Literature DB >> 15672378

FGF6 regulates muscle differentiation through a calcineurin-dependent pathway in regenerating soleus of adult mice.

Anne-Sophie Armand1, Claude Pariset, Iman Laziz, Thierry Launay, Frédéric Fiore, Bruno Della Gaspera, Daniel Birnbaum, Frédéric Charbonnier, Christophe Chanoine.   

Abstract

Important functions in myogenesis have been proposed for FGF6, a member of the fibroblast growth factor family accumulating almost exclusively in the myogenic lineage, but its precise role in vivo remains mostly unclear. Here, using FGF6 (-/-) mice and rescue experiments by injection of recombinant FGF6, we dissected the functional role of FGF6 during in vivo myogenesis. We found that the appearance of myotubes was accelerated during regeneration of the soleus of FGF6 (-/-) mice versus wild type mice. This accelerated differentiation was correlated with increased expression of differentiation markers such as CdkIs and calcineurin, as well as structural markers such as MHCI and slow TnI. We showed that an elevated transcript level for calcineurin Aalpha subunit correlated with a positive regulation of calcineurin A activity in regenerating soleus of the FGF6 (-/-) mice. Cyclin D1 and calcineurin were up- and down-regulated, respectively in a dose-dependent manner upon injection of rhFGF6 in regenerating soleus of the mutant mice. We showed an increase of the number of slow oxidative (type I) myofibers, whereas fast oxidative (type IIa) myofibers were decreased in number in regenerating soleus of FGF6 (-/-) mice versus that of wild type mice. In adult soleus, the number of type I myofibers was also higher in FGF6 (-/-) mice than in wild type mice. Taken together these results evidenced a specific phenotype for soleus of the FGF6 (-/-) mice and led us to propose a model accounting for a specific dose-dependent effect of FGF6 in muscle regeneration. At high doses, FGF6 stimulates the proliferation of the myogenic stem cells, whereas at lower doses it regulates both muscle differentiation and muscle phenotype via a calcineurin-signaling pathway. (c) 2004 Wiley-Liss, Inc.

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Year:  2005        PMID: 15672378     DOI: 10.1002/jcp.20302

Source DB:  PubMed          Journal:  J Cell Physiol        ISSN: 0021-9541            Impact factor:   6.384


  12 in total

1.  Eccentric stimulation reveals an involvement of FGF6 in muscle resistance to mechanical stress.

Authors:  Iman Laziz; Arnaud Ferry; Anne-Sophie Armand; Claude Louis Gallien; Bruno Della Gaspera; F Charbonnier; C Chanoine
Journal:  Eur J Appl Physiol       Date:  2010-12-25       Impact factor: 3.078

2.  Characterization and expression analysis of FGF6 (fibroblast growth factor 6) genes of grass carp (Ctenopharyngodon idellus) reveal their regulation on muscle growth.

Authors:  Yingyan Xu; Qingsong Tan; Pengcheng Hu; Junpeng Yao
Journal:  Fish Physiol Biochem       Date:  2019-05-28       Impact factor: 2.794

3.  Common genetic variants associate with serum phosphorus concentration.

Authors:  Bryan Kestenbaum; Nicole L Glazer; Anna Köttgen; Janine F Felix; Shih-Jen Hwang; Yongmei Liu; Kurt Lohman; Stephen B Kritchevsky; Dorothy B Hausman; Ann-Kristin Petersen; Christian Gieger; Janina S Ried; Thomas Meitinger; Tim M Strom; H Erich Wichmann; Harry Campbell; Caroline Hayward; Igor Rudan; Ian H de Boer; Bruce M Psaty; Kenneth M Rice; Yii-Der Ida Chen; Man Li; Dan E Arking; Eric Boerwinkle; Josef Coresh; Qiong Yang; Daniel Levy; Frank J A van Rooij; Abbas Dehghan; Fernando Rivadeneira; André G Uitterlinden; Albert Hofman; Cornelia M van Duijn; Michael G Shlipak; W H Linda Kao; Jacqueline C M Witteman; David S Siscovick; Caroline S Fox
Journal:  J Am Soc Nephrol       Date:  2010-06-17       Impact factor: 10.121

4.  G-CSF influences mouse skeletal muscle development and regeneration by stimulating myoblast proliferation.

Authors:  Mie Hara; Shinsuke Yuasa; Kenichiro Shimoji; Takeshi Onizuka; Nozomi Hayashiji; Yohei Ohno; Takahide Arai; Fumiyuki Hattori; Ruri Kaneda; Kensuke Kimura; Shinji Makino; Motoaki Sano; Keiichi Fukuda
Journal:  J Exp Med       Date:  2011-03-21       Impact factor: 14.307

Review 5.  The Fibroblast Growth Factor signaling pathway.

Authors:  David M Ornitz; Nobuyuki Itoh
Journal:  Wiley Interdiscip Rev Dev Biol       Date:  2015-03-13       Impact factor: 5.814

6.  Skeletal muscle-targeted delivery of Fgf6 protects mice from diet-induced obesity and insulin resistance.

Authors:  Bo Xu; Caizhi Liu; Hong Zhang; Rong Zhang; Mengyang Tang; Yan Huang; Li Jin; Lingyan Xu; Cheng Hu; Weiping Jia
Journal:  JCI Insight       Date:  2021-10-08

Review 7.  FGF/FGFR signaling in health and disease.

Authors:  Yangli Xie; Nan Su; Jing Yang; Qiaoyan Tan; Shuo Huang; Min Jin; Zhenhong Ni; Bin Zhang; Dali Zhang; Fengtao Luo; Hangang Chen; Xianding Sun; Jian Q Feng; Huabing Qi; Lin Chen
Journal:  Signal Transduct Target Ther       Date:  2020-09-02

8.  FGF gene family characterization provides insights into its adaptive evolution in Carnivora.

Authors:  Qinguo Wei; Yuehuan Dong; Guolei Sun; Xibao Wang; Xiaoyang Wu; Xiaodong Gao; Weilai Sha; Guang Yang; Honghai Zhang
Journal:  Ecol Evol       Date:  2021-06-29       Impact factor: 2.912

9.  A role for Insulin-like growth factor 2 in specification of the fast skeletal muscle fibre.

Authors:  Deborah Merrick; Tao Ting; Lukas Kurt Josef Stadler; Janet Smith
Journal:  BMC Dev Biol       Date:  2007-06-08       Impact factor: 1.978

10.  Mechanisms of action of hESC-secreted proteins that enhance human and mouse myogenesis.

Authors:  Hanadie Yousef; Michael J Conboy; Hikaru Mamiya; Matthew Zeiderman; Christina Schlesinger; David V Schaffer; Irina M Conboy
Journal:  Aging (Albany NY)       Date:  2014-08       Impact factor: 5.682

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