| Literature DB >> 32627813 |
Richard T Timms1, Itay Koren2.
Abstract
Selective protein degradation bEntities:
Keywords: C-degron pathways; E3 ubiquitin ligases; N-degron pathways; degron; protein termini; ubiquitin proteasome system
Mesh:
Substances:
Year: 2020 PMID: 32627813 PMCID: PMC7458402 DOI: 10.1042/BST20191094
Source DB: PubMed Journal: Biochem Soc Trans ISSN: 0300-5127 Impact factor: 5.407
Figure 1.N-degron pathways.
(A) Arg/N-degron pathway. Substrate recognition by UBR family E3 ubiquitin ligases is best understood for UBR1, which harbours two distinct substrate binding sites: one accommodates the positively charged primary type I destabilising residues (R, K and H) [71,72], whilst the second recognises the bulky hydrophobic primary type II destabilising residues (W, Y, F, L, I) [73]. Specificity for the remaining N-terminal residues comes as a result of further N-terminal processing pathways: the tertiary destabilising residues (N and Q) can be deamidated to form the secondary destabilising residues (D and E) [74,75], which are subject to N-terminal arginylation by ATE1 [76]. Oxidised cysteine (C*) is also subject to N-terminal arginylation [51]. (B) Ac/N-degron pathway. In certain contexts, acetylated N-termini can serve as degrons. It is estimated that up to 80% of all human proteins are N-terminally acetylated to some extent by N-acetyltransferase (Nat) enzymes, with the degree of acetylation varying depending on the sequence context [31]. (C) Pro/N-degron pathway. The GID E3 ligase complex targets N-terminal proline degrons. (D) Gly/N-degron pathway. Two Cul2 complexes target N-terminal glycine degrons via the substrate adaptors ZYG11B and ZER1.
Figure 2.C-degron pathways.
C-terminal degrons are targeted by a diverse array of E3 ubiquitin ligases, all of which employ tandem repeat domains to facilitate degron recognition. Elongin-B (ELOB) and Elongin-C (ELOC) bridge the interaction between the substrate adaptor and Cul2; DNA damage-binding protein 1 (DDB1) functions similarly in the assembly of Cul4 complexes. The full APPBP2 degron can be defined as Rx[2–4]Gx[0–3], with RxxGx and RxxGxx serving as optimal motifs.
Example cellular roles of terminal degron pathways
| Function | Pathway | Substrate(s) | E3 ligase(s) | Ref(s) |
|---|---|---|---|---|
| Regulate complex stoichiometry | Ac/N-degron | Cog1 | Not4 | [ |
| Regulate subcellular localisation | Arg/N-degron | Mislocalised proteins | UBRs | [ |
| Transduce changes in external environment | Pro/N-degron | Gluconeogenic enzymes Fbp1, Icl1, Mdh2 and Pck1 | GID | [ |
| fMet/N-degron | Cse4, Pgd1, and Rps22a | Psh1 | [ | |
| Arg/N-degron | Oxidised Cys residues | UBRs | [ | |
| Regulate stability after protease cleavage | Arg/N-degron | C-terminal fragments generated by caspase cleavage | UBRs | [ |
| Arg/N-degron | C-terminal fragments generated by calpain cleavage | UBRs | [ | |
| Gly/N-degron | C-terminal fragments generated by caspase cleavage | Cul2ZYG11B Cul2ZER1 | [ | |
| Asp/C-degron | N-terminal fragments generated by caspase cleavage | CHIP | [ | |
| Gly/C-degron | Autocleaved Usp1 | Cul2KLHDC2 | [ | |
| Mediate cross-talk with autophagy | E-2/C-degron | MAGEA3 and MAGEA6 | Cul4DCAF12 | [ |
| Arg/N-degron | PINK1 | UBRs | [ | |
| Arg/N-degron | Various | UBRs | [ | |
| Ensure correct incorporation of PTMs | Gly/C-degron | Selenoproteins | Cul2KLHDC2 Cul2KLHDC3 Cul2APPBP2 | [ |
| Gly/N-degron | Cul2ZYG11B Cul2ZER1 | [ |