Showing posts with label interferon beta-1b. Show all posts
Showing posts with label interferon beta-1b. Show all posts

Monday, January 26, 2009

Novartis launches Extavia®, a new therapeutic option to help patients combat devastating symptoms of multiple sclerosis





# Multiple sclerosis (MS) causes progressive disability and affects 2.5 million people worldwide including many young adults[1]

# Extavia offers patients and physicians a new branded version of standard-of-care interferon beta-1b

# Approved to treat MS patients from first signs of active disease to more advanced, relapsing forms

# Launch marks start of planned long-term partnership between Novartis and MS community

Basel, January 22, 2009 - Novartis has today announced the launch of Extavia®, a new version of the standard-of-care for relapsing forms of multiple sclerosis (MS), providing patients and physicians with an alternative option to help manage this devastating disease.

Extavia, a new branded version of interferon beta-1b, is available initially in Germany and Denmark with other European launches to follow during 2009. It is approved to treat a broad range of patients, from those with early signs of MS to those with more advanced relapsing forms of the disease.

"Extavia will provide patients and physicians with an additional option for receiving a mainstay of care in MS," said Trevor Mundel, MD, Global Head of Development at Novartis Pharma AG. "This important first step also opens the way for Novartis to build supportive partnerships with the MS community and lays the foundations for providing innovative approaches to MS care."

Extavia is the same medicinal product as Betaferon®*, an interferon beta-1b. This has a well characterised efficacy and safety profile with more than 700,000 patient-years' experience[2] and a 17-year track record of clinical use - the longest for any interferon beta in the treatment of MS[3].

MS is estimated to affect up to 2.5 million patients worldwide and is one of the leading causes of neurological disability in young adults1. The disease typically presents in relapsing forms involving acute self-limiting attacks of neurological dysfunction (or "relapses"), followed by complete or partial restoration of function.
Data have shown that interferon beta-1b produces a 34% reduction in annualized relapse rates (p<0.001), and patients are almost twice as likely to remain relapse-free for over two years compared to those on placebo (31% vs. 16%, p=0.007)[4]. Treatment with interferon beta-1b can also slow disease progression. After two years, nearly three-quarters of patients who had experienced a single episode of neurological disease lasting at least 24 hours did not progress to clinically definite MS[5].

The launch of Extavia in Europe by the Pharmaceuticals Division of Novartis marks the beginning of a long-term commitment to meet the therapeutic needs of the MS community. This will include the establishment of a support program for Extavia users that will foster cross-communication between patients and their physicians and nurses. In turn, this will lay the foundations for future potential innovations in MS therapy. The rollout of Extavia in key EU countries is expected during the coming months.

Novartis acquired the rights to its own branded version of interferon beta-1b in an agreement with Bayer Schering, the company that markets Betaferon. In backing Extavia, Novartis brings over 50 years of neuroscience expertise and resources to the MS community. This expertise has helped to pioneer early breakthrough treatments for a number of neurological and pathological conditions, some of which remain important therapies to this day.

MS is a chronic autoimmune disease of the central nervous system that causes inflammation and neurodegeneration. Pathology is characterised by the destruction of myelin, which helps neurons carry electrical signals in the brain[6]. The disease causes problems with muscle control and strength, vision, balance, sensation and mental function[6].

The beneficial effects of interferon beta are believed to be due to its modulation of the immune system to reduce inflammatory damage. Specifically, interferon beta limits the activation of immune cells that attack myelin, suppresses the production of inflammatory cytokines - a type of protein that amplifies the inflammatory response causing damage to myelin - and stimulates the production of anti-inflammatory cytokines.

Extavia has been filed with the US Food and Drug Administration for the treatment of relapsing forms of MS to reduce the frequency of clinical exacerbations (or relapses). Patients with MS in whom efficacy has been demonstrated include those who have experienced a first clinical episode and have features consistent with MS as shown by magnetic resonance imaging (MRI)[7].

Extavia is administered by subcutaneous (or under the skin) injection. Patients will have the choice of using either a fine (30 gauge) needle for manual injection or a convenient autoinjector.

* Betaferon® is a registered trademark of Bayer Schering Pharma AG.

Disclaimer

The foregoing release contains forward-looking statements that can be identified by terminology such as "launches," "planned," "long-term," "can," "will," "likely," "commitment," "future," "potential," "expected," "estimated," "believed," or similar expressions, or by express or implied discussions regarding potential additional marketing approvals for Extavia, the roll-out of Extavia in potential additional markets, the potential development of additional MS therapies, or regarding potential future revenues from Extavia or additional MS therapies. Such forward-looking statements reflect the current views of the Company regarding future events, and 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. There can be no guarantee that will be approved for sale in any additional markets. Nor can there be any guarantee that Extavia will be launched in any additional markets. Neither can there be any guarantees that Novartis will successfully develop and bring to market any additional MS therapies. Nor can there be any guarantee that Extavia or such additional therapies will achieve any particular levels of revenue in the future. In particular, management's expectations regarding Extavia and any such additional MS therapies could be affected by, among other things, unexpected regulatory actions or delays or government regulation generally; unexpected clinical trial results, including unexpected new clinical data and unexpected additional analysis of existing clinical data; the company's ability to obtain or maintain patent or other proprietary intellectual property protection; competition in general; government, industry and general public pricing pressures, and other risks and factors referred to in Novartis AG's current Form 20-F on file with the US Securities and Exchange Commission. Should one or more of these risks or uncertainties materialize, or should underlying assumptions prove incorrect, actual results may vary materially from those anticipated, believed, estimated or expected. Novartis is providing the information in this press release as of this date and does not undertake any obligation to update any forward-looking statements contained in this press release as a result of new information, future events or otherwise.

About Novartis

Novartis AG provides healthcare solutions that address the evolving needs of patients and societies. Focused solely on healthcare, Novartis offers a diversified portfolio to best meet these needs: innovative medicines, cost-saving generic pharmaceuticals, preventive vaccines, diagnostic tools and consumer health products. Novartis is the only company with leading positions in these areas. In 2007, the Group's continuing operations (excluding divestments in 2007) achieved net sales of USD 38.1 billion and net income of USD 6.5 billion. Approximately USD 6.4 billion was invested in R&D activities throughout the Group. Headquartered in Basel, Switzerland, Novartis Group companies employ approximately 97,000 full-time associates and operate in over 140 countries around the world. For more information, please visit http://www.novartis.com.

References

[1] World Health Organization. Neurology atlas, 2004. Accessed 16 Jan 2009. http://www.who.int/mental_health/neurology/neurogy_atlas_review_references.pdf
[2] FDA approves Betaseron® for use after the first event suggestive of multiple sclerosis [press release]. Wayne, NJ: Berlex: 23 October 2006.
[3] Ebers G, Traboulsee A, Langdon D, Goodin D, Konieczny A. The interferon beta-1b 16-year long-term follow-up study: the results. Presented at the 16th meeting of the European Neurological Society; 27-31 May, 2006.
[4] The IFNB Multiple Sclerosis Study Group. Interferon beta-1b is effective in relapsing-remitting multiple sclerosis. Neurology. 1993;43:655-661.
[5] Kappos L, Freedman MS, Polman CH, et al. Effect of early versus delayed interferon beta-1b treatment on disability after a first clinical event suggestive of multiple sclerosis: a 3-year follow-up analysis of the BENEFIT study. Lancet. 2007;370:389-97.
[6] National Multiple Sclerosis Society website. http://www.nationalmssociety.org/about-multiple-sclerosis/symptoms/index.aspx. Accessed January 12, 2009.
[7] Extavia proposed US Prescribing Information.

# # #

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Wednesday, October 01, 2008

Results from IMPROVE Study Show Therapeutic Effect of New Formulation of Rebif® at 16 Weeks in Patients with Multiple Sclerosis




• Study meets primary endpoint by demonstrating significant effect of new formulation of Rebif® on disease activity as measured by MRI after 16 weeks of treatment

• Data presented at late-breaking session of the World Congress on Treatment and Research in Multiple Sclerosis in Montreal, Canada

Geneva, Switzerland, September 22, 2008 - Merck Serono, a division of Merck KGaA, Darmstadt, Germany, announced today that the ongoing IMPROVE (Investigating MRI Parameters with Rebif imprOVEd formulation) study met its primary endpoint. The primary objective of the study was to evaluate the efficacy of the new formulation of Rebif®, compared to placebo, in patients with relapsing-remitting multiple sclerosis (RRMS) and active disease by means of magnetic resonance imaging (MRI) at the end of 16 weeks of treatment. The 16-week study results show that the mean number of combined unique active brain MRI lesions per patient was reduced by 69% in patients treated with the new formulation of Rebif® compared with those receiving placebo, a statistically significant result (p<0.001). These data were presented at the late-breaking session of the World Congress on Treatment and Research in Multiple Sclerosis in Montreal, Canada.

"Patients who received Rebif® experienced far fewer new active brain MRI lesions than the placebo group after 16 weeks of treatment,” said Dr. Mark Freedman, Professor of Neurology at the University of Ottawa, Director of the MS Research Clinic at the Ottawa Hospital, and an investigator of the IMPROVE trial. “These data demonstrate a
significant effect of the new formulation of Rebif® on disease activity and provide further evidence of its benefit in treating patients with relapsing-remitting multiple sclerosis.”

The IMPROVE study is a two-arm, randomized, double-blind, controlled, multicenter, international Phase IIIb study to evaluate the efficacy, safety and tolerability of the new formulation of Rebif® in patients with RRMS according to the revised McDonald criteria and evidence of active disease. A total of 180 patients were randomized in a 2:1 ratio to receive either the new formulation of Rebif® 44 micrograms three times a week subcutaneously, or placebo for an initial period of 16 weeks. At the end of this initial 16-week treatment period, patients from the placebo group have been switched in a single-blinded fashion to treatment with the new formulation of Rebif® 44 micrograms three times a week subcutaneously for a period of 24 weeks (the physician assessing treatment response and side effects is blinded). Patients who were initially assigned to the new formulation of Rebif® group continue to receive active treatment for an additional period of 24 weeks. The duration of the whole treatment period is 40 weeks.

The primary endpoint of the study is the difference between the number of combined unique active MRI lesions at week 16 in the group treated with the new formulation of Rebif® versus the placebo group. Combined unique active MRI lesions are defined as an active lesion on T1 sequence with gadolinium or T2 sequence, or both, avoiding double counting. The primary endpoint mainly reflects inflammatory activity (gadolinium-enhancing T1 lesions), but also reflects disease progression (T2 lesions).

The primary efficacy analysis showed that, at week 16, the number of combined unique active brain lesions was significantly lower in patients treated with the new formulation of Rebif® than in patients who received a placebo (p<0.001). The mean number of combined unique active brain lesions per patient was reduced by 69% in patients treated with the new formulation of Rebif® compared with those receiving placebo (0.7 versus 2.2). The median number of combined unique active brain lesions at week 16 was 0.0 in the group treated with the new formulation of Rebif® and 1.0 in the placebo group. Over half (53%) of patients treated with the new formulation of Rebif® had zero combined unique active brain lesions at week 16, compared to only 16.7% in the placebo group.

Results for the secondary and tertiary endpoints of the IMPROVE study will be available at the end of the 40-week treatment period.

The safety profile of the new formulation of Rebif® reported in this study is consistent with the known safety profile of Rebif®. No unexpected safety concerns were identified in this study.

The new formulation of Rebif® was approved in the European Union in August 2007 and in Canada in September 2007. It is now marketed in all EU countries and in Canada. The new formulation of Rebif® is not available in the United States.

About Rebif®

Rebif® (interferon beta-1a) is a disease-modifying drug used to treat relapsing forms of multiple sclerosis (MS) and is similar to the interferon beta protein produced by the human body. The efficacy of Rebif® in chronic progressive MS has not been established. Interferons are thought to help modulate the body’s immune system and reduce inflammation. The exact mechanism is unknown.

Rebif®, which was approved in Europe in 1998 and in the US in 2002, is registered in more than 80 countries worldwide. Rebif® has been proven to delay the progression of disability, reduce the frequency of relapses and reduce MRI lesion activity and area.* Rebif® is available in a 22 micrograms and 44 micrograms ready-to-use pre-filled syringe and a titration pack (8.8 micrograms).

Rebif® should be used with caution in patients with a history of depression, liver disease and seizures. Most commonly reported side effects are flu-like symptoms, injection site disorders, elevation of liver enzymes and blood cell abnormalities. Patients, especially those with depression, seizure disorders, or liver problems, should discuss treatment with Rebif® with their doctors. For more information about Rebif®, please visit www.mslifelines.com for prescribing information.

* The exact correlation between MRI findings and the current or future clinical status of patients, including disability progression, is unknown.

About Merck Serono and multiple sclerosis

Merck Serono is a leader in multiple sclerosis (MS) with Rebif® (interferon beta-1a), a disease-modifying drug used to treat relapsing forms of MS, which is registered in more than 80 countries worldwide. Full prescribing information for Rebif® can be obtained by contacting the Company or visiting its website. Additional therapeutic options are currently under development at Merck Serono, including oral cladribine, currently in Phase III and potentially the first oral therapy for MS, as well as several products in early stage development. Merck Serono also is taking a leading role in developing an understanding of the role of genetics in MS.

About multiple sclerosis

Multiple sclerosis (MS) is a chronic, inflammatory condition of the nervous system and is the most common, non-traumatic, disabling, neurological disease in young adults. The World Health Organization estimates that up to 2.5 million people suffer from MS worldwide. While symptoms can vary, the most common symptoms of MS include blurred vision, numbness or tingling in the limbs and problems with strength and coordination. The relapsing forms of MS are the most common.

About Merck Serono

Merck Serono is the division for innovative prescription pharmaceuticals of Merck, a global pharmaceutical and chemical group. Headquartered in Geneva, Switzerland, Merck Serono discovers, develops, manufactures and markets innovative small molecules and biopharmaceuticals to help patients with unmet medical needs. Its North American business operates in the United States and Canada as EMD Serono.

Merck Serono has leading brands serving patients with cancer (Erbitux®), multiple sclerosis (Rebif®), infertility (Gonal-f®), endocrine and cardiometabolic disorders (Glucophage®, Concor®, Euthyrox®, Saizen®, Serostim®), as well as psoriasis (Raptiva®).
With an annual R&D expenditure of around € 1bn, Merck Serono is committed to growing its business in specialist-focused therapeutic areas including neurodegenerative diseases, oncology, fertility and endocrinology, as well as new areas potentially arising out of research and development in autoimmune and inflammatory diseases.

About Merck

Merck is a global pharmaceutical and chemical company with total revenues of € 7.1 billion in 2007, a history that began in 1668, and a future shaped by 31,946 employees in 60 countries. Its success is characterized by innovations from entrepreneurial employees. Merck's operating activities come under the umbrella of Merck KGaA, in which the Merck family holds an approximately 70% interest and free shareholders own the remaining approximately 30%. In 1917 the U.S. subsidiary Merck & Co. was expropriated and has been an independent company ever since.

For more information, please visit www.merckserono.net or www.merck.de

Monday, September 22, 2008

New data presented at WCTRIMS* supports the importance of early and sustained treatment with Betaseron®





Earlier treatment initiation and longer exposure to Betaseron was associated with improved long-term outcomes in multiple sclerosis

MONTREAL, CANADA, September 19, 2008 Data presented at the World Congress on Treatment and Research in Multiple Sclerosis (WCTRIMS) demonstrated that early initiation of Betaseron� (interferon beta-1b) treatment had a greater impact on long-term outcomes, when compared to delayed treatment.

The study, sponsored by Bayer HealthCare Pharmaceuticals, used data from the 16-Year Long-Term Follow-up Study of Betaseron to investigate the relationship between timing of drug initiation and length of exposure to treatment, and long-term outcomes. It demonstrated that initiating Betaseron treatment early in the disease reduced the risk of negative long-term outcomes, including conversion to secondary progressive multiple sclerosis (SPMS), reaching a confirmed EDSS of 6.0 or the use of a wheelchair. The study also found that the longer patients stayed on treatment, the better their long-term outcomes were.1

"The new analysis confirmed that in MS, timing of treatment is important. The findings showed that even if two patients are treated for an equivalent length of time, the one who started therapy earlier in the disease course had a better long-term outcome," said Douglas Goodin, MD, Director of the Multiple Sclerosis Center at UCSF Medical Center. "Patients and physicians should take these results into consideration when making treatment decisions."

A second study, called CogniMS, also presented at WCTRIMS, demonstrated that cognitive deficits can be measured early in the course of MS. The investigators suggested that such cognitive deficits may be clinically important for MS management decisions.

"Studies are now showing that apart from disease progression and relapse rates, cognition is another area that is impacted early in the course of the disease. In fact, there is a correlation between the level of disability at the start of treatment and cognitive function 16 years later. More research is needed to determine how treatment might benefit long-term cognitive outcome," said Dr. Goodin.

"The data presented here underscore the need to help patients start therapy earlier and stay on treatment for the long-term," said, Ludger Heeck, Ph.D. Vice President and General Manager, Specialty Medicine Bayer HealthCare Pharmaceuticals Inc. "Bayer is committed to helping provide both the medication and the support services that people need to help treat their MS. We pioneered the concept of customized MS support services, and our best-in-class BETAPLUSTM program goes far beyond treatment to offer a wide range of beneficial services for people with MS. From having dedicated MS nurses who can provide practical help and advice, to offering product enhancements like our new thinnest needle and optional autoinjector that can help make injection administration more comfortable, we continue to lead the way in helping people with MS start on and stay on treatment."

About the Trials
The 16-Year Long-term Follow-up Study is a multicenter observational study that collected data from patients with relapsing-remitting MS (RRMS) who participated in the pivotal North American trials for Betaseron. Several statistical methods were used to assess patient data and examine the relationship between timing of drug exposure and long-term outcomes. Drug exposure was measured as the medication possession ratio (MPR) defined as the actual time the patient received therapy divided by the total time possible before a negative outcome was reached (or at data censor). A statistical method called recursive partitioning was then used to divide treatment groups into "high" or "low" exposure and to determine the relationship between length of drug exposure and long-term outcomes. The use of MPR reduces the bias introduced in long-term trials by the tendency of patients who are doing well on therapy stay on therapy and for patients who are doing poorly to stop a particular therapy. Other statistical approaches including Propensity Scoring were used to control for other known sources of bias.1

CogniMS is a two-year observational study involving 1509 patients with early MS (diagnosed within two years) who were treated with Betaseron and assessed every six months using tests to measure cognition, fatigue and health-related quality of life. The trial includes patients from 32 countries2 and is currently ongoing.

About Betaseron
Betaseron is indicated for the treatment of relapsing forms of multiple sclerosis to reduce the frequency of clinical exacerbations. Patients with multiple sclerosis in whom efficacy has been demonstrated include patients who have experienced a first clinical episode and have MRI features consistent with multiple sclerosis.

The most commonly reported adverse reactions are lymphopenia, injection-site reaction, asthenia, flu-like symptom complex, headache and pain. Gradual dose titration and use of analgesics during treatment initiation may help reduce flu-like symptoms. Betaseron should be used with caution in patients with depression. Injection-site necrosis has been reported in four percent of patients in controlled trials. Patients should be advised of the importance of rotating injection sites. Female patients should be warned about the potential risk to pregnancy. Cases of anaphylaxis have been reported rarely. See "Warnings," "Precautions," and "Adverse Reactions" sections of full Prescribing Information. More information, including the full Prescribing Information, is available at www.betaseron.com.

About Bayer HealthCare Pharmaceuticals Inc.
Bayer HealthCare Pharmaceuticals Inc. is the U.S.-based pharmaceuticals business of Bayer HealthCare LLC, a subsidiary of Bayer AG. Bayer HealthCare is one of the world's leading, innovative companies in the healthcare and medical products industry, and combines the activities of the Animal Health, Consumer Care, Diabetes Care, and Pharmaceuticals divisions. Bayer HealthCare Pharmaceuticals comprises the following business units: Women's Healthcare, Diagnostic Imaging, General Medicine, which includes Cardiology and Primary Care and Specialty Medicine, which includes Hematology, Oncology and Multiple Sclerosis. The company's aim is to discover and manufacture products that will improve human health worldwide by diagnosing, preventing and treating diseases.

Media Contact:
Marcy Funk
Bayer HealthCare Pharmaceuticals
973-305-5385

Forward-Looking Statements
This news release contains forward-looking statements based on current assumptions and forecasts made by Bayer Group management. Various known and unknown risks, uncertainties and other factors could lead to material differences between the actual future results, financial situation, development or performance of the company and the estimates given here. These factors include those discussed in our annual and interim reports to the Frankfurt Stock Exchange and in our reports filed with the U.S. Securities and Exchange Commission (including our Form 20-F). The company assumes no liability whatsoever to update these forward-looking statements or to conform them to future events or developments.

*WCTRIMS is the first joint meeting of ECTRIMS (the European Committee on Treatment and Research in Multiple Sclerosis) and its counterparts in North and Latin America: ACTRIMS and LACTRIMS

*DS Goodin, G Ebers, AT Reder, et al. Early Treatment with Interferon Beta-1b is Associated with Improved Long-Term Outcome in Multiple Sclerosis. World Congress on Treatment and Research in Multiple Sclerosis 2008.

*S Fredrikson, DW Langdon, K Kim, et al. Cognition, Fatigue, Depression and Health-Related Quality of Life in Early Multiple Sclerosis: Baseline Data from CogniMS, a Multinational Longitudinal Study. World Congress on Treatment and Research in Multiple Sclerosis 2008.

Monday, June 09, 2008

New Data on Disease-modifying Therapies for Multiple Sclerosis





Mark J. Tullman, MD

Introduction

New data from key clinical trials of disease-modifying therapy were presented at the 60th Annual Meeting of the American Academy of Neurology. The results of some of these studies, along with the potential clinical implications of those results, are presented below.

Efficacy of Interferon Beta-1b and Glatiramer Acetate in Patients With Relapsing-Remitting Multiple Sclerosis: The BEYOND Trial

Results of the Betaferon/Betaseron Efficacy Yielding Outcomes of a New Dose (BEYOND) trial, which was funded by Bayer Healthcare Pharmaceuticals, were presented in a late-breaking session by Paul O'Connor, MD.[1] This trial was designed to compare the efficacy of 250 micrograms (mcg) and 500 mcg of interferon beta-1b given subcutaneously (SC) every other day in patients with relapsing-remitting multiple sclerosis (RRMS). The efficacy of these two doses of beta interferon-1b was also compared with glatiramer acetate (20 mg SC administered daily).

The trial randomized treatment-naive patients with RRMS with Expanded Disability Status Scale (EDSS) scores equal to or less than 5. Patients also had to have at least one relapse in the year prior to entry into the study. A total of 2244 patients were randomized in a 2:2:1 ratio to the 500-mcg dose of beta interferon-1b (n = 899), the 250-mcg dose of interferon beta-1b (n = 899) or to the 20-mg dose of glatiramer acetate (n = 448) for a period of 104 weeks or longer. Patients underwent clinical evaluations every 3 months and brain magnetic resonance imaging (MRI) scans annually.

The trial's primary endpoint was relapse risk. A per-protocol analysis and an intent-to-treat analysis were performed on the data. The clinical efficacy of each of the 3 treatment groups (beta interferon-1b 250 mcg, beta interferon-1b 500 mcg, and glatiramer acetate 20 mg) was similar in each of the analyses.

There were several supportive endpoints, including relapse rate, proportion of relapse-free patients, and time to first relapse. Secondary outcome variables were time to confirmed EDSS progression and T1 black hole development. Other endpoints of interest included the number and volume of T2 lesions. The annualized relapse rate fell by nearly 80% compared with the year prior to enrollment in the study, but there were no significant differences among the treatment groups.

There were some MRI endpoints that showed statistically significant differences between the treatment groups. The cumulative number of T2 lesions up to the last scan was significantly higher in the group receiving glatiramer acetate compared with the groups receiving 250 mcg (P = .17) or 500 mcg (P = .001) beta interferon-1b. Additionally, patients receiving 250 mcg or 500 mcg beta interferon-1b had a significantly lower increase in T2-lesion volume compared with the group receiving glatiramer acetate (P < .001 and P = .001, respectively). The authors note that it is unclear whether there is any long-term clinical significance to these findings.

All 3 treatments were generally well-tolerated. Dropout rates for 250 mcg interferon beta-1b, 500 mcg interferon beta-1b, and glatiramer acetate were 13%, 19%, and 17%, respectively. It is important to note that although this was a double-blind study for the interferon beta-1b groups (ie, they were unaware which dose they were receiving), this was not a double-blind trial for the patients who received glatiramer acetate. This may explain the higher dropout rate in the group receiving glatiramer acetate (17%) compared with the group receiving 250 mcg interferon beta-1b (13%) because the patients receiving interferon beta-1b were aware that there was a 50% chance that they could be receiving the higher, and potentially more effective, dose of interferon beta-1b.

The adverse events observed were similar to the known adverse event profiles of these compounds. Flulike symptoms were more common with interferon beta-1b and injection-site reactions (eg, pain, pruritis) were more common with glatiramer acetate.

The Results of the BEYOND trial[1] are similar to the recently presented results from the REGARD trial[2] that compared interferon beta-1a 44 mcg SC 3 times a week to glatiramer acetate. In these 2 studies, more than 2000 patients were randomized to either high-dose interferon or glatiramer acetate. Patients did very well and there were no major differences in terms of efficacy between the therapies. Unfortunately, the 500-mcg dose of interferon beta-1b was no more effective than the 250-mcg dose. In the absence of clear superior efficacy data between the high-dose interferons and glatiramer acetate, it seems to me that a high-dose interferon and glatiramer acetate are both reasonable initial treatment options for most patients with RRMS. Patients should be well informed and part of the treatment decision process. Some patients may prefer starting with a daily injection with fewer side effects and others would rather take a medication that has fewer injections but the potential to cause more side effects and requires periodic blood work.

Furthermore, for patients on a high dose interferon of glatiramer acetate who experience persistent side effects, switching from one agent to the other might improve tolerability and enhance quality of life without sacrificing efficacy.

Efficacy of Glatiramer Acetate in Delaying Conversion to Clinically Definite Multiple Sclerosis: The PreCISe Trial

Results from the Study to Evaluate the Effect of Early Glatiramer Acetate Treatment in Delaying the Conversion to CDMS of Subjects Presenting With a Clinically Isolated Syndrome (CIS) (PreCISe) trial, were presented in a late-breaking session by Giancarlo Comi.[3] The PreCISe trial was a randomized, double-blind, placebo-controlled, multicenter, 3-year study designed to evaluate the efficacy of early treatment with glatiramer acetate in delaying the progression to clinically definite MS (CDMS) in patients with clinically isolated syndromes (CIS), which are considered to be first events suggestive of MS.

The study randomized 481 patients who had a minimum of 2 T2-weighted brain lesions at least 6 mm in diameter shown on MRI and who had experienced a first clinical event to receive glatiramer acetate 20 mg/day SC (n = 243) or placebo (n = 238). Only patients with a unifocal disease manifestation were included. Key baseline characteristics were: age (31.1 ± 6.9 years), time from first event to randomization (74.0 ± 14.9 days), and corticosteroid use for first attack (64% of patients). There was no difference between the study arms in EDSS (1.0 ± 1.0), number (31.5 ± 30.7) and volume (6.0 ± 6.2ml) of T2 weighted lesions, and number (1.5±2.9) and volume (0.3 ± 0.6ml) of gadolinium enhanced lesions.

The primary endpoint of the study was time to CDMS based on a second clinical attack. The trial was stopped prematurely by the data and safety monitoring committee after a preplanned interim analysis. The group initially receiving placebo was then switched to active treatment on an open-label basis. At this point, about 80% of the planned drug exposure had been given, and CDMS had developed in about 43% of those patients in the placebo group compared with just 25% in the glatiramer acetate group. The odds ratio for progression to CDMS was 0.41 (P < .0001) and the hazard ratio for progression to CDMS was 0.55 (95% CI 0.40-0.77; P = .0005) in the group taking glatiramer acetate compared with the placebo group. This translates in to a 45% risk reduction for progression to CDMS in the group on active treatment compared with the group on placebo. Additionally, the 25th percentile time to CDMS was prolonged from 336 days in the placebo group to 722 days (115% increase in time to CDMS onset) in the group receiving glatiramer acetate.

The results of MRI scans also favored the group receiving glatiramer acetate compared with the group receiving placebo. The mean number of new T2-weighted lesions was reduced by 61% in the patients receiving glatiramer acetate compared with the patients receiving placebo (P < .0001). Similarly, patients receiving glatiramer had a 61% reduction in new T1 gadolinium-enhancing lesions compared with the group receiving placebo (P < .0001).

Glatiramer acetate was well tolerated, and side effects were similar to those previously reported in patients with CDMS, including local injection-site reactions and transient postinjection reactions including chest pain, flushing, dyspnea, palpitations, and anxiety.

The open-label extension phase of the study will continue to a 5-year follow-up to evaluate the potential for glatiramer acetate to prevent or delay clinical progression of the disease. Patients will receive glatiramer acetate and will be followed until the development of CDMS.

The PreCISe study results are really not surprising. However, we now have strong evidence that the interferons and glatiramer acetate are effective when initiated after a first MS attack in patients with at least minimally abnormal brain MRI. The 5-year PreCISe data may provide additional evidence that early treatment with MS immunomodulatory therapy prevents the development of disability.

This activity is supported by an independent educational grant from Teva Neuroscience.

Wednesday, June 04, 2008

Extavia® approved in European Union for treatment of multiple sclerosis, first in planned portfolio of therapies from Novartis





Extavia is Novartis brand for interferon beta-1b - an established therapy with more than 700,000 patient-years' experience to date[1]

Launch of Extavia for early and relapsing forms of multiple sclerosis (MS) planned for US and Europe in first half of 2009
Novartis committed to MS through extensive research and development programs, including novel oral therapy FTY720 currently in Phase III trials

MS, a devastating disease causing progressive disability, affects an estimated 2.5 million people worldwide, including many young adults[2]

Basel, May 26, 2008 - The European Commission has approved Extavia® (interferon beta-1b) for the treatment of early and relapsing forms of multiple sclerosis (MS) - the first in a new portfolio of medicines from Novartis that is planned to include both established treatments and innovative therapies for patients with MS.

Extavia is the Novartis branded version of interferon beta-1b, a first-line disease-modifying therapy injected every other day for the treatment of MS. Interferon beta-1b has been available globally for more than 13 years and is supported by more than 700,000 patient-years of experience[1].

Formerly known as NVF233, Extavia is the same medicine as Betaferon®/Betaseron®, which is marketed by Bayer-Schering and was the first beta interferon treatment for MS. Novartis gained rights to its own branded version of this medicine in agreements with Bayer-Schering related to the acquisition of Chiron.

"Novartis is committed to MS and to providing effective treatments for patients with this disease," said Trevor Mundel, MD, Head of Global Development Functions at Novartis Pharma AG. "The approval of Extavia means we are able to offer the MS community a current standard of care while preparing for the introduction of innovative therapies such as FTY720."

Novartis also recently filed for approval of interferon beta-1b with the US Food and Drug Administration. Launches in the US and EU are planned for the first half of 2009, in line with an agreement with Bayer-Schering that established the opportunity for Novartis to introduce its own branded version of interferon beta-1b.

By the end of 2009, Novartis also plans to file for approval of the innovative oral therapy FTY720 (fingolimod). Results of an ongoing Phase II study extension presented in April show sustained benefits in patients with relapsing MS after three years of treatment with FTY720. Data showed that 68-73% of patients in the study remained free from relapses after three years' continuous treatment[3].

A number of other compounds for treating MS are also in early stage development by Novartis.

Multiple sclerosis is the most common disorder of the central nervous system in young adults2. It is a progressive and debilitating disorder caused by the destruction of myelin, which helps neurons carry electrical signals in the brain. MS causes problems with muscle control and strength, vision, balance, sensation and cognitive function2. MS typically presents in relapsing forms involving acute self-limiting attacks of neurological dysfunction (or "relapses") followed by complete or partial restoration of functions[4].

In the EU, Extavia is approved for patients with relapsing-remitting MS, the most common form of the disease involving relapses followed by complete or partial restoration of function, and for a steadily worsening form of the disease known as secondary progressive MS with relapses.

In addition, Extavia is approved to treat patients with early MS who:

Have experienced a single episode involving loss of myelin (or "demyelinating event")
Have an active inflammatory process that is severe enough to need treatment with intravenous corticosteroids, if alternative diagnoses have been excluded
Are at high risk of developing clinically definite MS.

Disclaimer
The foregoing release contains forward-looking statements that can be identified by terminology such as "plans", "will", "should" or similar expressions, or by express or implied discussions regarding potential new indications, labeling or regulatory filings or approvals for Extavia® or regarding potential future revenues from Extavia®. Such forward-looking statements reflect the current views of the management regarding future events, and involve known and unknown risks, uncertainties and other factors that may cause actual results with Extavia® to be materially different from any future results, performance or achievements expressed or implied by such statements. There can be no guarantee that Extavia® will be approved for any additional indications or labeling by the European Commission or that Extavia will be approved for any indications in any additional markets. There can also be no guarantee that Extavia® will achieve any particular levels of revenue in the future. In particular, management's expectations regarding Extavia® could be affected by, among other things, introduction of new MS therapies, unexpected regulatory actions or delays or government regulation generally or involving Extavia®, interferon beta-1b; unexpected clinical trial results, including unexpected new clinical data and unexpected additional analysis of existing clinical data; the company's ability to obtain or maintain patent or other proprietary intellectual property protection; competition in general; government, industry and general public pricing pressures, and other risks and factors referred to in Novartis AG's current Form 20-F on file with the US Securities and Exchange Commission. Should one or more of these risks or uncertainties materialize, or should underlying assumptions prove incorrect, actual results may vary materially from those anticipated, believed, estimated or expected. Novartis is providing the information in this press release as of this date and does not undertake any obligation to update any forward-looking statements contained in this press release as a result of new information, future events or otherwise.

About Novartis

Novartis AG provides healthcare solutions that address the evolving needs of patients and societies. Focused solely on growth areas in healthcare, Novartis offers a diversified portfolio to best meet these needs: innovative medicines, cost-saving generic pharmaceuticals, preventive vaccines and diagnostic tools, and consumer health products. Novartis is the only company with leading positions in these areas. In 2007, the Group's continuing operations (excluding divestments in 2007) achieved net sales of USD 38.1 billion and net income of USD 6.5 billion. Approximately USD 6.4 billion was invested in R&D activities throughout the Group. Headquartered in Basel, Switzerland, Novartis Group companies employ approximately 98,000 full-time associates and operate in over 140 countries around the world. For more information, please visit http://www.novartis.com.

References
[1] Data on file. Wayne, NJ: Bayer HealthCare Pharmaceuticals Inc; 2007.
[2] Multiple Sclerosis International Federation at www.msif.org Accessed 15 May 2008.
[3] Comi G et al. Oral FTY720 (fingolimod) in patients with relapsing multiple sclerosis. 3-year extension shows sustained low relapse rate and MRI activity. Abstract presented at 60th annual meeting of American Academy of Neurology, Chicago, 12-19 April 2008.
[4] National Multiple Sclerosis Society at www.nationalmssociety.org, Accessed 15 May 2008.
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Monday, December 10, 2007

ECTRIMS 2007: Understanding MS: Pathogenesis, Neuroinflammation, and Degeneration CME





The materials presented here were prepared by independent authors under the editorial supervision of Medscape and do not represent a publication of the European Committee for Treatment and Research in Multiple Sclerosis. These materials and the related activity are not sanctioned by the European Committee for Treatment and Research in Multiple Sclerosis or the commercial supporter of the conference and do not constitute an official part of that conference.

Release Date: November 29, 2007;


The Impact and Burden of Multiple Sclerosis
Prevalence, Epidemiology, and Economic Burden

The national and regional prevalence of multiple sclerosis (MS) in France was reported at the 2007 European Committee for Treatment and Research in Multiple Sclerosis (ECTRIMS) meeting, showing the overall prevalence in France and its 22 regions using the same methodology for the first time.[1] The computerized database of the National Health Insurance system (Caisse Nationale d'Assurance Maladie [CNAM]) assessed 80% of the French population or 54,974,101 people. The national and regional prevalence was estimated on October 10, 2004. There were 49,626 cases of MS on the CNAM database on the prevalence date. The national prevalence was 90.3 per 100,000 (2.6 female-to-male ratio). The northern and eastern regions had a higher prevalence (101.1-122.2 per 100,000) compared with the western and southern regions (78.5-84.3), with the central region having an intermediate prevalence (84.3-101.1 per 100,000). The prevalence in Northeast France was 1.5 times that of Southwest France. These observations are consistent with the previously reported data of the heterogeneous distribution of MS in Europe between Northern and Southern European countries.

In Japan there is a geographic phenotype difference in MS. Two distinct subtypes of MS occur in Asians: optic-spinal multiple sclerosis (OCMS or neuromyelitis optica) and conventional multiple sclerosis (CMS). From 4 nationwide surveys in Japan taken in 1972, 1982, 1989, and 2004, 9900 patients with MS were seen with a prevalence of 7.7/100,000.[2] OCMS was more common in southern Japan, whereas CMS was more common in the north. Peak age of onset in patients declined from their early 30s in 1972 to their early 20s in 2004. The proportion of patients with OCMS decreased over the observation period from 1972 to 2004. The frequency of CMS remained predominant in the northern regions.

In another epidemiologic presentation from Japan,[3] an increasing incidence of MS in the Tokachi province of Hokkaido (the northernmost island of Japan) was noted over a 30-year period. Two epidemiologic surveys were conducted to assess the prevalence of MS in 2001 and 2006. The Tokachi province had a population of 350,000 in 2001 and 360,000 in 2006. In 2001 the prevalence of MS that satisfied the Poser criteria was 8.6/100,000 and 13.1/100,000 in 2006. The mean age at the prevalence day was 41.0 years old and the mean age at onset was 28.4. The mean duration of disease was 12.6 years. The rate of primary progressive MS was 4%; relapsing-remitting MS was 70%; and secondary progressive MS was 26%. The prevalence of OCMS was 1.7/100,000 in both 2001 and 2006 showing no change compared with CMS. From prior data, it was known that the mean annual incidence increase of MS was 0.15 from 1975 to 1989 but 0.68 from 1990 to 2004. It appears that the increased prevalence of MS in northern Japan may be due to the increased incidence since 1990.

Since disease-modifying therapies (DMTs) have been available, considerable healthcare resources are used by MS patients. A healthcare utilization survey was carried out from a Health Insurance Portability and Accountability Act (HIPAA)-compliant commercial administrative claims database. The database contained integrated inpatient, outpatient, and pharmacy records on over 12 million persons from all major US regions, with the diagnostic International Classification of Diseases, Ninth Revision (ICD-9) code for MS (340.xx) as the first or second diagnosis.[4] The time span analyzed ranged from June 2005 to June 2006. The results found 12,216 identified MS patients, 77% of whom were women, and 84% aged 30-59 years (mean, 47 years). Fifty-six percent used at least 1 DMT. Interferon (IFN) beta-1a (intramuscular) was most common (19.8%), followed by glatiramer acetate (19.4%), INF IFN beta-1a subcutaneous (10.2%), IFN beta-1b (9.2%), and mitoxantrone (0.9%). Six percent received 2 or more DMTs. Those who used DMT were more likely to use symptomatic treatments: Forty-three percent used medications for depression, 31% for spasticity, 25% for bladder symptoms, 19% for fatigue, and 28% for pain or dysesthesiae. Twelve percent of patients were admitted to a hospital (56% condition-related); 11% had emergency department visits (13% condition-related); 2.4% had intensive care unit stays (44% condition-related); and 1.8% had skilled nursing facility stays (58% condition-related). Even though DMTs are available to the majority of MS patients, only 56% of the MS patients in this particular survey chose to take DMTs, but a significant amount of healthcare resources was still used by this group creating costs beyond the cost of the DMTs. This could be interpreted to suggest that improved treatments are needed to reduce the current healthcare as well as personal burden of MS.

Impact on Patients' Quality of Life and Cognition

Studies examining the impact of stressful life events on MS exacerbations have given conflicting results. However, a study of war stress from the Carmel Medical Center in Haifa, Israel, after the Hezbollah-Israeli war in 2006, showed a significant increase in MS exacerbations compared with similar time periods prior to the war.[5] The influence of psychological coping strategies was also examined.

Participants in the study were 156 MS patients with relapsing-remitting MS, all residents of northern Israel who were followed regularly at the MS clinic. The number of severe relapses treated with steroids during and following the war were compared with similar time periods at the preceding year. Exposure to war events, resulting subjective stress, and psychological coping strategies were evaluated by means of structured interviews. The results of the study indicated that 18 relapses occurred compared with 1-7 relapses in similar time periods over the 13 months prior to the war (P = .001-.02, McNemar's test). The percentage of patients reporting intense stress among wartime relapse patients compared with remission patients was significant (44% vs 20%, P = .03). The percentage of patients reporting high levels of stress from rocket attacks was higher in relapsing patients (67% vs 42%, P = .05). Home evacuation stress was higher in relapsing patients (33% vs 11%, P = .02). Active coping mechanisms, such as planning ahead for home displacement, were used less frequently by patients with relapses (17% vs 47%, P = .01).

Three variables were selected as predictors of wartime relapse by a logistic regression model: subjective sense of stress, distress associated with displacement, and MS relapse in the previous year. Active coping reduced the risk for an exacerbation. The conclusions of the study indicated that the risk for an exacerbation is increased by wartime stress but can be reduced with active coping measures. This suggests a role for preventive measures in dealing with stress-related exacerbations.

Fatigue is the most frequent complaint of MS patients, even those with low Expanded Disability Status Scale (EDSS) scores. Fatigue affects quality of life for many individuals and is the main burden on the health and socioeconomic system. Two studies with longitudinal evaluation over 2 years analyzed variables in regard to fatigue in MS. In the study from the Karolinska Institutet in Stockholm, Sweden,[6] 219 outpatients were assessed every 6 months with the Fatigue Severity Scale (FSS). Personal and environmental factors (sex, age, sense of coherence, living with a partner, living with children, work status, and immunomodulatory treatment) were correlated. The results showed that the FSS varied over the 2 years, with 54% changing FSS category 1 or several times. Twenty-seven percent were persistently fatigued and 19% never fatigued. In those patients who had increased or persistent fatigue, mood and disease-related factors were significantly different: depression (P = .001), weak sense of coherence (P = .02), living with a partner vs not living with a partner (P = .02), not working (P = .05), more than 10 years since the diagnosis of MS and with a moderate EDSS score compared with a mild EDSS (P = .001), more than 10 years since the diagnosis of MS and with a moderate EDSS compared with a severe EDSS score (P = .02), and a moderately progressive course compared with a mild course (P = .001). The conclusions of this study were that fatigue persistently affected at least 27% of the MS population and that those with a moderate course were at greatest risk, especially with an associated depression.

Another longitudinal study of fatigue[7] showed that depression and physical impairment were significantly associated with persistent fatigue in a group of 267 MS patients followed over 2 years. Thirty-seven percent of the patients had persistent fatigue; 38% had sporadic fatigue; and 25% had no fatigue. Persistent and sporadic fatigue were not associated with disease duration, but they were significantly associated with physical impairment, primary progressive MS, insomnia, heat-sensitive fatigue, sudden-onset fatigue, and mood disturbance.

Cognitive Dysfunction

Studies have shown that up to 65% of MS patients have cognitive dysfunction and that cognitive dysfunction is the greatest cause for disability.[8] However, cognitive dysfunction is not well evaluated in the EDSS score nor in the routine office or clinic evaluation. There is a growing awareness that cognitive dysfunction in MS is underappreciated, and the large number of poster and platform presentations concerning cognition in MS at the ECTRIMS 2007 meeting reflects that awareness. It is important that both the practicing neurologist and academic neurologist take into consideration the cognitive function of their MS patients when evaluating the patient for DMT so that prevention of disability can be possibly achieved. Walking with a cane may not be a reason for loss of employment, but inability to follow or carry out directions or inability to formulate a plan of action may be disabling.

A significant percentage of patients with clinically isolated syndromes (CIS) were found to have significant cognitive dysfunction when evaluated with a comprehensive neuropsychological battery.[9] In an evaluation of 15 patients with CIS vs 15 healthy controls, 53.3% of the CIS patients compared with 0% of the controls had cognitive dysfunction. Patients were significantly impaired on tasks evaluating attention (46.6%), long-term verbal and nonverbal memory (33.3%), visuospatial skills (26.6%), executive function (20%), and learning (20%).

In a retrospective review of 71 MS patients with severe cognitive impairment in the first 10 years of their disease, 15 of the patients presented with cognitive impairment as their first and primary symptom.[10] The characteristics of these 15 patients were mean age of onset, 43 years old; 11 women, 4 men; and mean delay from symptom onset to diagnosis, 2.6 years. Oligoclonal bands in the cerebrospinal fluid were present in all but 1 patient. The cognitive dysfunction had a severe impact on daily living activities and remained the predominant feature of the disease for all patients even though physical disability remained mild (mild pyramidal, sensory, cerebellar, brainstem, or bladder signs in 11 of 15) or absent (in 4). Initial MRI pattern showed diffuse and confluent lesions in the periventricular white matter with severe cortical atrophy (n = 7, pattern A). Others showed focal white matter lesions typical of MS with little or no atrophy (n = 8, pattern B). Two patients' MRIs evolved from pattern B to pattern A in 2-5 years. Clinicians need to be aware that MS-related cognitive dysfunction can be disabling even with little or no physical disability.

Available Pharmacologic Therapies

There are 6 US Food and Drug Administration (FDA)-approved DMTs in the United States at this time. These DMTs are IFN beta-1a (intramuscular or subcutaneous), IFN beta-1b, glatiramer acetate, mitoxantrone, and natalizumab. All of these treatments have shown significant reduction of relapse rate and MRI lesions compared with controls. There are some data from pivotal studies to suggest a reduction of disability but long-term prevention of disability needs further evaluation.

Because cognitive dysfunction is the main cause of disability in patients with MS, and brain atrophy is highly associated with cognitive dysfunction, reduction of brain atrophy is a potentially important marker for the prevention of disability -- more important than the EDSS. In the AFFIRM study there was a more rapid brain parenchymal fraction (BPF) reduction in patients receiving natalizumab compared with patients receiving placebo during the first year (0.56 vs 0.24%) than the second year (0.24% vs 0.43%).[11] The question of why this may have occurred includes a time lag between inflammation and subsequent tissue loss (or atrophy in which the decrease in BPF during the first year may be an inevitable consequence of inflammation and tissue damage that occurred prior to initiation of treatment) or "pseudoatrophy" as an initial decrease in BPF from resolution of edema and inflammatory infiltrate rather than actual tissue loss.

To answer these questions, an analysis was conducted on the kinetics of brain atrophy during the first year of treatment with natalizumab from the AFFIRM study. Drs. Fisher and Rudick from the Cleveland Clinic Foundation, Cleveland, Ohio,[12] presented further evaluation of the kinetics of brain atrophy and the relationship between inflammatory lesions and BPF during natalizumab treatment. The study was a randomized, double-blind, placebo-controlled, phase 2 study of 213 patients, of which 148 (100 natalizumab, 48 placebo) had analyzable MRI scans. The scans were performed at 1 month prior to the study, at month 0 (baseline), monthly for 6 months, and at months 9 and 12. The 2 treatment arms of natalizumab (3 mg/kg and 6 mg/kg) were combined for all statistical analyses. The results showed an initial decrease in BPF in the early treatment period, followed by a leveling off after month 4 to the end of the treatment period (month 12). This pattern of BPF change is most suggestive of pseudoatrophy, which is consistent with an anti-inflammatory effect followed by a reduced atrophy rate in the late treatment phase. Therefore, this pattern of decrease in brain volume during the study suggests that natalizumab may have a beneficial effect on brain atrophy, beginning about 4 months after treatment initiation.

As of September 21, 2007, a total of 26,200 patients have been exposed to natalizumab,[13] with no new cases of progressive multifocal leukoencephalopathy reported. Seventeen thousand patients remain on natalizumab as of October 2007. The overall rate of serious hypersensitivity reactions is 0.64%, usually at the second infusion. Testing for the presence of persistent antibodies to natalizumab (detected on 2 occasions at least 6 weeks apart) prior to redosing following a prolonged dose interruption is recommended because reduced efficacy and increased risk for hypersensitivity reactions are more common in these patients. Twenty-four women in the United States and Austria with MS and exposure to natalizumab at any time during the first 3 months of pregnancy have enrolled in a pregnancy registry. Twenty-one pregnancies were ongoing as of August 23, 2007 with 1 live birth, 1 spontaneous abortion, and 1 elective abortion.

Nonpharmacologic Intervention

Physical therapy is a mainstay of patients of all types with physical disabilities. Studies of MS patients have shown variable results, probably due to many reasons, such as fatigue, instability of the disease, and small sample size. The type of physical therapy also varies. In a study from Belgium,[14] the benefit between bilateral exercise ("in-phase") and alternating exercise ("antiphase") was evaluated at various speeds of repetition for 10 weeks. Exercise rates of 0.75 Hz, 1.00 Hz, 1.25 Hz, and 1.50 Hz were used. Patients had mild-to-moderate disabilities (EDSS scores from 1.5 to 6.5). Coordination accuracy and stability were measured at baseline and at 10 weeks. The results showed that physical intervention programs with emphasis on strength do not influence motor control of the lower limbs after a 10-week intervention period. Antiphase training is performed with the lowest accuracy at the lowest frequency but improves when frequency increases. This is a particular finding in MS patients and contrasts with the current literature in regard to healthy subjects. This study also found that motor control and the EDSS were not correlated, probably due to the fact that EDSS is a rough picture of the distance that an MS patient can walk, whereas motor control is about stability and accuracy.

A comprehensive rehabilitation program showed improvement of MS patients with primarily pyramidal impairment and mild-to-moderate MS in both activities of daily living and mobility.[15] In a study with 200 patients in an inpatient multidisciplinary program, patients were assessed at the beginning and end of admission with the EDSS. Functional status was evaluated with the Barthel Index and Rivermead Mobility Index. Sixty-five percent were women, with a mean age of 50 and mean duration of disease of 17.3 years. All patients were enrolled in an individualized, goal-oriented, multidisciplinary inpatient program on the basis of practical skills of daily living. Results of rehabilitation were assessed in the whole sample as well as by comparing 3 subgroups: a mild group (EDSS 2-5.5), moderate group (EDSS 6-65), and severe group (EDSS 7-8.5). The results of the program showed greater improvement in patients in the mild and moderate groups, although the severe group did show some improvement. Pyramidal impairment was the greatest predictor of mobility and activities of daily living.

In another rehabilitation study,[16] patients were randomized to 3 treatment groups: outpatient, inpatient, and day hospital. There were 9 patients in each group for a total of 27 patients. The outpatient group (mean EDSS of 6.0) had 1-hour rehabilitation training twice weekly; the inpatient group (mean EDSS of 5.5) had more than 2 hours daily; and the day hospital group (mean EDSS of 6.5) had 2 hours daily. Outcome measures were Berg Scale, Barthel Index, and Hauser Ambulation Scale. The program lasted 5 weeks. The results showed that all patients improved in outcome measures except for ambulation, but there was no difference among the groups. The conclusion was that outpatient rehabilitation is equally effective as inpatient or day hospital therapy, and outpatient rehabilitation saves time and economic resources.

Supported by an independent educational grant from Genentech

References


Moreau R, Kazaz E, Clerc L, et al. Prevalence of multiple sclerosis in France and its 22 regions. Mult Scler. 2007;13(suppl2):S103. Abstract.
Osoegawa M, Fukazawa T, Fujihara K, et al. Temporal and geographical changes of multiple sclerosis phenotype in Japanese: nationwide survey results over 30 years. Mult Scler. 2007;13(suppl2):S101-102. Abstract.
Houzen H, Niino M, Kikuchi S, et al. Increasing risk of multiple sclerosis in Japan. Mult Scler. 2007;13(suppl2):S102. Abstract.
Chin P, Laouri M, Broder M, et al. Healthcare utilization among insured multiple sclerosis patients in the U.S. from 2005-2006. Mult Scler. 2007;13(suppl2):S261. Abstract.
Golan D, Somer E, Dishon S, et al. War stress, psychological coping mechanisms and exacerbations of multiple sclerosis. Mult Scler. 2007;13(suppl2):S238. Abstract.
Johansson S, Ytterberg C, Hillbert J, et al. A longitudinal study of variations in perceived level of energy and predictors of fatigue in multiple sclerosis. Mult Scler. 2007;13(suppl2):S115. Abstract.
Lerdal A, Celius EG, Krupp L, et al. Longitudinal patterns of fatigue in patients with multiple sclerosis. Mult Scler. 2007;13(suppl2):S114-115. Abstract.
Rao SM. Neuropsychology of multiple sclerosis. Curr Opin Neurol. 1995;8:216-220.
Kocer B, Nazliel B, Irkec C. Cognitive dysfunction in patients with clinically isolated syndrome. Mult Scler. 2007;13(suppl2):S114. Abstract.
Assouad R, Tourbah A, Sedel F, et al. Cognitive presentation in multiple sclerosis. Mult Scler. 2007;13(suppl2):S114. Abstract.
Miller DH, Soon D, Fernando KT, et al; AFFIRM Investigators. MRI outcomes in a placebo-controlled trial of natalizumab in relapsing MS. Neurology. 2007;68:1390-401.
Fisher E, Rudick R, Dalton CM, et al. The kinetics of brain atrophy during the first year of treatment with natalizumab. Mult Scler. 2007;13(suppl2):S168. Abstract.
Panzara M, Belcher G, Kooijmans M, et al. Use of natalizumab in patients with relapsing multiple sclerosis: updated safety results from TOUCH and TYGRIS. Mult Scler. 2007;13(suppl2):S169. Abstract.
Alders G, Gijbels D, Feys P, et al. The effect of physical intervention programs on coordination quality of the lower limbs in persons with multiple sclerosis. Mult Scler. 2007;13(suppl2):S132. Abstract.
Grasso MG, Triosi E, Tonin A, et al. Effectiveness of multiple sclerosis rehabilitation. Mult Scler. 2007;13(suppl2):S130. Abstract.
Giusti A, Viti B, Pirani G, et al. The effectiveness of neurological rehabilitation in multiple sclerosis: comparison between different rehabilitative settings. Mult Scler. 2007;13(suppl2):S130. Abstract.

Evaluating New Data for the Treatment of MS
New and Emerging Pharmacologic Treatments

Oral Therapies

Several new treatments for multiple sclerosis (MS) are in phase 2 or phase 3 trials. The combined analyses of subcutaneous cladribine were presented by Dr. S. Cook for the Cladribine Clinical Study Group.[1,2] The safety profile of cladribine at parenteral doses of up to 2.1 mg/kg was similar to placebo, with a sustained lymphocytic depleting effect consistent with its therapeutic mechanism. The parenteral trials included MS patients with relapsing remitting MS (RRMS), secondary progressive MS (SPMS), and primary progressive MS (PPMS). Since parenteral doses of 0.7 to 2.1 mg/kg can be achieved with oral preparations, 2 oral studies are now underway. One study, CLARITY, is a monotherapy, phase 3 trial for patients with RRMS and an Expanded Disability Status Scale (EDSS) score of 0-5.5 for a 2-year period. It has 3 treatment arms; Group 1 receives 10-mg cladribine tablets for 4-5 days on weeks 1, 5, 9, and 13 in the first year. Group 2 receives cladribine for the first 2 treatment periods but placebo for the third and forth treatments. Group 3 receives placebo for all 4 treatments.[3] At this time, enrollment is completed with 1329 patients. The primary efficacy parameter is the relapse rate from baseline to week 96. The other oral cladribine study, ONWARD, is a phase 2b study that combines IFN-beta-1a (subcutaneous 3 times weekly, 44 mcg) with oral cladribine in an otherwise similar design.[4] The primary efficacy parameter is number of new Gd+ T1 lesions from baseline to week 96. A new subcutaneous formulation of IFN-beta-1a is being used in this trial.

Two phase 3 trials are underway with an oral fumaric acid derivation (BG00012) in patients with RRMS.[5] BG00012 has been shown in vitro to inhibit expression of cytokines and adhesion molecules involved in inflammation, with resultant anti-inflammatory and neuroprotective effects. A phase 2b double-blind, placebo-controlled, 24-week study with a 24-week safety extension showed a significant 69% reduction of Gd+ T1 lesions at 720 mg/day of BG00012 compared with placebo. Additionally, patients receiving BG00012 had 48% fewer T2 lesions and 53% fewer T1 lesions compared with placebo (all P = .001). Two phase 3 studies are now underway: DEFINE (a double-blind, placebo-controlled study of 2 doses of BG00012 240 mg 2 or 3 times a day vs placebo) and CONFIRM (same design but with an added comparator of glatiramer acetate). They are 2-year studies of 1000 patients and 1200 patients, respectively, with RRMS and an EDSS score of 0-5.0. The primary efficacy parameter of DEFINE is the proportion of patients relapsing over the 2 years, and the primary efficacy parameter of CONFIRM is the rate of clinical relapse at 2 years.

Monoclonal Antibody Therapies

Alemtuzumab is a humanized monoclonal antibody against the T-cell antigen CD52 on lymphocytes. Two studies evaluating alemtuzumab (ALEM) in patients with RRMS were reported at the ECTRIMS meeting. One trial was in treatment-naive patients comparing 2 doses of ALEM (either 24 mg/day intravenously [IV] for 5 days at month 0 and for 3 days at month 12 or 12 mg/day) and subcutaneous IFN-I-beta 3 times weekly at 44 mcg.[6] At 2 years, 84.4% of low-dose ALEM patients were relapse free, 90.6% of high-dose ALEM patients were relapse free, and 60.4% of IFN patients were relapse free (P = .0002 low-dose and P = .0001 high-dose). ALEM improved disability on the Multiple Sclerosis Functional Composite (MSFC) and EDSS scores. Relapses were reduced and delayed. Safety findings associated with ALEM were immune thrombocytopenic purpura (ITT) and autoimmune disorders of the thyroid gland. The other trial with ALEM included MS patients who had failed prior treatment with any IFN. The patients had to have had the onset of MS in the last 5 years, EDSS scores of 0-6, IFN for at least 6 of the last 24 months, and 2 relapses.[7] Forty-five patients received 2 cycles of ALEM with 1 mg IV methylprednisolone prior to ALEM. Patients received ALEM 24 mg/day for 5 days (cycle 1) and then 24 mg/day for 3 days at month 12 (cycle 2). The result was a 9.3-fold reduction of relapse rate (relapses in 2 years prior to cycle 1 vs relapses in 2 years following; P = .0001). On disability measurements, 70% of patients had stable or improved MSFC. However, 4 cases of autoimmune thyroid disorder and 1 case of ITT developed in the 45 patients.

Daclizumab is a humanized monoclonal antibody that depletes CD25 from the cell surface of T cells and interacts specifically with the interleukin 2 receptor alpha chain (IL2RA). Daclizumab has shown promise as a therapy for both RRMS and SPMS in combination with INF and as monotherapy. The results of a recently completed phase 2 study with 230 patients with RRMS with EDSS scores of 0-5 and breakthrough disease while on any IFN were presented in a platform presentation.[8] There were 230 patients at 51 sites in North America and Europe. There was a 24-week double-blind, placebo-controlled treatment period and a 48-week washout period. There were 3 arms to the study: placebo add-on, 1 mg/kg subcutaneously every 4 weeks, or 2 mg/kg subcutaneously every 2 weeks. Primary endpoint was new Gd+ lesions between weeks 8 and 24. Secondary endpoints were relapse rate and safety issues. The results indicated a 25% reduction of Gd+ lesions with 1 mg/kg add-on of daclizumub (not significant [NS]) and a 72% reduction of Gd+ lesions with 2 mg/kg every 2 weeks (P = .004). Relapse rate reduction was 35% in each dosing group (NS). Daclizumab was safe and well tolerated, with no significant safety issues.

Individually Tailored Therapy for SPMS and PPMS

SPMS without exacerbations is often considered a nonmodifiable disease state. It is a phase of MS considered to consist of neurodegeneration with axonal loss and cortical and spinal cord atrophy. However, there are a few ongoing trials for SPMS. One involves the intravenous administration of a synthetic peptide, MBP8298, for SPMS patients with HLA haplotypes DR2 and/or DR4. MAESTRO-01 is a multicenter, multinational clinical trial in which over 600 patients have been enrolled.[9] An interim safety analysis of the first 508 patients, on a blinded basis, showed no significant safety concerns. An interim analysis of the first 200 patients at 2 years is expected in the third quarter of 2008. MAESTRO-03 is currently enrolling in the United States for SPMS patients without exacerbations to receive 500 mg MBP8298 or sterile water as placebo IV every 6 months.

Rituximab (RTX) is a monoclonal antibody that specifically targets CD20+ B cells. There may be a pathogenic role of B cells in MS, particularly in PPMS. In an ongoing placebo-controlled study, 439 patients with PPMS by the McDonald Criteria with greater than 1 year duration of disease, an EDSS score of 2-6.5, and cerebrospinal fluid (CSF) showing elevated IgG or oligoclonal bands in the past 24 months were randomized in a 2:1 manner to receive 1000 mg RTX twice every 24 weeks over 96 weeks (4 courses) or placebo.[10] The patients are to be followed to 122 weeks with magnetic resonance imaging at -2, 0, 6, 48, 96, and 122 weeks. Primary endpoint is a 1-point increase in the EDSS sustained for at least 12 weeks. Secondary outcomes are change in baseline to week 96, T2 lesion volume, and brain volume. Results of enrollment are that 50.3% of the 439 patients are female with a mean age of 50.4 years; 56% had a baseline EDSS greater than 4 with a mean EDSS of 4.03. Sixty-five percent of patients had never had a disease-modifying treatment. At randomization, there was a mean Gd+ lesion of 0.7 with 75.2% with no new lesions, but 24.8% had greater than 1 Gd+ lesion. These are pooled demographic data from an ongoing blinded study. With nearly 25% of patients with baseline Gd+ lesions and all patients with active CSF due to inclusion criteria, an enrichment for active disease in this trial is suggested. This is consistent with active immunologic activity in this patient population and may increase the possibility for a therapeutic effect of RTX.

Neuromyelitis Optica Treatment Options

Neuromyelitis optica (NMO; called spinal-optical MS in Asia and also called Devic's disease) is a serious, inflammatory, demyelinating disease of the optic nerves and spinal cord. Many patients fail to respond to steroid therapy or other standard treatments, including chemotherapy, for MS. Five-year survival may be less than 80%. Dr. Khatri[11] presented a series of 6 NMO patients who had failed high-dose methylprednisolone and prednisone treatment with plasma exchange (PE). All patients met diagnostic criteria for NMO and were serum NMO-IgG antibody positive. Three patients were white and 3 were African American (age range, 34-53; mean 40). All were female. EDSS ranged from 2 to 8.5 (mean 6.3). Following PE, all patients improved and stabilized (EDSS mean improved from 6.3 to 5.1). Four patients continue to receive PE (1 patient for the past 16 years). The frequency of maintenance PE varied from once a month to every 3 months. Because of insurance problems, 2 of the 4 patients had to stop PE for several months. This resulted in both patients becoming blind and bedridden, despite treatment with high-dose methylprednisolone and cyclophosphamide. When PE was restarted, there was dramatic improvement, although not to the prior functional state before it was stopped. The conclusion is that PE can be effective even on a long-term basis for some NMO patients refractory to other treatments.

Symptomatic Therapy

Fampridine-SR (a sustained-release form of 4-aminopyridine) can be useful in improving central conduction of demyelinated axons in the central nervous system (CNS) by closing potassium channels. Clinically, it has been shown in phase 2 and phase 3 trials to improve pyramidal tract function as measured by the timed 25-foot walk. A meta-analysis of a phase 2 and a phase 3 fampridine trial was presented in a platform presentation discussing the results of the trials, the efficacy assessments, and the clinical validity of outcome measures in the 2 trials. Both were double-blind, placebo-controlled, 14-week studies of MS patients with ambulatory deficits.[12] A total of 501 patients were included in the analysis, with a randomization ratio of 3:1 (drug:placebo). The results showed a significant improvement in ambulation for fampridine-treated patients over placebo (P = .001). The primary efficacy measurement was that of a "timed walk responder," which was a patient whose walking speeds for at least 3 of 4 treatment visits were faster than the fastest speed of any of the 4 pretreatment visits and one follow-up visit. Clinical impact was assessed with the 12-item Multiple Sclerosis Walking Scale, with significant improvement of fampridine over placebo patients (P = .001). Patient satisfaction was also high on both studies, with the Subject Global Impression score significantly better for fampridine treatment vs placebo (P = .001)

Low-dose naltrexone (LDN) has been popular among some MS patients as an alternative therapy. Naltrexone has long been approved by the US Food and Drug Administration as an orally administered treatment for heroin addiction. It is a semisynthetic opiate antagonist approved for use in a 50-mg dose. It has been used for the symptomatic treatment of pain, spasticity, and fatigue. In a study supported by the Italian Federation of Multiple Sclerosis, data supporting some benefit of LDN in PPMS patients were presented.[13] Prior evidence has shown that when naltrexone is given at very low doses (5 mg), an upregulation of endorphins results and no opiate antagonism occurs. In 40 PPMS patients treated with LDN in an open-label manner as a pilot study for safety, LDN has been safe so far. Transient liver function test elevation, mild agitation, and sleep disturbance have occurred as the main side effects. Only 2 dropouts have occurred, 1 for protocol violation and 1 for severely increased hypertonia. Efficacy results are pending, but patients reporting a sense of well-being may have a neurochemical basis for that effect.

Ethics of Placebo-Controlled Clinical Trials

Dr. Chris Polman discussed the ethics of placebo-controlled trials in the treatment of MS in a platform presentation on behalf of the National MS Society International Advisory Committee on Clinical Trials in MS, which met in Washington, DC in March 2007.[14] This committee updated the prior recommendation of the International Advisory Committee that had been published in 2001.[15] The recommendations of the current Committee are in context of the newly available treatment since 2001. The prior recommendations basically said that placebo-controlled trials were allowable "if certain conditions were met." These conditions have been expanded and are more restrictive. The current Committee recommendations for placebo-controlled trials to be ethical are: (1) if there is no existing effective therapy (EET) for their type of MS (such as for PPMS or most SPMS); (2) if the patient refuses treatment (such as with injectable medications); (3) if no EET has been effective for their type of MS (more than 1 adequate trial for each class of medication) or intolerable side-effects have occurred; (4) the patient must be well informed not only through the informed consent (IC) process but there also should be a patient advocate present; (5) there should be a separation between the treating neurologist and research neurologist; (6) the IC process should be repeated throughout the clinical trial to be sure that the patient is aware of all other treatment options; and (7) in areas that are "resource-restricted," the trial drug must be available to the subjects after the trial has been completed.

Supported by an independent educational grant from Genentech

References

Cook S. Combined analysis of the safety and tolerability of cladribine from four randomized, double-blind, parallel-group, placebo-controlled trials in patients with multiple sclerosis. Multiple Sclerosis. 2007;13(suppl 2):S244-245 (abstract).
Cook S. Safety profile of cladribine following repeat treatment: a combined analysis of data from five clinical trials in patients with multiple sclerosis. Multiple Sclerosis. 2007;13(suppl 2):S245 (abstract).
Giovannoni G, Comi G, Cook S, et al. The CLARITY study (CLAdRIbine tablets Treating multiple sclerosis orallY): design of a phase III trial of oral cladribine in relapsing multiple sclerosis. Multiple Sclerosis. 2007;13(suppl 2):S245 (abstract).
Montalban X, Cohen BA, Jeffery DR, et al. Oral cladribine added to interferon beta-1a for active multiple sclerosis: a 96-week, double-blind, placebo-controlled phase IIb study. Multiple Sclerosis. 2007;13(suppl 2):S245-246 (abstract).
Gold R, Fox R, Dawson K, et al. Two phase 3 studies to determine the efficacy and safety of BG00012, a novel, oral fumaric acid derivative, in patients with relapsing multiple sclerosis. Multiple Sclerosis. 2007;13(suppl 2):S173 (abstract).
Coles AJ; on behalf of the CAMMS223 Study Group. Alemtuzumab improved multiple sclerosis functional composite scores and delayed time to first relapse at 2-year interim analysis compared to subcutaneous interferon beta-1a. Multiple Sclerosis. 2007;13(suppl 2):S166 (abstract).
Fox E, Mayer L, Sullivan H, et al. Two-year results with alemtuzumab in patients with active relapsing-remitting multiple sclerosis who have failed licensed beta interferon therapies. Multiple Sclerosis. 2007;13(suppl 2):S166-167 (abstract).
Montalban X, Wynn D, Kaufman et al. Preliminary CHOICE results: a phase 2, randomized, double-blind, placebo-controlled multicentre study of subcutaneous daclizumab in patients with active, relapsing forms of multiple sclerosis on interferon beta. Multiple Sclerosis. 2007;13(suppl 2):S18 (abstract).
Arfors L; on behalf of the MAESTRO-01 Investigators Group. Safety observations from administration of MBP8298 as part of the ongoing phase 3 MAESTRO-01 SPMS clinical trial. Multiple Sclerosis. 2007;13(suppl 2):S171-172 (abstract).
Hawker K, Freedman MS, O'Connor P, et al. Rituximab in patients with primary progressive multiple sclerosis: demographics in a phase II/III randomized, double-blind, placebo-controlled multicentre trial. Multiple Sclerosis. 2007;13(suppl 2):S165 (abstract).
Khatri B, Kramer J, Dukic M, Palencia M. Sustained long-term improvement with plasma exchange in patients with recurrent neuromyelitis optica unresponsive to corticosteroids. Multiple Sclerosis. 2007;13(suppl 2):S173 (abstract).
Goodman AD, Brown TR, Cohen JA, et al. Meta-analysis of phase 2 and 3 fampridine trials in multiple sclerosis: efficacy assessment and validation of clinical meaningfulness of outcome measure. Multiple Sclerosis. 2007;13(suppl 2):S33 (abstract).
Gironi M, Boneschi FM, Solaro C, et al. Pilot multicenter study of low dose naltrexone in primary progressive multiple sclerosis. Multiple Sclerosis. 2007;13(suppl 2):S176 (abstract).
Polman CH; on behalf of the National MS Society International Advisory Committee on Clinical Trials. A reconsideration of the ethics of placebo-controlled clinical trials in MS: outcomes of an international conference. Multiple Sclerosis. 2007;13(suppl 2):S17 (abstract).
Lublin FD, Reingold SC. Placebo-controlled clinical trials in multiple sclerosis: ethical considerations. National Multiple Sclerosis Society (USA) Task Force on Placebo-Controlled Clinical Trials in MS. Ann Neurol. 2001;49:677-681.

Exploring the Pathogenesis of MS and the Rationale for Current Treatments
Discussion of Key Cellular Players and Important Immune Responses

Dr. David Hafler presented a platform discussion reviewing the current and emerging understanding of the genetic basis of multiple sclerosis (MS).[1] Persons with a first-degree relative are known to be at higher risk than the average person. The prevalence of MS is 0.1% in the general population, 2% to 4% in siblings, 5% in dizygotic twins, and 30% in monozygotic twins. MS may be considered a complex genetic disease involving many genomic expressions. It has been known for over 30 years that there is a major histocompatibility complex (MHC) on chromosome 6p21. It is also known that MS is a disease that involves the dysfunction of the CD4+CD25 high regulatory T-cell function.

In order to further elucidate the genetic basis of MS, a collaborative effort of US and UK researchers used a staged approach to identify risk alleles associated with MS. The first stage involved whole genomic association scans using the Affymetrix 500,000 SNP (single nucleotide polymorphisms) GeneChip (Santa Clara, California) to analyze DNA from 931 trio families (an MS patient and both parents). The second stage involved further analysis of the most frequently appearing SNPs. Further analysis identified the 2 most prevalent SNPs, IL2RA and IL7R. Although IL2RA has been identified in both patients with MS and patients with diabetes, it is likely that different variants are associated with each of these diseases because the risk for MS and DM do not coexist. Although there may be different variants of the same gene for IL2RA, this may open up a new area for genetic typing in MS, which could lead to specific therapeutic choices for patients who may be more likely to respond to one type of treatment vs another. Genetic screening is currently being used in the MAESTRO-03 study. Data from the MAESTRO-1 study showed that patients with DR2 or DR4 haplotypes were likely to respond to treatment in secondary progressive MS (SPMS), while MS patients with other markers did not, so one of the inclusion criteria in the MAESTRO-3 study is a blood test on the screening visit. The patient must be DR2 or DR4 positive to be in the study.

In a platform presentation following Dr. Hafler's presentation, Dr. Howard Weiner discussed circulating markers that have been found to differ between relapsing remitting MS (RRMS) and SPMS.[2] The central question regarding MS treatment is whether early and aggressive immunotherapy will prevent the conversion to SPMS in the majority of patients. The specific identification of antibody patterns in MS may help achieve that goal because it is known that inflammatory antibodies are linked to brain pathology. The progression of RRMS to SPMS is likely to be due to neuronal degeneration triggered by inflammation.

Dendritic cells (DCs) are antigenic cells of the innate immune system that have the unique ability to induce primary immune responses. Circulating myeloid DCs were isolated from blood samples to determine if there were abnormalities in patients with MS and if myeloid DCs were related to disease stage. SPMS patients were found to have a greater percentage of myeloid DCs expressing CD80, IL-12, and TNF-alpha while having a lower percentage of PD-L1 compared with patients with RRMS or controls. A higher percentage of RRMS patients had DCs producing greater amounts of Th1 (IFN-alfa and TNF-alpha) and Th2 (IL-4, IL-13) compared with controls and SPMS patients. These results may be interpreted as showing that there is a loss of an inflammatory component in the immune system when MS patients transition from RRMS to SPMS. This may explain, in part, an immunologic basis for the different stages and clinical patterns of MS.

In a comparison of the treatment effects of FTY720 (a new oral treatment in human trials for MS), IFN-beta, and glatiramer acetate (GA) on experimental autoimmune encephalomyelitis (EAE), each of the 3 compounds were given to Lewis rats in a model of progressive EAE.[3] For decades, EAE has been the experimental model for MS. FTY720 was administered at 3 mg/kg orally. At this dose, the onset of acute EAE was inhibited, and when given after recovery from an acute attack in an untreated animal, FTY720 inhibited further relapses. When FTY720 was given at a dose of 6 mg/kg orally during an acute exacerbation, the progressive phase of EAE was inhibited. GA failed to prevent the progressive phase at doses of 10 mg/kg orally or 5 mg/kg subcutaneously. GA at doses of 15 mg/kg orally or 10 gm/kg subcutaneously failed to prevent the onset or severity of relapses of EAE. IFN-beta given at 10,000 U intraperitoneally 3 times weekly failed to prevent the progressive phase of EAE.

Cerebrospinal Fluid Analysis in Clinically Isolated Syndromes

Clinically isolated syndromes (CIS) have been extensively evaluated by clinical and magnetic resonance imaging (MRI) criteria for risk to develop clinically definite MS (CDMS). The clinical diagnostic value of cerebrospinal fluid (CSF) analysis was presented from 104 patients presenting with a first clinical episode consistent with a demyelinating disease of the central nervous system.[4] A diagnosis of either CIS or possible MS was made. The patients underwent neurologic evaluation, brain MRI, and CSF analysis and were followed from 2 to 6 years as to their course and final diagnosis according to the McDonald criteria. The results of the CSF evaluation showed a significant difference between the possible MS patients and CIS patients, with 82% of the possible MS patients having positive CSF for oligoclonal bands (IgGOB) while 18% of CIS patients had positive CSF for IgGOB. The conclusions of the authors were that "positive CSF" should be considered among the criteria of dissemination in time of lesions in MS.

Rating Scales

Optical coherence tomography (OCT) is a noninvasive and relatively inexpensive way to measure the retinal fiber layer. Dr. Siger and colleagues[5] presented data showing that by measuring the retinal nerve fiber layer (RNFL), the most proximal part of the optic nerve, a measure of axonal degeneration can be obtained. Fifty-one patients underwent OCT with RNFL measurements, 20 with optic neuritis (ON) and MS, 31 with MS and without ON, and 12 healthy controls. T2- and T1-weighted imaging lesion volume, T1/T2 ratio, and brain atrophy were analyzed and correlated with OCT. RNFL was also correlated with disease duration and neurologic status. The results showed that RNFL was significantly reduced compared with controls in the affected eye (ON) but not significantly different when compared with the unaffected eye. Reduction of RFNL was correlated with MRI measures of brain atrophy (P = .01) and increased T1 lesion (black holes) volume (P = .03). RNFL reduction also correlated with clinical data (Expanded Disability Status Scale: P = .004).

Supported by an independent educational grant from Genentech

References

Moreau R, Kazaz E, Clerc L, et al. Prevalence of multiple sclerosis in France and its 22 regions. Multiple Sclerosis. 2007;13(suppl 2):S103 (abstract).
Osoegawa M, Fukazawa T, Fujihara K, et al. Temporal and geographical changes of multiple sclerosis phenotype in Japanese: nationwide survey results over 30 years. Multiple Sclerosis. 2007;13(suppl 2):S101-102 (abstract).
Houzen H, Niino M, Kikuchi S, et al. Increasing risk of multiple sclerosis in Japan. Multiple Sclerosis. 2007;13(suppl 2):S102 (abstract).
Chin P, Laouri M, Broder M, et al. Healthcare utilization among insured multiple sclerosis patients in the U.S. from 2005-2006. Multiple Sclerosis. 2007;13(suppl 2):S261 (abstract).
Siger M, Dziegielewski K, Jasek L, et al. Optical coherence tomography in multiple sclerosis as a measure of brain atrophy. Multiple Sclerosis. 2007;13(suppl 2):S86 (abstract).


Authors and Disclosures

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Author

Keith R. Edwards, MD

Assistant Clinical Professor of Neurology, Harvard Medical School, Boston, Massachusetts; Consulting Neurologist, Department of Neurology, Beth Israel Deaconess Medical Center, Boston, Massachusetts

Disclosure: Keith R. Edwards, MD, has disclosed that he has served as an advisor or consultant to Allergan Pharmaceuticals, GlaxoSmithKline, Novartis Pharmaceuticals, Pfizer Pharmaceuticals, and Serono.
Editor

Iwona Misiuta, PhD, MHA

Scientific Director, Medscape LLC, New York, NY

Disclosure: Iwona Misiuta, PhD, MHA, has disclosed no relevant financial relationships.
Stephanie Kushner, PhD

Scientific Director, Medscape LLC, New York, NY

Disclosure: Stephanie Kushner, PhD, has disclosed no relevant financial relationships.

Thursday, October 18, 2007

Mitoxantrone as Induction Followed by Interferon Beta-1b Versus Interferon Beta-1b: Presented at ECTRIMS





By Chris Berrie

PRAGUE, CZECH REPUBLIC -- October 18, 2007 -- Mitoxantrone induction in combination with methylprednisone prior to interferon beta (IFNbeta) treatment in patients with aggressive relapsing-remitting multiple sclerosis (RRMS) reduces the risk of developing fixed disability and increases relapse-free periods when compared with IFNbeta prior to methylprednisone.

These findings are from a multicentre, randomised, prospective, controlled, study presented here on October 13 at the 23rd Congress of the European Committee for Treatment and Research in Multiple Sclerosis (ECTRIMS).

The study's principal investigator, Gilles Edan, MD, and Professor of Neurology, Istitut des Neurosciences Cliniques de Rennes, Rennes, France, presented the findings on behalf of the French-Italian Mitoxantrone-Interferon-beta-1b Study Group.

Although IFNbeta-1b can reduce relapse frequencies and new lesions on magnetic resonance imaging (MRI), the magnitude of these effects remains small, providing around 30% benefit. Furthermore, in the longer term of 3 to5 years, these beneficial effects can be lost, particularly for the 35% of patients with RRMS who develop neutralizing antibodies while under IFNbeta treatment.

"Mitoxantrone has a strong, rapid and sustained impact on the inflammatory processes, but its potential toxicity limits the duration of its prescription," Dr. Edan said. Therefore, Dr. Edan and colleagues conducted a study to determine whether the use of mitoxantrone induction prior to IFNbeta-1b therapy can provide further clinical benefits.

The main inclusion criteria were age 18 to 45 years, confirmed diagnosis of MS using Poser criteria and as defined by MRI. For disease status of aggressive RRMS, there was the requirement for two or more relapses in the preceding 12 months, at least one Gd+ lesion on MRI, and an expanded disability status scale (EDSS) score of 2.5 to 5.5 (significant disability).

Exclusion criteria were pregnancy and breast feeding, nonuse of efficient contraception, previous global immunosuppression, use of other specific agents, and associated disease.

The primary endpoint was time to 1 or greater-point increase on the EDSS during the 3 years of the study. There were also secondary endpoints of relapse frequency, relapse-free patients, time to first relapse after inclusion, and safety.

Of 123 patients randomized in the study, 109 were treated and analyzed, constituting the intention-to-treat population. The study design provided randomization to one of two treatment arms after 12 months of followup.

The 55 patients in the first arm started at baseline with mitoxantrone 20 mg/month plus methylprednisone 1 g/month for the first 6 months of treatment. They then had a 3-month break from treatment (months 7-9), followed by interferon 250 mcg SC every other day from months 10 to 36.

The 54 patients in the second arm started at month 0 with methylprednisone 1 g/month in combination with IFNbeta-1b. As with group 1, methylprednisone was stopped after 6 months, while IFNbeta-1b continued for the full 36 months of the study.

Patients in the two groups had similar mean ages (33.2 vs 32.2 years, respectively) and gender distribution (male 34.6% vs 33.3%, respectively).

At baseline, the disease characteristics across treatment groups 1 and 2, respectively, were not significantly different, including duration of MS (6.6 vs 5.1 years), time from last relapse to M0 (3 vs 3 months), annual relapse rate (2.65 vs 2.83) and EDSS score (4.1 vs 3.8).

The primary endpoint was time for a 1-point increase in EDSS (acquisition of fixed disability) within the 36 months of the trial. "This time was clearly longer in the group of patients using mitoxantrone and interferon beta," Dr. Edan said, and thus, there was mitoxantrone group obtained significant benefit compared with group 2 (P =.008). As only five of the total 19 patients who acquired this fixed disability by month 36 were in group 1, this represented a significant 65% reduction in clinical worsening in the mitoxantrone-pretreated patients (P <.024).

When variations in EDSS score were analyzed from baseline to the last recorded scores during the treatment period, the mitoxantrone group saw a small but significant decrease in mean EDSS score from 4.1 to 3.6 (P <.006), whereas in the absence of mitoxantrone there was no significant change (from 3.8 to 3.7).

For the annual relapse rate under study treatment, there was again a large, 61.5%, significant benefit with the use of mitoxantrone (annual relapse rate: group 1, 0.44; group 2, 1.14; P <.003). When further analyzed as annual relapse rate during the IFNbeta-1b alone treatment, benefits for mitoxantrone were again seen compared with treatment without mitoxantrone (group 1, 0.50; group 2, 1.14; P <.007).

Patients in the mitoxantrone group also had significantly improved time to first relapse from baseline (P <.002). Similarly, there was a significant increase in the percentage of relapse-free patients in group 1 over group 2 (53% vs 26%; P =.01).

Finally, the researchers also tested mitoxantrone benefits at the patient disability levels. Although not a pre-planned analysis, this was achieved in a subgroup analysis of EDSS at baseline, divided according to an EDSS of 4.0, and demonstrated a significant benefit for both the use of mitoxantrone and an EDSS score less than 4 at baseline (P <.02).

The safety analysis showed significantly more adverse events in the mitoxantrone group compared with the group not treated with mitoxantrone. These comprised upper respiratory tract infection (45.4% vs 24.1%, respectively; P <.02), leucopenia (36.4% vs 16.7%, respectively; P <.02) and nausea (21.8% vs 7.4%, respectively; P <.02).

"However, these [adverse effects] are exactly what you might expect from adding mitoxantrone to this treatment, and there was no serious adverse effect in this study," added Dr. Edan.

Thus, he concluded, this induction treatment of mitoxantrone combined with methylprednisone provides clinical benefits for patients with aggressive RRMS that include decreases in both acquisition of fixed disability and relapse rates.


[Presentation title: Comparison of Two Therapeutic Strategies in Aggressive Relapsing-Remitting MS: Mitoxantrone as Induction for 6 Months Followed by Interferon Beta-1b Versus Interferon Beta-1b. A 3-Year Randomised Trial. Abstract 74]