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FoxO1 induces apoptosis in skeletal myotubes in a DNA-binding-dependent manner
Thomas J McLoughlin1, Sierra M Smith, Alissa D DeLong
1Dept. of Kinesiology MS #119, Univ. of Toledo, 2801 W. Bancroft St., Toledo, OH 43606, USA. thomas.mcloughlin@utoledo.edu
Abstract:
Recent studies indicate that FoxO transcription factors play an important role in promoting muscle atrophy. To study mechanisms mediating effects of FoxO proteins on muscle wasting, FoxO1-estrogen receptor fusion proteins that are activated by treatment with 4-hydroxytamoxifen (4-OH-T) were stably transfected in C(2)C(12) skeletal myoblasts using the pBABE retroviral system and grown into multinucleated skeletal myotubes. Activation of FoxO1 resulted in significant muscle atrophy, which was accompanied by DNA fragmentation, evidenced by terminal deoxynucleotidyl transferase dUTP-mediated nick end labeling. Cells expressing a DNA-binding-deficient form of FoxO1 also exhibited significant atrophy on FoxO1 activation but no hallmark signs of apoptosis. FoxO1 activation resulted in a significant increase in muscle atrophy F-box (MAFbx)/atrogin-1, muscle-specific RING finger protein 1 (MuRF-1), and Bcl-2-interacting mediator of cell death (Bim) gene expression, with no significant increase in Bcl-2/adenovirus E1B 19-kDa-interacting protein 3 (BNip3) gene expression. Although the ability of FoxO1 to induce MuRF-1 gene expression appeared to be independent of DNA binding, expression of MAFbx/atrogin-1 and Bim was significantly blunted in cells expressing DNA-binding-deficient FoxO1. BNip3 gene expression was significantly elevated in DNA-binding-deficient mutant cells. These findings indicate that FoxO1 promotes skeletal muscle atrophy through induction of proteolytic and apoptotic machinery via DNA-binding-dependent and -independent mechanisms.
Insights
Forkhead box O (FoxO) transcription factors drive muscle atrophy. FoxO1 activation in skeletal myoblasts induces muscle wasting and apoptosis via both DNA-binding-dependent and -independent pathways.
Area of Science:
- Molecular Biology
- Cell Biology
- Muscle Physiology
Background:
- FoxO transcription factors are implicated in muscle atrophy.
- Understanding the precise mechanisms of FoxO-mediated muscle wasting is crucial.
Purpose of the Study:
- To investigate the molecular mechanisms by which FoxO proteins induce skeletal muscle atrophy.
- To differentiate the roles of DNA-binding-dependent and -independent pathways in FoxO1-induced muscle wasting.
Main Methods:
- Stable transfection of C(2)C(12) skeletal myoblasts with FoxO1-estrogen receptor fusion proteins using the pBABE retroviral system.
- Activation of FoxO1 using 4-hydroxytamoxifen (4-OH-T).
- Assessment of muscle atrophy, DNA fragmentation (TUNEL assay), and gene expression (MAFbx/atrogin-1, MuRF-1, Bim, BNip3).
Main Results:
- FoxO1 activation significantly induced muscle atrophy and DNA fragmentation.
- Activation of DNA-binding-deficient FoxO1 also caused atrophy but without apoptosis hallmarks.
- FoxO1 upregulated MAFbx/atrogin-1, MuRF-1, and Bim gene expression.
- MuRF-1 induction was DNA-binding-independent, while MAFbx/atrogin-1 and Bim induction were DNA-binding-dependent.
- BNip3 gene expression was elevated in DNA-binding-deficient mutant cells.
Conclusions:
- FoxO1 promotes skeletal muscle atrophy by inducing proteolytic and apoptotic pathways.
- Both DNA-binding-dependent and -independent mechanisms contribute to FoxO1-mediated muscle wasting.
- Specific genes like MAFbx/atrogin-1 and Bim are regulated by DNA-binding-dependent FoxO1 activity.
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