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duminică, 5 august 2012

'Antisense' Compound Rids Muscle Cells Of Toxic RNA: A Promising Step Toward Muscular Dystrophy Treatment

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Main Category: Muscular Dystrophy / ALS
Also Included In: Genetics
Article Date: 03 Aug 2012 - 0:00 PDT Current ratings for:
'Antisense' Compound Rids Muscle Cells Of Toxic RNA: A Promising Step Toward Muscular Dystrophy Treatment
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Scientists have reversed symptoms of myotonic muscular dystrophy in mice by eliminating a buildup of toxic RNA in muscle cells. The work, carried out by scientists at the University of Rochester Medical Center, Isis Pharmaceuticals Inc. and Genzyme, is published in Nature.

After experimental antisense compounds were administered to mice twice a week for four weeks, symptoms of the disease were reduced for up to one year - a significant portion of a mouse's lifespan.

The investigators say that while the work is an encouraging step forward against myotonic dystrophy, one of the most common forms of muscular dystrophy, it's too soon to know whether the approach will work in patients. But they are cautiously optimistic, noting that the compound is extremely effective at reversing the disease - whose genetic underpinnings make it particularly vulnerable to an antisense approach - in a mouse model.

"These results give us strong encouragement about the possibility of developing a treatment that could fundamentally alter the disease. It's an important step on a long path," said senior author Charles Thornton, M.D., a neurologist at the University of Rochester Medical Center who has been pursuing new treatments for the disease for more than two decades.

"But, it's too early to know if this treatment will work as well in people as it did in the laboratory. Unfortunately, in biomedical research there are previous examples of compounds that worked in mice but not in people," added Thornton, the Saunders Family Distinguished Professor in Neuromuscular Research.

About 35,000 Americans have myotonic dystrophy, an inherited disorder that is marked by progressive muscle weakness and stiffness; eventually many patients have difficulty walking, swallowing, and breathing. The disease can also affect the eyes, the heart, and the brain. While there are medications to treat some of the disease symptoms, there is no drug to stop its progression.

The recent progress comes about a decade after several scientists, including Thornton, discovered that the genetic defect that causes the disease works quite differently than most other inherited diseases. In many diseases, a genetic flaw means that an important protein is not made correctly, or not made at all.

But in myotonic dystrophy, the defect results in the creation of an abnormal messenger RNA, which accumulates in the nucleus, getting in the way and stopping other proteins from doing their jobs. One of those proteins is MBNL1, which helps create chloride channels that are important for electrical control of muscles. When that process is thwarted, muscles send errant electrical signals, causing symptoms.

The approach outlined in the Nature paper exploits the roots of the defect, harnessing an enzyme whose usual job is to cut RNA into pieces. Working closely with the Rochester and Genzyme teams, scientists at Isis created synthetic compounds - short snippets of chemically modified DNA - that bind to the toxic RNA, modifying it in such a way that it was targeted for destruction by one of the body's own enzymes, RNase H.

With the team's most effective compounds, symptoms in the mice were reversed. The level of toxic RNA was reduced by more than 80 percent; stiffness in muscles eased dramatically; the microscopic structure of muscle was improved; and electrical signaling in muscles returned to normal.

The possibility of targeting "toxic RNA" - a buildup of abnormal RNA causing cellular processes to go awry - makes myotonic dystrophy an excellent target for antisense drugs, said Thornton.

The compounds are called "antisense" because their genetic code is the mirror image of the target RNA strand, known in scientific parlance as the "sense" molecule. The antisense compound will only stick to the precise RNA that is part of the myotonic dystrophy gene, leaving thousands of other vitally important RNAs alone.

While antisense technology has been in development for a couple of decades, it has not been effective at eliminating RNA in muscle cells until now. Results like those in the Nature paper are creating enthusiasm particularly among scientists who study neurodegenerative diseases, Thornton says. He points to promising work by a team from the University of California at San Diego on Huntington's disease, as well as research out of Cold Spring Harbor Laboratory on spinal muscular atrophy.

"For 20 years we studied myotonic dystrophy, hoping that someday we would learn enough to spot its Achilles heel," said Thornton. "This work comes close to doing that.

"I know it is unscientific for me to think so, but I can't help but see a little glimmer of 'medical justice' in this approach. For the same reason that the toxic RNA makes people sick, by hanging around too long in the nucleus and gumming up the works, it also becomes more susceptible to antisense drugs, because these drugs seem to work extraordinarily well against RNA in the nucleus," he added.

"Based upon these exciting preclinical data, we have initiated a drug discovery project for myotonic dystrophy with Dr. Thornton's team to identify an antisense drug to begin clinical testing," said C. Frank Bennett Ph.D., Senior Vice President, Research at Isis Pharmaceutical, Inc. "Myotonic dystrophy represents an ideal opportunity for an antisense drug as the disease-causing gene produces a toxic RNA that is not easily targeted with other therapeutic approaches. In just a few years, we have been able to expand our severe and rare disease franchise and maintain a broad research program, in which we are evaluating many different diseases that could be treated with an antisense drug."

Thornton was inspired to create a robust research effort to address the disease largely because of his experience treating patients. He is co-director of the Medical Center's Wellstone Muscular Dystrophy Cooperative Research Center, one of the world's top centers for the treatment of muscular dystrophy. He is also a scientist in the Center for Neural Development and Disease, where he runs a laboratory looking at the roots of the disease and exploring new treatments. On any given day, he is both seeing patients coping with conditions like myotonic dystrophy, as well as running laboratory experiments aimed at stopping the disease altogether.

As the research progressed, Thornton struck up a collaboration with Isis Pharmaceuticals Inc., the creator of the only antisense medication on the market, and Genzyme, a company with experience treating muscle diseases. Earlier this summer Isis announced an agreement with Biogen Idec Inc. to explore antisense treatments for myotonic dystrophy - an effort closely linked to Thornton's work.

Now scientists at Isis and the University of Rochester are working to improve their lead compound further, developing antisense compounds with stronger activity against the toxic RNA, but with minimal effects on the rest of the body. An unknown factor at this point, Thornton says, is whether the compounds will also improve the muscle-wasting aspect of the disease. That symptom, which causes great difficulty for patients, has been hard for scientists to create in mice, and so it's difficult to predict how it might respond to antisense knockdown technology.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our muscular dystrophy / als section for the latest news on this subject. The first author of the paper is Thurman Wheeler, M.D., assistant professor of Neurology at the University of Rochester Medical Center, who conducted many of the experiments. Other authors include Masayuki Nakamori, now at the University of Osaka in Japan; Sanjay Pandey, A. Robert MacLeod, and C. Frank Bennett of Isis Pharmaceuticals; and Andrew Leger, Seng Cheng, and Bruce Wentworth of Genzyme.
The work was funded by the National Institute of Neurological Disorders and Stroke, the National Institute of Arthritis and Musculoskeletal and Skin Diseases, the Saunders Family Neuromuscular Research Fund, Run America, the Muscular Dystrophy Association, and the Uehara Memorial Foundation.
University of Rochester Medical Center Please use one of the following formats to cite this article in your essay, paper or report:

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n.p. "'Antisense' Compound Rids Muscle Cells Of Toxic RNA: A Promising Step Toward Muscular Dystrophy Treatment." Medical News Today. MediLexicon, Intl., 3 Aug. 2012. Web.
5 Aug. 2012. APA

Please note: If no author information is provided, the source is cited instead.


''Antisense' Compound Rids Muscle Cells Of Toxic RNA: A Promising Step Toward Muscular Dystrophy Treatment'

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duminică, 11 decembrie 2011

Promising Results In Mice On Needle-Free Candidate Universal Vaccine Against Various Flu Viruses

Main Category: Flu / Cold / SARS
Also Included In: Immune System / Vaccines;  Swine Flu
Article Date: 10 Dec 2011 - 0:00 PST

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Scientists from the International Vaccine Institute (IVI) have discovered that an antigen common to most influenza viruses, and commonly referred to as matrix protein 2 (M2), when administered under the tongue could protect mice against experimental infection caused by various influenza viruses, including the highly pathogenic avian H5 virus and the pandemic H1 ("swine flu") virus.

Importantly, this experimental sublingual vaccine was found to induce immunity in the lungs whereas the same vaccine administered by injection failed to do so and conferred only limited protection against experimental infection. The study, spearheaded by IVI scientist Dr. Man-ki Song and Dr. Haryoung Poo from the Korea Research Institute of Bioscience and Biotechnology (KRIBB), was reported in the November 30th issue of the journal PLoS ONE (read the report).

Current seasonal influenza vaccines are designed to induce immunity against hemagglutinin (HA), a major component of influenza virus. Because HA undergoes frequent mutations, these vaccines have to be reformulated and manufactured every year to incorporate newly emerging influenza virus strains selected by the World Health Organization.

Due to the recent emergence of highly pathogenic influenza virus strains and the threat of a human flu pandemic, health authorities and vaccine producers are under increasing pressure to manufacture and deliver a sufficient number of vaccine doses in a short time, amid a limited global production capacity.

The influenza virus M2 has already been considered as a rational target antigen for development of a universal flu vaccine because this protein is highly conserved among the different types of influenza viruses. However, attempts to develop M2-based vaccines administered by injection have been unsuccessful.

"Sublingual vaccination with M2 induced immune responses in the lungs of mice whereas the same vaccine administered by injection failed to do so. This is probably why earlier attempts involving injection of M2-based vaccines failed to protect against influenza infection and disease," said Dr. Man-ki Song, IVI scientist and lead author of the study. "This vaccination approach offers an additional strategy to prevent influenza infection and may be used to control potential influenza pandemics."

Plans to test this vaccination approach in humans are being considered. "This study suggests that aside from being a more convenient way to immunize people, sublingual vaccination induces special immune responses in the respiratory tract which are important in protection but more difficult to generate with traditional injectable vaccines. Clearly, if these promising findings obtained in laboratory animals can be reproduced in humans, they will represent a major milestone in the IVI R&D agenda." said Dr. Cecil Czerkinsky, IVI Deputy Director-General for Laboratory Sciences.

The study was supported by the National Agenda Project of the Korea Research Council of Fundamental Science and Technology. Dr Christian Loucq, IVI Director-General, said, "Since pandemic influenza remains a global threat and would most likely start in the Asia-Pacific region, this study underscores IVI and the Republic of Korea's commitments to join global efforts to build preparedness for and response to pandemic influenza."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our flu / cold / sars section for the latest news on this subject. Please use one of the following formats to cite this article in your essay, paper or report:

MLA

International Vaccine Institute. "Promising Results In Mice On Needle-Free Candidate Universal Vaccine Against Various Flu Viruses." Medical News Today. MediLexicon, Intl., 10 Dec. 2011. Web.
11 Dec. 2011. APA

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joi, 8 decembrie 2011

Promising Multiple Sclerosis Treatment Targets Immune Cells To Increase Neuroprotection

Main Category: Multiple Sclerosis
Article Date: 08 Dec 2011 - 0:00 PST

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Laquinimod is an orally available synthetic compound that has been successfully evaluated in phase II/III clinical studies for the treatment of relapsing-remitting multiple sclerosis (RRMS). The mechanism of action of laquinimod has not been fully elucidated, but a study published in the January 2012 issue of The American Journal of Pathology suggests that laquinimod triggers immune cells within the central nervous system to produce and release brain-derived neurotrophic factor (BDNF), contributing to the repair or survival of neurons and thus limiting brain damage.

"Our data are indicative of a direct and sustained effect of laquinimod on the up-regulation of bioactive BDNF in patients with RRMS. Additionally, we demonstrate that laquinimod targets monocytes and skews the phagocyte population towards a regulatory phenotype, which in turn mediates immune modulation in vivo," explained Jan Thöne, MD, of the Department of Neurology at St. Josef-Hospital Bochum and Ruhr-University Bochum, Germany.

Neurotrophins, such as BDNF, are essential for the development and maintenance of neurons and axons in the central nervous system. Although BDNF is mainly produced by neurons, several types of immune cells also secrete BDNF, suggesting a role in neuroprotection.

To elucidate the mechanism of action of laquinimod, and to explore its potential neuroprotective capacity, the researchers evaluated levels of BDNF in the serum of RRMS patients treated with laquinimod in phase II clinical trials. A significant and robust BDNF increase occurred in 76% of the laquinimod-treated patients, with up to an 11-fold increase in BDNF serum levels observed in individual patients. BDNF elevation in individual patients was independent of relapse rate, and there was no correlation between BDNF levels and age, gender, or baseline disability. Yet, the source of serum BDNF subsequent to treatment remained questionable.

Experiments with animal models corroborated the findings in human patients. Experimental autoimmune encephalomyelitis (EAE; a model of MS) was induced in mice with a conditional BDNF deficiency in immune cells (LLF mice) and in wild-type (WT) control mice. Treatment with laquinimod resulted in a significant reduction in EAE incidence and disease severity in the WT mice. The effect of laquinimod was significantly reduced in the LLF-mice.

Further studies showed that WT mice treated with a suboptimal dose of laquinimod demonstrated a significant reduction in the inflammatory area and level of demyelination. These mice also displayed a reduction of macrophage infiltration and a significant preservation of axonal densities in comparison with laquinimod-treated LLF mice and controls. The data suggest a BDNF-dependent mechanism of action for laquinimod in autoimmune demyelination.

To investigate whether laquinimod-treated monocytes mediate immune modulation in vivo, laquinimod-stimulated monocytes were injected into WT mice at an early EAE disease stage. The mice showed less severe disease course than controls. Transfer of laquinimod-treated cells derived from LLF mice into WT mice with ongoing EAE did not influence disease course. The cells also secrete significantly less IL-10, an immunomodulatory cytokine that is associated with the generation of regulatory monocytes.

"Consistent with immunomodulatory properties, laquinimod skewed monocytes towards a regulatory phenotype and also acted via modulation of BDNF, which may contribute to neuroprotection in MS patients," said Dr. Thöne. "To date, selective targeting of monocytes has not been described for any other MS pipeline drug, highlighting an innovative mechanism of action of laquinimod."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our multiple sclerosis section for the latest news on this subject. The article is "Modulation of Autoimmune Demyelination by Laquinimod via Induction of Brain Derived Neurotrophic Factor," by J. Thöne, G. Ellrichmann, S. Seubert, I. Peruga, D-H. Lee, R. Conrad, L. Hayardeny, G. Comi, S. Wiese, R.A. Linker, R. Gold (doi: 10.1016/j.ajpath.2011.09.037). It will appear in The American Journal of Pathology, Volume 10, Issue 1 (January 2012) published by Elsevier.
Elsevier Health Sciences Please use one of the following formats to cite this article in your essay, paper or report:

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Elsevier Health Sciences. "Promising Multiple Sclerosis Treatment Targets Immune Cells To Increase Neuroprotection." Medical News Today. MediLexicon, Intl., 8 Dec. 2011. Web.
8 Dec. 2011. APA

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View the original article here