Active ERK2 is sufficient to mediate growth arrest and differentiation signaling
Pui-Kei Wu1, Seung-Keun Hong, Seung-Hee Yoon
1Department of Biochemistry, Medical College of Wisconsin, Milwaukee, WI, USA.
Abstract:
Although extracellular signal-regulated kinases (ERK1/2) have been shown to be required in Raf/MEK/ERK pathway signaling, its sufficiency for mediating the pathway signaling has not been firmly established. In an effort to address this, we evaluated previously described ERK2 mutants that exhibit enhanced autophosphorylation of TEY sites in the activation loop in terms of their ability to induce growth arrest and differentiation in LNCaP and PC12 cells. We demonstrate that expression of ERK2-L73P/S151D, containing Lys73Pro and Ser151Asp substitutions that synergistically promote ERK autophosphorylation, is sufficient to induce growth arrest and differentiation, whereas expression of ERK2-I84A and ERK2-R65S/D319N is not as effective. When compared to the constitutively active MEK1-ΔN3/S218E/S222D, expression of ERK2-L73P/S151D only mildly increased ERK kinase activity in cells, as assessed using the ERK substrates p90(RSK) and ETS domain-containing protein (ELK1). However, ERK2-L73P/S151D expression effectively induced down-regulation of androgen receptors, Retinoblastoma (Rb) protein and E2F1 transcription factor, and up-regulation of p16(INK4A) and p21(CIP1), accompanied by cell-cycle arrest and morphological differentiation in LNCaP cells and neurite-like processes in PC12 cells. These effects and the TEY site phosphorylation of ERK2-L73P/S151D were abrogated upon introduction of the active site-disabling Lys52Arg mutation, suggesting that its autoactivation drives this signaling. Moreover, introduction of mutations Asp316/319Ala or Asp319Asn, which impair the common docking site/D-domain-based physical interaction of ERK, did not significantly affect ERK2-L73P/S151D signaling, suggesting that ERK2 mediates growth arrest and differentiation independently of the conventional ERK-target interaction mechanism. Thus, our study presents convincing evidence of ERK sufficiency for Raf/MEK/ERK signaling.
Insights
This study demonstrates that specific mutations in extracellular signal-regulated kinase 2 (ERK2) are sufficient to trigger cell growth arrest and differentiation, confirming ERK
Area of Science:
- Molecular Biology
- Cell Signaling
- Cancer Research
Background:
- The Raf/MEK/ERK pathway is crucial for cell signaling, but the sufficiency of extracellular signal-regulated kinases (ERK1/2) has been debated.
- Previous studies established ERK1/2's requirement but not its independent sufficiency in this pathway.
Purpose of the Study:
- To investigate the sufficiency of ERK2 in mediating Raf/MEK/ERK pathway signaling.
- To evaluate the ability of specific ERK2 mutants to induce cell growth arrest and differentiation.
Main Methods:
- Utilized engineered ERK2 mutants (ERK2-L73P/S151D, ERK2-I84A, ERK2-R65S/D319N) in LNCaP and PC12 cell lines.
- Assessed ERK kinase activity using substrates p90(RSK) and ELK1.
- Analyzed downstream effects including protein expression (androgen receptors, Rb, E2F1, p16INK4A, p21CIP1) and cell-cycle progression.
Main Results:
- Expression of ERK2-L73P/S151D induced significant growth arrest and differentiation, unlike other mutants.
- ERK2-L73P/S151D expression led to cell-cycle arrest and morphological changes, including neurite-like processes in PC12 cells.
- Signaling was dependent on ERK2 autoactivation and independent of conventional docking site interactions.
Conclusions:
- Specific ERK2 mutants, particularly ERK2-L73P/S151D, are sufficient to drive Raf/MEK/ERK pathway signaling.
- ERK2 mediates growth arrest and differentiation through a mechanism potentially independent of canonical ERK-target interactions.
- This provides strong evidence for ERK sufficiency in this critical signaling pathway.
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