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Phosphorylation of the retinoic acid receptor alpha induces a mechanical allosteric regulation and changes in
Yassmine Chebaro1, Ismail Amal, Natacha Rochel
1Institute of Genetics and Molecular and Cellular Biology, Integrated Structural Biology Department, Illkirch, France.
Abstract:
Nuclear receptor proteins constitute a superfamily of proteins that function as ligand dependent transcription factors. They are implicated in the transcriptional cascades underlying many physiological phenomena, such as embryogenesis, cell growth and differentiation, and apoptosis, making them one of the major signal transduction paradigms in metazoans. Regulation of these receptors occurs through the binding of hormones, and in the case of the retinoic acid receptor (RAR), through the binding of retinoic acid (RA). In addition to this canonical scenario of RAR activity, recent discoveries have shown that RAR regulation also occurs as a result of phosphorylation. In fact, RA induces non-genomic effects, such as the activation of kinase signaling pathways, resulting in the phosphorylation of several targets including RARs themselves. In the case of RARα, phosphorylation of Ser369 located in loop L9-10 of the ligand-binding domain leads to an increase in the affinity for the protein cyclin H, which is part of the Cdk-activating kinase complex of the general transcription factor TFIIH. The cyclin H binding site in RARα is situated more than 40 Å from the phosphorylated serine. Using molecular dynamics simulations of the unphosphorylated and phosphorylated forms of the receptor RARα, we analyzed the structural implications of receptor phosphorylation, which led to the identification of a structural mechanism for the allosteric coupling between the two remote sites of interest. The results show that phosphorylation leads to a reorganization of a local salt bridge network, which induces changes in helix extension and orientation that affects the cyclin H binding site. This results in changes in conformation and flexibility of the latter. The high conservation of the residues implicated in this signal transduction suggests a mechanism that could be applied to other nuclear receptor proteins.
Insights
Phosphorylation of retinoic acid receptor alpha (RARα) alters its structure, enhancing cyclin H binding. This allosteric mechanism, involving a salt bridge network, impacts transcription factor TFIIH activity and may apply to other nuclear receptors.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Nuclear receptors are crucial ligand-dependent transcription factors regulating vital physiological processes.
- Retinoic acid receptor (RAR) activity is primarily regulated by retinoic acid (RA) binding.
- Emerging evidence highlights phosphorylation as a key regulatory mechanism for RARs.
Purpose of the Study:
- To investigate the structural consequences of retinoic acid receptor alpha (RARα) phosphorylation.
- To elucidate the allosteric mechanism linking phosphorylation at Ser369 to the cyclin H binding site.
- To explore the potential broader implications of this mechanism for other nuclear receptors.
Main Methods:
- Molecular dynamics simulations were employed to compare unphosphorylated and phosphorylated RARα.
- Analysis focused on structural changes, salt bridge networks, and helix dynamics.
- The study examined the allosteric coupling between the phosphorylation site and the cyclin H binding site.
Main Results:
- Phosphorylation of RARα at Ser369 triggers a reorganization of a local salt bridge network.
- This reorganization induces conformational and flexibility changes in the cyclin H binding site, increasing affinity.
- The structural changes propagate through the receptor, demonstrating allosteric regulation.
Conclusions:
- RARα phosphorylation provides a novel regulatory pathway impacting its interaction with the Cdk-activating kinase complex.
- The identified allosteric mechanism reveals how distant phosphorylation events modulate protein-protein interactions.
- Conserved residues suggest this phosphorylation-dependent allosteric mechanism is applicable across the nuclear receptor superfamily.
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