Researchers at the Buck Institute have used RNA interference (RNAi) technology to identify hundreds of “druggable” molecular targets linked to the toxicity associated with the devastating, ultimately fatal disease.
The results from this unprecedented genome-scale screen in a human cell model of HD are published in the November 29, 2012 edition of PLoS Genetics. The work was is a collaboration between Buck Institute faculty members Robert E. Hughes, Ph.D., Sean Mooney, Ph.D., Lisa Ellerby, Ph.D. and Juan Botas, Ph.D. at the Baylor College of Medicine.
HD is a devastating and incurable progressive neurodegenerative genetic disorder that affects motor coordination and leads to severe physical and cognitive decline. Currently, there are about 30,000 people in North America diagnosed with HD and another 150,000 people at risk for developing the disease. The disease pathology stems from a mutation in the huntingtin gene (HTT), resulting in the accumulation of a toxic protein leading to neuronal cell death and systemic dysfunction. Buck Scientists screened more than 7,800 genes pre-selected as potential drug targets to identify modifiers of HD toxicity in human cells, using technology that silences specific genes prior to analysis.
Lead author Robert Hughes said that among the diverse range of modifiers identified, this study showed that RRAS, a gene involved in cell motility and neuronal development, is a potent modulator of HD toxicity in multiple HD models. “Our data indicates that the pathogenic effects of the HTT mutation on this pathway can be corrected at multiple intervention points and that pharmacological manipulation of RRAS signaling may confer therapeutic benefit in HD,” Hughes said. Follow up work on the RRAS pathway is now underway in the Hughes lab and in the lab of Buck faculty member Lisa M. Ellerby, PhD.
Hughes said many molecular hits identified in the screening were validated in human cell, mouse cell and fruit fly models of HD – and that all the data from the study will be available to the public. “Our hope is that HD researchers will look at these targets and find modifiers relevant to the areas they already work on,” said Hughes. “Ideally, pharmaceutical companies already working on some these pathways could build on their current knowledge and expertise by focusing their attention on the challenge to develop therapies for HD.”
Citation: “Miller JP, Yates BE, Al-Ramahi I, Berman AE, Sanhueza M, et al. (2012) A Genome-Scale RNA–Interference Screen Identifies RRAS Signaling as a Pathologic Feature of Huntington’s Disease. PLoS Genet 8(11): e1003042. doi:10.1371/journal.pgen.1003042”. Once the paper has been published, it will be accessible at http://www.plosgenetics.org/doi/pgen.1003042.
Contributors to the work:
Buck Institute researchers involved in the work include John Miller, Bridget E. Yates, Ari E. Berman, Francesco DeGiacomo, Cameron Torcassi, Jennifer Holcomb, Juliette Gafni, and Buck faculty members Robert E. Hughes, Lisa M. Ellerby and Sean D. Mooney. Other contributors include Ismael Al-Ramahi, Mario Sanhueza, Eugene Kim, Maria de Haro, and Juan Botas, Department of Molecular and Human Genetics, Baylor College of Medicine, Houston, TX. This work was supported by NIH NS040251, NIH NS055247, CHDI Inc., NIH NS042179, CHDI A-1979, NIH R01 LM009722 and NIH U54-HG004028, NIH T32 training grant AG000266, Hereditary Disease Foundation, John J. Wasmuth Postdoctoral Fellowship and Nathan Shock Center Grant P30AG025708.
About the Buck Institute for Research on Aging
The Buck Institute is the U.S.’s first and foremost independent research organization devoted to Geroscience – focused on the connection between normal aging and chronic disease. Based in Novato, CA, The Buck is dedicated to extending “Healthspan”, the healthy years of human life and does so utilizing a unique interdisciplinary approach involving laboratories studying the mechanisms of aging and those focused on specific diseases. Buck scientists strive to discover new ways of detecting, preventing and treating age-related diseases such as Alzheimer’s and Parkinson’s, cancer, cardiovascular disease, osteoporosis, macular degeneration, diabetes and stroke. In their collaborative research, they are supported by the most recent developments in genomics, proteomics, stem cell technology and bioinformatics. For more information: www.thebuck.org
Kris Rebillot | Source: Newswise Science News
Further information: www.buckinstitute.org
Further Reports about: CHDI > Disease > Drug Delivery > Genetics > Genome-Scale > genome-scale screen > HTT > human cell > human cell model > Huntington’s > Medicine > Mooney > NIH > RNA interference technology > RNAi > specific gene
More articles from Life Sciences:
New way to improve antibiotic production
18.06.2013 | Norwich BioScience Institutes
Missing enzyme linked to drug addiction
18.06.2013 | The Endocrine Society
... two engines aircraft project “Elektro E6”.
The countdown has been started for opening the gates again for the worldwide leading aviation and space event in Le Bourget, Paris from June 17th - 23rd, 2013.
EADCO & PC-Aero will present at the Paris Air Show in Hall H4 booth F-7 their new future aircraft and innovative project: ...
Siemens scientists have developed new kinds of ceramics in which they can embed transformers.
The new development allows power supply transformers to be reduced to one fifth of their current size so that the normally separate switched-mode power supply units of light-emitting diodes can be integrated into the module's heat sink.
The new technology was developed in cooperation with industrial and research partners who ...
Cheaper clean-energy technologies could be made possible thanks to a new discovery.
Led by Raymond Schaak, a professor of chemistry at Penn State University, research team members have found that an important chemical reaction that generates hydrogen from water is effectively triggered -- or catalyzed -- by a nanoparticle composed of nickel and phosphorus, two inexpensive elements that are abundant on Earth. ...
The Fraunhofer Institute for Laser Technology ILT generated a lot of interest at the LASER World of Photonics 2013 trade fair with its numerous industrial laser technology innovations.
Its highlights included beam sources and manufacturing processes for ultrashort laser pulses as well as ways to systematically optimize machining processes using computer simulations. There was even a specialist booth at the fair dedicated to the revolutionary technological potential of digital photonic production.
Now in its fortieth year, LASER World ...
It's not reruns of "The Jetsons", but researchers working at the National Institute of Standards and Technology (NIST) have developed a new microscopy technique that uses a process similar to how an old tube television produces a picture—cathodoluminescence—to image nanoscale features.
Combining the best features of optical and scanning electron microscopy, the fast, versatile, and high-resolution technique allows scientists to view surface and subsurface features potentially as small as 10 nanometers in size.
The new microscopy technique, described in the journal AIP Advances,* uses a beam of electrons to excite a specially ...
18.06.2013 | Materials Sciences
Artificial Sweetener a Potential Treatment for Parkinson's Disease
18.06.2013 | Health and Medicine
New way to improve antibiotic production
18.06.2013 | Life Sciences
International Symposium on Morphogenesis
14.06.2013 | Event News
ESMT Annual Forum: CEOs discuss “The Future of Jobs” with international academics and policymakers
13.06.2013 | Event News
Invitation: Mathematics for Industry and Society in the French Embassy Berlin, 04. - 05.07.2013
10.06.2013 | Event News