Patients and scientists join forces to tackle Friedreich’s Ataxia
• Patients and their families united in a single platform, two patients’ associations, and two biomedical research centres join forces in the fight against this hereditary neurological disease for which there is still has no cure.
• Scientists at the “Centro de Biología Molecular Severo Ochoa” in Madrid and IRB Barcelona develop a gene therapy project that involves introducing into the body’s cells a correct copy of the defective gene that causes the disease.
• Friedreich’s Ataxia affects approximately 2 in every 100,000 people of European origin (Caucasians). In Spain the incidence of this disease is higher, with an estimated 4.7 cases per 100,000 population.
Barcelona, Thursday 14 November 2013.- The Spanish Federation of Ataxia (FEDAES)—in representation of the GENEFA Platform for a Friedreich's Ataxia cure—, the Babel Family association for biomedical research into Friedreich’s Ataxia, the “Centro de Biología Molecular Severo Ochoa” (CMBSO), and the Institute for Research in Biomedicine (IRB Barcelona) have signed an agreement through which these patients’ associations will fund, by means of donations, a 3-year research project addressing Friedreich’s Ataxia.
Friedreich’s Ataxia is a rare degenerative disease of the nervous system that affects coordination, balance and movement. It is a monogenic disease, that is to say, it is caused by a defect in only one gene. Those affected by this disorder have inherited an altered frataxin gene from both parents. The project aims to develop molecular tools to transport a correct copy of the defective gene to all the cells of the body and particularly to a kind of neuron that undergoes degeneration and causes the disease. This approach seeks to restore the normal levels of frataxin and to stop the manifestation of the degenerative symptoms of the disease.
The GENEFA Platform heads the money-raising campaign to collect the 300,000 euros required to develop this gene therapy project. Juan Carlos Baiges, in representation of FEDAES/GENEFA and the Babel Family for this project, expresses his enthusiasm, “it is the first step towards achieving an effective treatment based on solid basic research knowledge”, and adds, “we have a motivating project ahead that may lead us closer to a treatment.”
Ernest Giralt, at IRB Barcelona, and Javier Díaz-Nido, at CBMSO, scientific co-leaders of the project, stress that, “it is uncommon for basic researchers to have direct contact with patients and this project is fantastic because it reminds us that the solutions to diseases derive from basic research, the cornerstone of future applications.”
A SINGLE ALTERED GENE
The German physician Nicholas Friedreich described the disease for the first time around 1860. Friedreich’s Ataxia is a disease that affects the nervous system and for which there is no cure or specific treatments. Although Friedreich’s Ataxia is the most common kind of ataxia, it is a rare condition. It affects approximately 2 in every 100,000 people of European origin (Caucasians). In Spain and France the incidence of this disease is higher, with a prevalence of 4.7 cases per 100,000 population, suggesting that this disease probably originated in the geographic area of the Cantabrian mountain range.
Friedreich’s Ataxia normally appears before the ages of 5 and 25, causing progressive loss of balance, coordination and movement. About ten years after the onset of the first symptoms, those affected usually become wheelchair-bound. Life expectancy is severely reduced, above all when there are serious secondary complications, such as progressive cardiomyopathy.
RESTORING THE FRATAXIN GENE THROUGH GENE THERAPY
In 1996, an international group of scientists identified the cause of Friedreich’s Ataxia as a defect in a gene that codes for the protein frataxin, located in chromosome 9. One of the most promising strategies to correct the low cellular levels of this protein is through gene therapy, by attempting to introduce a correct copy of the gene into cell nuclei.
“We have fully isolated the gene and packaged it in transport vectors or “vehicles” and we have tested its efficiency in patient cells in vitro. Now we have to improve transport to the cells of the nervous system and test the efficiency in mice with ataxia,” explains Javier Díaz-Nido, head of the group “Neuronal repair and molecular therapy in neurodegeneration. Spinocerebellar Ataxias” at the CBMSO, a centre comprising the “Universidad Autónoma de Madrid” and the CSIC, and that is also a member of the Centre for Biomedical Network Research on Rare Diseases (CIBERER).
The physician Díaz-Nido is a world authority on ataxias, having devoted more than ten years to studying Friedreich’s Ataxia at the molecular level and developing techniques to make gene therapy a reality. “The last ten years have witnessed great advances in gene therapy thanks to the contributions of hundreds of scientists worldwide. The last step is still pending for it to become a clinical option, but we are beginning to envisage that gene therapy will be possible for the treatment of such diseases of genetic origin,” maintains Díaz-Nido.
OVERCOMING THE BRAIN BARRIER
The brain is protected by the blood-brain barrier. This barrier serves to prevent toxic substances from entering the brain but it also obstructs the entry of therapeutic drugs. In this regard, collaboration with Ernest Giralt is critical. Prof. Giralt, head of the group “Design, synthesis and structure of peptides and proteins” and coordinator of the Chemistry and Molecular Pharmacology Programme at IRB Barcelona, has extensive experience and his expertise in peptide chemistry and drug delivery systems is internationally recognised. His laboratory has generated and satisfactorily tested a set of shuttle peptides able to cross the blood-brain barrier. “Our main goal is to adapt our shuttles to the vectors carrying the frataxin gene to enable them to cross the blood-brain barrier and then enter the nuclei of the cells of the nervous system,” explains Meritxell Teixidó, associate researcher at IRB Barcelona and responsible for this research line.
The joint research project begins in November 2013 and will last for three years. During this time, the team of scientists hopes to prepare the proof-of-concept that will allow the leap from basic lab research to preclinical trials in more sophisticated animal models and advancement towards a gene therapy for Friedreich’s Ataxia.
For more information:
Sònia Armengou
Oficina de Prensa
Institut de Recerca Biomèdica (IRB Barcelona)
93 403 72 55 / 618 294 070
Fore more information on the project: “Plataforma Genefa”: http://www.genefa.org/home/
Thursday, November 14, 2013
Arrhythmias in Patients With Neurologic Disorders
Arrhythmias in Patients With Neurologic Disorders. William J. Groh; Cardiac Electrophysiology: From Cell to Bedside (Sixth Edition), 2014, Pages 993-999
Keywords: Friedreich's Ataxia, Muscular Dystrophies, Type 1 and Type 2 Myotonic Dystrophies, Emery-Dreifuss Muscular Dystrophies and Associated Disorders, Limb-Girdle Muscular Dystrophies, Facioscapulohumeral Muscular Dystrophy, Periodic Paralyses, Mitochondrial Disorders, Guillain-Barré Syndrome, Myasthenia Gravis, Epilepsy, Acute Cerebrovascular Disease.
Keywords: Friedreich's Ataxia, Muscular Dystrophies, Type 1 and Type 2 Myotonic Dystrophies, Emery-Dreifuss Muscular Dystrophies and Associated Disorders, Limb-Girdle Muscular Dystrophies, Facioscapulohumeral Muscular Dystrophy, Periodic Paralyses, Mitochondrial Disorders, Guillain-Barré Syndrome, Myasthenia Gravis, Epilepsy, Acute Cerebrovascular Disease.
Terapia génica para la ataxia de Friedreich basada en la modificación de vectores virales y no virales para mejorar su distribución a través de la barrera hematoencefálica.
Proyecto de investigación
Terapia génica para la ataxia de Friedreich basada en la modificación de vectores virales y no virales para mejorar su distribución a través de la barrera hematoencefálica.
Investigadores Principales:
Javier Díaz-Nido
Centro de Biología Molecular Severo Ochoa (UAM-CSIC), Universidad Autónoma de Madrid; CIBER de Enfermedades Raras (CIBERER).
Ernest Giralt
IRB Barcelona; Universitat de Barcelona.
Antecedentes y estado actual de la investigación:
La terapia génica constituye una vía prometedora para el tratamiento de enfermedades monogénicas como la ataxia de Friedreich (AF). En la actualidad existen distintos grupos de investigación trabajando con distintos vectores virales (adenoasociados, lentivirales y herpesvirales) con el objetivo de desarrollar una terapia génica para la AF.
Los vectores herpesvirales destacan por su capacidad para acomodar el gen completo de la frataxina (con todas sus secuencias reguladoras). El uso del gen completo presenta importantes ventajas (frente al uso de minigenes controlados por promotores exógenos) ya que se asegura una expresión fisiológica del gen (también en respuesta a diferentes señales y estados fisiológicos), así como un correcto y completo procesamiento del RNA transcrito (permitiendo la expresión de todas las isoformas de la frataxina de una manera fisiológica).
El reto más importante para asegurar una buena eficiencia de la terapia génica consiste en asegurar una amplia distribución del vector portador del gen de la frataxina a todas las regiones del sistema nervioso que están afectadas (de manera muy particular a los ganglios espinales, médula espinal y cerebelo).
En este contexto el desarrollo de “vehículos” portadores del gen de la frataxina y que sean capaces de atravesar la barrera hematoencefálica constituiría un avance fundamental para asegurar una amplia distribución del gen.
La barrera hematoencefálica es una barrera muy selectiva que impide el paso de la mayoría de las moléculas de la sangre al sistema nervioso. Sin embargo, se ha demostrado recientemente que algunos péptidos (denominados “lanzaderas”) pueden atravesar dicha barrera así como permitir el transporte de “cargos” con distintas propiedades fisicoquímicas. Así, por ejemplo, nanopartículas de oro recubiertas con un péptido capaz de interaccionar con el receptor de la transferrina son capaces de atravesar la barrera hematoencefálica.
Nuestra intención con este proyecto es utilizar estos péptidos “lanzadera”, junto con otros péptidos funcionales, para modificar los vectores herpesvirales, así como desarrollar nuevos “vehículos” basados en nanopartículas sintéticas, que sean capaces de distribuir de una manera eficiente el gen de la frataxina en el sistema nervioso.
Resumen del proyecto:
El objetivo principal de este proyecto es la generación de nuevas herramientas moleculares, incluyendo vectores virales modificados y nanopartículas sintéticas, que puedan ser transportadas de manera activa y selectiva a través de la barrera hematoencefálica de manera que resulten eficientes para la terapia génica de la ataxia de Friedreich (AF).
Este proyecto pretende avanzar en la distribución de genes al sistema nervioso mediante la combinación de vectores ya conocidos (como son los vectores herpesvirales y las nanopartículas sintéticas de PLGA-PEG) con nuevos péptidos que pueden atravesar la barrera hematoencefálica actuando como lanzaderas (BBB shuttles), péptidos “localizadores” que dirigen los vectores a células diana específicas (HPs, del inglés “homing peptides”), y péptidos capaces de entrar dentro de las células (denominados CPPs, del inglés “cell penetrating peptides”).
Más específicamente, nuestro proyecto pretende transportar el ADN que codifica la frataxina (cuya deficiencia es la causa de la enfermedad) utilizando vectores virales y no-virales recubiertos de los péptidos lanzadera (BBB shuttles) que pueden atravesar la barrera hematoencefálica, así como de péptidos directores (HPs) y de péptidos capaces de entrar dentro de las células (CPPs).
Los vectores herpesvirales derivados del virus HSV1 ya han demostrado ser muy eficaces en la transferencia de genes a neuronas, además de poseer una gran capacidad que les permite transportar genes completos con todas sus secuencias reguladoras, pero carecen de la capacidad de atravesar la barrera hematoencefálica en condiciones normales. La modificación de estos vectores virales con péptidos lanzadera puede permitir su transporte a través de la barrera hematoencefálica y así mejorar de manera muy importante su distribución en el sistema nervioso.
Las nanopartículas sintéticas de PLGA-PEG presentan algunas ventajas importantes, ya que son fáciles de preparar a gran escala y tienen generalmente menos efectos pro-inflamatorios que las partículas virales. De hecho, estas nanopartículas sintéticas de PLGA-PEG son aceptadas por las autoridades reguladoras como un material seguro y están siendo utilizadas como vehículos de suministro de fármacos. Sin embargo, para convertirse en eficientes vectores de transferencia génica, estas nanopartículas deben adquirir nuevas funcionalidades. La decoración de la superficie de estas nanopartículas sintéticas con varios péptidos que actúen como péptidos lanzadera (BBB shuttles), HPs y CPPs, podría permitir una eficiente distribución de las mismas dentro del sistema nervioso.
En este proyecto evaluaremos la eficiencia de la transferencia génica, la posible toxicidad y la eficacia terapéutica de los diferentes vectores modificados (virales y no –virales) en modelos de células humanas y en ratones.
Para alcanzar este objetivo, el proyecto reúne dos grupos de investigación que aportan conocimientos y tecnologías complementarias. El Grupo del Dr. Diaz-Nido en el Centro de Biología Molecular Severo Ochoa tiene experiencia en modelos experimentales y estrategias de terapia molecular para enfermedades neurodegenerativas con un énfasis en la ataxia de Friedreich. El Grupo del Dr. Giralt en el IRB Barcelona tiene una experiencia en el campo de la química de péptidos y su aplicación a la biomedicina y es un referente internacional en este campo. De gran importancia para este proyecto son sus desarrollos recientes en los péptidos “lanzadera” y en los sistemas de administración de fármacos.
Gene therapy for Friedreich’s ataxia based on the modification of viral and non-viral vectors to improve their delivery across the blood brain barrier.
Research Project
Gene therapy for Friedreich’s ataxia based on the modification of viral and non-viral vectors to improve their delivery across the blood brain barrier.
Principal Investigators:
Javier Díaz-Nido
Centro de Biología Molecular Severo Ochoa (UAM-CSIC), Universidad Autónoma de Madrid; CIBER de Enfermedades Raras (CIBERER).
Ernest Giralt
IRB Barcelona; Universitat de Barcelona.
Background and state of the art:
As a monogenic disease, Friedreich´s ataxia (FA) seems amenable to be treated through gene therapy. The feasibility of a gene therapy approach for FA through the introduction of correct copies of the frataxin gene using distinct lentiviral, adenoassociated and herpesviral vectors has been demonstrated in cell models and in an in vivo mouse models. Among viral vectors, herpes simplex type 1 (HSV-1)-derived vectors are unique by their ability to accommodate the whole genomic locus of Fxn. The use of whole genomic loci has important advantages for gene therapy (when compared with the use of cDNAs controlled by exogenous promoters) since genomic loci contain all the endogenous regulatory sequences controlling their expression (also in response to different physiological signals) as well as the signals controlling their alternative splicing and may therefore generate all the different protein isoforms in a physiological manner.
However, the delivery of gene vectors to neurons in all the affected sites of the nervous system constitutes the major challenge for a successful gene therapy approach in the case of FA.
In this context, the development of novel DNA nanocarriers carrying the whole genomic locus of Fxn and equipped with a higher capacity to cross the Blood Brain Barrier (BBB) may constitute an important breakthrough in the development of a gene therapy for FA.
The BBB is a highly restrictive barrier that prevents the passage of the vast majority of compounds from the blood to the nervous system. Interestingly, it has recently been shown that peptides can act as efficient vectors (BBB-shuttles) to carry a range of molecules with therapeutic properties of interest (cargoes) into the nervous system, independently of the physico-chemical properties of the cargo. In this context, Giralt’s group has recently demonstrated the efficiency of peptídic BBB shuttles by showing the delivery of gold nanoparticles to the brain by conjugation with a peptide that recognizes the transferrin receptor.
Accordingly, this project aims to generate new modified viral vectors and viral-free synthetic nanoparticles for highly efficient DNA delivery into the nervous system that may facilitate gene therapy for Friedreich’s ataxia (FA). More specifically, we plan a strategy where a DNA encoding for frataxin will be actively delivered through the blood-brain barrier (BBB) with the help of novel nanocarriers including modified viral vectors and synthetic nanoparticles.
Summary:
This project aims to generate new molecular tools, including modified viral vectors and viral-free nanoparticles, for highly efficient DNA delivery into the nervous system that may facilitate gene therapy for Friedreich’s ataxia (FA).
The project addresses the design and development of novel gene delivery systems formed by either a modified viral vector or a synthetic nanoparticle (based on PLGA-PEG nanoparticles) which will cross the blood-brain barrier (BBB) thanks to novel peptides able to carry cargoes through the BBB (which are referred to as BBB-shuttles). These peptidic BBB shuttles will decorate the surface of both viral vectors and synthetic nanoparticles. To reach the target cells, the surface of these gene delivery nanocarriers will also be decorated with homing peptides (HPs) that will target the constructs to neurons, and cell-penetrating peptides (CPPs) that will allow the transport across cell membranes.
This project tries to go significantly beyond the state of the art in gene delivery to the nervous system by combining the properties of two well-known DNA nanocarriers (such as viral vectors and PLGA-PEG nanoparticles) with the functional targeting properties of novel peptides that function as BBB-shuttles, HPs and CPPs.
Herpesviral vectors have demonstrated to be efficient gene delivery systems with the ability to accommodate whole genomic loci (which favor physiological gene expression as well as the generation of different protein isoforms arising from alternative splicing), but lack the ability to cross the BBB. Modification of these viral vectors with BBB-shuttles may render them able to be transported through the BBB.
Synthetic PLGA-PEG nanoparticles are highly advantageous as delivery vehicles since they are very simple to prepare and scale-up and have generally less pro-inflammatory effects than viral particles. PLGA-PEG -based nanoparticles are accepted by regulators as a safe material and are being used as drug delivery vehicles. These nanoparticles will be decorated with several peptides acting as BBB-shuttles, HPs and CPPs in order to improve their gene-delivery efficiency to the nervous system.
In this project we will compare the gene transfer efficiency, toxicity and therapeutic activity of the different gene delivery nanocarriers in suitable human cell and mouse models of FA in order to find the most promising candidate for further development.
To reach this goal the project assembles two partners that will contribute complementary knowledge and technology. Diaz-Nido’s group at Centro de Biología Molecular Severo Ochoa has expertise in experimental models and molecular therapy strategies for neurodegenerative diseases with an emphasis on Friedreich’s ataxia. Giralt’s group at IRB Barcelona has a long-term expertise in the field of peptide chemistry and its application to biomedicine and is an international reference in this field. Of major relevance to this project are his recent developments on peptidic BBB shuttles and drug delivery systems. This unique blend of expertise is crucial for the success of this project which goes from the synthesis of novel DNA nanocarriers to their biological evaluation in cell and mouse models of FA.
Specific Aims of the Project
The project is focused on generating novel molecular tools to alleviate the neurodegenerative component of FA by means of therapeutic approaches that take advantage of active targeting to cross the blood-brain barrier (BBB). More specifically, we plan a strategy where a DNA encoding for frataxin will be delivered through the BBB with the help of modified viral vectors and PLGA-PEG nanoparticles. To reach the target cell, the surface of these delivery nanosystems will be decorated with peptides able to transport cargoes though the BBB (which are referred to as BBB-shuttles), homing peptides (HPs) that will target the constructs to neurons, and cell-penetrating peptides (CPPs).
Tuesday, November 12, 2013
Frataxin directly stimulates mitochondrial cysteine desulfurase by exposing substrate-binding sites and a mutant Fe-S cluster scaffold protein with frataxin-bypassing ability acts similarly
Frataxin directly stimulates mitochondrial cysteine desulfurase by exposing substrate-binding sites and a mutant Fe-S cluster scaffold protein with frataxin-bypassing ability acts similarly . Alok Pandey, Donna M. Gordon, Jayashree Pain, Timothy L. Stemmler, Andrew Dancis and Debkumar Pain; J. Biol. Chem. jbc.M113.525857. First Published on November 11, 2013, doi:10.1074/jbc.M113.525857.
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Monday, November 11, 2013
Mitochondrial metals as a potential therapeutic target in neurodegeneration
Mitochondrial metals as a potential therapeutic target in neurodegeneration. A Grubman, A R White, J R Liddell; British Journal of Pharmacology; doi: 10.1111/bph.12513
Keywords: mitochondria; biometal homeostasis; neurodegeneration; stroke; Cu(atsm); Mn porphyrins; curcumin; deferiprone
Keywords: mitochondria; biometal homeostasis; neurodegeneration; stroke; Cu(atsm); Mn porphyrins; curcumin; deferiprone
Friday, November 8, 2013
Exclusive: 'Jaw-dropping' breakthrough hailed as landmark in fight against hereditary diseases as Crispr technique heralds genetic revolution
Exclusive: 'Jaw-dropping' breakthrough hailed as landmark in fight against hereditary diseases as Crispr technique heralds genetic revolution . THE INDEPENDENT (UK), Steve Connor, Thursday 07 November 2013.
"Is exciting to follow the progress of biotechnological sciences, everyday are opening new doors that can lead to an effective therapy in the not too distant future."
Submitted by John Spencer
"Is exciting to follow the progress of biotechnological sciences, everyday are opening new doors that can lead to an effective therapy in the not too distant future."
Submitted by John Spencer
Thursday, November 7, 2013
Ataxia: Physical Therapy and Rehabilitation Applications for Ataxic Patients
Ataxia: Physical Therapy and Rehabilitation Applications for Ataxic Patients. Armutlu K. 2013; JH Stone, M Blouin, editors. International Encyclopedia of Rehabilitation. Available online
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Tuesday, November 5, 2013
Edison Pharmaceuticals, FARA, and USF Announce Initiation of EPI-743 Phase 2 Friedreich's Ataxia Clinical Trial in Adults with Point Mutations
Edison Pharmaceuticals, FARA, and USF Announce Initiation of EPI-743 Phase 2 Friedreich's Ataxia Clinical Trial in Adults with Point Mutations.MOUNTAIN VIEW, Calif. and DOWNINGTOWN, Pa. and TAMPA, Fla., Nov. 4, 2013 /PRNewswire
Edison Pharmaceuticals, the Friedreich's Ataxia Research Alliance (FARA) and the University of South Florida (USF) today announced the initiation of a phase 2 study entitled, "Phase 2A Clinical Trial of EPI-743 on Visual Function in Friedreich's Ataxia Patients with Point Mutations."
Related content: EPI-743 in Friedreich's Ataxia Point Mutations, Thursday, October 17, 2013
Edison Pharmaceuticals, the Friedreich's Ataxia Research Alliance (FARA) and the University of South Florida (USF) today announced the initiation of a phase 2 study entitled, "Phase 2A Clinical Trial of EPI-743 on Visual Function in Friedreich's Ataxia Patients with Point Mutations."
Related content: EPI-743 in Friedreich's Ataxia Point Mutations, Thursday, October 17, 2013
Monday, November 4, 2013
4-(p-QUINONYL)-2-HYDROXYBUTANAMIDE DERIVATIVES FOR TREATMENT OF MITOCHONDRIAL DISEASES
4-(p-QUINONYL)-2-HYDROXYBUTANAMIDE DERIVATIVES FOR TREATMENT OF MITOCHONDRIAL DISEASES. Patent, EDISON PHARMACEUTICALS INC [US
Methods of treating or suppressing mitochondrial diseases, such as Friedreich's ataxia (FRDA), Leber's Hereditary Optic Neuropathy (LHON), mitochondrial myopathy, encephalopathy, lactacidosis, and stroke (MELAS), Kearns-Sayre Syndrome (KSS)....
Methods of treating or suppressing mitochondrial diseases, such as Friedreich's ataxia (FRDA), Leber's Hereditary Optic Neuropathy (LHON), mitochondrial myopathy, encephalopathy, lactacidosis, and stroke (MELAS), Kearns-Sayre Syndrome (KSS)....
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