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Updated: Jan 30, 2026

Subcellular Fractionation for ERK Activation Upon Mitochondrial-derived Peptide Treatment
Published on: September 25, 2017
Calcium activation of ERK mediated by calmodulin kinase I
John M Schmitt1, Gary A Wayman, Naohito Nozaki
1Vollum Institute, Oregon Health and Sciences University, Portland 97239, USA.
Abstract:
Elevated intracellular Ca(2+) triggers numerous signaling pathways including protein kinases such as the calmodulin-dependent kinases (CaMKs) and the extracellular signal-regulated kinases (ERKs). In the present study we examined Ca(2+)-dependent "cross-talk" between these two protein kinase families. Using a combination of pharmacological inhibitors and dominant-negative kinases (dnKinase), we identified a requirement for CaMKK acting through CaMKI in the stimulation of ERKs upon depolarization of the neuroblastoma cell line, NG108. Depolarization stimulated prolonged ERK and JNK activation that was blocked by the CaMKK inhibitor, STO-609; this inhibition of ERK activation by STO-609 was rescued by expression of a STO-609-insensitive mutant of CaMKK. However, activation of ERK by epidermal growth factor or carbachol were not suppressed by inhibition of CaMKK, indicating specificity for this "cross-talk." To identify the downstream target of CaMKK that mediated ERK activation upon depolarization, dnKinases were expressed. The dnCaMKI completely suppressed ERK2 activation whereas dnAKT/PKB or nuclear-targeted dnCaMKIV, other substrates for CaMKK, were not inhibitory. ERK activation upon depolarization or transfection with constitutively active (ca) CaMKI was blocked by dnRas. Additionally, depolarization of NG108 cells promoted neurite outgrowth, and this effect was blocked by inhibition of either CaMKK (STO-609) or ERK (UO126). Co-transfection with caCaMKK plus caCaMKI also stimulated neurite outgrowth that was blocked by inhibition of ERK (UO126). These data are the first to suggest that ERK activation and neurite outgrowth in response to depolarization are mediated by CaMKK activation of CaMKI.
Insights
Calcium influx activates calmodulin-dependent kinase kinase (CaMKK) and calmodulin-dependent kinase I (CaMKI), which then activate extracellular signal-regulated kinases (ERKs) to promote neurite outgrowth in NG108 cells.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Elevated intracellular calcium (Ca2+) activates signaling pathways involving protein kinases.
- Calmodulin-dependent kinases (CaMKs) and extracellular signal-regulated kinases (ERKs) are key players in cellular signaling.
- Cross-talk between CaMKs and ERKs in response to calcium signaling is not fully understood.
Purpose of the Study:
- To investigate the Ca2+-dependent cross-talk between CaMKK and ERK signaling pathways.
- To elucidate the role of CaMKK and CaMKI in depolarization-induced ERK activation.
- To determine the involvement of this signaling cascade in neuronal differentiation.
Main Methods:
- Utilized pharmacological inhibitors (e.g., STO-609) and dominant-negative kinases (dnKinases) in NG108 neuroblastoma cells.
- Examined the activation of ERK and JNK signaling pathways upon cellular depolarization.
- Assessed neurite outgrowth in response to pharmacological and genetic manipulations of the signaling pathway.
Main Results:
- Depolarization induced prolonged ERK and JNK activation, which was blocked by the CaMKK inhibitor STO-609.
- STO-609's inhibitory effect on ERK was rescued by a STO-609-insensitive CaMKK mutant, confirming specificity.
- Downstream of CaMKK, CaMKI was identified as the mediator of ERK activation, as dnCaMKI suppressed ERK2 activation.
- ERK activation and depolarization-induced neurite outgrowth were dependent on CaMKK-CaMKI signaling.
Conclusions:
- CaMKK activation of CaMKI is a critical step for ERK activation upon cellular depolarization.
- This CaMKK-CaMKI-ERK pathway mediates depolarization-induced neurite outgrowth in NG108 cells.
- These findings reveal a novel signaling mechanism linking calcium influx to neuronal differentiation.
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