Cargando…

LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force

BACKGROUND: Skeletal muscle mass and strength are crucial determinants of health. Muscle mass loss is associated with weakness, fatigue, and insulin resistance. In fact, it is predicted that controlling muscle atrophy can reduce morbidity and mortality associated with diseases such as cancer cachexi...

Descripción completa

Detalles Bibliográficos
Autores principales: Ferreira, Duarte M. S., Cheng, Arthur J., Agudelo, Leandro Z., Cervenka, Igor, Chaillou, Thomas, Correia, Jorge C., Porsmyr-Palmertz, Margareta, Izadi, Manizheh, Hansson, Alicia, Martínez-Redondo, Vicente, Valente-Silva, Paula, Pettersson-Klein, Amanda T., Estall, Jennifer L., Robinson, Matthew M., Nair, K. Sreekumaran, Lanner, Johanna T., Ruas, Jorge L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6822430/
https://www.ncbi.nlm.nih.gov/pubmed/31666122
http://dx.doi.org/10.1186/s13395-019-0214-1
_version_ 1783464333930397696
author Ferreira, Duarte M. S.
Cheng, Arthur J.
Agudelo, Leandro Z.
Cervenka, Igor
Chaillou, Thomas
Correia, Jorge C.
Porsmyr-Palmertz, Margareta
Izadi, Manizheh
Hansson, Alicia
Martínez-Redondo, Vicente
Valente-Silva, Paula
Pettersson-Klein, Amanda T.
Estall, Jennifer L.
Robinson, Matthew M.
Nair, K. Sreekumaran
Lanner, Johanna T.
Ruas, Jorge L.
author_facet Ferreira, Duarte M. S.
Cheng, Arthur J.
Agudelo, Leandro Z.
Cervenka, Igor
Chaillou, Thomas
Correia, Jorge C.
Porsmyr-Palmertz, Margareta
Izadi, Manizheh
Hansson, Alicia
Martínez-Redondo, Vicente
Valente-Silva, Paula
Pettersson-Klein, Amanda T.
Estall, Jennifer L.
Robinson, Matthew M.
Nair, K. Sreekumaran
Lanner, Johanna T.
Ruas, Jorge L.
author_sort Ferreira, Duarte M. S.
collection PubMed
description BACKGROUND: Skeletal muscle mass and strength are crucial determinants of health. Muscle mass loss is associated with weakness, fatigue, and insulin resistance. In fact, it is predicted that controlling muscle atrophy can reduce morbidity and mortality associated with diseases such as cancer cachexia and sarcopenia. METHODS: We analyzed gene expression data from muscle of mice or human patients with diverse muscle pathologies and identified LMCD1 as a gene strongly associated with skeletal muscle function. We transiently expressed or silenced LMCD1 in mouse gastrocnemius muscle or in mouse primary muscle cells and determined muscle/cell size, targeted gene expression, kinase activity with kinase arrays, protein immunoblotting, and protein synthesis levels. To evaluate force, calcium handling, and fatigue, we transduced the flexor digitorum brevis muscle with a LMCD1-expressing adenovirus and measured specific force and sarcoplasmic reticulum Ca(2+) release in individual fibers. Finally, to explore the relationship between LMCD1 and calcineurin, we ectopically expressed Lmcd1 in the gastrocnemius muscle and treated those mice with cyclosporine A (calcineurin inhibitor). In addition, we used a luciferase reporter construct containing the myoregulin gene promoter to confirm the role of a LMCD1-calcineurin-myoregulin axis in skeletal muscle mass control and calcium handling. RESULTS: Here, we identify LIM and cysteine-rich domains 1 (LMCD1) as a positive regulator of muscle mass, that increases muscle protein synthesis and fiber size. LMCD1 expression in vivo was sufficient to increase specific force with lower requirement for calcium handling and to reduce muscle fatigue. Conversely, silencing LMCD1 expression impairs calcium handling and force, and induces muscle fatigue without overt atrophy. The actions of LMCD1 were dependent on calcineurin, as its inhibition using cyclosporine A reverted the observed hypertrophic phenotype. Finally, we determined that LMCD1 represses the expression of myoregulin, a known negative regulator of muscle performance. Interestingly, we observed that skeletal muscle LMCD1 expression is reduced in patients with skeletal muscle disease. CONCLUSIONS: Our gain- and loss-of-function studies show that LMCD1 controls protein synthesis, muscle fiber size, specific force, Ca(2+) handling, and fatigue resistance. This work uncovers a novel role for LMCD1 in the regulation of skeletal muscle mass and function with potential therapeutic implications.
format Online
Article
Text
id pubmed-6822430
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-68224302019-11-06 LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force Ferreira, Duarte M. S. Cheng, Arthur J. Agudelo, Leandro Z. Cervenka, Igor Chaillou, Thomas Correia, Jorge C. Porsmyr-Palmertz, Margareta Izadi, Manizheh Hansson, Alicia Martínez-Redondo, Vicente Valente-Silva, Paula Pettersson-Klein, Amanda T. Estall, Jennifer L. Robinson, Matthew M. Nair, K. Sreekumaran Lanner, Johanna T. Ruas, Jorge L. Skelet Muscle Research BACKGROUND: Skeletal muscle mass and strength are crucial determinants of health. Muscle mass loss is associated with weakness, fatigue, and insulin resistance. In fact, it is predicted that controlling muscle atrophy can reduce morbidity and mortality associated with diseases such as cancer cachexia and sarcopenia. METHODS: We analyzed gene expression data from muscle of mice or human patients with diverse muscle pathologies and identified LMCD1 as a gene strongly associated with skeletal muscle function. We transiently expressed or silenced LMCD1 in mouse gastrocnemius muscle or in mouse primary muscle cells and determined muscle/cell size, targeted gene expression, kinase activity with kinase arrays, protein immunoblotting, and protein synthesis levels. To evaluate force, calcium handling, and fatigue, we transduced the flexor digitorum brevis muscle with a LMCD1-expressing adenovirus and measured specific force and sarcoplasmic reticulum Ca(2+) release in individual fibers. Finally, to explore the relationship between LMCD1 and calcineurin, we ectopically expressed Lmcd1 in the gastrocnemius muscle and treated those mice with cyclosporine A (calcineurin inhibitor). In addition, we used a luciferase reporter construct containing the myoregulin gene promoter to confirm the role of a LMCD1-calcineurin-myoregulin axis in skeletal muscle mass control and calcium handling. RESULTS: Here, we identify LIM and cysteine-rich domains 1 (LMCD1) as a positive regulator of muscle mass, that increases muscle protein synthesis and fiber size. LMCD1 expression in vivo was sufficient to increase specific force with lower requirement for calcium handling and to reduce muscle fatigue. Conversely, silencing LMCD1 expression impairs calcium handling and force, and induces muscle fatigue without overt atrophy. The actions of LMCD1 were dependent on calcineurin, as its inhibition using cyclosporine A reverted the observed hypertrophic phenotype. Finally, we determined that LMCD1 represses the expression of myoregulin, a known negative regulator of muscle performance. Interestingly, we observed that skeletal muscle LMCD1 expression is reduced in patients with skeletal muscle disease. CONCLUSIONS: Our gain- and loss-of-function studies show that LMCD1 controls protein synthesis, muscle fiber size, specific force, Ca(2+) handling, and fatigue resistance. This work uncovers a novel role for LMCD1 in the regulation of skeletal muscle mass and function with potential therapeutic implications. BioMed Central 2019-10-31 /pmc/articles/PMC6822430/ /pubmed/31666122 http://dx.doi.org/10.1186/s13395-019-0214-1 Text en © The Author(s). 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Ferreira, Duarte M. S.
Cheng, Arthur J.
Agudelo, Leandro Z.
Cervenka, Igor
Chaillou, Thomas
Correia, Jorge C.
Porsmyr-Palmertz, Margareta
Izadi, Manizheh
Hansson, Alicia
Martínez-Redondo, Vicente
Valente-Silva, Paula
Pettersson-Klein, Amanda T.
Estall, Jennifer L.
Robinson, Matthew M.
Nair, K. Sreekumaran
Lanner, Johanna T.
Ruas, Jorge L.
LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force
title LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force
title_full LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force
title_fullStr LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force
title_full_unstemmed LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force
title_short LIM and cysteine-rich domains 1 (LMCD1) regulates skeletal muscle hypertrophy, calcium handling, and force
title_sort lim and cysteine-rich domains 1 (lmcd1) regulates skeletal muscle hypertrophy, calcium handling, and force
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6822430/
https://www.ncbi.nlm.nih.gov/pubmed/31666122
http://dx.doi.org/10.1186/s13395-019-0214-1
work_keys_str_mv AT ferreiraduartems limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT chengarthurj limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT agudeloleandroz limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT cervenkaigor limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT chaillouthomas limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT correiajorgec limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT porsmyrpalmertzmargareta limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT izadimanizheh limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT hanssonalicia limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT martinezredondovicente limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT valentesilvapaula limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT petterssonkleinamandat limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT estalljenniferl limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT robinsonmatthewm limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT nairksreekumaran limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT lannerjohannat limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce
AT ruasjorgel limandcysteinerichdomains1lmcd1regulatesskeletalmusclehypertrophycalciumhandlingandforce