Changed genome heterochromatinization upon prolonged activation of the Raf/ERK signaling pathway
Catherine Martin1, Songbi Chen, Daniela Heilos
1Faculty of Life Sciences, Manchester Interdisciplinary Biocentre, The University of Manchester, Manchester, United Kingdom.
Abstract:
The Raf/ERK (Extracellular Signal Regulated Kinase) signal transduction pathway controls numerous cellular processes, including growth, differentiation, cellular transformation and senescence. ERK activation is thought to involve complex spatial and temporal regulation, to achieve a high degree of specificity, though precisely how this is achieved remains to be confirmed. We report here that prolonged activation of a conditional form of c-Raf-1 (BXB-ER) leads to profound changes in the level and distribution of a heterochromatic histone mark. In mouse fibroblasts, the heterochromatic trimethylation of lysine 9 in histone H3 (H3K9Me3) is normally confined to pericentromeric regions. However, following ERK activation a genome-wide redistribution of H3K9Me3 correlates with loss of the histone modification from chromocentres and the appearance of numerous punctuate sites throughout the interphase nucleus. These epigenetic changes during interphase correlate with altered chromosome structure during mitosis, where robust H3K9Me3 signals appear within telomeric heterochromatin. This pattern of heterochromatinization is distinct from previously described oncogene induced senescence associated heterochromatin foci (SAHF), which are excluded from telomeres. The H3K9Me3 histone mark is known to bind the major heterochromatin protein HP1 and we show that the alterations in the distribution of this histone epistate correlate with redistribution of HP1β throughout the nucleus. Interestingly while ERK activation is fully reversible, the observed chromatin changes induced by epigenetic modifications are not reversible once established. We describe for the first time a link from prolonged ERK activation to stable changes in genome organization through redistribution of heterochromatic domains involving the telomeres. These epigenetic changes provide a possible mechanism through which prolonged activation of Raf/ERK can lead to growth arrest or the induction of differentiation, senescence and cancer.
Insights
Prolonged Extracellular Signal Regulated Kinase (ERK) activation causes lasting epigenetic changes, altering genome organization and heterochromatin distribution, which may drive cellular processes like senescence and cancer.
Area of Science:
- Cell Biology
- Epigenetics
- Molecular Biology
Background:
- The Extracellular Signal Regulated Kinase (ERK) pathway regulates critical cellular functions like growth and differentiation.
- Specific spatial and temporal regulation of ERK activation is crucial for cellular specificity but remains incompletely understood.
Purpose of the Study:
- To investigate the impact of prolonged ERK pathway activation on epigenetic modifications and genome organization.
- To elucidate the relationship between ERK signaling and heterochromatin dynamics.
Main Methods:
- Utilized a conditional form of c-Raf-1 (BXB-ER) to induce prolonged ERK activation in mouse fibroblasts.
- Analyzed changes in histone H3 lysine 9 trimethylation (H3K9Me3) distribution and Heterochromatin Protein 1 beta (HP1β) localization.
- Examined alterations in chromatin structure during interphase and mitosis.
Main Results:
- Prolonged ERK activation led to a genome-wide redistribution of H3K9Me3, with loss from pericentromeric regions and appearance of punctate sites.
- Epigenetic changes included H3K9Me3 accumulation in telomeric heterochromatin during mitosis, distinct from senescence-associated heterochromatin foci.
- Alterations in H3K9Me3 distribution correlated with HP1β redistribution and were found to be irreversible despite reversible ERK activation.
Conclusions:
- Established a novel link between sustained ERK activation and stable, irreversible changes in genome organization via heterochromatin redistribution.
- These epigenetic modifications, particularly involving telomeres, offer a potential mechanism for ERK-induced growth arrest, differentiation, senescence, and cancer development.
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