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.

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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