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Published on: August 13, 2019
PELP1: a key mediator of oestrogen signalling and actions in the brain
R Thakkar1, G R Sareddy2, Q Zhang1
1Department of Neuroscience and Regenerative Medicine, Medical College of Georgia, Augusta University, Augusta, GA, USA.
Insights
Proline-, glutamic acid- and leucine-rich protein 1 (PELP1) is a key estrogen receptor (ER) coregulator in the brain. PELP1 mediates ER signaling, neuroprotection, and cognitive function, highlighting its critical role in brain health.
Area of Science:
- Neuroscience
- Molecular Biology
- Endocrinology
Background:
- Proline-, glutamic acid- and leucine-rich protein 1 (PELP1) is an estrogen receptor (ER) coregulator.
- PELP1 acts as a scaffold, interacting with ERs, kinases, and chromatin-modifying proteins.
- While studied in cancer, PELP1's role in the brain is a recent focus.
Purpose of the Study:
- To review the localization and function of PELP1 in the brain.
- To discuss PELP1's role in mediating estrogen signaling and its effects in the brain.
- To explore the PELP1 interactome and gene network in the brain.
Main Methods:
- Review of existing literature and research findings.
- Analysis of data from PELP1 forebrain-specific knockout mice.
- Discussion of PELP1's cellular and subcellular localization in neural tissues.
Main Results:
- PELP1 is localized in various brain regions, cells, and subcellular compartments.
- PELP1 is critical for both extranuclear and nuclear ER signaling in the brain.
- PELP1 mediates estrogen-induced neuroprotection, anti-inflammatory effects, and cognitive regulation.
Conclusions:
- PELP1 is a critical ER coregulator in the brain.
- PELP1 plays a vital role in mediating estrogen signaling and actions within the central nervous system.
- Understanding PELP1's interactome and gene network offers new insights into its brain functions.
Abstract:
Proline-, glutamic acid- and leucine-rich protein 1 (PELP1) is an oestrogen receptor (ER) coregulator protein identified by our collaborative group. Work from our laboratory and others has shown that PELP1 is a scaffold protein that interacts with ERs and kinase signalling factors, as well as proteins involved in chromatin remodelling and DNA repair. Its role in mediating 17β-oestradiol (E2 ) signalling and actions has been studied in detail in cancer cells, although only recently has attention turned to its role in the brain. In this review, we discuss the tissue, cellular and subcellular localisation of PELP1 in the brain. We also discuss recent evidence from PELP1 forebrain-specific knockout mice demonstrating a critical role of PELP1 in mediating both extranuclear and nuclear ER signalling in the brain, as well as E2 -induced neuroprotection, anti-inflammatory effects and regulation of cognitive function. Finally, the PELP1 interactome and unique gene network regulated by PELP1 in the brain is discussed, especially because it provides new insights into PELP1 biology, protein interactions and mechanisms of action in the brain. As a whole, the findings discussed in the present review indicate that PELP1 functions as a critical ER coregulator in the brain to mediate E2 signalling and actions.
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