciotto, and others. Sustained virologic response prevents the development of esophageal varices in compensated, Child-Pugh class A hepatitis C virus-induced cirrhosis. A 12-year prospective follow-up study. Hepatology 51(6): 2069-2076 (Abstract). June 2010.

RK Sterling. Long-term effects of sustained virologic response on the development of esophageal varices in compensated cirrhosis: "is the bang worth the buck?" Hepatology 51(6): 1891-1893. June 2010.

Other Source
Wiley-Blackwell. Antiviral Therapy Impacts Esophageal Varices in HCV-Induced Cirrhosis. Press release. May 25, 2010.

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