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Published on: September 10, 2013
Cortisol Induces Reactive Oxygen Species Through a Membrane Glucocorticoid Receptor in Rainbow Trout Myotubes
Marlen B Espinoza1,2, Jorge E Aedo1,2, Rodrigo Zuloaga1,2
1Laboratorio de Biotecnología Molecular, Facultad de Ciencias Biológicas, Universidad Andrés Bello, Santiago, Chile.
Abstract:
Cortisol is an essential regulator of neuroendocrine stress responses in teleosts. Cortisol predominantly affects target tissues through the genomic pathway, which involves interacting with cytoplasmic glucocorticoid receptors, and thereby, modulating stress-response gene expressions. Cortisol also produces rapid effects via non-genomic pathways, which do not involve gene transcription. Although cortisol-mediated genomic pathways are well documented in teleosts, non-genomic pathways are not fully understood. Moreover, no studies have focused on the contribution of non-genomic cortisol pathways in compensatory stress responses in fish. In this study, rainbow trout (Oncorhynchus mykiss) skeletal myotubes were stimulated with physiological concentrations of cortisol and cortisol-BSA, a membrane-impermeable agent, resulting in an early induction of reactive oxygen species (ROS). This production was not suppressed by transcription or translation inhibitors, suggesting non-genomic pathway involvement. Moreover, myotube preincubation with RU486 and NAC completely suppressed cortisol- and cortisol-BSA-induced ROS production. Subcellular fractionation analysis revealed the presence of cell membrane glucocorticoid receptors. Finally, cortisol-BSA induced a significant increase in ERK1/2 and CREB phosphorylation, as well as in CREB-dependent transcriptional activation of the pgc1a gene expression. The obtained results strongly suggest that cortisol acts through a non-genomic glucocorticoid receptor-mediated pathway to induce ROS production and contribute to ERK/CREB/PGC1-α signaling pathway activation as stress compensation mechanisms. J. Cell. Biochem. 118: 718-725, 2017. © 2016 Wiley Periodicals, Inc.
Insights
Cortisol rapidly activates non-genomic pathways in fish stress responses, inducing reactive oxygen species (ROS) via membrane receptors. This pathway contributes to stress compensation by activating ERK/CREB/PGC1-α signaling.
Area of Science:
- Endocrinology
- Fish Physiology
- Cellular Stress Response
Background:
- Cortisol regulates teleost stress responses, primarily via genomic pathways.
- Non-genomic cortisol pathways are less understood, especially in fish stress compensation.
- This study investigates non-genomic cortisol actions in rainbow trout skeletal myotubes.
Purpose of the Study:
- To elucidate the role of non-genomic cortisol pathways in fish stress response.
- To identify the involvement of membrane-bound glucocorticoid receptors.
- To explore cortisol's effect on reactive oxygen species (ROS) production and downstream signaling.
Main Methods:
- Stimulation of rainbow trout myotubes with cortisol and cortisol-BSA.
- Assessment of ROS production with and without transcription/translation inhibitors.
- Inhibition studies using RU486 and NAC.
- Subcellular fractionation to locate glucocorticoid receptors.
- Analysis of ERK1/2, CREB phosphorylation, and pgc1a gene expression.
Main Results:
- Cortisol and cortisol-BSA induced rapid ROS production, independent of transcription/translation.
- RU486 and NAC treatments suppressed cortisol-induced ROS production.
- Glucocorticoid receptors were detected in the cell membrane.
- Cortisol-BSA increased ERK1/2 and CREB phosphorylation and pgc1a gene expression.
Conclusions:
- Cortisol utilizes a non-genomic, membrane-bound glucocorticoid receptor pathway to induce ROS.
- This non-genomic pathway contributes to stress compensation mechanisms in fish.
- Activation of the ERK/CREB/PGC1-α signaling cascade is involved in this response.

