4.7 Article

Structural and Dynamic Effects of PTEN C-Terminal Tail Phosphorylation

Journal

JOURNAL OF CHEMICAL INFORMATION AND MODELING
Volume 62, Issue 17, Pages 4175-4190

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jcim.2c00441

Keywords

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Funding

  1. Ambrose Monell Foundation PTEN-Switch Grant [PCCF0020]
  2. National Institutes of Health (NIH) [P41GM103712]
  3. Molecular Sciences Software Institute (MolSSI) (COVID-19 Seed Software Fellowship)
  4. Ambrose Monell Cancer Genomic Medicine Fellowship
  5. NIH National Cancer Institute [T32 5T32CA59366-22]
  6. NIH National Institute of General Medical Sciences (NIGMS) Maximizing Opportunities for Scientific and Academic Independent Careers (MOSAIC) [K99/R00, 1K99GM143552-01]

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The study reveals the mechanism of CTT phosphorylation dynamics in PTEN and identifies potential druggable allosteric sites in a previously believed clinically undruggable protein.
The phosphatase and tensin homologue deleted on chromosome 10 (PTEN) tumor suppressor gene encodes a tightly regulated dual-specificity phosphatase that serves as the master regulator of PI3K/AKT/mTOR signaling. The carboxy-terminal tail (CTT) is key to regulation and harbors multiple phosphorylation sites (Ser/Thr residues 380-385). CTT phosphorylation suppresses the phosphatase activity by inducing a stable, closed conformation. However, little is known about the mechanisms of phosphorylation-induced CTT-deactivation dynamics. Using explicit solvent microsecond molecular dynamics simulations, we show that CTT phosphorylation leads to a partially collapsed conformation, which alters the secondary structure of PTEN and induces longrange conformational rearrangements that encompass the active site. The active site rearrangements prevent localization of PTEN to the membrane, precluding lipid phosphatase activity. Notably, we have identified phosphorylation-induced allosteric coupling between the interdomain region and a hydrophobic site neighboring the active site in the phosphatase domain. Collectively, the results provide a mechanistic understanding of CTT phosphorylation dynamics and reveal potential druggable allosteric sites in a previously believed clinically undruggable protein.

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