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Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome

Mutations in the human MECP2 gene cause Rett syndrome (RTT), a severe neurodevelopmental disorder that predominantly affects girls. Despite decades of work, the molecular function of MeCP2 is not fully understood. Here we report a systematic identification of MeCP2-interacting proteins in the mouse...

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Autores principales: Li, Ronghui, Dong, Qiping, Yuan, Xinni, Zeng, Xin, Gao, Yu, Chiao, Cassandra, Li, Hongda, Zhao, Xinyu, Keles, Sunduz, Wang, Zefeng, Chang, Qiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4924826/
https://www.ncbi.nlm.nih.gov/pubmed/27352031
http://dx.doi.org/10.1371/journal.pgen.1006129
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author Li, Ronghui
Dong, Qiping
Yuan, Xinni
Zeng, Xin
Gao, Yu
Chiao, Cassandra
Li, Hongda
Zhao, Xinyu
Keles, Sunduz
Wang, Zefeng
Chang, Qiang
author_facet Li, Ronghui
Dong, Qiping
Yuan, Xinni
Zeng, Xin
Gao, Yu
Chiao, Cassandra
Li, Hongda
Zhao, Xinyu
Keles, Sunduz
Wang, Zefeng
Chang, Qiang
author_sort Li, Ronghui
collection PubMed
description Mutations in the human MECP2 gene cause Rett syndrome (RTT), a severe neurodevelopmental disorder that predominantly affects girls. Despite decades of work, the molecular function of MeCP2 is not fully understood. Here we report a systematic identification of MeCP2-interacting proteins in the mouse brain. In addition to transcription regulators, we found that MeCP2 physically interacts with several modulators of RNA splicing, including LEDGF and DHX9. These interactions are disrupted by RTT causing mutations, suggesting that they may play a role in RTT pathogenesis. Consistent with the idea, deep RNA sequencing revealed misregulation of hundreds of splicing events in the cortex of Mecp2 knockout mice. To reveal the functional consequence of altered RNA splicing due to the loss of MeCP2, we focused on the regulation of the splicing of the flip/flop exon of Gria2 and other AMPAR genes. We found a significant splicing shift in the flip/flop exon toward the flop inclusion, leading to a faster decay in the AMPAR gated current and altered synaptic transmission. In summary, our study identified direct physical interaction between MeCP2 and splicing factors, a novel MeCP2 target gene, and established functional connection between a specific RNA splicing change and synaptic phenotypes in RTT mice. These results not only help our understanding of the molecular function of MeCP2, but also reveal potential drug targets for future therapies.
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spelling pubmed-49248262016-07-18 Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome Li, Ronghui Dong, Qiping Yuan, Xinni Zeng, Xin Gao, Yu Chiao, Cassandra Li, Hongda Zhao, Xinyu Keles, Sunduz Wang, Zefeng Chang, Qiang PLoS Genet Research Article Mutations in the human MECP2 gene cause Rett syndrome (RTT), a severe neurodevelopmental disorder that predominantly affects girls. Despite decades of work, the molecular function of MeCP2 is not fully understood. Here we report a systematic identification of MeCP2-interacting proteins in the mouse brain. In addition to transcription regulators, we found that MeCP2 physically interacts with several modulators of RNA splicing, including LEDGF and DHX9. These interactions are disrupted by RTT causing mutations, suggesting that they may play a role in RTT pathogenesis. Consistent with the idea, deep RNA sequencing revealed misregulation of hundreds of splicing events in the cortex of Mecp2 knockout mice. To reveal the functional consequence of altered RNA splicing due to the loss of MeCP2, we focused on the regulation of the splicing of the flip/flop exon of Gria2 and other AMPAR genes. We found a significant splicing shift in the flip/flop exon toward the flop inclusion, leading to a faster decay in the AMPAR gated current and altered synaptic transmission. In summary, our study identified direct physical interaction between MeCP2 and splicing factors, a novel MeCP2 target gene, and established functional connection between a specific RNA splicing change and synaptic phenotypes in RTT mice. These results not only help our understanding of the molecular function of MeCP2, but also reveal potential drug targets for future therapies. Public Library of Science 2016-06-28 /pmc/articles/PMC4924826/ /pubmed/27352031 http://dx.doi.org/10.1371/journal.pgen.1006129 Text en © 2016 Li et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Li, Ronghui
Dong, Qiping
Yuan, Xinni
Zeng, Xin
Gao, Yu
Chiao, Cassandra
Li, Hongda
Zhao, Xinyu
Keles, Sunduz
Wang, Zefeng
Chang, Qiang
Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome
title Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome
title_full Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome
title_fullStr Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome
title_full_unstemmed Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome
title_short Misregulation of Alternative Splicing in a Mouse Model of Rett Syndrome
title_sort misregulation of alternative splicing in a mouse model of rett syndrome
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4924826/
https://www.ncbi.nlm.nih.gov/pubmed/27352031
http://dx.doi.org/10.1371/journal.pgen.1006129
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