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HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy

Studies on myotonic dystrophy type 1 (DM1) have led to the RNA-mediated disease model for hereditary disorders caused by noncoding microsatellite expansions. This model proposes that DM1 disease manifestations are caused by a reversion to fetal RNA processing patterns in adult tissues due to the exp...

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Autores principales: Li, Moyi, Zhuang, Yan, Batra, Ranjan, Thomas, James D., Li, Mao, Nutter, Curtis A., Scotti, Marina M., Carter, Helmut A., Wang, Zhan Jun, Huang, Xu-Sheng, Pu, Chuan Qiang, Swanson, Maurice S., Xie, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7071875/
https://www.ncbi.nlm.nih.gov/pubmed/32086392
http://dx.doi.org/10.1073/pnas.1907297117
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author Li, Moyi
Zhuang, Yan
Batra, Ranjan
Thomas, James D.
Li, Mao
Nutter, Curtis A.
Scotti, Marina M.
Carter, Helmut A.
Wang, Zhan Jun
Huang, Xu-Sheng
Pu, Chuan Qiang
Swanson, Maurice S.
Xie, Wei
author_facet Li, Moyi
Zhuang, Yan
Batra, Ranjan
Thomas, James D.
Li, Mao
Nutter, Curtis A.
Scotti, Marina M.
Carter, Helmut A.
Wang, Zhan Jun
Huang, Xu-Sheng
Pu, Chuan Qiang
Swanson, Maurice S.
Xie, Wei
author_sort Li, Moyi
collection PubMed
description Studies on myotonic dystrophy type 1 (DM1) have led to the RNA-mediated disease model for hereditary disorders caused by noncoding microsatellite expansions. This model proposes that DM1 disease manifestations are caused by a reversion to fetal RNA processing patterns in adult tissues due to the expression of toxic CUG RNA expansions (CUG(exp)) leading to decreased muscleblind-like, but increased CUGBP1/ETR3-like factor 1 (CELF1), alternative splicing activities. Here, we test this model in vivo, using the mouse HSA(LR) poly(CUG) model for DM1 and recombinant adeno-associated virus (rAAV)-mediated transduction of specific splicing factors. Surprisingly, systemic overexpression of HNRNPA1, not previously linked to DM1, also shifted DM1-relevant splicing targets to fetal isoforms, resulting in more severe muscle weakness/myopathy as early as 4 to 6 wk posttransduction, whereas rAAV controls were unaffected. Overexpression of HNRNPA1 promotes fetal exon inclusion of representative DM1-relevant splicing targets in differentiated myoblasts, and HITS-CLIP of rAAV-mycHnrnpa1-injected muscle revealed direct interactions of HNRNPA1 with these targets in vivo. Similar to CELF1, HNRNPA1 protein levels decrease during postnatal development, but are elevated in both regenerating mouse muscle and DM1 skeletal muscle. Our studies suggest that CUG(exp) RNA triggers abnormal expression of multiple nuclear RNA binding proteins, including CELF1 and HNRNPA1, that antagonize MBNL activity to promote fetal splicing patterns.
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spelling pubmed-70718752020-03-22 HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy Li, Moyi Zhuang, Yan Batra, Ranjan Thomas, James D. Li, Mao Nutter, Curtis A. Scotti, Marina M. Carter, Helmut A. Wang, Zhan Jun Huang, Xu-Sheng Pu, Chuan Qiang Swanson, Maurice S. Xie, Wei Proc Natl Acad Sci U S A Biological Sciences Studies on myotonic dystrophy type 1 (DM1) have led to the RNA-mediated disease model for hereditary disorders caused by noncoding microsatellite expansions. This model proposes that DM1 disease manifestations are caused by a reversion to fetal RNA processing patterns in adult tissues due to the expression of toxic CUG RNA expansions (CUG(exp)) leading to decreased muscleblind-like, but increased CUGBP1/ETR3-like factor 1 (CELF1), alternative splicing activities. Here, we test this model in vivo, using the mouse HSA(LR) poly(CUG) model for DM1 and recombinant adeno-associated virus (rAAV)-mediated transduction of specific splicing factors. Surprisingly, systemic overexpression of HNRNPA1, not previously linked to DM1, also shifted DM1-relevant splicing targets to fetal isoforms, resulting in more severe muscle weakness/myopathy as early as 4 to 6 wk posttransduction, whereas rAAV controls were unaffected. Overexpression of HNRNPA1 promotes fetal exon inclusion of representative DM1-relevant splicing targets in differentiated myoblasts, and HITS-CLIP of rAAV-mycHnrnpa1-injected muscle revealed direct interactions of HNRNPA1 with these targets in vivo. Similar to CELF1, HNRNPA1 protein levels decrease during postnatal development, but are elevated in both regenerating mouse muscle and DM1 skeletal muscle. Our studies suggest that CUG(exp) RNA triggers abnormal expression of multiple nuclear RNA binding proteins, including CELF1 and HNRNPA1, that antagonize MBNL activity to promote fetal splicing patterns. National Academy of Sciences 2020-03-10 2020-02-21 /pmc/articles/PMC7071875/ /pubmed/32086392 http://dx.doi.org/10.1073/pnas.1907297117 Text en Copyright © 2020 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Li, Moyi
Zhuang, Yan
Batra, Ranjan
Thomas, James D.
Li, Mao
Nutter, Curtis A.
Scotti, Marina M.
Carter, Helmut A.
Wang, Zhan Jun
Huang, Xu-Sheng
Pu, Chuan Qiang
Swanson, Maurice S.
Xie, Wei
HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
title HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
title_full HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
title_fullStr HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
title_full_unstemmed HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
title_short HNRNPA1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
title_sort hnrnpa1-induced spliceopathy in a transgenic mouse model of myotonic dystrophy
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7071875/
https://www.ncbi.nlm.nih.gov/pubmed/32086392
http://dx.doi.org/10.1073/pnas.1907297117
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