Literature DB >> 11075953

Differential expression of FGF receptors and of myogenic regulatory factors in primary cultures of satellite cells originating from fast (EDL) and slow (Soleus) twitch rat muscles.

I Martelly1, L Soulet, S Bonnavaud, J Cebrian, J Gautron, D Barritault.   

Abstract

In the rat, the fast and slow twitch muscles respectively Extensor digitorum longus (EDL) and Soleus present differential characteristics during regeneration. This suggests that their satellite cells responsible for muscle growth and repair represent distinct cellular populations. We have previously shown that satellite cells dissociated from Soleus and grown in vitro proliferate more readily than those isolated from EDL muscle. Fibroblast growth factors (FGFs) are known as regulators of myoblast proliferation and several studies have revealed a relationship between the response of myoblasts to FGF and the expression of myogenic regulatory factors (MRF) of the MyoD family by myoblasts. Therefore, we presently examined the possibility that the satellite cells isolated from EDL and Soleus muscles differ in the expression of FGF receptors (FGF-R) and of MRF expression. FGF-R1 and -R4 were strongly expressed in proliferating cultures whereas FGF-R2 and R3 were not detected in these cultures. In differentiating cultures, only -R1 was present in EDL satellite cells while FGF-R4 was also still expressed in Soleus cells. Interestingly, the unconventional receptor for FGF called cystein rich FGF receptor (CFR), of yet unknown function, was mainly detected in EDL satellite cell cultures. Soleus and EDL satellite cell cultures also differed in the expression MRFs. These results are consistent with the notion that satellite cells from fast and slow twitch muscles belong to different types of myogenic cells and suggest that satellite cells might play distinct roles in the formation and diversification of fast and slow fibres.

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Year:  2000        PMID: 11075953

Source DB:  PubMed          Journal:  Cell Mol Biol (Noisy-le-grand)        ISSN: 0145-5680            Impact factor:   1.770


  8 in total

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Authors:  M Zimowska; A Duchesnay; P Dragun; A Oberbek; J Moraczewski; I Martelly
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Authors:  Louise H Jørgensen; Stine J Petersson; Jeeva Sellathurai; Ditte C Andersen; Susanne Thayssen; Dorte J Sant; Charlotte H Jensen; Henrik D Schrøder
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8.  A feedback circuit between miR-133 and the ERK1/2 pathway involving an exquisite mechanism for regulating myoblast proliferation and differentiation.

Authors:  Y Feng; L-L Niu; W Wei; W-Y Zhang; X-Y Li; J-H Cao; S-H Zhao
Journal:  Cell Death Dis       Date:  2013-11-28       Impact factor: 8.469

  8 in total

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