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Complementation of Splicing Activity by a Galectin-3 - U1 snRNP Complex on Beads
Published on: December 9, 2020
ERαΔ4, an ERα splice variant missing exon4, interacts with caveolin-3 and mGluR2/3
Angela M Wong1,2, Alexandra K Scott1,2, Caroline S Johnson1,2
1Department of Neurobiology, David Geffen School of Medicine at UCLA, Los Angeles, California.
Abstract:
The two isoforms of the nuclear estrogen receptor, ERα and ERβ are widely expressed in the central nervous system. Although they were first described as nuclear receptors, both isoforms have also been found at the cell membrane where they mediate cell signaling. Surface biotinylation studies using neuronal and glial primary cultures label an alternatively spliced form of ERα. The 52 kDa protein, ERαΔ4, is missing exon 4 and is highly expressed in membrane fractions derived from cultured cells. In vivo, both full-length (66 kDa) ERα and ERαΔ4 are present in membrane fractions. In response to estradiol, full-length ERα and ERαΔ4 are initially trafficked to the membrane, and then internalized in parallel. Previous studies determined that only the full-length ERα associates with metabotropic glutamate receptor-1a (mGluR1a), initiating cellular signaling. The role of ERαΔ4, remained to be elucidated. Here, we report ERαΔ4 trafficking, association with mGluR2/3, and downstream signaling in female rat arcuate nucleus (ARH). Caveolin (CAV) proteins are needed for ER transport to the cell membrane, and using co-immunoprecipitation CAV-3 was shown to associate with ERαΔ4. CAV-3 was necessary for ERαΔ4 trafficking to the membrane: in the ARH, microinjection of CAV-3 siRNA reduced CAV-3 and ERαΔ4a in membrane fractions by 50%, and 60%, respectively. Moreover, co-immunoprecipitation revealed that ERαΔ4 associated with inhibitory mGluRs, mGluR2/3. Estrogen benzoate (EB) treatment (5 μg; s.c.; every 4 days; three cycles) reduced levels of cAMP, an effect attenuated by antagonizing mGluR2/3. Following EB treatment, membrane levels of ERαΔ4 and mGluR2/3 were reduced implying ligand-induced internalization. These results implicate ERαΔ4 in an estradiol-induced inhibitory cell signaling in the ARH.
Insights
This study reveals that estrogen receptor alpha delta 4 (ERαΔ4) traffics to the cell membrane and associates with inhibitory metabotropic glutamate receptors (mGluR2/3) to mediate estradiol
Area of Science:
- Neuroendocrinology
- Cellular signaling pathways
- Estrogen receptor research
Background:
- Estrogen receptors (ERα and ERβ) are crucial in the central nervous system, functioning both as nuclear and membrane receptors.
- An alternatively spliced ERα isoform, ERαΔ4, is found at the cell membrane and its signaling role is largely unknown.
- Caveolin proteins facilitate ER transport to the cell membrane.
Purpose of the Study:
- To elucidate the role of ERαΔ4 in cellular signaling within the female rat arcuate nucleus (ARH).
- To investigate ERαΔ4 trafficking, its association with metabotropic glutamate receptors (mGluRs), and downstream signaling pathways.
- To determine the involvement of Caveolin-3 (CAV-3) in ERαΔ4 membrane transport.
Main Methods:
- Co-immunoprecipitation to identify protein interactions between ERαΔ4, CAV-3, and mGluR2/3.
- Microinjection of CAV-3 siRNA in the ARH to assess CAV-3's role in ERαΔ4 trafficking.
- Measurement of cyclic adenosine monophosphate (cAMP) levels following estrogen benzoate (EB) treatment and mGluR2/3 antagonism.
- Analysis of membrane protein levels via Western blotting.
Main Results:
- ERαΔ4 was found to associate with CAV-3, which is essential for its membrane trafficking in the ARH.
- ERαΔ4 was shown to interact with inhibitory mGluR2/3.
- Estradiol treatment reduced cAMP levels, an effect reversed by mGluR2/3 antagonism, indicating ERαΔ4-mediated inhibitory signaling.
- Ligand-induced internalization of ERαΔ4 and mGluR2/3 was observed.
Conclusions:
- ERαΔ4 plays a significant role in estradiol-induced inhibitory cell signaling in the female rat ARH.
- CAV-3 is critical for ERαΔ4 membrane localization.
- ERαΔ4 signaling involves interaction with inhibitory mGluR2/3, modulating cAMP pathways.
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