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Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction

BACKGROUND: Nuclear receptor interaction protein (NRIP) is a calcium/calmodulin (CaM) binding protein. Nuclear receptor interaction protein interacts with CaM to activate calcineurin and CaMKII signalling. The conventional NRIP knockout mice (global knockout) showed muscular abnormality with reducti...

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Autores principales: Chen, Hsin‐Hsiung, Tsai, Li‐Kai, Liao, Kuan‐Yu, Wu, Tung‐Chien, Huang, Yun‐Hsin, Huang, Yuan‐Chun, Chang, Szu‐Wei, Wang, Pei‐Yu, Tsao, Yeou‐Ping, Chen, Show‐Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6104115/
https://www.ncbi.nlm.nih.gov/pubmed/29608040
http://dx.doi.org/10.1002/jcsm.12299
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author Chen, Hsin‐Hsiung
Tsai, Li‐Kai
Liao, Kuan‐Yu
Wu, Tung‐Chien
Huang, Yun‐Hsin
Huang, Yuan‐Chun
Chang, Szu‐Wei
Wang, Pei‐Yu
Tsao, Yeou‐Ping
Chen, Show‐Li
author_facet Chen, Hsin‐Hsiung
Tsai, Li‐Kai
Liao, Kuan‐Yu
Wu, Tung‐Chien
Huang, Yun‐Hsin
Huang, Yuan‐Chun
Chang, Szu‐Wei
Wang, Pei‐Yu
Tsao, Yeou‐Ping
Chen, Show‐Li
author_sort Chen, Hsin‐Hsiung
collection PubMed
description BACKGROUND: Nuclear receptor interaction protein (NRIP) is a calcium/calmodulin (CaM) binding protein. Nuclear receptor interaction protein interacts with CaM to activate calcineurin and CaMKII signalling. The conventional NRIP knockout mice (global knockout) showed muscular abnormality with reduction of muscle oxidative functions and motor function defects. METHODS: To investigate the role of NRIP on neuromuscular system, we generated muscle‐restricted NRIP knockout mice [conditional knockout (cKO)]. The muscle functions (including oxidative muscle markers and muscle strength) and lumbar motor neuron functions [motor neuron number, axon denervation, neuromuscular junction (NMJ)] were tested. The laser‐captured microdissection at NMJ of skeletal muscles and adenovirus gene therapy for rescued effects were performed. RESULTS: The cKO mice showed muscular abnormality with reduction of muscle oxidative functions and impaired motor performances as global knockout mice. To our surprise, cKO mice also displayed motor neuron degeneration with abnormal architecture of NMJ. Specifically, the cKO mice revealed reduced motor neuron number with small neuronal size in lumbar spinal cord as well as denervating change, small motor endplates, and decreased myonuclei number at NMJ in skeletal muscles. To explore the mechanisms, we screened various muscle‐derived factors and found that myogenin is a potential candidate that myogenin expression was lower in skeletal muscles of cKO mice than wild‐type mice. Because NRIP and myogenin were colocalized around acetylcholine receptors at NMJ, we extracted RNA from synaptic and extrasynaptic regions of muscles using laser capture microdissection and showed that myogenin expression was especially lower at synaptic region in cKO than wild‐type mice. Notably, overexpression of myogenin using intramuscular adenovirus encoding myogenin treatment rescued abnormal NMJ architecture and preserved motor neuron death in cKO mice. CONCLUSIONS: In summary, we demonstrated that deprivation of NRIP decreases myogenin expression at NMJ, possibly leading to abnormal NMJ formation, denervation of acetylcholine receptor, and subsequent loss of spinal motor neuron. Overexpression of myogenin in cKO mice can partially rescue abnormal NMJ architecture and motor neuron death. Therefore, muscular NRIP is a novel trophic factor supporting spinal motor neuron via stabilization of NMJ by myogenin expression.
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spelling pubmed-61041152018-08-27 Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction Chen, Hsin‐Hsiung Tsai, Li‐Kai Liao, Kuan‐Yu Wu, Tung‐Chien Huang, Yun‐Hsin Huang, Yuan‐Chun Chang, Szu‐Wei Wang, Pei‐Yu Tsao, Yeou‐Ping Chen, Show‐Li J Cachexia Sarcopenia Muscle Original Articles BACKGROUND: Nuclear receptor interaction protein (NRIP) is a calcium/calmodulin (CaM) binding protein. Nuclear receptor interaction protein interacts with CaM to activate calcineurin and CaMKII signalling. The conventional NRIP knockout mice (global knockout) showed muscular abnormality with reduction of muscle oxidative functions and motor function defects. METHODS: To investigate the role of NRIP on neuromuscular system, we generated muscle‐restricted NRIP knockout mice [conditional knockout (cKO)]. The muscle functions (including oxidative muscle markers and muscle strength) and lumbar motor neuron functions [motor neuron number, axon denervation, neuromuscular junction (NMJ)] were tested. The laser‐captured microdissection at NMJ of skeletal muscles and adenovirus gene therapy for rescued effects were performed. RESULTS: The cKO mice showed muscular abnormality with reduction of muscle oxidative functions and impaired motor performances as global knockout mice. To our surprise, cKO mice also displayed motor neuron degeneration with abnormal architecture of NMJ. Specifically, the cKO mice revealed reduced motor neuron number with small neuronal size in lumbar spinal cord as well as denervating change, small motor endplates, and decreased myonuclei number at NMJ in skeletal muscles. To explore the mechanisms, we screened various muscle‐derived factors and found that myogenin is a potential candidate that myogenin expression was lower in skeletal muscles of cKO mice than wild‐type mice. Because NRIP and myogenin were colocalized around acetylcholine receptors at NMJ, we extracted RNA from synaptic and extrasynaptic regions of muscles using laser capture microdissection and showed that myogenin expression was especially lower at synaptic region in cKO than wild‐type mice. Notably, overexpression of myogenin using intramuscular adenovirus encoding myogenin treatment rescued abnormal NMJ architecture and preserved motor neuron death in cKO mice. CONCLUSIONS: In summary, we demonstrated that deprivation of NRIP decreases myogenin expression at NMJ, possibly leading to abnormal NMJ formation, denervation of acetylcholine receptor, and subsequent loss of spinal motor neuron. Overexpression of myogenin in cKO mice can partially rescue abnormal NMJ architecture and motor neuron death. Therefore, muscular NRIP is a novel trophic factor supporting spinal motor neuron via stabilization of NMJ by myogenin expression. John Wiley and Sons Inc. 2018-04-02 2018-08 /pmc/articles/PMC6104115/ /pubmed/29608040 http://dx.doi.org/10.1002/jcsm.12299 Text en © 2018 The Authors. Journal of Cachexia, Sarcopenia and Muscle published by John Wiley & Sons Ltd on behalf of the Society on Sarcopenia, Cachexia and Wasting Disorders This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Articles
Chen, Hsin‐Hsiung
Tsai, Li‐Kai
Liao, Kuan‐Yu
Wu, Tung‐Chien
Huang, Yun‐Hsin
Huang, Yuan‐Chun
Chang, Szu‐Wei
Wang, Pei‐Yu
Tsao, Yeou‐Ping
Chen, Show‐Li
Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
title Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
title_full Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
title_fullStr Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
title_full_unstemmed Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
title_short Muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
title_sort muscle‐restricted nuclear receptor interaction protein knockout causes motor neuron degeneration through down‐regulation of myogenin at the neuromuscular junction
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6104115/
https://www.ncbi.nlm.nih.gov/pubmed/29608040
http://dx.doi.org/10.1002/jcsm.12299
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