AI Article Synopsis

  • The SCF complex is a key player in protein ubiquitination, essential for various cellular functions, with F-box proteins determining which substrates are targeted.
  • Some F-box proteins, like Fbs1-Fbs3, can bind to sugar molecules on glycoproteins, while FBG3 cannot, despite having a similar structure.
  • Researchers analyzed the crystal structure of the Skp1-FBG3 complex and found that specific loops in FBG3 prevent it from forming the carbohydrate-binding pocket seen in Fbs1.

Article Abstract

The Skp1-Cul1-F-box protein (SCF) complex catalyzes protein ubiquitination in diverse cellular processes and is one of the best-characterized ubiquitin ligases. F-box proteins determine the substrate specificities of SCF ubiquitin ligases. Among these, Fbs1/FBG1/FBXO2, Fbs2/FBG2/FBXO6, and Fbs3/FBG5/FBXO27 recognize the N-glycans of glycoproteins, whereas FBG3/FBXO44 has no sugar-binding activity, despite the high sequence homology and conservation of the residues necessary for oligosaccharide binding between Fbs1-3 and FBG3. Here we determined the crystal structure of the Skp1-FBG3 complex at a resolution of 2.6 Å. The substrate-binding domain of FBG3 is composed of a 10-stranded antiparallel β-sandwich with three helices. Although the overall structure of FBG3 is similar to that of Fbs1, the residues that form the Fbs1 carbohydrate-binding pocket failed to be superposed with the corresponding residues of FBG3. Structure-based mutational analysis shows that distinct hydrogen bond networks of four FBG3 loops, i.e., β2-β3, β5-β6, β7-β8, and β9-β10, prevent the formation of the carbohydrate-binding pocket shown in Fbs1.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4603797PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0140366PLOS

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