» Articles » PMID: 16618210

Osteopontin Expression in Coculture of Differentiating Rat Fetal Skeletal Fibroblasts and Myoblasts

Overview
Publisher Springer
Specialties Biology
Cell Biology
Date 2006 Apr 19
PMID 16618210
Citations 12
Authors
Affiliations
Soon will be listed here.
Abstract

Skeletal fibroblasts in vitro can acquire myofibroblast phenotypes by the development of biochemical and morphological features, mainly the expression of alpha-smooth-muscle actin (alpha-SMA). Myogenic differentiation is a central event in skeletal muscle development, and has commonly been studied in vitro in the context of skeletal muscle development and regeneration. Controlling this process is a complex set of interactions between myoblasts and the extracellular matrix. Osteopontin (OPN) is an acidic, phosphorylated matrix protein that contains an Arg-Gly-Asp (RGD) cell attachment sequence and has been identified as an adhesive and migratory substrate for several cell types. The aim of this study was to investigate osteopontin expression during the differentiation of skeletal fibroblasts into myofibroblasts and during myogenesis in a coculture model. Fibroblasts and myoblasts were obtained from skeletal muscle of 18-d-old Wistar strain rat fetuses by enzymatic dissociation. At 1 and 9 d, cocultures were immunolabeled, and the cells were also separately subjected to Western blotting to analyze OPN expression. Our data using confocal microscopy showed that myoblasts displayed a strong staining for OPN and that this labeling was maintained after myotube differentiation. Conversely, during fibroblast differentiation into myofibroblasts, we observed a significant increase in OPN expression. The results obtained by immunolabeling were confirmed by Western blotting. We suggest that OPN is important mainly during early stages of myogenesis, facilitating myoblast fusion and differentiation, and that the increased expression of OPN in myofibroblasts might be related to its effects as a key cytokine regulating tissue repair and inflammation.

Citing Articles

Osteopontin-derived synthetic peptide SVVYGLR upregulates functional regeneration of oral and maxillofacial soft-tissue injury.

Tanaka S, Hamada Y, Yokoyama Y, Yamamoto H, Kogo M Jpn Dent Sci Rev. 2021; 57:174-181.

PMID: 34630775 PMC: 8487951. DOI: 10.1016/j.jdsr.2021.09.002.


Development of outcome measures according to dystrophic phenotypes in canine X-linked muscular dystrophy in Japan.

Kuraoka M, Aoki Y, Takeda S Exp Anim. 2021; 70(4):419-430.

PMID: 34135266 PMC: 8614006. DOI: 10.1538/expanim.21-0072.


Aging of the immune system and impaired muscle regeneration: A failure of immunomodulation of adult myogenesis.

Tidball J, Flores I, Welc S, Wehling-Henricks M, Ochi E Exp Gerontol. 2020; 145:111200.

PMID: 33359378 PMC: 7855614. DOI: 10.1016/j.exger.2020.111200.


Amitriptyline aggravates the fibrosis process in a rat model of infravesical obstruction.

de Almeida Prado P, Soares M, Lima F, Schor N, Teixeira V Int J Exp Pathol. 2012; 93(3):218-24.

PMID: 22563623 PMC: 3385920. DOI: 10.1111/j.1365-2613.2012.00813.x.


TGFBR2 but not SPP1 genotype modulates osteopontin expression in Duchenne muscular dystrophy muscle.

Piva L, Gavassini B, Bello L, Fanin M, Soraru G, Barp A J Pathol. 2012; 228(2):251-9.

PMID: 22431140 PMC: 4121062. DOI: 10.1002/path.4026.


References
1.
Lafuste P, Sonnet C, Chazaud B, Dreyfus P, Gherardi R, Wewer U . ADAM12 and alpha9beta1 integrin are instrumental in human myogenic cell differentiation. Mol Biol Cell. 2004; 16(2):861-70. PMC: 545917. DOI: 10.1091/mbc.e04-03-0226. View

2.
Pereira R, de Carvalho T, Barbosa H, Porto L, de Carvalho L . Enhancement of lipid bodies during differentiation of skeletal myofibroblasts of rat's fetus in vitro. In Vitro Cell Dev Biol Anim. 2004; 40(1-2):1-3. DOI: 10.1290/1543-706X(2004)40<1:EOLBDD>2.0.CO;2. View

3.
Graf K, Do Y, Ashizawa N, Meehan W, Giachelli C, Marboe C . Myocardial osteopontin expression is associated with left ventricular hypertrophy. Circulation. 1997; 96(9):3063-71. DOI: 10.1161/01.cir.96.9.3063. View

4.
Melo F, Carey D, Brandan E . Extracellular matrix is required for skeletal muscle differentiation but not myogenin expression. J Cell Biochem. 1996; 62(2):227-39. DOI: 10.1002/(SICI)1097-4644(199608)62:2%3C227::AID-JCB11%3E3.0.CO;2-I. View

5.
Singh K, Sirokman G, Communal C, Robinson K, Conrad C, Brooks W . Myocardial osteopontin expression coincides with the development of heart failure. Hypertension. 1999; 33(2):663-70. DOI: 10.1161/01.hyp.33.2.663. View