Literature DB >> 15975431

Proteolytic processing of myostatin is auto-regulated during myogenesis.

Craig McFarlane1, Brett Langley, Mark Thomas, Alex Hennebry, Erin Plummer, Gina Nicholas, Chris McMahon, Mridula Sharma, Ravi Kambadur.   

Abstract

Myostatin, a potent negative regulator of myogenesis, is proteolytically processed by furin proteases into active mature myostatin before secretion from myoblasts. Here, we show that mature myostatin auto-regulates its processing during myogenesis. In a cell culture model of myogenesis, Northern blot analysis revealed no appreciable change in myostatin mRNA levels between proliferating myoblasts and differentiated myotubes. However, Western blot analysis confirmed a relative reduction in myostatin processing and secretion by differentiated myotubes as compared to proliferating myoblasts. Furthermore, in vivo results demonstrate a lower level of myostatin processing during fetal muscle development when compared to postnatal adult muscle. Consequently, high levels of circulatory mature myostatin were detected in postnatal serum, while fetal circulatory myostatin levels were undetectable. Since Furin proteases are important for proteolytically processing members of the TGF-beta superfamily, we therefore investigated the ability of myostatin to control the transcription of furin and auto-regulate the extent of its processing. Transfection experiments indicate that mature myostatin indeed regulates furin protease promoter activity. Based on these results, we propose a mechanism whereby myostatin negatively regulates its proteolytic processing during fetal development, ultimately facilitating the differentiation of myoblasts by controlling both furin protease gene expression and subsequent active concentrations of mature myostatin peptide.

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Year:  2005        PMID: 15975431     DOI: 10.1016/j.ydbio.2005.03.039

Source DB:  PubMed          Journal:  Dev Biol        ISSN: 0012-1606            Impact factor:   3.582


  20 in total

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3.  Does myostatin induce insulin resistance?

Authors:  Buel D Rodgers
Journal:  J Biol Chem       Date:  2014-07-25       Impact factor: 5.157

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Authors:  Madison L Gonzalez; Nicolas I Busse; Christy M Waits; Sally E Johnson
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7.  Gene expression profiling in skeletal muscle of Holstein-Friesian bulls with single-nucleotide polymorphism in the myostatin gene 5'-flanking region.

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8.  The decrease in mature myostatin protein in male skeletal muscle is developmentally regulated by growth hormone.

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Review 9.  Biochemistry and Biology of GDF11 and Myostatin: Similarities, Differences, and Questions for Future Investigation.

Authors:  Ryan G Walker; Tommaso Poggioli; Lida Katsimpardi; Sean M Buchanan; Juhyun Oh; Sam Wattrus; Bettina Heidecker; Yick W Fong; Lee L Rubin; Peter Ganz; Thomas B Thompson; Amy J Wagers; Richard T Lee
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10.  An alternate protocol for establishment of primary caprine fetal myoblast cell culture: an in vitro model for muscle growth study.

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