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Updated: May 1, 2026

Subcellular Fractionation for ERK Activation Upon Mitochondrial-derived Peptide Treatment
Published on: September 25, 2017
Distinct pathways of ERK1/2 activation by hydroxy-carboxylic acid receptor-1
Guo Li1, Hui-qian Wang1, Li-hui Wang1
1Institute of Aging Research, School of Medicine, Hangzhou Normal University, Hangzhou, Zhejiang, China.
Insights
Hydroxy-carboxylic acid receptor-1 (HCA1) signaling activates ERK1/2 via Gi protein dissociation and Gβγ subunits. This occurs through PKC and IGF-I receptor transactivation pathways, independent of arrestins.
Area of Science:
- Cellular signaling pathways
- G protein-coupled receptors
- Molecular mechanisms of receptor activation
Background:
- Hydroxy-carboxylic acid receptor-1 (HCA1) couples to Gi proteins, inhibiting adenylate cyclase and free fatty acid release.
- The precise molecular mechanisms governing HCA1 signaling remain largely unelucidated.
Purpose of the Study:
- To investigate the molecular mechanisms underlying HCA1-mediated ERK1/2 activation.
- To identify the specific signaling pathways involved in HCA1-induced ERK1/2 phosphorylation.
Main Methods:
- Utilized CHO-K1 cells expressing HCA1 and L6 cells with endogenous rat HCA1.
- Employed pertussis toxin and M119K (Gβγ inhibitor) to probe signaling pathways.
- Investigated the role of extracellular Ca2+, PKC, and IGF-I receptor transactivation.
Main Results:
- HCA1 activation rapidly induced ERK1/2 phosphorylation, peaking at 5 minutes.
- Pertussis toxin and M119K significantly blocked HCA1-induced ERK1/2 activation.
- ERK1/2 activation was dependent on extracellular Ca2+, PKC, and IGF-I receptor transactivation, but not arrestins 2/3.
Conclusions:
- HCA1 activation initiates Gi protein dissociation, releasing Gβγ subunits.
- HCA1 triggers ERK1/2 activation through distinct PKC-dependent and IGF-IR transactivation-dependent pathways.
- These findings provide the first detailed molecular mechanism for HCA1-mediated ERK1/2 activation.
Abstract:
Mechanistic investigations have shown that, upon agonist activation, hydroxy-carboxylic acid receptor-1(HCA1) couples to a Gi protein and inhibits adenylate cyclase activity, leading to inhibition of liberation of free fatty acid. However, the underlying molecular mechanisms for HCA1 signaling remain largely unknown. Using CHO-K1 cells stably expressing HCA1, and L6 cells, which endogenously express rat HCA1 receptors, we found that activation of ERK1/2 by HCA1 was rapid, peaking at 5 min, and was significantly blocked by pertussis toxin. Furthermore, time course experiments with different kinase inhibitors demonstrated that HCA1 induced ERK1/2 activation via the extracellular Ca2+, PKC and IGF-I receptor transactivation-dependent pathways. In addition, we observed that pretreated the cells with M119K, an inhibitor of Gβγ subunit-dependent signaling, effectively attenuated the ERK1/2 activation triggered by HCA1, suggesting a critical role for βγ-subunits in HCA1-activated ERK1/2 phosphorylation. Furthermore, the present results also indicated that the arrestin2/3 were not required for ERK1/2 activation. In conclusion, our findings demonstrate that upon binding to agonist, HCA1 receptors initially activate Gi, leading to dissociation of the Gβγ subunit from activated Gi, and subsequently induce ERK1/2 activation via two distinct pathways: one PKC-dependent pathway and the other IGF-IR transactivation-dependent pathway. Our results provide the first in-depth evidence that defines the molecular mechanism of HCA1-mediated ERK1/2 activation.
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