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Updated: Dec 21, 2025

Identification of MyoD Interactome Using Tandem Affinity Purification Coupled to Mass Spectrometry
Published on: May 17, 2016
Basal Signalling Through Death Receptor 5 and Caspase 3 Activates p38 Kinase to Regulate Serum Response Factor
Jason A Ross1, Brianna Barrett1, Victoria Bensimon1
1Center for Gene Regulation in Health and Disease, Department of Biological, Geological, and Environmental Sciences, Cleveland State University, Cleveland, OH, US.
Abstract:
We have previously reported that stable expression of a dominant negative Death Receptor 5 (dnDR5) in skeletal myoblasts results in decreased basal caspase activity and decreased mRNA and protein expression of the muscle regulatory transcription factor MyoD in growth medium (GM), resulting in inhibited differentation when myoblasts are then cultured in differentiation media (DM). Further, this decreased level of MyoD mRNA was not a consequence of altered message stability, but rather correlated with decreased acetylation of histones in the distal regulatory region (DRR) of the MyoD extended promoter known to control MyoD transcription. As serum response factor (SRF) is the transcription factor known to be responsible for basal MyoD expression in GM, we compared the level of SRF binding to the non-canonical serum response element (SRE) within the DRR in parental and dnDR5 expressing myoblasts. Herein, we report that stable expression of dnDR5 resulted in decreased levels of serum response factor (SRF) binding to the CArG box in the SRE of the DRR. Total SRF expression levels were not affected, but phosphorylation indicative of SRF activation was impaired. This decreased SRF phosphorylation correlated with decreased phosphorylation-induced activation of p38 kinase. Moreover, the aforementioned signaling events affected by expression of dnDR5 could be appropriately recapitulated using either a pharmacological inhibitor of caspase 3 or p38 kinase. Thus, our results have established a signaling pathway from DR5 through caspases to p38 kinase activation, to SRF activation and the basal expression of MyoD.
Insights
Dominant negative Death Receptor 5 (dnDR5) impairs skeletal myoblast differentiation by inhibiting MyoD expression. This occurs via a pathway involving caspase 3 and p38 kinase, leading to reduced serum response factor (SRF) activation.
Area of Science:
- Cell Biology
- Molecular Biology
- Muscle Development
Background:
- Stable expression of dominant negative Death Receptor 5 (dnDR5) in skeletal myoblasts reduces basal caspase activity and MyoD expression.
- This inhibition of MyoD affects myoblast differentiation and is linked to histone acetylation in the MyoD regulatory region.
Purpose of the Study:
- To investigate the signaling pathway by which dnDR5 expression impacts MyoD transcription.
- To determine the role of serum response factor (SRF) in mediating the effects of dnDR5 on MyoD expression.
Main Methods:
- Stable expression of dnDR5 in skeletal myoblasts.
- Analysis of MyoD mRNA and protein levels.
- Assessment of histone acetylation in the MyoD distal regulatory region (DRR).
- Measurement of SRF binding to the serum response element (SRE) in the DRR.
- Evaluation of SRF and p38 kinase phosphorylation.
- Pharmacological inhibition of caspase 3 and p38 kinase.
Main Results:
- dnDR5 expression decreased SRF binding to the SRE within the DRR.
- SRF expression levels were unchanged, but phosphorylation (activation) was impaired.
- Decreased SRF phosphorylation correlated with reduced p38 kinase activation.
- Inhibition of caspase 3 or p38 kinase mimicked the effects of dnDR5 on SRF and MyoD.
Conclusions:
- A signaling pathway exists from Death Receptor 5 (DR5) through caspases and p38 kinase to SRF activation.
- This pathway regulates basal MyoD expression and is inhibited by dnDR5.
- dnDR5 impairs skeletal myoblast differentiation by disrupting this signaling cascade.
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