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Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway
Mutations in the human LMNA gene cause muscular dystrophy by mechanisms that are incompletely understood. The LMNA gene encodes A-type lamins, intermediate filaments that form a network underlying the inner nuclear membrane, providing structural support for the nucleus and organizing the genome. To...
Autores principales: | , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2015
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4440730/ https://www.ncbi.nlm.nih.gov/pubmed/25996830 http://dx.doi.org/10.1371/journal.pgen.1005231 |
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author | Dialynas, George Shrestha, Om K. Ponce, Jessica M. Zwerger, Monika Thiemann, Dylan A. Young, Grant H. Moore, Steven A. Yu, Liping Lammerding, Jan Wallrath, Lori L. |
author_facet | Dialynas, George Shrestha, Om K. Ponce, Jessica M. Zwerger, Monika Thiemann, Dylan A. Young, Grant H. Moore, Steven A. Yu, Liping Lammerding, Jan Wallrath, Lori L. |
author_sort | Dialynas, George |
collection | PubMed |
description | Mutations in the human LMNA gene cause muscular dystrophy by mechanisms that are incompletely understood. The LMNA gene encodes A-type lamins, intermediate filaments that form a network underlying the inner nuclear membrane, providing structural support for the nucleus and organizing the genome. To better understand the pathogenesis caused by mutant lamins, we performed a structural and functional analysis on LMNA missense mutations identified in muscular dystrophy patients. These mutations perturb the tertiary structure of the conserved A-type lamin Ig-fold domain. To identify the effects of these structural perturbations on lamin function, we modeled these mutations in Drosophila Lamin C and expressed the mutant lamins in muscle. We found that the structural perturbations had minimal dominant effects on nuclear stiffness, suggesting that the muscle pathology was not accompanied by major structural disruption of the peripheral nuclear lamina. However, subtle alterations in the lamina network and subnuclear reorganization of lamins remain possible. Affected muscles had cytoplasmic aggregation of lamins and additional nuclear envelope proteins. Transcription profiling revealed upregulation of many Nrf2 target genes. Nrf2 is normally sequestered in the cytoplasm by Keap-1. Under oxidative stress Nrf2 dissociates from Keap-1, translocates into the nucleus, and activates gene expression. Unexpectedly, biochemical analyses revealed high levels of reducing agents, indicative of reductive stress. The accumulation of cytoplasmic lamin aggregates correlated with elevated levels of the autophagy adaptor p62/SQSTM1, which also binds Keap-1, abrogating Nrf2 cytoplasmic sequestration, allowing Nrf2 nuclear translocation and target gene activation. Elevated p62/SQSTM1 and nuclear enrichment of Nrf2 were identified in muscle biopsies from the corresponding muscular dystrophy patients, validating the disease relevance of our Drosophila model. Thus, novel connections were made between mutant lamins and the Nrf2 signaling pathway, suggesting new avenues of therapeutic intervention that include regulation of protein folding and metabolism, as well as maintenance of redox homoeostasis. |
format | Online Article Text |
id | pubmed-4440730 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2015 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-44407302015-05-29 Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway Dialynas, George Shrestha, Om K. Ponce, Jessica M. Zwerger, Monika Thiemann, Dylan A. Young, Grant H. Moore, Steven A. Yu, Liping Lammerding, Jan Wallrath, Lori L. PLoS Genet Research Article Mutations in the human LMNA gene cause muscular dystrophy by mechanisms that are incompletely understood. The LMNA gene encodes A-type lamins, intermediate filaments that form a network underlying the inner nuclear membrane, providing structural support for the nucleus and organizing the genome. To better understand the pathogenesis caused by mutant lamins, we performed a structural and functional analysis on LMNA missense mutations identified in muscular dystrophy patients. These mutations perturb the tertiary structure of the conserved A-type lamin Ig-fold domain. To identify the effects of these structural perturbations on lamin function, we modeled these mutations in Drosophila Lamin C and expressed the mutant lamins in muscle. We found that the structural perturbations had minimal dominant effects on nuclear stiffness, suggesting that the muscle pathology was not accompanied by major structural disruption of the peripheral nuclear lamina. However, subtle alterations in the lamina network and subnuclear reorganization of lamins remain possible. Affected muscles had cytoplasmic aggregation of lamins and additional nuclear envelope proteins. Transcription profiling revealed upregulation of many Nrf2 target genes. Nrf2 is normally sequestered in the cytoplasm by Keap-1. Under oxidative stress Nrf2 dissociates from Keap-1, translocates into the nucleus, and activates gene expression. Unexpectedly, biochemical analyses revealed high levels of reducing agents, indicative of reductive stress. The accumulation of cytoplasmic lamin aggregates correlated with elevated levels of the autophagy adaptor p62/SQSTM1, which also binds Keap-1, abrogating Nrf2 cytoplasmic sequestration, allowing Nrf2 nuclear translocation and target gene activation. Elevated p62/SQSTM1 and nuclear enrichment of Nrf2 were identified in muscle biopsies from the corresponding muscular dystrophy patients, validating the disease relevance of our Drosophila model. Thus, novel connections were made between mutant lamins and the Nrf2 signaling pathway, suggesting new avenues of therapeutic intervention that include regulation of protein folding and metabolism, as well as maintenance of redox homoeostasis. Public Library of Science 2015-05-21 /pmc/articles/PMC4440730/ /pubmed/25996830 http://dx.doi.org/10.1371/journal.pgen.1005231 Text en © 2015 Dialynas 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Dialynas, George Shrestha, Om K. Ponce, Jessica M. Zwerger, Monika Thiemann, Dylan A. Young, Grant H. Moore, Steven A. Yu, Liping Lammerding, Jan Wallrath, Lori L. Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway |
title | Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway |
title_full | Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway |
title_fullStr | Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway |
title_full_unstemmed | Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway |
title_short | Myopathic Lamin Mutations Cause Reductive Stress and Activate the Nrf2/Keap-1 Pathway |
title_sort | myopathic lamin mutations cause reductive stress and activate the nrf2/keap-1 pathway |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4440730/ https://www.ncbi.nlm.nih.gov/pubmed/25996830 http://dx.doi.org/10.1371/journal.pgen.1005231 |
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