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Published on: July 9, 2016
Glucocorticoid Receptor Translational Isoforms Generate Unique Glucocorticoid Responses in the Mouse Brain
Robert H Oakley1, Tatsuya Sueyoshi1, Sivapriya Ramamoorthy1
1Molecular and Cellular Biology Laboratory, NIEHS, NIH, DHHS, Research Triangle Park, North Carolina, USA.
Abstract:
Glucocorticoids are primary stress hormones necessary for life that act on nearly every tissue in the body to maintain homeostasis. These hormones and their synthetic derivatives are widely used in the clinic to combat disease but are limited by serious adverse effects. The actions of glucocorticoids are mediated by the glucocorticoid receptor (GR). In addition to the classic full-length receptor (GR-A), seven highly conserved receptor isoforms with progressively shorter N-terminal transactivation domains (NTD) (GR-B, GR-C1, GR-C2, GR-C3, GR-D1, GR-D2, GR-D3) are produced from the single GR gene by alternative translation initiation. To investigate the physiological function of these isoforms, we developed knockin mice that express GR-A but lack the GR NTD translational isoforms. Analyses of the hippocampal transcriptome from wild-type and GR-A knockin mice treated with dexamethasone (Dex) revealed three classes of Dex-regulated genes: genes dependent on GR-A alone, genes dependent on the GR NTD translational isoforms, and genes dependent on GR-A only under conditions of GR NTD isoform deficiency. The genes dependent on the GR NTD isoforms were preferentially associated with circadian rhythm signaling, synaptic function, and cognition. Consistent with these gene enrichment results, the GR-A knockin mice exhibited alterations in hypothalamic-pituitary-adrenal axis activity and fear-motivated contextual learning. The GR NTD translational isoforms formed distinct molecular complexes with GR-A and with each other, providing a mechanistic basis for their unique transcriptional signatures. These findings demonstrate that the GR NTD translational isoforms contribute to the actions of glucocorticoids in the brain by generating heterogeneity in glucocorticoid signaling.
Insights
Glucocorticoid receptor (GR) isoforms, beyond the main GR-A, regulate brain functions like circadian rhythms and cognition. These N-terminal domain (NTD) isoforms fine-tune stress hormone actions, impacting learning and memory.
Area of Science:
- Neuroendocrinology
- Molecular Biology
- Genetics
Background:
- Glucocorticoids are vital stress hormones regulating homeostasis, but their clinical use is limited by adverse effects.
- The glucocorticoid receptor (GR) mediates these actions.
- Alternative translation initiation of the GR gene produces multiple isoforms with varying N-terminal transactivation domains (NTDs).
Purpose of the Study:
- To investigate the physiological roles of GR NTD translational isoforms.
- To understand how these isoforms contribute to glucocorticoid signaling in the brain.
Main Methods:
- Development of knockin mice expressing GR-A but lacking GR NTD isoforms.
- Dexamethasone (Dex) treatment and hippocampal transcriptome analysis.
- Analysis of molecular complex formation between GR isoforms.
Main Results:
- Identified three classes of Dex-regulated genes based on GR-A and GR NTD isoform dependence.
- Genes regulated by GR NTD isoforms are linked to circadian rhythms, synaptic function, and cognition.
- GR-A knockin mice showed altered HPA axis activity and contextual learning.
Conclusions:
- GR NTD translational isoforms generate molecular complexes that confer unique transcriptional signatures.
- These isoforms are critical for glucocorticoid actions in the brain, influencing stress response and cognitive functions.
- Findings reveal a novel layer of complexity in glucocorticoid signaling.

