Literature DB >> 25406264

Spermine oxidase maintains basal skeletal muscle gene expression and fiber size and is strongly repressed by conditions that cause skeletal muscle atrophy.

Kale S Bongers1, Daniel K Fox1, Steven D Kunkel1, Larissa V Stebounova2, Daryl J Murry2, Miles A Pufall3, Scott M Ebert1, Michael C Dyle1, Steven A Bullard4, Jason M Dierdorff1, Christopher M Adams5.   

Abstract

Skeletal muscle atrophy is a common and debilitating condition that remains poorly understood at the molecular level. To better understand the mechanisms of muscle atrophy, we used mouse models to search for a skeletal muscle protein that helps to maintain muscle mass and is specifically lost during muscle atrophy. We discovered that diverse causes of muscle atrophy (limb immobilization, fasting, muscle denervation, and aging) strongly reduced expression of the enzyme spermine oxidase. Importantly, a reduction in spermine oxidase was sufficient to induce muscle fiber atrophy. Conversely, forced expression of spermine oxidase increased muscle fiber size in multiple models of muscle atrophy (immobilization, fasting, and denervation). Interestingly, the reduction of spermine oxidase during muscle atrophy was mediated by p21, a protein that is highly induced during muscle atrophy and actively promotes muscle atrophy. In addition, we found that spermine oxidase decreased skeletal muscle mRNAs that promote muscle atrophy (e.g., myogenin) and increased mRNAs that help to maintain muscle mass (e.g., mitofusin-2). Thus, in healthy skeletal muscle, a relatively low level of p21 permits expression of spermine oxidase, which helps to maintain basal muscle gene expression and fiber size; conversely, during conditions that cause muscle atrophy, p21 expression rises, leading to reduced spermine oxidase expression, disruption of basal muscle gene expression, and muscle fiber atrophy. Collectively, these results identify spermine oxidase as an important positive regulator of muscle gene expression and fiber size, and elucidate p21-mediated repression of spermine oxidase as a key step in the pathogenesis of skeletal muscle atrophy.

Entities:  

Keywords:  p21; polyamine; skeletal muscle; skeletal muscle atrophy; spermine oxidase

Mesh:

Substances:

Year:  2014        PMID: 25406264      PMCID: PMC4297781          DOI: 10.1152/ajpendo.00472.2014

Source DB:  PubMed          Journal:  Am J Physiol Endocrinol Metab        ISSN: 0193-1849            Impact factor:   4.310


  49 in total

1.  Global analysis of gene expression patterns during disuse atrophy in rat skeletal muscle.

Authors:  Eric J Stevenson; Paul G Giresi; Alan Koncarevic; Susan C Kandarian
Journal:  J Physiol       Date:  2003-07-04       Impact factor: 5.182

2.  Targeted overexpression of ornithine decarboxylase enhances beta-adrenergic agonist-induced cardiac hypertrophy.

Authors:  L M Shantz; D J Feith; A E Pegg
Journal:  Biochem J       Date:  2001-08-15       Impact factor: 3.857

3.  Identification of ubiquitin ligases required for skeletal muscle atrophy.

Authors:  S C Bodine; E Latres; S Baumhueter; V K Lai; L Nunez; B A Clarke; W T Poueymirou; F J Panaro; E Na; K Dharmarajan; Z Q Pan; D M Valenzuela; T M DeChiara; T N Stitt; G D Yancopoulos; D J Glass
Journal:  Science       Date:  2001-10-25       Impact factor: 47.728

4.  Foxo transcription factors induce the atrophy-related ubiquitin ligase atrogin-1 and cause skeletal muscle atrophy.

Authors:  Marco Sandri; Claudia Sandri; Alex Gilbert; Carsten Skurk; Elisa Calabria; Anne Picard; Kenneth Walsh; Stefano Schiaffino; Stewart H Lecker; Alfred L Goldberg
Journal:  Cell       Date:  2004-04-30       Impact factor: 41.582

5.  Gene expression profile of aging in human muscle.

Authors:  Stephen Welle; Andrew I Brooks; Joseph M Delehanty; Nancy Needler; Charles A Thornton
Journal:  Physiol Genomics       Date:  2003-07-07       Impact factor: 3.107

Review 6.  Regulation of muscle mass by myostatin.

Authors:  Se-Jin Lee
Journal:  Annu Rev Cell Dev Biol       Date:  2004       Impact factor: 13.827

7.  Mouse spermine oxidase gene splice variants. Nuclear subcellular localization of a novel active isoform.

Authors:  Manuela Cervelli; Alessandro Bellini; Marzia Bianchi; Lucia Marcocci; Stefania Nocera; Fabio Polticelli; Rodolfo Federico; Roberto Amendola; Paolo Mariottini
Journal:  Eur J Biochem       Date:  2004-02

8.  Role of ornithine decarboxylase in cardiac growth and hypertrophy.

Authors:  J Bartolome; J Huguenard; T A Slotkin
Journal:  Science       Date:  1980-11-14       Impact factor: 47.728

9.  Skeletal muscle gene expression profiles in 20-29 year old and 65-71 year old women.

Authors:  Stephen Welle; Andrew I Brooks; Joseph M Delehanty; Nancy Needler; Kirti Bhatt; Bharati Shah; Charles A Thornton
Journal:  Exp Gerontol       Date:  2004-03       Impact factor: 4.032

10.  PGC-1alpha-responsive genes involved in oxidative phosphorylation are coordinately downregulated in human diabetes.

Authors:  Vamsi K Mootha; Cecilia M Lindgren; Karl-Fredrik Eriksson; Aravind Subramanian; Smita Sihag; Joseph Lehar; Pere Puigserver; Emma Carlsson; Martin Ridderstråle; Esa Laurila; Nicholas Houstis; Mark J Daly; Nick Patterson; Jill P Mesirov; Todd R Golub; Pablo Tamayo; Bruce Spiegelman; Eric S Lander; Joel N Hirschhorn; David Altshuler; Leif C Groop
Journal:  Nat Genet       Date:  2003-07       Impact factor: 38.330

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  19 in total

Review 1.  Skeletal Muscle Atrophy: Discovery of Mechanisms and Potential Therapies.

Authors:  Scott M Ebert; Asma Al-Zougbi; Sue C Bodine; Christopher M Adams
Journal:  Physiology (Bethesda)       Date:  2019-07-01

2.  Androgen receptor agonists increase lean mass, improve cardiopulmonary functions and extend survival in preclinical models of Duchenne muscular dystrophy.

Authors:  Suriyan Ponnusamy; Ryan D Sullivan; Dahui You; Nadeem Zafar; Chuan He Yang; Thirumagal Thiyagarajan; Daniel L Johnson; Maron L Barrett; Nikki J Koehler; Mayra Star; Erin J Stephenson; Dave Bridges; Stephania A Cormier; Lawrence M Pfeffer; Ramesh Narayanan
Journal:  Hum Mol Genet       Date:  2017-07-01       Impact factor: 6.150

3.  Relationship of changes in strain rate indices estimated from velocity-encoded MR imaging to loss of muscle force following disuse atrophy.

Authors:  Vadim Malis; Usha Sinha; Robert Csapo; Marco Narici; Shantanu Sinha
Journal:  Magn Reson Med       Date:  2017-05-30       Impact factor: 4.668

4.  Blockade of Metallothioneins 1 and 2 Increases Skeletal Muscle Mass and Strength.

Authors:  Serge Summermatter; Anais Bouzan; Eliane Pierrel; Stefan Melly; Daniela Stauffer; Sabine Gutzwiller; Erin Nolin; Christina Dornelas; Christy Fryer; Juliet Leighton-Davies; David J Glass; Brigitte Fournier
Journal:  Mol Cell Biol       Date:  2017-02-15       Impact factor: 4.272

5.  Cessation of biomechanical stretch model of C2C12 cells models myocyte atrophy and anaplerotic changes in metabolism using non-targeted metabolomics analysis.

Authors:  Amro Ilaiwy; Megan T Quintana; James R Bain; Michael J Muehlbauer; David I Brown; William E Stansfield; Monte S Willis
Journal:  Int J Biochem Cell Biol       Date:  2016-08-08       Impact factor: 5.085

Review 6.  Biology of Activating Transcription Factor 4 (ATF4) and Its Role in Skeletal Muscle Atrophy.

Authors:  Scott M Ebert; Blake B Rasmussen; Andrew R Judge; Sarah M Judge; Lars Larsson; Ronald C Wek; Tracy G Anthony; George R Marcotte; Matthew J Miller; Mark A Yorek; Adrian Vella; Elena Volpi; Jennifer I Stern; Matthew D Strub; Zachary Ryan; John J Talley; Christopher M Adams
Journal:  J Nutr       Date:  2022-04-01       Impact factor: 4.798

7.  Dynamic changes in the mouse skeletal muscle proteome during denervation-induced atrophy.

Authors:  Franziska Lang; Sriram Aravamudhan; Hendrik Nolte; Clara Türk; Soraya Hölper; Stefan Müller; Stefan Günther; Bert Blaauw; Thomas Braun; Marcus Krüger
Journal:  Dis Model Mech       Date:  2017-05-25       Impact factor: 5.758

Review 8.  Use of mRNA expression signatures to discover small molecule inhibitors of skeletal muscle atrophy.

Authors:  Christopher M Adams; Scott M Ebert; Michael C Dyle
Journal:  Curr Opin Clin Nutr Metab Care       Date:  2015-05       Impact factor: 4.294

Review 9.  Control of skeletal muscle atrophy in response to disuse: clinical/preclinical contentions and fallacies of evidence.

Authors:  Philip J Atherton; Paul L Greenhaff; Stuart M Phillips; Sue C Bodine; Christopher M Adams; Charles H Lang
Journal:  Am J Physiol Endocrinol Metab       Date:  2016-07-05       Impact factor: 4.310

10.  Spinal motor neuron loss occurs through a p53-and-p21-independent mechanism in the Smn2B/- mouse model of spinal muscular atrophy.

Authors:  Emily J Reedich; Martin Kalski; Nicholas Armijo; Gregory A Cox; Christine J DiDonato
Journal:  Exp Neurol       Date:  2020-12-28       Impact factor: 5.330

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