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Temporal regulation of expression of immediate early and second phase transcripts by endothelin-1 in cardiomyocytes
Timothy E Cullingford1, Thomais Markou, Stephen J Fuller
1National Heart and Lung Institute Division, Faculty of Medicine, Imperial College London, Armstrong Road, London SW7 2AZ, UK. t.cullingford@imperial.ac.uk
Background:
Endothelin-1 stimulates Gq protein-coupled receptors to promote proliferation in dividing cells or hypertrophy in terminally differentiated cardiomyocytes. In cardiomyocytes, endothelin-1 rapidly (within minutes) stimulates protein kinase signaling, including extracellular-signal regulated kinases 1/2 (ERK1/2; though not ERK5), with phenotypic/physiological changes developing from approximately 12 h. Hypertrophy is associated with changes in mRNA/protein expression, presumably consequent to protein kinase signaling, but the connections between early, transient signaling events and developed hypertrophy are unknown.
Results:
Using microarrays, we defined the early transcriptional responses of neonatal rat cardiomyocytes to endothelin-1 over 4 h, differentiating between immediate early gene (IEG) and second phase RNAs with cycloheximide. IEGs exhibited differential temporal and transient regulation, with expression of second phase RNAs within 1 h. Of transcripts upregulated at 30 minutes encoding established proteins, 28 were inhibited >50% by U0126 (which inhibits ERK1/2/5 signaling), with 9 inhibited 25-50%. Expression of only four transcripts was not inhibited. At 1 h, most RNAs (approximately 67%) were equally changed in total and polysomal RNA with approximately 17% of transcripts increased to a greater extent in polysomes. Thus, changes in expression of most protein-coding RNAs should be reflected in protein synthesis. However, approximately 16% of transcripts were essentially excluded from the polysomes, including some protein-coding mRNAs, presumably inefficiently translated.
Conclusion:
The phasic, temporal regulation of early transcriptional responses induced by endothelin-1 in cardiomyocytes indicates that, even in terminally differentiated cells, signals are propagated beyond the primary signaling pathways through transcriptional networks leading to phenotypic changes (that is, hypertrophy). Furthermore, ERK1/2 signaling plays a major role in this response.
Insights
Endothelin-1 triggers rapid signaling in cardiomyocytes, leading to hypertrophy through transcriptional networks. Extracellular-signal regulated kinases 1/2 (ERK1/2) signaling is crucial for this cardiac response.
Area of Science:
- Cardiovascular Biology
- Molecular Cell Biology
- Signaling Pathways
Background:
- Endothelin-1 (ET-1) activates Gq protein-coupled receptors, inducing proliferation or hypertrophy in cardiomyocytes.
- ET-1 rapidly stimulates protein kinase signaling, including ERK1/2, within minutes, with phenotypic changes appearing around 12 hours.
- The link between early signaling events and subsequent hypertrophy in cardiomyocytes remains unclear.
Purpose of the Study:
- To define the early transcriptional responses of neonatal rat cardiomyocytes to ET-1.
- To differentiate between immediate early gene (IEG) and second-phase RNA expression.
- To investigate the role of ERK1/2 signaling in ET-1-induced transcriptional changes.
Main Methods:
- Microarray analysis of neonatal rat cardiomyocytes treated with ET-1 for 4 hours.
- Use of cycloheximide to distinguish IEGs from second-phase RNAs.
- Pharmacological inhibition of ERK1/2/5 signaling using U0126.
Main Results:
- ET-1 induced temporally regulated and transient IEGs and second-phase RNAs within 1 hour.
- U0126 significantly inhibited the upregulation of many transcripts at 30 minutes.
- Most protein-coding RNAs showed proportional changes in total and polysomal RNA, suggesting translation, but some were excluded from polysomes.
Conclusions:
- Early transcriptional responses to ET-1 in cardiomyocytes exhibit phasic, temporal regulation.
- Signaling propagates through transcriptional networks to induce phenotypic changes like hypertrophy, even in terminally differentiated cells.
- ERK1/2 signaling plays a significant role in mediating these ET-1-induced transcriptional responses.
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