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Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory
The last decade has witnessed the identification of single-gene defects associated with an impressive number of mental retardation syndromes. Fragile X syndrome, the most common cause of mental retardation for instance, results from disruption of the FMR1 gene. Similarly, Periventricular Nodular Het...
Autores principales: | , , , , |
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Formato: | Texto |
Lenguaje: | English |
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Frontiers Research Foundation
2010
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2813723/ https://www.ncbi.nlm.nih.gov/pubmed/20190856 http://dx.doi.org/10.3389/neuro.04.022.2009 |
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author | Bolduc, François V. Bell, Kimberly Rosenfelt, Cory Cox, Hilary Tully, Tim |
author_facet | Bolduc, François V. Bell, Kimberly Rosenfelt, Cory Cox, Hilary Tully, Tim |
author_sort | Bolduc, François V. |
collection | PubMed |
description | The last decade has witnessed the identification of single-gene defects associated with an impressive number of mental retardation syndromes. Fragile X syndrome, the most common cause of mental retardation for instance, results from disruption of the FMR1 gene. Similarly, Periventricular Nodular Heterotopia, which includes cerebral malformation, epilepsy and cognitive disabilities, derives from disruption of the Filamin A gene. While it remains unclear whether defects in common molecular pathways may underlie the cognitive dysfunction of these various syndromes, defects in cytoskeletal structure nonetheless appear to be common to several mental retardation syndromes. FMR1 is known to interact with Rac, profilin, PAK and Ras, which are associated with dendritic spine defects. In Drosophila, disruptions of the dFmr1 gene impair long-term memory (LTM), and the Filamin A homolog (cheerio) was identified in a behavioral screen for LTM mutants. Thus, we investigated the possible interaction between cheerio and dFmr1 during LTM formation in Drosophila. We show that LTM specifically is defective in dFmr1/cheerio double heterozygotes, while it is normal in single heterozygotes for either dFmr1 or cheerio. In dFmr1 mutants, Filamin (Cheerio) levels are lower than normal after spaced training. These observations support the notion that decreased actin cross-linking may underlie the persistence of long and thin dendritic spines in Fragile X patients and animal models. More generally, our results represent the first demonstration of a genetic interaction between mental retardation genes in an in vivo model system of memory formation. |
format | Text |
id | pubmed-2813723 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2010 |
publisher | Frontiers Research Foundation |
record_format | MEDLINE/PubMed |
spelling | pubmed-28137232010-02-26 Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory Bolduc, François V. Bell, Kimberly Rosenfelt, Cory Cox, Hilary Tully, Tim Front Neural Circuits Neuroscience The last decade has witnessed the identification of single-gene defects associated with an impressive number of mental retardation syndromes. Fragile X syndrome, the most common cause of mental retardation for instance, results from disruption of the FMR1 gene. Similarly, Periventricular Nodular Heterotopia, which includes cerebral malformation, epilepsy and cognitive disabilities, derives from disruption of the Filamin A gene. While it remains unclear whether defects in common molecular pathways may underlie the cognitive dysfunction of these various syndromes, defects in cytoskeletal structure nonetheless appear to be common to several mental retardation syndromes. FMR1 is known to interact with Rac, profilin, PAK and Ras, which are associated with dendritic spine defects. In Drosophila, disruptions of the dFmr1 gene impair long-term memory (LTM), and the Filamin A homolog (cheerio) was identified in a behavioral screen for LTM mutants. Thus, we investigated the possible interaction between cheerio and dFmr1 during LTM formation in Drosophila. We show that LTM specifically is defective in dFmr1/cheerio double heterozygotes, while it is normal in single heterozygotes for either dFmr1 or cheerio. In dFmr1 mutants, Filamin (Cheerio) levels are lower than normal after spaced training. These observations support the notion that decreased actin cross-linking may underlie the persistence of long and thin dendritic spines in Fragile X patients and animal models. More generally, our results represent the first demonstration of a genetic interaction between mental retardation genes in an in vivo model system of memory formation. Frontiers Research Foundation 2010-01-08 /pmc/articles/PMC2813723/ /pubmed/20190856 http://dx.doi.org/10.3389/neuro.04.022.2009 Text en Copyright © 2010 Bolduc, Bell, Rosenfelt, Cox and Tully. http://www.frontiersin.org/licenseagreement This is an open-access article subject to an exclusive license agreement between the authors and the Frontiers Research Foundation, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are credited. |
spellingShingle | Neuroscience Bolduc, François V. Bell, Kimberly Rosenfelt, Cory Cox, Hilary Tully, Tim Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory |
title | Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory |
title_full | Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory |
title_fullStr | Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory |
title_full_unstemmed | Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory |
title_short | Fragile X Mental Retardation 1 and Filamin A Interact Genetically in Drosophila Long-Term Memory |
title_sort | fragile x mental retardation 1 and filamin a interact genetically in drosophila long-term memory |
topic | Neuroscience |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2813723/ https://www.ncbi.nlm.nih.gov/pubmed/20190856 http://dx.doi.org/10.3389/neuro.04.022.2009 |
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