Molecular dynamics simulations elucidate the mode of protein recognition by Skp1 and the F-box domain in the SCF complex

Proteins. 2016 Jan;84(1):159-71. doi: 10.1002/prot.24963. Epub 2015 Dec 19.

Abstract

Polyubiquitination of the target protein by a ubiquitin transferring machinery is key to various cellular processes. E3 ligase Skp1-Cul1-F-box (SCF) is one such complex which plays crucial role in substrate recognition and transfer of the ubiquitin molecule. Previous computational studies have focused on S-phase kinase-associated protein 2 (Skp2), cullin, and RING-finger proteins of this complex, but the roles of the adapter protein Skp1 and F-box domain of Skp2 have not been determined. Using sub-microsecond molecular dynamics simulations of full-length Skp1, unbound Skp2, Skp2-Cks1 (Cks1: Cyclin-dependent kinases regulatory subunit 1), Skp1-Skp2, and Skp1-Skp2-Cks1 complexes, we have elucidated the function of Skp1 and the F-box domain of Skp2. We found that the L16 loop of Skp1, which was deleted in previous X-ray crystallography studies, can offer additional stability to the ternary complex via its interactions with the C-terminal tail of Skp2. Moreover, Skp1 helices H6, H7, and H8 display vivid conformational flexibility when not bound to Skp2, suggesting that these helices can recognize and lock the F-box proteins. Furthermore, we observed that the F-box domain could rotate (5°-129°), and that the binding partner determined the degree of conformational flexibility. Finally, Skp1 and Skp2 were found to execute a domain motion in Skp1-Skp2 and Skp1-Skp2-Cks1 complexes that could decrease the distance between ubiquitination site of the substrate and the ubiquitin molecule by 3 nm. Thus, we propose that both the F-box domain of Skp2 and Skp1-Skp2 domain motions displaying preferential conformational control can together facilitate polyubiquitination of a wide variety of substrates.

Keywords: F-box rotation; conformational sampling; flexible helices; ubiquitination.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cullin Proteins / chemistry
  • Cullin Proteins / metabolism
  • Humans
  • Molecular Dynamics Simulation
  • Protein Conformation
  • Protein Structure, Secondary
  • Protein Structure, Tertiary
  • S-Phase Kinase-Associated Proteins / chemistry*
  • S-Phase Kinase-Associated Proteins / metabolism
  • Ubiquitin-Protein Ligases / chemistry*
  • Ubiquitin-Protein Ligases / metabolism
  • Ubiquitination

Substances

  • Cullin 1
  • Cullin Proteins
  • S-Phase Kinase-Associated Proteins
  • SKP1 protein, human
  • Ubiquitin-Protein Ligases